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Inductance

Inductance is the tendency of an electrical conductor to oppose a change in the electric current flowing through it. The electric current produces a magnetic field around the conductor. The magnetic field strength depends on the magnitude of the electric current, and follows any changes in the magnitude of the current. From Faraday's law of induction, any change in magnetic field through a circuit induces an electromotive force (EMF) (voltage) in the conductors, a process known as electromagnetic induction. This induced voltage created by the changing current has the effect of opposing the change in current. This is stated by Lenz's law, and the voltage is called back EMF.

Inductance
Common symbols
L
SI unithenry (H)
In SI base unitskgm2s−2A−2
Derivations from
other quantities
DimensionM1·L2·T−2·I−2

Inductance is defined as the ratio of the induced voltage to the rate of change of current causing it.[1] It is a proportionality constant that depends on the geometry of circuit conductors (e.g., cross-section area and length) and the magnetic permeability of the conductor and nearby materials.[1] An electronic component designed to add inductance to a circuit is called an inductor. It typically consists of a coil or helix of wire.

The term inductance was coined by Oliver Heaviside in May 1884, as a convenient way to refer to "coefficient of self-induction".[2][3] It is customary to use the symbol for inductance, in honour of the physicist Heinrich Lenz.[4][5] In the SI system, the unit of inductance is the henry (H), which is the amount of inductance that causes a voltage of one volt, when the current is changing at a rate of one ampere per second.[6] The unit is named for Joseph Henry, who discovered inductance independently of Faraday.[7]

History edit

The history of electromagnetic induction, a facet of electromagnetism, began with observations of the ancients: electric charge or static electricity (rubbing silk on amber), electric current (lightning), and magnetic attraction (lodestone). Understanding the unity of these forces of nature, and the scientific theory of electromagnetism was initiated and achieved during the 19th century.

Electromagnetic induction was first described by Michael Faraday in 1831.[8][9] In Faraday's experiment, he wrapped two wires around opposite sides of an iron ring. He expected that, when current started to flow in one wire, a sort of wave would travel through the ring and cause some electrical effect on the opposite side. Using a galvanometer, he observed a transient current flow in the second coil of wire each time that a battery was connected or disconnected from the first coil.[10] This current was induced by the change in magnetic flux that occurred when the battery was connected and disconnected.[11] Faraday found several other manifestations of electromagnetic induction. For example, he saw transient currents when he quickly slid a bar magnet in and out of a coil of wires, and he generated a steady (DC) current by rotating a copper disk near the bar magnet with a sliding electrical lead ("Faraday's disk").[12]

Source of inductance edit

A current   flowing through a conductor generates a magnetic field around the conductor, which is described by Ampere's circuital law. The total magnetic flux   through a circuit is equal to the product of the perpendicular component of the magnetic flux density and the area of the surface spanning the current path. If the current varies, the magnetic flux   through the circuit changes. By Faraday's law of induction, any change in flux through a circuit induces an electromotive force (EMF,  ) in the circuit, proportional to the rate of change of flux

 

The negative sign in the equation indicates that the induced voltage is in a direction which opposes the change in current that created it; this is called Lenz's law. The potential is therefore called a back EMF. If the current is increasing, the voltage is positive at the end of the conductor through which the current enters and negative at the end through which it leaves, tending to reduce the current. If the current is decreasing, the voltage is positive at the end through which the current leaves the conductor, tending to maintain the current. Self-inductance, usually just called inductance,   is the ratio between the induced voltage and the rate of change of the current

 

Thus, inductance is a property of a conductor or circuit, due to its magnetic field, which tends to oppose changes in current through the circuit. The unit of inductance in the SI system is the henry (H), named after Joseph Henry, which is the amount of inductance that generates a voltage of one volt when the current is changing at a rate of one ampere per second.

All conductors have some inductance, which may have either desirable or detrimental effects in practical electrical devices. The inductance of a circuit depends on the geometry of the current path, and on the magnetic permeability of nearby materials; ferromagnetic materials with a higher permeability like iron near a conductor tend to increase the magnetic field and inductance. Any alteration to a circuit which increases the flux (total magnetic field) through the circuit produced by a given current increases the inductance, because inductance is also equal to the ratio of magnetic flux to current[13][14][15][16]

 

An inductor is an electrical component consisting of a conductor shaped to increase the magnetic flux, to add inductance to a circuit. Typically it consists of a wire wound into a coil or helix. A coiled wire has a higher inductance than a straight wire of the same length, because the magnetic field lines pass through the circuit multiple times, it has multiple flux linkages. The inductance is proportional to the square of the number of turns in the coil, assuming full flux linkage.

The inductance of a coil can be increased by placing a magnetic core of ferromagnetic material in the hole in the center. The magnetic field of the coil magnetizes the material of the core, aligning its magnetic domains, and the magnetic field of the core adds to that of the coil, increasing the flux through the coil. This is called a ferromagnetic core inductor. A magnetic core can increase the inductance of a coil by thousands of times.

If multiple electric circuits are located close to each other, the magnetic field of one can pass through the other; in this case the circuits are said to be inductively coupled. Due to Faraday's law of induction, a change in current in one circuit can cause a change in magnetic flux in another circuit and thus induce a voltage in another circuit. The concept of inductance can be generalized in this case by defining the mutual inductance   of circuit   and circuit   as the ratio of voltage induced in circuit   to the rate of change of current in circuit  . This is the principle behind a transformer. The property describing the effect of one conductor on itself is more precisely called self-inductance, and the properties describing the effects of one conductor with changing current on nearby conductors is called mutual inductance.[17]

Self-inductance and magnetic energy edit

If the current through a conductor with inductance is increasing, a voltage   is induced across the conductor with a polarity that opposes the current—in addition to any voltage drop caused by the conductor's resistance. The charges flowing through the circuit lose potential energy. The energy from the external circuit required to overcome this "potential hill" is stored in the increased magnetic field around the conductor. Therefore, an inductor stores energy in its magnetic field. At any given time   the power   flowing into the magnetic field, which is equal to the rate of change of the stored energy  , is the product of the current   and voltage   across the conductor[18][19][20]

 

From (1) above

 

When there is no current, there is no magnetic field and the stored energy is zero. Neglecting resistive losses, the energy   (measured in joules, in SI) stored by an inductance with a current   through it is equal to the amount of work required to establish the current through the inductance from zero, and therefore the magnetic field. This is given by:

 

If the inductance   is constant over the current range, the stored energy is[18][19][20]

 

Inductance is therefore also proportional to the energy stored in the magnetic field for a given current. This energy is stored as long as the current remains constant. If the current decreases, the magnetic field decreases, inducing a voltage in the conductor in the opposite direction, negative at the end through which current enters and positive at the end through which it leaves. This returns stored magnetic energy to the external circuit.

If ferromagnetic materials are located near the conductor, such as in an inductor with a magnetic core, the constant inductance equation above is only valid for linear regions of the magnetic flux, at currents below the level at which the ferromagnetic material saturates, where the inductance is approximately constant. If the magnetic field in the inductor approaches the level at which the core saturates, the inductance begins to change with current, and the integral equation must be used.

Inductive reactance edit

 
The voltage ( , blue) and current ( , red) waveforms in an ideal inductor to which an alternating current has been applied. The current lags the voltage by 90°

When a sinusoidal alternating current (AC) is passing through a linear inductance, the induced back-EMF is also sinusoidal. If the current through the inductance is  , from (1) above the voltage across it is

 

where   is the amplitude (peak value) of the sinusoidal current in amperes,   is the angular frequency of the alternating current, with   being its frequency in hertz, and   is the inductance.

Thus the amplitude (peak value) of the voltage across the inductance is

 

Inductive reactance is the opposition of an inductor to an alternating current.[21] It is defined analogously to electrical resistance in a resistor, as the ratio of the amplitude (peak value) of the alternating voltage to current in the component

 

Reactance has units of ohms. It can be seen that inductive reactance of an inductor increases proportionally with frequency  , so an inductor conducts less current for a given applied AC voltage as the frequency increases. Because the induced voltage is greatest when the current is increasing, the voltage and current waveforms are out of phase; the voltage peaks occur earlier in each cycle than the current peaks. The phase difference between the current and the induced voltage is   radians or 90 degrees, showing that in an ideal inductor the current lags the voltage by 90°.

Calculating inductance edit

In the most general case, inductance can be calculated from Maxwell's equations. Many important cases can be solved using simplifications. Where high frequency currents are considered, with skin effect, the surface current densities and magnetic field may be obtained by solving the Laplace equation. Where the conductors are thin wires, self-inductance still depends on the wire radius and the distribution of the current in the wire. This current distribution is approximately constant (on the surface or in the volume of the wire) for a wire radius much smaller than other length scales.

Inductance of a straight single wire edit

As a practical matter, longer wires have more inductance, and thicker wires have less, analogous to their electrical resistance (although the relationships aren't linear, and are different in kind from the relationships that length and diameter bear to resistance).

Separating the wire from the other parts of the circuit introduces some unavoidable error in any formulas' results. These inductances are often referred to as “partial inductances”, in part to encourage consideration of the other contributions to whole-circuit inductance which are omitted.

Practical formulas edit

For derivation of the formulas below, see Rosa (1908).[22] The total low frequency inductance (interior plus exterior) of a straight wire is:

 

where

  •   is the "low-frequency" or DC inductance in nanohenry (nH or 10−9H),
  •   is the length of the wire in meters,
  •   is the radius of the wire in meters (hence a very small decimal number),
  • the constant   is the permeability of free space, commonly called  , divided by  ; in the absence of magnetically reactive insulation the value 200 is exact when using the classical definition of μ0 = ×10−7 H/m, and correct to 7 decimal places when using the 2019-redefined SI value of μ0 = 1.25663706212(19)×10−6 H/m.

The constant 0.75 is just one parameter value among several; different frequency ranges, different shapes, or extremely long wire lengths require a slightly different constant (see below). This result is based on the assumption that the radius   is much less than the length  , which is the common case for wires and rods. Disks or thick cylinders have slightly different formulas.

For sufficiently high frequencies skin effects cause the interior currents to vanish, leaving only the currents on the surface of the conductor; the inductance for alternating current,   is then given by a very similar formula:

 
where the variables   and   are the same as above; note the changed constant term now 1, from 0.75 above.

