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Electrostatics

Electrostatics is a branch of physics that studies electric charges at rest (static electricity).

An electrostatic effect: foam peanuts clinging to a cat's fur due to static electricity. The triboelectric effect causes an electrostatic charge to build up on the surface of the fur due to the cat's motions. The electric field of the charge causes polarization of the molecules of the foam due to electrostatic induction, resulting in a slight attraction of the light plastic pieces to the charged fur.[1][2][3][4] This effect is also the cause of static cling in clothes.

Since classical times, it has been known that some materials, such as amber, attract lightweight particles after rubbing. The Greek word for amber, ἤλεκτρον (ḗlektron), was thus the source of the word 'electricity'. Electrostatic phenomena arise from the forces that electric charges exert on each other. Such forces are described by Coulomb's law.

Even though electrostatically induced forces seem to be rather weak, some electrostatic forces are relatively large. The force between an electron and a proton, which together make up a hydrogen atom, is about 36 orders of magnitude stronger than the gravitational force acting between them.

There are many examples of electrostatic phenomena, from those as simple as the attraction of plastic wrap to one's hand after it is removed from a package, to the apparently spontaneous explosion of grain silos, the damage of electronic components during manufacturing, and photocopier & laser printer operation. Electrostatics involves the buildup of charge on the surface of objects due to contact with other surfaces. Although charge exchange happens whenever any two surfaces contact and separate, the effects of charge exchange are usually noticed only when at least one of the surfaces has a high resistance to electrical flow, because the charges that transfer are trapped there for a long enough time for their effects to be observed. These charges then remain on the object until they either bleed off to ground, or are quickly neutralized by a discharge. The familiar phenomenon of a static "shock" is caused by the neutralization of charge built up in the body from contact with insulated surfaces.

Coulomb's law

Coulomb's law states that:

'The magnitude of the electrostatic force of attraction or repulsion between two point charges is directly proportional to the product of the magnitudes of charges and inversely proportional to the square of the distance between them.'

The force is along the straight line joining them. If the two charges have the same sign, the electrostatic force between them is repulsive; if they have different signs, the force between them is attractive.

If   is the distance (in meters) between two charges, then the force (in newtons) between two point charges   and   (in coulombs) is:

 

where ε0 is the vacuum permittivity, or permittivity of free space:[5]

 

The SI units of ε0 are equivalently A2s4 ⋅kg−1⋅m−3 or C2N−1⋅m−2 or F⋅m−1. The Coulomb constant is:

 

A single proton has a charge of e, and the electron has a charge of −e, where,

 

These physical constants (ε0, k0, e) are currently defined so that e is exactly defined, and ε0 and k0 are measured quantities.

Electric field

 
The electrostatic field (lines with arrows) of a nearby positive charge (+) causes the mobile charges in conductive objects to separate due to electrostatic induction. Negative charges (blue) are attracted and move to the surface of the object facing the external charge. Positive charges (red) are repelled and move to the surface facing away. These induced surface charges are exactly the right size and shape so their opposing electric field cancels the electric field of the external charge throughout the interior of the metal. Therefore, the electrostatic field everywhere inside a conductive object is zero, and the electrostatic potential is constant.

The electric field,  , in units of newtons per coulomb or volts per meter, is a vector field that can be defined everywhere, except at the location of point charges (where it diverges to infinity).[6] It is defined as the electrostatic force   in newtons on a hypothetical small test charge at the point due to Coulomb's Law, divided by the magnitude of the charge   in coulombs

 

Electric field lines are useful for visualizing the electric field. Field lines begin on positive charge and terminate on negative charge. They are parallel to the direction of the electric field at each point, and the density of these field lines is a measure of the magnitude of the electric field at any given point.

Consider a collection of   particles of charge  , located at points   (called source points), the electric field at   (called the field point) is:[6]

 

where   is the displacement vector from a source point   to the field point  , and   is a unit vector that indicates the direction of the field. For a single point charge at the origin, the magnitude of this electric field is   and points away from that charge if it is positive. The fact that the force (and hence the field) can be calculated by summing over all the contributions due to individual source particles is an example of the superposition principle. The electric field produced by a distribution of charges is given by the volume charge density   and can be obtained by converting this sum into a triple integral:

 

Gauss' law

Gauss' law states that "the total electric flux through any closed surface in free space of any shape drawn in an electric field is proportional to the total electric charge enclosed by the surface." Mathematically, Gauss's law takes the form of an integral equation:

 

where   is a volume element. If the charge is distributed over a surface or along a line, replace   by   or  . The divergence theorem allows Gauss's Law to be written in differential form:

 

where   is the divergence operator.