In an example from everyday experience, just one of the conductors of a lamp cord 10 m long, made of 18 AWG wire, would only have an inductance of about 19 μH if stretched out straight.

Mutual inductance of two parallel straight wires edit

There are two cases to consider:

  1. Current travels in the same direction in each wire, and
  2. current travels in opposing directions in the wires.

Currents in the wires need not be equal, though they often are, as in the case of a complete circuit, where one wire is the source and the other the return.

Mutual inductance of two wire loops edit

This is the generalized case of the paradigmatic two-loop cylindrical coil carrying a uniform low frequency current; the loops are independent closed circuits that can have different lengths, any orientation in space, and carry different currents. Nonetheless, the error terms, which are not included in the integral are only small if the geometries of the loops are mostly smooth and convex: They must not have too many kinks, sharp corners, coils, crossovers, parallel segments, concave cavities, or other topologically "close" deformations. A necessary predicate for the reduction of the 3-dimensional manifold integration formula to a double curve integral is that the current paths be filamentary circuits, i.e. thin wires where the radius of the wire is negligible compared to its length.

The mutual inductance by a filamentary circuit   on a filamentary circuit   is given by the double integral Neumann formula[23]

 

where

  and   are the curves followed by the wires.
  is the permeability of free space (4π×10−7 H/m)
  is a small increment of the wire in circuit Cm
  is the position of   in space
  is a small increment of the wire in circuit Cn
  is the position of   in space.

Derivation edit

 

where

  •   is the current through the  th wire, this current creates the magnetic flux  through the  th surface
  •   is the magnetic flux through the ith surface due to the electrical circuit outlined by  :[24]
 

where

  •   is the curve enclosing surface  ; and   is any arbitrary orientable area with edge  
  •   is the magnetic field vector due to the  -th current (of circuit  ).
  •   is the vector potential due to the  -th current.

Stokes' theorem has been used for the 3rd equality step. For the last equality step, we used the retarded potential expression for   and we ignore the effect of the retarded time (assuming the geometry of the circuits is small enough compared to the wavelength of the current they carry). It is actually an approximation step, and is valid only for local circuits made of thin wires.

Self-inductance of a wire loop edit

Formally, the self-inductance of a wire loop would be given by the above equation with   However, here   becomes infinite, leading to a logarithmically divergent integral.[a] This necessitates taking the finite wire radius   and the distribution of the current in the wire into account. There remains the contribution from the integral over all points and a correction term,[25]

 

where

  and   are distances along the curves   and   respectively
  is the radius of the wire
  is the length of the wire
  is a constant that depends on the distribution of the current in the wire:
  when the current flows on the surface of the wire (total skin effect),
  when the current is evenly over the cross-section of the wire.
  is an error term whose size depends on the curve of the loop:
  when the loop has sharp corners, and
  when it is a smooth curve.
Both are small when the wire is long compared to its radius.

Inductance of a solenoid edit

A solenoid is a long, thin coil; i.e., a coil whose length is much greater than its diameter. Under these conditions, and without any magnetic material used, the magnetic flux density   within the coil is practically constant and is given by

 

where   is the magnetic constant,   the number of turns,   the current and   the length of the coil. Ignoring end effects, the total magnetic flux through the coil is obtained by multiplying the flux density   by the cross-section area  :

 

When this is combined with the definition of inductance  , it follows that the inductance of a solenoid is given by:

 

Therefore, for air-core coils, inductance is a function of coil geometry and number of turns, and is independent of current.

Inductance of a coaxial cable edit

Let the inner conductor have radius   and permeability  , let the dielectric between the inner and outer conductor have permeability  , and let the outer conductor have inner radius  , outer radius  , and permeability  . However, for a typical coaxial line application, we are interested in passing (non-DC) signals at frequencies for which the resistive skin effect cannot be neglected. In most cases, the inner and outer conductor terms are negligible, in which case one may approximate

 

Inductance of multilayer coils edit

Most practical air-core inductors are multilayer cylindrical coils with square cross-sections to minimize average distance between turns (circular cross -sections would be better but harder to form).

Magnetic cores edit

Many inductors include a magnetic core at the center of or partly surrounding the winding. Over a large enough range these exhibit a nonlinear permeability with effects such as magnetic saturation. Saturation makes the resulting inductance a function of the applied current.

The secant or large-signal inductance is used in flux calculations. It is defined as:

 

The differential or small-signal inductance, on the other hand, is used in calculating voltage. It is defined as:

 

The circuit voltage for a nonlinear inductor is obtained via the differential inductance as shown by Faraday's Law and the chain rule of calculus.

 

Similar definitions may be derived for nonlinear mutual inductance.

Mutual inductance edit

Mutual inductance is defined as the ratio between the EMF induced in one loop or coil by the rate of change of current in another loop or coil. Mutual inductance is given the symbol M.

Derivation of mutual inductance edit

The inductance equations above are a consequence of Maxwell's equations. For the important case of electrical circuits consisting of thin wires, the derivation is straightforward.

In a system of   wire loops, each with one or several wire turns, the flux linkage of loop  ,  , is given by

 

Here   denotes the number of turns in loop  ;   is the magnetic flux through loop  ; and   are some constants described below. This equation follows from Ampere's law: magnetic fields and fluxes are linear functions of the currents. By Faraday's law of induction, we have

 

where   denotes the voltage induced in circuit  . This agrees with the definition of inductance above if the coefficients   are identified with the coefficients of inductance. Because the total currents   contribute to   it also follows that   is proportional to the product of turns  .

Mutual inductance and magnetic field energy edit

Multiplying the equation for vm above with imdt and summing over m gives the energy transferred to the system in the time interval dt,

 

This must agree with the change of the magnetic field energy, W, caused by the currents.[26] The integrability condition

 

requires Lm,n = Ln,m. The inductance matrix, Lm,n, thus is symmetric. The integral of the energy transfer is the magnetic field energy as a function of the currents,

 

This equation also is a direct consequence of the linearity of Maxwell's equations. It is helpful to associate changing electric currents with a build-up or decrease of magnetic field energy. The corresponding energy transfer requires or generates a voltage. A mechanical analogy in the K = 1 case with magnetic field energy (1/2)Li2 is a body with mass M, velocity u and kinetic energy (1/2)Mu2. The rate of change of velocity (current) multiplied with mass (inductance) requires or generates a force (an electrical voltage).

 
Circuit diagram of two mutually coupled inductors. The two vertical lines between the windings indicate that the transformer has a ferromagnetic core . "n:m" shows the ratio between the number of windings of the left inductor to windings of the right inductor. This picture also shows the dot convention.

Mutual inductance occurs when the change in current in one inductor induces a voltage in another nearby inductor. It is important as the mechanism by which transformers work, but it can also cause unwanted coupling between conductors in a circuit.

The mutual inductance,  , is also a measure of the coupling between two inductors. The mutual inductance by circuit   on circuit   is given by the double integral Neumann formula, see calculation techniques

The mutual inductance also has the relationship:

 
where
  •   is the mutual inductance, and the subscript specifies the relationship of the voltage induced in coil 2 due to the current in coil 1.
  •   is the number of turns in coil 1,
  •   is the number of turns in coil 2,
  •   is the permeance of the space occupied by the flux.

Once the mutual inductance   is determined, it can be used to predict the behavior of a circuit:

 
where
  •   is the voltage across the inductor of interest;
  •   is the inductance of the inductor of interest;
  •   is the derivative, with respect to time, of the current through the inductor of interest, labeled 1;
  •   is the derivative, with respect to time, of the current through the inductor, labeled 2, that is coupled to the first inductor; and
  •   is the mutual inductance.

The minus sign arises because of the sense the current   has been defined in the diagram. With both currents defined going into the dots the sign of   will be positive (the equation would read with a plus sign instead).[27]

Coupling coefficient edit

The coupling coefficient is the ratio of the open-circuit actual voltage ratio to the ratio that would be obtained if all the flux coupled from one magnetic circuit to the other. The coupling coefficient is related to mutual inductance and self inductances in the following way. From the two simultaneous equations expressed in the two-port matrix the open-circuit voltage ratio is found to be:

 
where
  •  

while the ratio if all the flux is coupled is the ratio of the turns, hence the ratio of the square root of the inductances

 

thus,

 
where
  •   is the coupling coefficient,
  •   is the inductance of the first coil, and
  •   is the inductance of the second coil.

The coupling coefficient is a convenient way to specify the relationship between a certain orientation of inductors with arbitrary inductance. Most authors define the range as  , but some[28] define it as  . Allowing negative values of   captures phase inversions of the coil connections and the direction of the windings.[29]

Matrix representation edit

Mutually coupled inductors can be described by any of the two-port network parameter matrix representations. The most direct are the z parameters, which are given by

 

where   is the complex frequency variable,   and   are the inductances of the primary and secondary coil, respectively, and   is the mutual inductance between the coils.

Equivalent circuits edit

T-circuit edit

 
T equivalent circuit of mutually coupled inductors

Mutually coupled inductors can equivalently be represented by a T-circuit of inductors as shown. If the coupling is strong and the inductors are of unequal values then the series inductor on the step-down side may take on a negative value.

This can be analyzed as a two port network. With the output terminated with some arbitrary impedance  , the voltage gain  , is given by,

 

where   is the coupling constant and   is the complex frequency variable, as above. For tightly coupled inductors where   this reduces to

 

which is independent of the load impedance. If the inductors are wound on the same core and with the same geometry, then this expression is equal to the turns ratio of the two inductors because inductance is proportional to the square of turns ratio.

The input impedance of the network is given by,

 

For   this reduces to

 

Thus, current gain   is not independent of load unless the further condition

 

is met, in which case,

 

and

 

π-circuit edit

 
π equivalent circuit of coupled inductors

Alternatively, two coupled inductors can be modelled using a π equivalent circuit with optional ideal transformers at each port. While the circuit is more complicated than a T-circuit, it can be generalized[30] to circuits consisting of more than two coupled inductors. Equivalent circuit elements  ,   have physical meaning, modelling respectively magnetic reluctances of coupling paths and magnetic reluctances of leakage paths. For example, electric currents flowing through these elements correspond to coupling and leakage magnetic fluxes. Ideal transformers normalize all self-inductances to 1 Henry to simplify mathematical formulas.