Poisson and Laplace equations

The definition of electrostatic potential, combined with the differential form of Gauss's law (above), provides a relationship between the potential Φ and the charge density ρ:

 

This relationship is a form of Poisson's equation. In the absence of unpaired electric charge, the equation becomes Laplace's equation:

 

Electrostatic approximation

The validity of the electrostatic approximation rests on the assumption that the electric field is irrotational:

 

From Faraday's law, this assumption implies the absence or near-absence of time-varying magnetic fields:

 

In other words, electrostatics does not require the absence of magnetic fields or electric currents. Rather, if magnetic fields or electric currents do exist, they must not change with time, or in the worst-case, they must change with time only very slowly. In some problems, both electrostatics and magnetostatics may be required for accurate predictions, but the coupling between the two can still be ignored. Electrostatics and magnetostatics can both be seen as Galilean limits for electromagnetism.[7][verification needed]

Electrostatic potential

As the electric field is irrotational, it is possible to express the electric field as the gradient of a scalar function,  , called the electrostatic potential (also known as the voltage). An electric field,  , points from regions of high electric potential to regions of low electric potential, expressed mathematically as

 

The gradient theorem can be used to establish that the electrostatic potential is the amount of work per unit charge required to move a charge from point   to point   with the following line integral:

 

From these equations, we see that the electric potential is constant in any region for which the electric field vanishes (such as occurs inside a conducting object).

Electrostatic energy

A test particle's potential energy,  , can be calculated from a line integral of the work,  . We integrate from a point at infinity, and assume a collection of   particles of charge  , are already situated at the points  . This potential energy (in Joules) is:

 

where   is the distance of each charge   from the test charge  , which situated at the point  , and   is the electric potential that would be at   if the test charge were not present. If only two charges are present, the potential energy is  . The total electric potential energy due a collection of N charges is calculating by assembling these particles one at a time:

 

where the following sum from, j = 1 to N, excludes i = j:

 

This electric potential,   is what would be measured at   if the charge   were missing. This formula obviously excludes the (infinite) energy that would be required to assemble each point charge from a disperse cloud of charge. The sum over charges can be converted into an integral over charge density using the prescription  :

 

This second expression for electrostatic energy uses the fact that the electric field is the negative gradient of the electric potential, as well as vector calculus identities in a way that resembles integration by parts. These two integrals for electric field energy seem to indicate two mutually exclusive formulas for electrostatic energy density, namely   and  ; they yield equal values for the total electrostatic energy only if both are integrated over all space.

Electrostatic pressure

On a conductor, a surface charge will experience a force in the presence of an electric field. This force is the average of the discontinuous electric field at the surface charge. This average in terms of the field just outside the surface amounts to:

 

This pressure tends to draw the conductor into the field, regardless of the sign of the surface charge.

Triboelectric series

The triboelectric effect is a type of contact electrification in which certain materials become electrically charged when they are brought into contact with a different material and then separated. One of the materials acquires a positive charge, and the other acquires an equal negative charge. The polarity and strength of the charges produced differ according to the materials, surface roughness, temperature, strain, and other properties. Amber, for example, can acquire an electric charge by friction with a material like wool. This property, first recorded by Thales of Miletus, was the first electrical phenomenon investigated by humans. Other examples of materials that can acquire a significant charge when rubbed together include glass rubbed with silk, and hard rubber rubbed with fur.

Electrostatic generators

The presence of surface charge imbalance means that the objects will exhibit attractive or repulsive forces. This surface charge imbalance, which yields static electricity, can be generated by touching two differing surfaces together and then separating them due to the phenomena of contact electrification and the triboelectric effect. Rubbing two nonconductive objects generates a great amount of static electricity. This is not just the result of friction; two nonconductive surfaces can become charged by just being placed one on top of the other. Since most surfaces have a rough texture, it takes longer to achieve charging through contact than through rubbing. Rubbing objects together increases the amount of adhesive contact between the two surfaces. Usually insulators, i.e., substances that do not conduct electricity, are good at both generating, and holding, a surface charge. Some examples of these substances are rubber, plastic, glass, and pith. Conductive objects rarely generate charge imbalance, except when a metal surface is impacted by solid or liquid nonconductors. The charge that is transferred during contact electrification is stored on the surface of each object. Electrostatic generators, devices which produce very high voltage at very low current and used for classroom physics demonstrations, rely on this effect.

The presence of electric current does not detract from the electrostatic forces nor from the sparking, from the corona discharge, or other phenomena. Both phenomena can exist simultaneously in the same system.

See also: Wimshurst machine, and Van de Graaff generator.

Charge neutralization

The most familiar natural electrostatic phenomenon, often regarded as an occasional annoyance in seasons of low humidity, is Static electricity. Static electricity is generally harmless, but it can be destructive and harmful in some situations (e.g. electronics manufacturing). When working in direct contact with integrated circuit electronics (especially delicate MOSFETs). In the presence of flammable gas, care must be taken to avoid accumulating and suddenly discharging a static charge (see Electrostatic discharge).

Electrostatic induction

Electrostatic induction, discovered by British scientist John Canton in 1753 and Swedish professor Johan Carl Wilcke in 1762[8][9][10] is a redistribution of charges in an object caused by the electric field of a nearby charge. For example, if a positively charged object is brought near an uncharged metal object, the mobile negatively-charged electrons in the metal will be attracted by the external charge, and move to the side of the metal facing it, creating a negative charge on the surface. When the electrons move out of an area they leave a positive charge due to the metal atoms' nuclei, so the side of the metal object facing away from the charge acquires a positive charge. These induced charges disappear when the external charge is removed. Induction is also responsible for the attraction of light objects, such as balloons, paper scraps and foam packing peanuts to static charges. The surface charges induced in conductive objects exactly cancel external electric fields inside the conductor, so there is no electric field inside a metal object. This is the basis for the electric field shielding action of a Faraday cage. Since the electric field is the gradient of the voltage, electrostatic induction is also responsible for making the electric potential (voltage) constant throughout a conductive object.

Static electricity

Before the year 1832, when Michael Faraday published the results of his experiment on the identity of electricities, physicists thought "static electricity" was somehow different from other electrical charges. Michael Faraday proved that the electricity induced from the magnet, voltaic electricity produced by a battery, and static electricity are all the same.

Static electricity is usually caused when certain materials are rubbed against each other, like wool on plastic or the soles of shoes on carpet. The process causes electrons to be pulled from the surface of one material and relocated on the surface of the other material.

A static shock occurs when the surface of the second material, negatively charged with electrons, touches a positively charged conductor, or vice versa.

Static electricity is commonly used in xerography, air filters, and some coating processes used in manufacturing. Static electricity is a build-up of electric charges on two objects that have become separated from each other. Small electrical components can be damaged by static electricity, and component manufacturers use a number of antistatic devices to avoid this.

Static electricity and chemical industry

When different materials are brought together and then separated, an accumulation of electric charge can occur which leaves one material positively charged while the other becomes negatively charged. The mild shock that you receive when touching a grounded object after walking on carpet is an example of excess electrical charge accumulating in your body from frictional charging between your shoes and the carpet. The resulting charge build-up upon your body can generate a strong electrical discharge. Although experimenting with static electricity may be fun, similar sparks create severe hazards in those industries dealing with flammable substances, where a small electrical spark may ignite explosive mixtures with devastating consequences.

A similar charging mechanism can occur within low conductivity fluids flowing through pipelines—a process called flow electrification. Fluids which have low electrical conductivity (below 50 picosiemens per meter), are called accumulators. Fluids having conductivities above 50 pS/m are called non-accumulators. In non-accumulators, charges recombine as fast as they are separated and hence electrostatic charge generation is not significant. In the petrochemical industry, 50 pS/m is the recommended minimum value of electrical conductivity for adequate removal of charge from a fluid.

An important concept for insulating fluids is the static relaxation time. This is similar to the time constant (tau) within an RC circuit. For insulating materials, it is the ratio of the static dielectric constant divided by the electrical conductivity of the material. For hydrocarbon fluids, this is sometimes approximated by dividing the number 18 by the electrical conductivity of the fluid. Thus a fluid that has an electrical conductivity of 1 pS/cm (100 pS/m) will have an estimated relaxation time of about 18 seconds. The excess charge within a fluid will be almost completely dissipated after 4 to 5 times the relaxation time, or 90 seconds for the fluid in the above example.

Charge generation increases at higher fluid velocities and larger pipe diameters, becoming quite significant in pipes 8 inches (200 mm) or larger. Static charge generation in these systems is best controlled by limiting fluid velocity. The British standard BS PD CLC/TR 50404:2003 (formerly BS-5958-Part 2) Code of Practice for Control of Undesirable Static Electricity prescribes velocity limits. Because of its large impact on dielectric constant, the recommended velocity for hydrocarbon fluids containing water should be limited to 1 m/s.