Equivalent circuit element values can be calculated from coupling coefficients with

 

where coupling coefficient matrix and its cofactors are defined as

  and  

For two coupled inductors, these formulas simplify to

  and  

and for three coupled inductors (for brevity shown only for   and  )

  and  

Resonant transformer edit

When a capacitor is connected across one winding of a transformer, making the winding a tuned circuit (resonant circuit) it is called a single-tuned transformer. When a capacitor is connected across each winding, it is called a double tuned transformer. These resonant transformers can store oscillating electrical energy similar to a resonant circuit and thus function as a bandpass filter, allowing frequencies near their resonant frequency to pass from the primary to secondary winding, but blocking other frequencies. The amount of mutual inductance between the two windings, together with the Q factor of the circuit, determine the shape of the frequency response curve. The advantage of the double tuned transformer is that it can have a wider bandwidth than a simple tuned circuit. The coupling of double-tuned circuits is described as loose-, critical-, or over-coupled depending on the value of the coupling coefficient  . When two tuned circuits are loosely coupled through mutual inductance, the bandwidth is narrow. As the amount of mutual inductance increases, the bandwidth continues to grow. When the mutual inductance is increased beyond the critical coupling, the peak in the frequency response curve splits into two peaks, and as the coupling is increased the two peaks move further apart. This is known as overcoupling.

Stongly-coupled self-resonant coils can be used for wireless power transfer between devices in the mid range distances (up to two metres).[31] Strong coupling is required for a high percentage of power transferred, which results in peak splitting of the frequency response.[32] [33]

Ideal transformers edit

When  , the inductor is referred to as being closely coupled. If in addition, the self-inductances go to infinity, the inductor becomes an ideal transformer. In this case the voltages, currents, and number of turns can be related in the following way:

 
where
  •   is the voltage across the secondary inductor,
  •   is the voltage across the primary inductor (the one connected to a power source),
  •   is the number of turns in the secondary inductor, and
  •   is the number of turns in the primary inductor.

Conversely the current:

 
where
  •   is the current through the secondary inductor,
  •   is the current through the primary inductor (the one connected to a power source),
  •   is the number of turns in the secondary inductor, and
  •   is the number of turns in the primary inductor.

The power through one inductor is the same as the power through the other. These equations neglect any forcing by current sources or voltage sources.

Self-inductance of thin wire shapes edit

The table below lists formulas for the self-inductance of various simple shapes made of thin cylindrical conductors (wires). In general these are only accurate if the wire radius   is much smaller than the dimensions of the shape, and if no ferromagnetic materials are nearby (no magnetic core).

Self-inductance of thin wire shapes
Type Inductance Comment
Single layer
solenoid

Wheeler's approximation formula for current-sheet model air-core coil:[34][35]

  (inches)          (cm)

This formula gives an error no more than 1% when  

  •   inductance in μH (10−6 henries)
  •   number of turns
  •   diameter in (inches) (cm)
  •   length in (inches) (cm)
Coaxial
cable (HF)
 
  •  : Outer cond.'s inside radius
  •  : Inner conductor's radius
  •  : Length
  •  : see table footnote.
Circular loop[36]  
  •  : Loop radius
  •  : Wire radius
  •  : see table footnotes.
Rectangle from
round wire[37]

 

  •  : Side lengths
  •  
  •  : Wire radius
  •  : see table footnotes.
Pair of parallel
wires
 
  •  : Wire radius
  •  : Separation distance,  
  •  : Length of pair
  •  : see table footnotes.
Pair of parallel
wires (HF)

 

  •  : Wire radius
  •  : Separation distance,  
  •  : Length (each) of pair
  •  : see table footnote.

  is an approximately constant value between 0 and 1 that depends on the distribution of the current in the wire:   when the current flows only on the surface of the wire (complete skin effect),   when the current is evenly spread over the cross-section of the wire (direct current). For round wires, Rosa (1908) gives a formula equivalent to:[22]

 

where

  •   is the angular frequency, in radians per second;
  •   is the net magnetic permeability of the wire;
  •   is the wire's specific conductivity; and
  •   is the wire radius.

  is represents small term(s) that have been dropped from the formula, to make it simpler. Read the term   as "plus small corrections that vary on the order of  " (see big O notation).

See also edit

Footnotes edit

  1. ^ The integral is called "logarithmically divergent" because   for  , hence it approaches infinity like a logarithm whose argument approaches infinity.

References edit

  1. ^ a b Serway, A. Raymond; Jewett, John W.; Wilson, Jane; Wilson, Anna; Rowlands, Wayne (2017). "Inductance". Physics for global scientists and engineers (2 ed.). Cengage AU. p. 901. ISBN 9780170355520.
  2. ^ Baker, Edward Cecil (1976). Sir William Preece, F.R.S.: Victorian Engineer Extraordinary. Hutchinson. p. 204. ISBN 9780091266103..
  3. ^ Heaviside, Oliver (1894). "The induction of currents in cores". Electrical Papers, Vol. 1. London: Macmillan. p. 354.
  4. ^ Elert, Glenn. "The Physics Hypertextbook: Inductance". Retrieved 30 July 2016.
  5. ^ Davidson, Michael W. (1995–2008). "Molecular Expressions: Electricity and Magnetism Introduction: Inductance".
  6. ^ Le Système international d’unités [The International System of Units] (PDF) (in French and English) (9th ed.), International Bureau of Weights and Measures, 2019, ISBN 978-92-822-2272-0, p. 160
  7. ^ "A Brief History of Electromagnetism" (PDF).
  8. ^ Ulaby, Fawwaz (2007). Fundamentals of applied electromagnetics (5th ed.). Pearson / Prentice Hall. p. 255. ISBN 978-0-13-241326-8.
  9. ^ . Distinguished Members Gallery, National Academy of Sciences. Archived from the original on 2013-12-13. Retrieved 2006-11-30.
  10. ^ Pearce Williams, L. (1971). Michael Faraday: A Biography. Simon and Schuster. pp. 182–183. ISBN 9780671209292.
  11. ^ Giancoli, Douglas C. (1998). Physics: Principles with Applications (Fifth ed.). pp. 623–624.
  12. ^ Pearce Williams, L. (1971). Michael Faraday: A Biography. Simon and Schuster. pp. 191–195. ISBN 9780671209292.
  13. ^ Singh, Yaduvir (2011). Electro Magnetic Field Theory. Pearson Education India. p. 65. ISBN 978-8131760611.
  14. ^ Wadhwa, C.L. (2005). Electrical Power Systems. New Age International. p. 18. ISBN 8122417221.
  15. ^ Pelcovits, Robert A.; Farkas, Josh (2007). Barron's AP Physics C. Barron's Educational Series. p. 646. ISBN 978-0764137105.
  16. ^ Purcell, Edward M.; Morin, David J. (2013). Electricity and Magnetism. Cambridge Univ. Press. p. 364. ISBN 978-1107014022.
  17. ^ Sears and Zemansky 1964:743
  18. ^ a b Serway, Raymond A.; Jewett, John W. (2012). Principles of Physics: A Calculus-Based Text, 5th Ed. Cengage Learning. pp. 801–802. ISBN 978-1133104261.
  19. ^ a b Ida, Nathan (2007). Engineering Electromagnetics, 2nd Ed. Springer Science and Business Media. p. 572. ISBN 978-0387201566.
  20. ^ a b Purcell, Edward (2011). Electricity and Magnetism, 2nd Ed. Cambridge University Press. p. 285. ISBN 978-1139503556.
  21. ^ Gates, Earl D. (2001). Introduction to Electronics. Cengage Learning. p. 153. ISBN 0766816982.
  22. ^ a b Rosa, E.B. (1908). "The self and mutual inductances of linear conductors". Bulletin of the Bureau of Standards. U.S. Bureau of Standards. 4 (2): 301 ff. doi:10.6028/bulletin.088.
  23. ^ Neumann, F.E. (1846). "Allgemeine Gesetze der inducirten elektrischen Ströme" [General rules for induced electric currents]. Annalen der Physik und Chemie (in German). Wiley. 143 (1): 31–44. Bibcode:1846AnP...143...31N. doi:10.1002/andp.18461430103. ISSN 0003-3804.
  24. ^ Jackson, J. D. (1975). Classical Electrodynamics. Wiley. pp. 176, 263. ISBN 9780471431329.
  25. ^ Dengler, R. (2016). "Self inductance of a wire loop as a curve integral". Advanced Electromagnetics. 5 (1): 1–8. arXiv:1204.1486. Bibcode:2016AdEl....5....1D. doi:10.7716/aem.v5i1.331. S2CID 53583557.
  26. ^ The kinetic energy of the drifting electrons is many orders of magnitude smaller than W, except for nanowires.
  27. ^ Nahvi, Mahmood; Edminister, Joseph (2002). Schaum's outline of theory and problems of electric circuits. McGraw-Hill Professional. p. 338. ISBN 0-07-139307-2.
  28. ^ Thierauf, Stephen C. (2004). High-speed Circuit Board Signal Integrity. Artech House. p. 56. ISBN 1580538460.
  29. ^ Kim, Seok; Kim, Shin-Ae; Jung, Goeun; Kwon, Kee-Won; Chun, Jung-Hoon (2009). "Design of a Reliable Broadband I/O Employing T-coil". JSTS:journal of Semiconductor Technology and Science. 9 (4): 198–204. doi:10.5573/JSTS.2009.9.4.198. S2CID 56413251.
  30. ^ Radecki, Andrzej; Yuan, Yuxiang; Miura, Noriyuki; Aikawa, Iori; Take, Yasuhiro; Ishikuro, Hiroki; Kuroda, Tadahiro (2012). "Simultaneous 6-Gb/s Data and 10-mW Power Transmission Using Nested Clover Coils for Noncontact Memory Card". IEEE Journal of Solid-State Circuits. 47 (10): 2484–2495. Bibcode:2012IJSSC..47.2484R. doi:10.1109/JSSC.2012.2204545. S2CID 29266328.
  31. ^ Kurs, A.; Karalis, A.; Moffatt, R.; Joannopoulos, J. D.; Fisher, P.; Soljacic, M. (6 July 2007). "Wireless Power Transfer via Strongly Coupled Magnetic Resonances". Science. 317 (5834): 83–86. Bibcode:2007Sci...317...83K. CiteSeerX 10.1.1.418.9645. doi:10.1126/science.1143254. PMID 17556549. S2CID 17105396.
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  33. ^ Rendon-Hernandez, Adrian A.; Halim, Miah A.; Smith, Spencer E.; Arnold, David P. (2022). "Magnetically Coupled Microelectromechanical Resonators for Low-Frequency Wireless Power Transfer". 2022 IEEE 35th International Conference on Micro Electro Mechanical Systems Conference (MEMS). pp. 648–651. doi:10.1109/MEMS51670.2022.9699458. ISBN 978-1-6654-0911-7. S2CID 246753151.
  34. ^ Wheeler, H.A. (1942). "Formulas for the Skin Effect". Proceedings of the IRE. 30 (9): 412–424. doi:10.1109/JRPROC.1942.232015. S2CID 51630416.
  35. ^ Wheeler, H.A. (1928). "Simple Inductance Formulas for Radio Coils". Proceedings of the IRE. 16 (10): 1398–1400. doi:10.1109/JRPROC.1928.221309. S2CID 51638679.
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  37. ^ Grover, Frederick W. (1946). Inductance Calculations: Working formulas and tables. New York: Dover Publications, Inc.