Bonding and earthing are the usual ways by which charge buildup can be prevented. For fluids with electrical conductivity below 10 pS/m, bonding and earthing are not adequate for charge dissipation, and anti-static additives may be required.

Applicable standards

  • BS PD CLC/TR 50404:2003 Code of Practice for Control of Undesirable Static Electricity
  • NFPA 77 (2007) Recommended Practice on Static Electricity
  • API RP 2003 (1998) Protection Against Ignitions Arising Out of Static, Lightning, and Stray Currents

Electrostatic induction in commercial applications

Electrostatic induction was used in the past to build high-voltage generators known as influence machines. The main component that emerged in these times is the capacitor. Electrostatic induction is also used for electro-mechanic precipitation or projection. In such technologies, charged particles of small sizes are collected or deposited intentionally on surfaces. Applications range from electrostatic precipitator to electrostatic coating and inkjet printing.

Electrostatic actuators have recently been attracting interest in the soft robotics research area. Electrostatic actuators can be employed as clutches for wearable devices which can exhibit mechanical impedance tuning and improved energy efficiency.[11][12][13] Other relevant applications include but not limited to multimode hydraulically amplified electrostatic actuators for wearable haptics [14] and robots driven by electrostatic actuator.[15][16]

See also

Footnotes

  1. ^ Ling, Samuel J.; Moebs, William; Sanny, Jeff (2019). University Physics, Vol. 2. OpenStax. ISBN 9781947172210. Ch.30: Conductors, Insulators, and Charging by Induction
  2. ^ Bloomfield, Louis A. (2015). How Things Work: The Physics of Everyday Life. John Wiley and Sons. p. 270. ISBN 9781119013846.
  3. ^ "Polarization". Static Electricity - Lesson 1 - Basic Terminology and Concepts. The Physics Classroom. 2020. Retrieved 18 June 2021.
  4. ^ Thompson, Xochitl Zamora (2004). "Charge It! All About Electrical Attraction and Repulsion". Teach Engineering: Stem curriculum for K-12. University of Colorado. Retrieved 18 June 2021.
  5. ^ Matthew Sadiku (2009). Elements of electromagnetics. p. 104. ISBN 9780195387759.
  6. ^ a b Purcell, Edward M. (2013). Electricity and Magnetism. Cambridge University Press. pp. 16–18. ISBN 978-1107014022.
  7. ^ Heras, J. A. (2010). "The Galilean limits of Maxwell's equations". American Journal of Physics. 78 (10): 1048–1055. arXiv:1012.1068. Bibcode:2010AmJPh..78.1048H. doi:10.1119/1.3442798. S2CID 118443242.
  8. ^ Fleming, John Ambrose (1911). "Electricity" . In Chisholm, Hugh (ed.). Encyclopædia Britannica. Vol. 9 (11th ed.). Cambridge University Press. pp. 179–193, see page 181, second para, three lines from end. ... the Swede, Johann Karl Wilcke (1732–1796), then resident in Germany, who in 1762 published an account of experiments in which....
  9. ^ Heilbron, J. L. (1979). Electricity in the 17th and 18th Centuries: A Study of Early Modern Physics. Univ. of California Press. ISBN 0520034783.
  10. ^ Sarkar, T. K.; Mailloux, Robert; Oliner, Arthur A., Ed. (2006). History of Wireless. John Wiley and Sons. p. 9. ISBN 0471783013.
  11. ^ Diller, Stuart B; Collins, Steven H; Majidi, Carmel (November 2018). "The effects of electroadhesive clutch design parameters on performance characteristics". Journal of Intelligent Material Systems and Structures. 29 (19): 3804–3828. doi:10.1177/1045389X18799474. ISSN 1045-389X. S2CID 52904769.
  12. ^ Ramachandran, Vivek; Shintake, Jun; Floreano, Dario (February 2019). "All-Fabric Wearable Electroadhesive Clutch". Advanced Materials Technologies. 4 (2): 1800313. doi:10.1002/admt.201800313. S2CID 139121491.
  13. ^ Diller, Stuart; Majidi, Carmel; Collins, Steven H. (May 2016). "A lightweight, low-power electroadhesive clutch and spring for exoskeleton actuation". 2016 IEEE International Conference on Robotics and Automation (ICRA). Stockholm, Sweden: IEEE: 682–689. doi:10.1109/ICRA.2016.7487194. ISBN 978-1-4673-8026-3. S2CID 206851724.
  14. ^ Leroy, Edouard; Hinchet, Ronan; Shea, Herbert (2020-07-23). "Multimode Hydraulically Amplified Electrostatic Actuators for Wearable Haptics". Advanced Materials. 32 (36): 2002564. doi:10.1002/adma.202002564. ISSN 0935-9648. PMID 32700326. S2CID 220716480.
  15. ^ Shigemune, Hiroki; Maeda, Shingo; Cacucciolo, Vito; Iwata, Yoshitaka; Iwase, Eiji; Hashimoto, Shuji; Sugano, Shigeki (April 2017). "Printed Paper Robot Driven by Electrostatic Actuator". IEEE Robotics and Automation Letters. 2 (2): 1001–1007. doi:10.1109/LRA.2017.2658942. ISSN 2377-3766. S2CID 17743332.
  16. ^ Wu, Qiyang; Diaz Jimenez, Tomas G.; Qu, Juntian; Zhao, Chen; Liu, Xinyu (September 2017). "Regulating surface traction of a soft robot through electrostatic adhesion control". 2017 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS). Vancouver, BC: IEEE: 488–493. doi:10.1109/IROS.2017.8202198. ISBN 978-1-5386-2682-5. S2CID 27169691.