General references edit

  • Frederick W. Grover (1952). Inductance Calculations. Dover Publications, New York.
  • Griffiths, David J. (1998). Introduction to Electrodynamics (3rd ed.). Prentice Hall. ISBN 0-13-805326-X.
  • Wangsness, Roald K. (1986). Electromagnetic Fields (2nd ed.). Wiley. ISBN 0-471-81186-6.
  • Hughes, Edward. (2002). Electrical & Electronic Technology (8th ed.). Prentice Hall. ISBN 0-582-40519-X.
  • Küpfmüller K., Einführung in die theoretische Elektrotechnik, Springer-Verlag, 1959.
  • Heaviside O., Electrical Papers. Vol.1. – L.; N.Y.: Macmillan, 1892, p. 429-560.
  • Fritz Langford-Smith, editor (1953). Radiotron Designer's Handbook, 4th Edition, Amalgamated Wireless Valve Company Pty., Ltd. Chapter 10, "Calculation of Inductance" (pp. 429–448), includes a wealth of formulas and nomographs for coils, solenoids, and mutual inductance.
  • F. W. Sears and M. W. Zemansky 1964 University Physics: Third Edition (Complete Volume), Addison-Wesley Publishing Company, Inc. Reading MA, LCCC 63-15265 (no ISBN).

External links edit

    inductance, tendency, electrical, conductor, oppose, change, electric, current, flowing, through, electric, current, produces, magnetic, field, around, conductor, magnetic, field, strength, depends, magnitude, electric, current, follows, changes, magnitude, cu. Inductance is the tendency of an electrical conductor to oppose a change in the electric current flowing through it The electric current produces a magnetic field around the conductor The magnetic field strength depends on the magnitude of the electric current and follows any changes in the magnitude of the current From Faraday s law of induction any change in magnetic field through a circuit induces an electromotive force EMF voltage in the conductors a process known as electromagnetic induction This induced voltage created by the changing current has the effect of opposing the change in current This is stated by Lenz s law and the voltage is called back EMF InductanceCommon symbolsLSI unithenry H In SI base unitskg m2 s 2 A 2Derivations fromother quantitiesL V I t L F IDimensionM1 L2 T 2 I 2Inductance is defined as the ratio of the induced voltage to the rate of change of current causing it 1 It is a proportionality constant that depends on the geometry of circuit conductors e g cross section area and length and the magnetic permeability of the conductor and nearby materials 1 An electronic component designed to add inductance to a circuit is called an inductor It typically consists of a coil or helix of wire The term inductance was coined by Oliver Heaviside in May 1884 as a convenient way to refer to coefficient of self induction 2 3 It is customary to use the symbol L displaystyle L for inductance in honour of the physicist Heinrich Lenz 4 5 In the SI system the unit of inductance is the henry H which is the amount of inductance that causes a voltage of one volt when the current is changing at a rate of one ampere per second 6 The unit is named for Joseph Henry who discovered inductance independently of Faraday 7 Contents 1 History 2 Source of inductance 3 Self inductance and magnetic energy 4 Inductive reactance 5 Calculating inductance 5 1 Inductance of a straight single wire 5 1 1 Practical formulas 5 2 Mutual inductance of two parallel straight wires 5 3 Mutual inductance of two wire loops 5 4 Derivation 5 5 Self inductance of a wire loop 5 6 Inductance of a solenoid 5 7 Inductance of a coaxial cable 5 8 Inductance of multilayer coils 5 9 Magnetic cores 6 Mutual inductance 6 1 Derivation of mutual inductance 6 2 Mutual inductance and magnetic field energy 6 3 Coupling coefficient 6 4 Matrix representation 6 5 Equivalent circuits 6 5 1 T circuit 6 5 2 p circuit 6 6 Resonant transformer 6 7 Ideal transformers 7 Self inductance of thin wire shapes 8 See also 9 Footnotes 10 References 11 General references 12 External linksHistory editMain article History of electromagnetic theory The history of electromagnetic induction a facet of electromagnetism began with observations of the ancients electric charge or static electricity rubbing silk on amber electric current lightning and magnetic attraction lodestone Understanding the unity of these forces of nature and the scientific theory of electromagnetism was initiated and achieved during the 19th century Electromagnetic induction was first described by Michael Faraday in 1831 8 9 In Faraday s experiment he wrapped two wires around opposite sides of an iron ring He expected that when current started to flow in one wire a sort of wave would travel through the ring and cause some electrical effect on the opposite side Using a galvanometer he observed a transient current flow in the second coil of wire each time that a battery was connected or disconnected from the first coil 10 This current was induced by the change in magnetic flux that occurred when the battery was connected and disconnected 11 Faraday found several other manifestations of electromagnetic induction For example he saw transient currents when he quickly slid a bar magnet in and out of a coil of wires and he generated a steady DC current by rotating a copper disk near the bar magnet with a sliding electrical lead Faraday s disk 12 Source of inductance editA current i displaystyle i nbsp flowing through a conductor generates a magnetic field around the conductor which is described by Ampere s circuital law The total magnetic flux F displaystyle Phi nbsp through a circuit is equal to the product of the perpendicular component of the magnetic flux density and the area of the surface spanning the current path If the current varies the magnetic flux F displaystyle Phi nbsp through the circuit changes By Faraday s law of induction any change in flux through a circuit induces an electromotive force EMF E displaystyle mathcal E nbsp in the circuit proportional to the rate of change of fluxE t d d t F t displaystyle mathcal E t frac text d text d t Phi t nbsp The negative sign in the equation indicates that the induced voltage is in a direction which opposes the change in current that created it this is called Lenz s law The potential is therefore called a back EMF If the current is increasing the voltage is positive at the end of the conductor through which the current enters and negative at the end through which it leaves tending to reduce the current If the current is decreasing the voltage is positive at the end through which the current leaves the conductor tending to maintain the current Self inductance usually just called inductance L displaystyle L nbsp is the ratio between the induced voltage and the rate of change of the currentv t L d i d t 1 displaystyle v t L frac text d i text d t qquad qquad qquad 1 nbsp Thus inductance is a property of a conductor or circuit due to its magnetic field which tends to oppose changes in current through the circuit The unit of inductance in the SI system is the henry H named after Joseph Henry which is the amount of inductance that generates a voltage of one volt when the current is changing at a rate of one ampere per second All conductors have some inductance which may have either desirable or detrimental effects in practical electrical devices The inductance of a circuit depends on the geometry of the current path and on the magnetic permeability of nearby materials ferromagnetic materials with a higher permeability like iron near a conductor tend to increase the magnetic field and inductance Any alteration to a circuit which increases the flux total magnetic field through the circuit produced by a given current increases the inductance because inductance is also equal to the ratio of magnetic flux to current 13 14 15 16 L F i i displaystyle L Phi i over i nbsp An inductor is an electrical component consisting of a conductor shaped to increase the magnetic flux to add inductance to a circuit Typically it consists of a wire wound into a coil or helix A coiled wire has a higher inductance than a straight wire of the same length because the magnetic field lines pass through the circuit multiple times it has multiple flux linkages The inductance is proportional to the square of the number of turns in the coil assuming full flux linkage The inductance of a coil can be increased by placing a magnetic core of ferromagnetic material in the hole in the center The magnetic field of the coil magnetizes the material of the core aligning its magnetic domains and the magnetic field of the core adds to that of the coil increasing the flux through the coil This is called a ferromagnetic core inductor A magnetic core can increase the inductance of a coil by thousands of times If multiple electric circuits are located close to each other the magnetic field of one can pass through the other in this case the circuits are said to be inductively coupled Due to Faraday s law of induction a change in current in one circuit can cause a change in magnetic flux in another circuit and thus induce a voltage in another circuit The concept of inductance can be generalized in this case by defining the mutual inductance M k ℓ displaystyle M k ell nbsp of circuit k displaystyle k nbsp and circuit ℓ displaystyle ell nbsp as the ratio of voltage induced in circuit ℓ displaystyle ell nbsp to the rate of change of current in circuit k displaystyle k nbsp This is the principle behind a transformer The property describing the effect of one conductor on itself is more precisely called self inductance and the properties describing the effects of one conductor with changing current on nearby conductors is called mutual inductance 17 Self inductance and magnetic energy editIf the current through a conductor with inductance is increasing a voltage v t displaystyle v t nbsp is induced across the conductor with a polarity that opposes the current in addition to any voltage drop caused by the conductor s resistance The charges flowing through the circuit lose potential energy The energy from the external circuit required to overcome this potential hill is stored in the increased magnetic field around the conductor Therefore an inductor stores energy in its magnetic field At any given time t displaystyle t nbsp the power p t displaystyle p t nbsp flowing into the magnetic field which is equal to the rate of change of the stored energy U displaystyle U nbsp is the product of the current i t displaystyle i t nbsp and voltage v t displaystyle v t nbsp across the conductor 18 19 20 p t d U d t v t i t displaystyle p t frac text d U text d t v t i t nbsp From 1 aboved U d t L i i d i d t d U L i i d i displaystyle begin aligned frac text d U text d t amp L i i frac text d i text d t 3pt text d U amp L i i text d i end aligned nbsp When there is no current there is no magnetic field and the stored energy is zero Neglecting resistive losses the energy U displaystyle U nbsp measured in joules in SI stored by an inductance with a current I displaystyle I nbsp through it is equal to the amount of work required to establish the current through the inductance from zero and therefore the magnetic field This is given by U 0 I L i i d i displaystyle U int 0 I L i i text d i nbsp If the inductance L i displaystyle L i nbsp is constant over the current range the stored energy is 18 19 20 U L 0 I i d i 1 2 L I 2 displaystyle begin aligned U amp L int 0 I i text d i 3pt amp tfrac 1 2 L I 2 end aligned nbsp Inductance is therefore also proportional to the energy stored in the magnetic field for a given current This energy is stored as long as the current remains constant If the current decreases the magnetic field decreases inducing a voltage in the conductor in the opposite direction negative at the end through which current enters and positive at the end through which it leaves This returns stored magnetic energy to the external circuit If ferromagnetic materials are located near the conductor such as in an inductor with a magnetic core the constant inductance equation above is only valid for linear regions of the magnetic flux at currents below the level at which the ferromagnetic material saturates where the inductance is approximately constant If the magnetic field in the inductor approaches the level at which the core saturates the inductance begins to change with current and the integral equation must be used Inductive reactance edit nbsp The voltage v displaystyle v nbsp blue and current i displaystyle i nbsp red waveforms in an ideal inductor to which an alternating current has been applied The current lags the voltage by 90 When a sinusoidal alternating current AC is passing through a linear inductance the induced back EMF is also sinusoidal If the current through the inductance is i t I peak sin w t displaystyle i t I text peak sin left omega t right nbsp from 1 above the voltage across it isv t L d i d t L d d t I peak sin w t w L I peak cos w t w L I peak sin w t p 2 displaystyle begin aligned v t amp L frac text d i text d t L frac text d text d t left I text peak sin left omega t right right amp omega L I text peak cos left omega t right omega L I text peak sin left omega t pi over 2 right end aligned nbsp where I peak displaystyle I text peak nbsp is the amplitude peak value of the sinusoidal current in amperes w 2 p f displaystyle omega 2 pi f nbsp is the angular frequency of the alternating current with f displaystyle f nbsp being its frequency in hertz and L displaystyle L nbsp is the inductance Thus the amplitude peak value of the voltage across the inductance isV p w L I p 2 p f L I p displaystyle V p omega L I p 2 pi f L I p nbsp Inductive reactance is the opposition of an inductor to an alternating current 21 It is defined analogously to electrical resistance in a resistor as the