References

  • Faraday, Michael (1839). Experimental Researches in Electricity. London: Royal Inst.
  • Michael Faraday. Experimental Researches in Electricity, Volume 1 at Project Gutenberg
  • Halliday, David; Robert Resnick; Kenneth S. Krane (1992). Physics. New York: John Wiley & Sons. ISBN 0-471-80457-6.
  • Griffiths, David J. (1999). Introduction to Electrodynamics. Upper Saddle River, NJ: Prentice Hall. ISBN 0-13-805326-X.
  • Hermann A. Haus; James R. Melcher (1989). Electromagnetic Fields and Energy. Englewood Cliffs, NJ: Prentice-Hall. ISBN 0-13-249020-X.

Further reading

Essays
  • William J. Beaty (1997), "Humans and sparks: The Cause, Stopping the Pain, and 'Electric People".
Books
  • William Cecil Dampier (1905), The Theory of Experimental Electricity, Cambridge University Press, (Cambridge physical series). xi, 334 p. illus., diagrs. 23 cm. LCCN 05-40419
  • William Thomson Kelvin (1872) Reprint of Papers on Electrostatics and Magnetism By William Thomson Kelvin, Macmillan.
  • Alexander McAulay (1893), The Utility of Quaternions in Physics, Electrostatics – General Problem. Macmillan.
  • Alexander Russell (1904) A Treatise on the Theory of Alternating Currents, Cambridge University Press, Second edition, 1914, volume 1. Second edition, 1916, volume 2 via Internet Archive.

External links

  •   Media related to Electrostatics at Wikimedia Commons
  • The Feynman Lectures on Physics Vol. II Ch. 4: Electrostatics
  • Introduction to Electrostatics: Point charges can be treated as a distribution using the Dirac delta function