ratio of the amplitude peak value of the alternating voltage to current in the componentX L V p I p 2 p f L displaystyle X L frac V p I p 2 pi f L nbsp Reactance has units of ohms It can be seen that inductive reactance of an inductor increases proportionally with frequency f displaystyle f nbsp so an inductor conducts less current for a given applied AC voltage as the frequency increases Because the induced voltage is greatest when the current is increasing the voltage and current waveforms are out of phase the voltage peaks occur earlier in each cycle than the current peaks The phase difference between the current and the induced voltage is ϕ 1 2 p displaystyle phi tfrac 1 2 pi nbsp radians or 90 degrees showing that in an ideal inductor the current lags the voltage by 90 Calculating inductance editIn the most general case inductance can be calculated from Maxwell s equations Many important cases can be solved using simplifications Where high frequency currents are considered with skin effect the surface current densities and magnetic field may be obtained by solving the Laplace equation Where the conductors are thin wires self inductance still depends on the wire radius and the distribution of the current in the wire This current distribution is approximately constant on the surface or in the volume of the wire for a wire radius much smaller than other length scales Inductance of a straight single wire edit As a practical matter longer wires have more inductance and thicker wires have less analogous to their electrical resistance although the relationships aren t linear and are different in kind from the relationships that length and diameter bear to resistance Separating the wire from the other parts of the circuit introduces some unavoidable error in any formulas results These inductances are often referred to as partial inductances in part to encourage consideration of the other contributions to whole circuit inductance which are omitted Practical formulas edit For derivation of the formulas below see Rosa 1908 22 The total low frequency inductance interior plus exterior of a straight wire is L DC 200 nH m ℓ ln 2 ℓ r 0 75 displaystyle L text DC 200 text tfrac text nH text m ell left ln left frac 2 ell r right 0 75 right nbsp where L DC displaystyle L text DC nbsp is the low frequency or DC inductance in nanohenry nH or 10 9H ℓ displaystyle ell nbsp is the length of the wire in meters r displaystyle r nbsp is the radius of the wire in meters hence a very small decimal number the constant 200 nH m displaystyle 200 text tfrac text nH text m nbsp is the permeability of free space commonly called m o displaystyle mu text o nbsp divided by 2 p displaystyle 2 pi nbsp in the absence of magnetically reactive insulation the value 200 is exact when using the classical definition of m0 4p 10 7 H m and correct to 7 decimal places when using the 2019 redefined SI value of m0 1 256637 062 12 19 10 6 H m The constant 0 75 is just one parameter value among several different frequency ranges different shapes or extremely long wire lengths require a slightly different constant see below This result is based on the assumption that the radius r displaystyle r nbsp is much less than the length ℓ displaystyle ell nbsp which is the common case for wires and rods Disks or thick cylinders have slightly different formulas For sufficiently high frequencies skin effects cause the interior currents to vanish leaving only the currents on the surface of the conductor the inductance for alternating current L AC displaystyle L text AC nbsp is then given by a very similar formula L AC 200 nH m ℓ ln 2 ℓ r 1 displaystyle L text AC 200 text tfrac text nH text m ell left ln left frac 2 ell r right 1 right nbsp where the variables ℓ displaystyle ell nbsp and r displaystyle r nbsp are the same as above note the changed constant term now 1 from 0 75 above In an example from everyday experience just one of the conductors of a lamp cord 10 m long made of 18 AWG wire would only have an inductance of about 19 mH if stretched out straight Mutual inductance of two parallel straight wires edit There are two cases to consider Current travels in the same direction in each wire and current travels in opposing directions in the wires Currents in the wires need not be equal though they often are as in the case of a complete circuit where one wire is the source and the other the return Mutual inductance of two wire loops edit This is the generalized case of the paradigmatic two loop cylindrical coil carrying a uniform low frequency current the loops are independent closed circuits that can have different lengths any orientation in space and carry different currents Nonetheless the error terms which are not included in the integral are only small if the geometries of the loops are mostly smooth and convex They must not have too many kinks sharp corners coils crossovers parallel segments concave cavities or other topologically close deformations A necessary predicate for the reduction of the 3 dimensional manifold integration formula to a double curve integral is that the current paths be filamentary circuits i e thin wires where the radius of the wire is negligible compared to its length The mutual inductance by a filamentary circuit m displaystyle m nbsp on a filamentary circuit n displaystyle n nbsp is given by the double integral Neumann formula 23 L m n m 0 4 p C m C n d x m d x n x m x n displaystyle L m n frac mu 0 4 pi oint C m oint C n frac mathrm d mathbf x m cdot mathrm d mathbf x n left mathbf x m mathbf x n right nbsp where C m displaystyle C m nbsp and C n displaystyle C n nbsp are the curves followed by the wires m 0 displaystyle mu 0 nbsp is the permeability of free space 4p 10 7 H m d x m displaystyle mathrm d mathbf x m nbsp is a small increment of the wire in circuit C m x m displaystyle mathbf x m nbsp is the position of d x m displaystyle mathrm d mathbf x m nbsp in space d x n displaystyle mathrm d mathbf x n nbsp is a small increment of the wire in circuit C n x n displaystyle mathbf x n nbsp is the position of d x n displaystyle mathrm d mathbf x n nbsp in space Derivation edit M i j d e f F i j I j displaystyle M ij mathrel stackrel mathrm def frac Phi ij I j nbsp where I j displaystyle I j nbsp is the current through the j displaystyle j nbsp th wire this current creates the magnetic flux F i j displaystyle Phi ij nbsp through the i displaystyle i nbsp th surface F i j displaystyle Phi ij nbsp is the magnetic flux through the ith surface due to the electrical circuit outlined by C j displaystyle C j nbsp 24 F i j S i B j d a S i A j d a C i A j d s i C i m 0 I j 4 p C j d s j s i s j d s i displaystyle Phi ij int S i mathbf B j cdot mathrm d mathbf a int S i nabla times mathbf A j cdot mathrm d mathbf a oint C i mathbf A j cdot mathrm d mathbf s i oint C i left frac mu 0 I j 4 pi oint C j frac mathrm d mathbf s j left mathbf s i mathbf s j right right cdot mathrm d mathbf s i nbsp where C i displaystyle C i nbsp is the curve enclosing surface S i displaystyle S i nbsp and S i displaystyle S i nbsp is any arbitrary orientable area with edge C i displaystyle C i nbsp B j displaystyle mathbf B j nbsp is the magnetic field vector due to the j displaystyle j nbsp th current of circuit C j displaystyle C j nbsp A j displaystyle mathbf A j nbsp is the vector potential due to the j displaystyle j nbsp th current Stokes theorem has been used for the 3rd equality step For the last equality step we used the retarded potential expression for A j displaystyle A j nbsp and we ignore the effect of the retarded time assuming the geometry of the circuits is small enough compared to the wavelength of the current they carry It is actually an approximation step and is valid only for local circuits made of thin wires Self inductance of a wire loop edit Formally the self inductance of a wire loop would be given by the above equation with m n displaystyle m n nbsp However here 1 x x displaystyle 1 left mathbf x mathbf x right nbsp becomes infinite leading to a logarithmically divergent integral a This necessitates taking the finite wire radius a displaystyle a nbsp and the distribution of the current in the wire into account There remains the contribution from the integral over all points and a correction term 25 L m 0 4 p ℓ Y C C d x d x x x O b e n d for s s gt 1 2 a displaystyle L frac mu 0 4 pi left ell Y oint C oint C frac mathrm d mathbf x cdot mathrm d mathbf x left mathbf x mathbf x right right mathcal O mathsf bend quad text for left mathbf s mathbf s right gt tfrac 1 2 a nbsp where s displaystyle mathbf s nbsp and s displaystyle mathbf s nbsp are distances along the curves C displaystyle C nbsp and C displaystyle C nbsp respectively a displaystyle a nbsp is the radius of the wire ℓ displaystyle ell nbsp is the length of the wire Y displaystyle Y nbsp is a constant that depends on the distribution of the current in the wire Y 0 displaystyle Y 0 nbsp when the current flows on the surface of the wire total skin effect Y 1 2 textstyle Y tfrac 1 2 nbsp when the current is evenly over the cross section of the wire dd O b e n d displaystyle mathcal O mathsf bend nbsp is an error term whose size depends on the curve of the loop O b e n d O m 0 a displaystyle mathcal O mathsf bend mathcal O mu 0 a nbsp when the loop has sharp corners and O b e n d O m 0 a 2 ℓ textstyle mathcal O mathsf bend mathcal O mathord left mu 0 a 2 ell right nbsp when it is a smooth curve Both are small when the wire is long compared to its radius dd Inductance of a solenoid edit A solenoid is a long thin coil i e a coil whose length is much greater than its diameter Under these conditions and without any magnetic material used the magnetic flux density B displaystyle B nbsp within the coil is practically constant and is given byB m 0 N i ℓ displaystyle B frac mu 0 N i ell nbsp where m 0 displaystyle mu 0 nbsp is the magnetic constant N displaystyle N nbsp the number of turns i displaystyle i nbsp the current and l displaystyle l nbsp the length of the coil Ignoring end effects the total magnetic flux through the coil is obtained by multiplying the flux density B displaystyle B nbsp by the cross section area A displaystyle A nbsp F m 0 N i A ℓ displaystyle Phi frac mu 0 N i A ell nbsp When this is combined with the definition of inductance L N F i displaystyle L frac N Phi i nbsp it follows that the inductance of a solenoid is given by L m 0 N 2 A ℓ displaystyle L frac mu 0 N 2 A ell nbsp Therefore for air core coils inductance is a function of coil geometry and number of turns and is independent of current Inductance of a coaxial cable edit Let the inner conductor have radius r i displaystyle r i nbsp and permeability m i displaystyle mu i nbsp let the dielectric between the inner and outer conductor have permeability m d displaystyle mu d nbsp and let the outer conductor have inner radius r o 1 displaystyle r o1 nbsp outer radius r o 2 displaystyle r o2 nbsp and permeability m 0 displaystyle mu 0 nbsp However for a typical coaxial line application we are interested in passing non DC signals at frequencies for which the resistive skin effect cannot be neglected In most cases the inner and outer conductor terms are negligible in which case one may approximateL d L d ℓ m d 2 p ln r o 1 r i displaystyle L frac text d L text d ell approx frac mu d 2 pi ln frac r o1 r i nbsp Inductance of multilayer coils edit Most practical air core inductors are multilayer cylindrical coils with square cross sections to minimize average distance between turns circular cross sections would be better but harder to form Magnetic cores edit Many inductors include a magnetic core at the center of or partly surrounding the winding Over a large enough range these exhibit a nonlinear permeability with effects such as magnetic saturation Saturation makes the resulting inductance a function of the applied current The secant or large signal inductance is used in flux calculations It is defined as L s i d e f N F i L i displaystyle L s i mathrel overset underset mathrm def frac N Phi i frac Lambda i nbsp The differential or small signal inductance on the other hand is used in calculating voltage It is defined as L d i d e f d N F d i d L d i displaystyle L d i mathrel overset underset mathrm def frac text d N Phi text d i frac text d Lambda text d i nbsp The circuit voltage for a nonlinear inductor is obtained via the differential inductance as shown by Faraday s Law and the chain rule of calculus v t d L d t d L d i d i d t L d i d i d t displaystyle v t frac text d Lambda text d t frac text d Lambda text d i frac text d i text d t L d i frac text d i text d t nbsp Similar definitions may be derived for nonlinear mutual inductance Mutual inductance editFurther information Inductive coupling Mutual inductance is defined as the ratio between the EMF induced in one loop or coil by the rate of change of current in another loop or coil Mutual inductance is given the symbol M Derivation of mutual inductance edit The inductance equations above are a consequence of Maxwell s equations For the important case of electrical circuits consisting of thin wires the derivation is straightforward In a system of K displaystyle K nbsp wire loops each with one or several wire turns the flux linkage of loop m displaystyle m nbsp l m displaystyle lambda m nbsp is given byl m N m F m n 1 K L m n i n displaystyle displaystyle lambda m N m Phi m sum limits n 1 K L m n i n nbsp Here N m displaystyle N m nbsp denotes the number of turns in loop m displaystyle m nbsp F m displaystyle Phi m nbsp is the magnetic flux through loop m displaystyle m nbsp and L m n displaystyle L m n nbsp are some constants described below This equation follows from Ampere s law magnetic fields and fluxes are linear functions of the currents By Faraday s law of induction we havev m d l m d t N m d F m d t n 1 K L m n d i n d t displaystyle displaystyle v m frac text d lambda m text d t N m frac text d Phi m text d t sum limits n 1 K L m n frac text d i n text d t nbsp where v m displaystyle v m nbsp denotes the voltage induced in circuit m displaystyle m nbsp This agrees with the definition of inductance above if the coefficients L m n displaystyle L m n nbsp are identified with the coefficients of inductance Because the total currents N n i n displaystyle N n i n nbsp contribute to F m displaystyle Phi m nbsp it also follows that L m n displaystyle L m n nbsp is proportional to the product of turns N m N n displaystyle N m N n nbsp Mutual inductance and magnetic field energy edit Multiplying the equation for vm above with imdt and summing over m gives the energy transferred to the system in the time interval dt m K i m v m d t m n 1 K i m L m n d i n n 1 K W i i n d i n displaystyle sum limits m K i m v m text d t sum limits m n 1 K i m L m n text d i n mathrel overset sum limits n 1 K frac partial W left i right partial i n text d i n nbsp This must agree with the change of the magnetic field energy W caused by the currents 26 The integrability condition 2 W i m i n 2 W i n i m displaystyle displaystyle frac partial 2 W partial i m partial i n frac partial 2 W partial i n partial i m nbsp requires Lm n Ln m The inductance matrix Lm n thus is symmetric The integral of the energy transfer is the magnetic field energy as a function of the currents W i 1 2 m n 1 K i m L m n i n displaystyle displaystyle W left i right frac 1 2 sum limits m n 1 K i m L m n i n nbsp This equation also is a direct consequence of the linearity of Maxwell s equations It is helpful to associate changing electric currents with a build up or decrease of magnetic field energy The corresponding energy transfer requires or generates a voltage A mechanical analogy in the K 1 case with magnetic field energy 1 2 Li2 is a body with mass M velocity u and kinetic energy 1 2 Mu2 The rate of change of velocity current multiplied with mass inductance requires or generates a force an electrical voltage nbsp Circuit diagram of two mutually coupled inductors The two vertical lines between the windings indicate that the transformer has a ferromagnetic core n m shows the ratio between the number of windings of the left inductor to windings of the right inductor This picture also shows the dot convention Mutual inductance occurs when the change in current in one inductor induces a voltage in another nearby inductor It is important as the mechanism by which transformers work but it can also cause unwanted coupling between conductors in a circuit The mutual inductance M i j displaystyle M ij nbsp is also a measure of the coupling between two inductors The mutual inductance by circuit i displaystyle i nbsp on circuit j displaystyle j nbsp is given by the double integral Neumann formula see calculation techniquesThe mutual inductance also has the relationship M 21 N 1 N 2 P 21 displaystyle M 21 N 1 N 2 P 21 nbsp where M 21 displaystyle M 21 nbsp is the mutual inductance and the subscript specifies the relationship of the voltage induced in coil 2 due to the current in coil 1 N 1 displaystyle N 1 nbsp is the number of turns in coil 1 N 2 displaystyle N 2 nbsp is the number of turns in coil 2 P 21 displaystyle P 21 nbsp is the permeance of the space occupied by the flux Once the mutual inductance M displaystyle M nbsp is determined it can be used to predict the behavior of a circuit v 1 L 1 d i 1 d t M d i 2 d t displaystyle v 1 L 1 frac text d i 1 text d t M frac text d i 2 text d t nbsp where v 1 displaystyle v 1 nbsp is the voltage across the inductor of interest L 1 displaystyle L 1 nbsp is the inductance of the inductor of interest d i 1 d t displaystyle text d i 1 text d t nbsp is the derivative with respect to time of the current through the inductor of interest labeled 1 d i 2 d t displaystyle text d i 2 text d t nbsp is the derivative with respect to time of the current through the inductor labeled 2 that is coupled to the first inductor and M displaystyle M nbsp is the mutual inductance The minus sign arises because of the sense the current i 2 displaystyle i 2 nbsp has been defined in the diagram With both currents defined going into the dots the sign of M displaystyle M nbsp will be positive the equation would read with a plus sign instead 27 Coupling coefficient edit The coupling coefficient is the ratio of the open circuit actual voltage ratio to the ratio that would be obtained if all the flux coupled from one magnetic circuit to the other The coupling coefficient is related to mutual inductance and self inductances in the following way From the two simultaneous equations expressed in the two port matrix the open circuit voltage ratio is found to be V 2 V 1 open circuit M L 1 displaystyle V 2 over V 1 text open circuit M over L 1 nbsp where M 2 M 1 M 2 displaystyle M 2 M 1 M 2 nbsp while the ratio if all the flux is coupled is the ratio of the turns hence the ratio of the square root of the inductancesV 2 V 1 max coupling L 2 L 1 displaystyle V 2 over V 1 text max coupling sqrt L 2 over L 1 nbsp thus M k L 1 L 2 displaystyle M k sqrt L 1 L 2 nbsp where k displaystyle k nbsp is the coupling coefficient L 1 displaystyle L 1 nbsp is the inductance of the first coil and L 2 displaystyle L 2 nbsp is the inductance of the second coil The coupling coefficient is a convenient way to specify the relationship between a certain orientation of inductors with arbitrary inductance Most authors define the range as 0 k lt 1 displaystyle 0 leq k lt 1 nbsp but some 28 define it as 1 lt k lt 1 displaystyle 1 lt k lt 1 nbsp Allowing negative values of k displaystyle k nbsp captures phase inversions of the coil connections and the direction of the windings 29 Matrix representation edit Mutually coupled inductors can be described by any of the two port network parameter matrix representations The most direct are the z parameters which are given by z s L 1 M M L 2 displaystyle mathbf z s begin bmatrix L 1 M M L 2 end bmatrix nbsp where s displaystyle s nbsp is the complex frequency variable L 1 displaystyle L 1 nbsp and L 2 displaystyle L 2 nbsp are the inductances of the primary and secondary coil respectively and M displaystyle M nbsp is the mutual inductance between the coils Equivalent circuits edit T circuit edit nbsp T equivalent circuit of mutually coupled inductorsMutually coupled inductors can equivalently be represented by a T circuit of inductors as shown If the coupling is strong and the inductors are of unequal values then the series inductor on the step down side may take on a negative value This can be analyzed as a two port network With the output terminated with some arbitrary impedance Z displaystyle Z nbsp the voltage gain A v displaystyle A v nbsp is given by A v s M Z s 2 L 1 L 2 s 2 M 2 s L 1 Z k s 1 k 2 L 1 L 2 Z L 1 L 2 displaystyle A mathrm v frac sMZ s 2 L 1 L 2 s 2 M 2 sL 1 Z frac k s left 1 k 2 right frac sqrt L 1 L 2 Z sqrt frac L 1 L 2 nbsp where k displaystyle k nbsp is the coupling constant and s displaystyle s nbsp is the complex frequency variable as above For tightly coupled inductors where k 1 displaystyle k 1 nbsp this reduces toA v L 2 L 1 displaystyle A mathrm v sqrt L 2 over L 1 nbsp which is independent of the load impedance If the inductors are wound on the same core and with the same geometry then this expression is equal to the turns ratio of the two inductors because inductance is proportional to the square of turns ratio The input impedance of the network is given by Z in s 2 L 1 L 2 s 2 M 2 s L 1 Z s L 2 Z L 1 L 2 Z 1 1 Z s L 2 1 1 k 2 Z s L 2 displaystyle Z text in frac s 2 L 1 L 2 s 2 M 2 sL 1 Z sL 2 Z frac L 1 L 2 Z left frac 1 1 frac Z sL 2 right left 1 frac 1 k 2 frac Z sL 2 right nbsp For k 1 displaystyle k 1 nbsp this reduces toZ in s L 1 Z s L 2 Z L 1 L 2 Z 1 1 Z s L 2 displaystyle Z text in frac sL 1 Z sL 2 Z frac L 1 L 2 Z left frac 1 1 frac Z sL 2 right nbsp Thus current gain A i displaystyle A i nbsp is not independent of load unless the further condition s L 2 Z displaystyle sL 2 gg Z nbsp is met in which case Z in L 1 L 2 Z displaystyle Z text in approx L 1 over L 2 Z nbsp andA i L 1 L 2 1 A v displaystyle A text i approx sqrt L 1 over L 2 1 over A text v nbsp p circuit edit nbsp p equivalent circuit of coupled inductorsAlternatively two coupled inductors can be modelled using a p equivalent circuit with optional ideal transformers at each port While the circuit is more complicated than a T circuit it can be generalized 30 to circuits consisting of more than two coupled inductors Equivalent circuit elements L s displaystyle L text s nbsp L p displaystyle L text p nbsp have physical meaning modelling respectively magnetic reluctances of coupling paths and magnetic reluctances of leakage paths For example electric currents flowing through these elements correspond to coupling and leakage magnetic fluxes Ideal transformers normalize all self inductances to 1 Henry to simplify mathematical formulas Equivalent circuit element values can be calculated from coupling coefficients withL S i j det K C i j L P i det K j 1 N C i j displaystyle begin aligned L S ij amp frac det mathbf K mathbf C ij 3pt L P i amp frac det mathbf K sum j 1 N mathbf C ij end aligned nbsp where coupling coefficient matrix and its cofactors are defined as K 1 k 12 k 1 N k 12 1 k 2 N k 1 N k 2 N 1 displaystyle mathbf K begin bmatrix 1 amp k 12 amp cdots amp k 1N k 12 amp 1 amp cdots amp k 2N vdots amp vdots amp ddots amp vdots k 1N amp k 2N amp cdots amp 1 end bmatrix quad nbsp and C i j 1 i j M i j displaystyle quad mathbf C ij 1 i j mathbf M ij nbsp For two coupled inductors these formulas simplify to L S 12 k 12 2 1 k 12 displaystyle L S 12 frac k 12 2 1 k 12 quad nbsp and L P 1 L P 2 k 12 1 displaystyle quad L P 1 L P 2 k 12 1 nbsp and for three coupled inductors for brevity shown only for L s12 displaystyle L text s12 nbsp and L p1 displaystyle L text p1 nbsp L S 12 2 k 12 k 13 k 23 k 12 2 k 13 2 k 23 2 1 k 13 k 23 k 12 displaystyle L S 12 frac 2 k 12 k 13 k 23 k 12 2 k 13 2 k 23 2 1 k 13 k 23 k 12 quad nbsp and L P 1 2 k 12 k 13 k 23 k 12 2 k 13 2 k 23 2 1 k 12 k 23 k 13 k 23 k 23 2 k 12 k 13 1 displaystyle quad L P 1 frac 2 k 12 k 13 k 23 k 12 2 k 13 2 k 23 2 1 k 12 k 23 k 13 k 23 k 23 2 k 12 k 13 1 nbsp Resonant transformer edit Main article Resonant inductive coupling When a capacitor is connected across one winding of a transformer making the winding a tuned circuit resonant circuit it is called a single tuned transformer When a capacitor is connected across each winding it is called a double tuned transformer These resonant transformers can store oscillating electrical energy similar to a resonant circuit and thus function as a bandpass filter allowing frequencies near their resonant frequency to pass from the primary to secondary winding but blocking other frequencies The amount of mutual inductance between the two windings together with the Q factor of the circuit determine the shape of the frequency response curve The advantage of the double tuned transformer is that it can have a wider bandwidth than a simple tuned circuit The coupling of double tuned circuits is described as loose critical or over coupled depending on the value of the coupling coefficient k displaystyle k nbsp When two tuned circuits are loosely coupled through mutual inductance the bandwidth is narrow As the amount of mutual inductance