  Learning materials related to Electrostatics at Wikiversity

electrostatics, branch, physics, that, studies, electric, charges, rest, static, electricity, electrostatic, effect, foam, peanuts, clinging, static, electricity, triboelectric, effect, causes, electrostatic, charge, build, surface, motions, electric, field, c. Electrostatics is a branch of physics that studies electric charges at rest static electricity An electrostatic effect foam peanuts clinging to a cat s fur due to static electricity The triboelectric effect causes an electrostatic charge to build up on the surface of the fur due to the cat s motions The electric field of the charge causes polarization of the molecules of the foam due to electrostatic induction resulting in a slight attraction of the light plastic pieces to the charged fur 1 2 3 4 This effect is also the cause of static cling in clothes Since classical times it has been known that some materials such as amber attract lightweight particles after rubbing The Greek word for amber ἤlektron ḗlektron was thus the source of the word electricity Electrostatic phenomena arise from the forces that electric charges exert on each other Such forces are described by Coulomb s law Even though electrostatically induced forces seem to be rather weak some electrostatic forces are relatively large The force between an electron and a proton which together make up a hydrogen atom is about 36 orders of magnitude stronger than the gravitational force acting between them There are many examples of electrostatic phenomena from those as simple as the attraction of plastic wrap to one s hand after it is removed from a package to the apparently spontaneous explosion of grain silos the damage of electronic components during manufacturing and photocopier amp laser printer operation Electrostatics involves the buildup of charge on the surface of objects due to contact with other surfaces Although charge exchange happens whenever any two surfaces contact and separate the effects of charge exchange are usually noticed only when at least one of the surfaces has a high resistance to electrical flow because the charges that transfer are trapped there for a long enough time for their effects to be observed These charges then remain on the object until they either bleed off to ground or are quickly neutralized by a discharge The familiar phenomenon of a static shock is caused by the neutralization of charge built up in the body from contact with insulated surfaces Contents 1 Coulomb s law 2 Electric field 2 1 Gauss law 2 2 Poisson and Laplace equations 3 Electrostatic approximation 3 1 Electrostatic potential 3 2 Electrostatic energy 3 3 Electrostatic pressure 4 Triboelectric series 5 Electrostatic generators 6 Charge neutralization 7 Electrostatic induction 8 Static electricity 8 1 Static electricity and chemical industry 8 1 1 Applicable standards 9 Electrostatic induction in commercial applications 10 See also 11 Footnotes 12 References 13 Further reading 14 External linksCoulomb s law EditMain article Coulomb s law Coulomb s law states that The magnitude of the electrostatic force of attraction or repulsion between two point charges is directly proportional to the product of the magnitudes of charges and inversely proportional to the square of the distance between them The force is along the straight line joining them If the two charges have the same sign the electrostatic force between them is repulsive if they have different signs the force between them is attractive If r displaystyle r is the distance in meters between two charges then the force in newtons between two point charges q displaystyle q and Q displaystyle Q in coulombs is F 1 4 p e 0 q Q r 2 k 0 q Q r 2 displaystyle F frac 1 4 pi varepsilon 0 frac qQ r 2 k 0 frac qQ r 2 where e0 is the vacuum permittivity or permittivity of free space 5 e 0 8 854 187 817 10 12 C 2 N 1 m 2 displaystyle varepsilon 0 approx mathrm 8 854 187 817 times 10 12 C 2 cdot N 1 cdot m 2 The SI units of e0 are equivalently A2 s4 kg 1 m 3 or C2 N 1 m 2 or F m 1 The Coulomb constant is k e 1 4 p e 0 8 987 551 792 10 9 N m 2 C 2 displaystyle k text e frac 1 4 pi varepsilon 0 approx mathrm 8 987 551 792 times 10 9 N cdot m 2 cdot C 2 A single proton has a charge of e and the electron has a charge of e where e 1 602 176 634 10 19 C displaystyle e mathrm 1 602 176 634 times 10 19 C These physical constants e0 k0 e are currently defined so that e is exactly defined and e0 and k0 are measured quantities Electric field Edit The electrostatic field lines with arrows of a nearby positive charge causes the mobile charges in conductive objects to separate due to electrostatic induction Negative charges blue are attracted and move to the surface of the object facing the external charge Positive charges red are repelled and move to the surface facing away These induced surface charges are exactly the right size and shape so their opposing electric field cancels the electric field of the external charge throughout the interior of the metal Therefore the electrostatic field everywhere inside a conductive object is zero and the electrostatic potential is constant The electric field E displaystyle vec E in units of newtons per coulomb or volts per meter is a vector field that can be defined everywhere except at the location of point charges where it diverges to infinity 6 It is defined as the electrostatic force F displaystyle vec F in newtons on a hypothetical small test charge at the point due to Coulomb s Law divided by the magnitude of the charge q displaystyle q in coulombs E F q displaystyle vec E vec F over q Electric field lines are useful for visualizing the electric field Field lines begin on positive charge and terminate on negative charge They are parallel to the direction of the electric field at each point and the density of these field lines is a measure of the magnitude of the electric field at any given