increases the bandwidth continues to grow When the mutual inductance is increased beyond the critical coupling the peak in the frequency response curve splits into two peaks and as the coupling is increased the two peaks move further apart This is known as overcoupling Stongly coupled self resonant coils can be used for wireless power transfer between devices in the mid range distances up to two metres 31 Strong coupling is required for a high percentage of power transferred which results in peak splitting of the frequency response 32 33 Ideal transformers edit When k 1 displaystyle k 1 nbsp the inductor is referred to as being closely coupled If in addition the self inductances go to infinity the inductor becomes an ideal transformer In this case the voltages currents and number of turns can be related in the following way V s N s N p V p displaystyle V text s frac N text s N text p V text p nbsp where V s displaystyle V text s nbsp is the voltage across the secondary inductor V p displaystyle V text p nbsp is the voltage across the primary inductor the one connected to a power source N s displaystyle N text s nbsp is the number of turns in the secondary inductor and N p displaystyle N text p nbsp is the number of turns in the primary inductor Conversely the current I s N p N s I p displaystyle I text s frac N text p N text s I text p nbsp where I s displaystyle I text s nbsp is the current through the secondary inductor I p displaystyle I text p nbsp is the current through the primary inductor the one connected to a power source N s displaystyle N text s nbsp is the number of turns in the secondary inductor and N p displaystyle N text p nbsp is the number of turns in the primary inductor The power through one inductor is the same as the power through the other These equations neglect any forcing by current sources or voltage sources Self inductance of thin wire shapes editSee also Inductor Inductance formulas The table below lists formulas for the self inductance of various simple shapes made of thin cylindrical conductors wires In general these are only accurate if the wire radius a displaystyle a nbsp is much smaller than the dimensions of the shape and if no ferromagnetic materials are nearby no magnetic core Self inductance of thin wire shapes Type Inductance CommentSingle layer solenoid Wheeler s approximation formula for current sheet model air core coil 34 35 L N 2 D 2 18 D 40 ℓ displaystyle mathcal L frac N 2 D 2 18D 40 ell nbsp inches L N 2 D 2 45 72 D 101 6 ℓ displaystyle mathcal L frac N 2 D 2 45 72D 101 6 ell nbsp cm This formula gives an error no more than 1 when ℓ gt 0 4 D displaystyle ell gt 0 4 D nbsp L displaystyle mathcal L nbsp inductance in mH 10 6 henries N displaystyle N nbsp number of turns D displaystyle D nbsp diameter in inches cm ℓ displaystyle ell nbsp length in inches cm Coaxial cable HF L m 0 2 p ℓ ln b a displaystyle mathcal L frac mu 0 2 pi ell ln left frac b a right nbsp b displaystyle b nbsp Outer cond s inside radiusa displaystyle a nbsp Inner conductor s radiusℓ displaystyle ell nbsp Lengthm 0 displaystyle mu 0 nbsp see table footnote Circular loop 36 L m 0 r ln 8 r a 2 1 4 Y O a 2 r 2 displaystyle mathcal L mu 0 r left ln left frac 8r a right 2 tfrac 1 4 Y mathcal O left frac a 2 r 2 right right nbsp r displaystyle r nbsp Loop radiusa displaystyle a nbsp Wire radiusm 0 Y displaystyle mu 0 Y nbsp see table footnotes Rectangle from round wire 37 L m 0 p ℓ 1 ln 2 ℓ 1 a ℓ 2 ln 2 ℓ 2 a 2 ℓ 1 2 ℓ 2 2 ℓ 1 sinh 1 ℓ 1 ℓ 2 ℓ 2 sinh 1 ℓ 2 ℓ 1 2 1 4 Y ℓ 1 ℓ 2 displaystyle begin aligned mathcal L frac mu 0 pi biggl amp ell 1 ln left frac 2 ell 1 a right ell 2 ln left frac 2 ell 2 a right 2 sqrt ell 1 2 ell 2 2 amp ell 1 sinh 1 left frac ell 1 ell 2 right ell 2 sinh 1 left frac ell 2 ell 1 right amp left 2 tfrac 1 4 Y right left ell 1 ell 2 right biggr end aligned nbsp ℓ 1 ℓ 2 displaystyle ell 1 ell 2 nbsp Side lengths ℓ 1 a ℓ 2 a displaystyle ell 1 gg a ell 2 gg a nbsp a displaystyle a nbsp Wire radiusm 0 Y displaystyle mu 0 Y nbsp see table footnotes Pair of parallel wires L m 0 p ℓ ln s a 1 4 Y displaystyle mathcal L frac mu 0 pi ell left ln left frac s a right tfrac 1 4 Y right nbsp a displaystyle a nbsp Wire radiuss displaystyle s nbsp Separation distance s 2 a displaystyle s geq 2a nbsp ℓ displaystyle ell nbsp Length of pairm 0 Y displaystyle mu 0 Y nbsp see table footnotes Pair of parallel wires HF L m 0 p ℓ cosh 1 s 2 a m 0 p ℓ ln s 2 a s 2 4 a 2 1 m 0 p ℓ ln s a displaystyle begin aligned mathcal L amp frac mu 0 pi ell cosh 1 left frac s 2a right amp frac mu 0 pi ell ln left frac s 2a sqrt frac s 2 4a 2 1 right amp approx frac mu 0 pi ell ln left frac s a right end aligned nbsp a displaystyle a nbsp Wire radiuss displaystyle s nbsp Separation distance s 2 a displaystyle s geq 2a nbsp ℓ displaystyle ell nbsp Length each of pairm 0 displaystyle mu 0 nbsp see table footnote Y displaystyle Y nbsp is an approximately constant value between 0 and 1 that depends on the distribution of the current in the wire Y 0 displaystyle Y 0 nbsp when the current flows only on the surface of the wire complete skin effect Y 1 displaystyle Y 1 nbsp when the current is evenly spread over the cross section of the wire direct current For round wires Rosa 1908 gives a formula equivalent to 22 Y 1 1 a 1 8 m s w displaystyle Y approx frac 1 1 a sqrt tfrac 1 8 mu sigma omega nbsp where w 2 p f displaystyle omega 2 pi f nbsp is the angular frequency in radians per second m m 0 m r displaystyle mu mu 0 mu text r nbsp is the net magnetic permeability of the wire s displaystyle sigma nbsp is the wire s specific conductivity and a displaystyle a nbsp is the wire radius O x displaystyle mathcal O x nbsp is represents small term s that have been dropped from the formula to make it simpler Read the term O x displaystyle mathcal O x nbsp as plus small corrections that vary on the order of x displaystyle x nbsp see big O notation See also editElectromagnetic induction Gyrator Hydraulic analogy Leakage inductance LC circuit RLC circuit RL circuit Kinetic inductanceFootnotes edit The integral is called logarithmically divergent because 1 x d x ln x displaystyle int frac 1 x mathrm d x ln x nbsp for x gt 0 displaystyle x gt 0 nbsp hence it approaches infinity like a logarithm whose argument approaches infinity References edit a b Serway A Raymond Jewett John W Wilson Jane Wilson Anna Rowlands Wayne 2017 Inductance Physics for global scientists and engineers 2 ed Cengage AU p 901 ISBN 9780170355520 Baker Edward Cecil 1976 Sir William Preece F R S Victorian Engineer Extraordinary Hutchinson p 204 ISBN 9780091266103 Heaviside Oliver 1894 The induction of currents in cores Electrical Papers Vol 1 London Macmillan p 354 Elert Glenn The Physics Hypertextbook Inductance Retrieved 30 July 2016 Davidson Michael W 1995 2008 Molecular Expressions Electricity and Magnetism Introduction Inductance Le Systeme international d unites The International System of Units PDF in French and English 9th ed International Bureau of Weights and Measures 2019 ISBN 978 92 822 2272 0 p 160 A Brief History of Electromagnetism PDF Ulaby Fawwaz 2007 Fundamentals of applied electromagnetics 5th ed Pearson Prentice Hall p 255 ISBN 978 0 13 241326 8 Joseph Henry Distinguished Members Gallery National Academy of Sciences Archived from the original on 2013 12 13 Retrieved 2006 11 30 Pearce Williams L 1971 Michael Faraday A Biography Simon and Schuster pp 182 183 ISBN 9780671209292 Giancoli Douglas C 1998 Physics Principles with Applications Fifth ed pp 623 624 Pearce Williams L 1971 Michael Faraday A Biography Simon and Schuster pp 191 195 ISBN 9780671209292 Singh Yaduvir 2011 Electro Magnetic Field Theory Pearson Education India p 65 ISBN 978 8131760611 Wadhwa C L 2005 Electrical Power Systems New Age International p 18 ISBN 8122417221 Pelcovits Robert A Farkas Josh 2007 Barron s AP Physics C Barron s Educational Series p 646 ISBN 978 0764137105 Purcell Edward M Morin David J 2013 Electricity and Magnetism Cambridge Univ Press p 364 ISBN 978 1107014022 Sears and Zemansky 1964 743 a b Serway Raymond A Jewett John W 2012 Principles of Physics A Calculus Based Text 5th Ed Cengage Learning pp 801 802 ISBN 978 1133104261 a b Ida Nathan 2007 Engineering Electromagnetics 2nd Ed Springer Science and Business Media p 572 ISBN 978 0387201566 a b Purcell Edward 2011 Electricity and Magnetism 2nd Ed Cambridge University Press p 285 ISBN 978 1139503556 Gates Earl D 2001 Introduction to Electronics Cengage Learning p 153 ISBN 0766816982 a b Rosa E B 1908 The self and mutual inductances of linear conductors Bulletin of the Bureau of Standards U S Bureau of Standards 4 2 301 ff doi 10 6028 bulletin 088 Neumann F E 1846 Allgemeine Gesetze der inducirten elektrischen Strome General rules for induced electric currents Annalen der Physik und Chemie in German Wiley 143 1 31 44 Bibcode 1846AnP 143 31N doi 10 1002 andp 18461430103 ISSN 0003 3804 Jackson J D 1975 Classical Electrodynamics Wiley pp 176 263 ISBN 9780471431329 Dengler R 2016 Self inductance of a wire loop as a curve integral Advanced Electromagnetics 5 1 1 8 arXiv 1204 1486 Bibcode 2016AdEl 5 1D doi 10 7716 aem v5i1 331 S2CID 53583557 The kinetic energy of the drifting electrons is many orders of magnitude smaller than W except for nanowires Nahvi Mahmood Edminister Joseph 2002 Schaum s outline of theory and problems of electric circuits McGraw Hill Professional p 338 ISBN 0 07 139307 2 Thierauf Stephen C 2004 High speed Circuit Board Signal Integrity Artech House p 56 ISBN 1580538460 Kim Seok Kim Shin Ae Jung Goeun Kwon Kee Won Chun Jung Hoon 2009 Design of a Reliable Broadband I O Employing T coil JSTS journal of Semiconductor Technology and Science 9 4 198 204 doi 10 5573 JSTS 2009 9 4 198 S2CID 56413251 Radecki Andrzej Yuan Yuxiang Miura Noriyuki Aikawa Iori Take Yasuhiro Ishikuro Hiroki Kuroda Tadahiro 2012 Simultaneous 6 Gb s Data and 10 mW Power Transmission Using Nested Clover Coils for Noncontact Memory Card IEEE Journal of Solid State Circuits 47 10 2484 2495 Bibcode 2012IJSSC 47 2484R doi 10 1109 JSSC 2012 2204545 S2CID 29266328 Kurs A Karalis A Moffatt R Joannopoulos J D Fisher P Soljacic M 6 July 2007 Wireless Power Transfer via Strongly Coupled Magnetic Resonances Science 317 5834 83 86 Bibcode 2007Sci 317 83K CiteSeerX 10 1 1 418 9645 doi 10 1126 science 1143254 PMID 17556549 S2CID 17105396 Sample Alanson P Meyer D A Smith J R 2011 Analysis Experimental Results and Range Adaptation of Magnetically Coupled Resonators for Wireless Power Transfer IEEE Transactions on Industrial Electronics 58 2 544 554 doi 10 1109 TIE 2010 2046002 S2CID 14721 Rendon Hernandez Adrian A Halim Miah A Smith Spencer E Arnold David P 2022 Magnetically Coupled Microelectromechanical Resonators for Low Frequency Wireless Power Transfer 2022 IEEE 35th International Conference on Micro Electro Mechanical Systems Conference MEMS pp 648 651 doi 10 1109 MEMS51670 2022 9699458 ISBN 978 1 6654 0911 7 S2CID 246753151 Wheeler H A 1942 Formulas for the Skin Effect Proceedings of the IRE 30 9 412 424 doi 10 1109 JRPROC 1942 232015 S2CID 51630416 Wheeler H A 1928 Simple Inductance Formulas for Radio Coils Proceedings of the IRE 16 10 1398 1400 doi 10 1109 JRPROC 1928 221309 S2CID 51638679 Elliott R S 1993 Electromagnetics New York IEEE Press Note The published constant 3 2 in the result for a uniform current distribution is wrong Grover Frederick W 1946 Inductance Calculations Working formulas and tables New York Dover Publications Inc General references editFrederick W Grover 1952 Inductance Calculations Dover Publications New York Griffiths David J 1998 Introduction to Electrodynamics 3rd ed Prentice Hall ISBN 0 13 805326 X Wangsness Roald K 1986 Electromagnetic Fields 2nd ed Wiley ISBN 0 471 81186 6 Hughes Edward 2002 Electrical amp Electronic Technology 8th ed Prentice Hall ISBN 0 582 40519 X Kupfmuller K Einfuhrung in die theoretische Elektrotechnik Springer Verlag 1959 Heaviside O Electrical Papers Vol 1 L N Y Macmillan 1892 p 429 560 Fritz Langford Smith editor 1953 Radiotron Designer s Handbook 4th Edition Amalgamated Wireless Valve Company Pty Ltd Chapter 10 Calculation of Inductance pp 429 448 includes a wealth of formulas and nomographs for coils solenoids and mutual inductance F W Sears and M W Zemansky 1964 University Physics Third Edition Complete Volume Addison Wesley Publishing Company Inc Reading MA LCCC 63 15265 no ISBN External links editClemson Vehicular Electronics Laboratory Inductance Calculator Retrieved from https en wikipedia org w index php title Inductance amp oldid 1201757141, wikipedia, wiki, book, books, library,

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