point Consider a collection of N displaystyle N particles of charge Q i displaystyle Q i located at points r i displaystyle vec r i called source points the electric field at r displaystyle vec r called the field point is 6 E r 1 4 p e 0 i 1 N R i Q i R i 2 displaystyle vec E vec r frac 1 4 pi varepsilon 0 sum i 1 N frac widehat mathcal R i Q i left mathcal vec R i right 2 where R i r r i displaystyle vec mathcal R i vec r vec r i is the displacement vector from a source point r i displaystyle vec r i to the field point r displaystyle vec r and R i R i R i displaystyle widehat mathcal R i vec mathcal R i left vec mathcal R i right is a unit vector that indicates the direction of the field For a single point charge at the origin the magnitude of this electric field is E k e Q R 2 displaystyle E k text e Q mathcal R 2 and points away from that charge if it is positive The fact that the force and hence the field can be calculated by summing over all the contributions due to individual source particles is an example of the superposition principle The electric field produced by a distribution of charges is given by the volume charge density r r displaystyle rho vec r and can be obtained by converting this sum into a triple integral E r 1 4 p e 0 r r r r 3 r r d 3 r displaystyle vec E vec r frac 1 4 pi varepsilon 0 iiint frac vec r vec r left vec r vec r right 3 rho vec r mathrm d 3 r Gauss law Edit Gauss law states that the total electric flux through any closed surface in free space of any shape drawn in an electric field is proportional to the total electric charge enclosed by the surface Mathematically Gauss s law takes the form of an integral equation S E d A 1 e 0 Q enclosed V r e 0 d 3 r displaystyle oint S vec E cdot mathrm d vec A frac 1 varepsilon 0 Q text enclosed int V rho over varepsilon 0 cdot mathrm d 3 r where d 3 r d x d y d z displaystyle mathrm d 3 r mathrm d x mathrm d y mathrm d z is a volume element If the charge is distributed over a surface or along a line replace r d 3 r displaystyle rho mathrm d 3 r by s d A displaystyle sigma mathrm d A or l d ℓ displaystyle lambda mathrm d ell The divergence theorem allows Gauss s Law to be written in differential form E r e 0 displaystyle vec nabla cdot vec E rho over varepsilon 0 where displaystyle vec nabla cdot is the divergence operator Poisson and Laplace equations Edit The definition of electrostatic potential combined with the differential form of Gauss s law above provides a relationship between the potential F and the charge density r 2 ϕ r e 0 displaystyle nabla 2 phi rho over varepsilon 0 This relationship is a form of Poisson s equation In the absence of unpaired electric charge the equation becomes Laplace s equation 2 ϕ 0 displaystyle nabla 2 phi 0 Electrostatic approximation EditThe validity of the electrostatic approximation rests on the assumption that the electric field is irrotational E 0 displaystyle vec nabla times vec E 0 From Faraday s law this assumption implies the absence or near absence of time varying magnetic fields B t 0 displaystyle partial vec B over partial t 0 In other words electrostatics does not require the absence of magnetic fields or electric currents Rather if magnetic fields or electric currents do exist they must not change with time or in the worst case they must change with time only very slowly In some problems both electrostatics and magnetostatics may be required for accurate predictions but the coupling between the two can still be ignored Electrostatics and magnetostatics can both be seen as Galilean limits for electromagnetism 7 verification needed Electrostatic potential Edit As the electric field is irrotational it is possible to express the electric field as the gradient of a scalar function ϕ displaystyle phi called the electrostatic potential also known as the voltage An electric field E displaystyle E points from regions of high electric potential to regions of low electric potential expressed mathematically as E ϕ displaystyle vec E vec nabla phi The gradient theorem can be used to establish that the electrostatic potential is the amount of work per unit charge required to move a charge from point a displaystyle a to point b displaystyle b with the following line integral a b E d ℓ ϕ b ϕ a displaystyle int a b vec E cdot mathrm d vec ell phi vec b phi vec a From these equations we see that the electric potential is constant in any region for which the electric field vanishes such as occurs inside a conducting object Electrostatic energy Edit Main articles Electric potential energy and Energy density A test particle s potential energy U E single displaystyle U mathrm E text single can be calculated from a line integral of the work q n E d ℓ displaystyle q n vec E cdot mathrm d vec ell We integrate from a point at infinity and assume a collection of N displaystyle N particles of charge Q n displaystyle Q n are already situated at the points r i displaystyle vec r i This potential energy in Joules is U E single q ϕ r q 4 p e 0 i 1 N Q i R i displaystyle U mathrm E text single q phi vec r frac q 4 pi varepsilon 0 sum i 1 N frac Q i left mathcal vec R i right where R i r r i displaystyle vec mathcal R i vec r vec r i is the distance of each charge Q i displaystyle Q i from the test charge q displaystyle q which situated at the point r displaystyle vec r and ϕ r displaystyle phi vec r is the electric potential that would be at r displaystyle vec r if the test charge were not present If only two charges are present the potential energy is k e Q 1 Q 2 r displaystyle k text e Q 1 Q 2 r The total electric potential energy due a collection of N charges is calculating by assembling these particles one at a time U E total 1 4 p e 0 j 1 N Q j i 1 j 1 Q i r i j 1 2 i 1 N Q i ϕ i displaystyle U mathrm E text total frac 1 4 pi varepsilon 0 sum j 1 N Q j sum i 1 j 1 frac Q i r ij frac 1 2 sum i 1 N Q i phi i where the following sum from j 1 to N excludes i j ϕ i 1 4 p e 0 j i j 1 N Q j r i j displaystyle phi i frac 1 4 pi varepsilon 0 sum stackrel j 1 j neq i N frac Q j r ij This electric potential ϕ i displaystyle phi i is what would be measured at r i displaystyle vec r i if the charge Q i displaystyle Q i were missing This formula obviously excludes the infinite energy that would be required to assemble each point charge from a disperse cloud of charge The sum over charges can be converted into an integral over charge density using the prescription r d 3 r textstyle sum cdots rightarrow int cdots rho mathrm d 3 r U E total 1 2 r r ϕ r d 3 r e 0 2 E 2 d 3 r displaystyle U mathrm E text total frac 1 2 int rho vec r phi vec r mathrm d 3 r frac varepsilon 0 2 int left mathbf E right 2 mathrm d 3 r This second expression for electrostatic energy uses the fact that the electric field is the negative gradient of the electric potential as well as vector calculus identities in a way that resembles integration by parts These two integrals for electric field energy seem to indicate two mutually exclusive formulas for electrostatic energy density namely 1 2 r ϕ textstyle frac 1 2 rho phi and 1 2 e 0 E 2 textstyle frac 1 2 varepsilon 0 E 2 they yield equal values for the total electrostatic energy only if both are integrated over all space Electrostatic pressure Edit On a conductor a surface charge will experience a force in the presence of an electric field This force is the average of the discontinuous electric field at the surface charge This average in terms of the field just outside the surface amounts to P e 0 2 E 2 displaystyle P frac varepsilon 0 2 E 2 This pressure tends to draw the conductor into the field regardless of the sign of the surface charge Triboelectric series EditMain article Triboelectric effect The triboelectric effect is a type of contact electrification in which certain materials become electrically charged when they are brought into contact with a different material and then separated One of the materials acquires a positive charge and the other acquires an equal negative charge The polarity and strength of the charges produced differ according to the materials surface roughness temperature strain and other properties Amber for example can acquire an electric charge by friction with a material like wool This property first recorded by Thales of Miletus was the first electrical phenomenon investigated by humans Other examples of materials that can acquire a significant charge when rubbed together include glass rubbed with silk and hard rubber rubbed with fur Electrostatic generators EditMain article Electrostatic generator The presence of surface charge imbalance means that the objects will exhibit attractive or repulsive forces This surface charge imbalance which yields static electricity can be generated by touching two differing surfaces together and then separating them due to the phenomena of contact electrification and the triboelectric effect Rubbing two nonconductive objects generates a great amount of static electricity This is not just the result of friction two nonconductive surfaces can become charged by just being placed one on top of the other Since most surfaces have a rough texture it takes longer to achieve charging through contact than through rubbing Rubbing objects together increases the amount of adhesive contact between the two surfaces Usually insulators i e substances that do not conduct electricity are good at both generating and holding a surface charge Some examples of these substances are rubber plastic glass and pith Conductive objects rarely generate charge imbalance except when a metal surface is impacted by solid or liquid nonconductors The charge that is transferred during contact electrification is stored on the surface of each object Electrostatic generators devices which produce very high voltage at very low current and used for classroom physics demonstrations rely on this effect The presence of electric current does not detract from the electrostatic forces nor from the sparking from the corona discharge or other phenomena Both phenomena can exist simultaneously in the same system See also Wimshurst machine and Van de Graaff generator Charge neutralization EditThe most familiar natural electrostatic phenomenon often regarded as an occasional annoyance in seasons of low humidity is Static electricity Static electricity is generally harmless but it can be destructive and harmful in some situations e g electronics manufacturing When working in direct contact with integrated circuit electronics especially delicate MOSFETs In the presence of flammable gas care must be taken to avoid accumulating and suddenly discharging a static charge see Electrostatic discharge Electrostatic induction EditMain article Electrostatic induction Electrostatic induction discovered by British scientist John Canton in 1753 and Swedish professor Johan Carl Wilcke in 1762 8 9 10 is a redistribution of charges in an object caused by the electric field of a nearby charge For example if a positively charged object is brought near an uncharged metal object the mobile negatively charged electrons in the metal will be attracted by the external charge and move to the side of the metal facing it creating a negative charge on the surface When the electrons move out of an area they leave a positive charge due to the metal atoms nuclei so the side of the metal object facing away from the charge acquires a positive charge These induced charges disappear when the external charge is removed Induction is also responsible for the attraction of light objects such as balloons paper scraps and foam packing peanuts to static charges The surface charges induced in conductive objects exactly cancel external electric fields inside the conductor so there is no electric field inside a metal object This is the basis for the electric field shielding action of a Faraday cage Since the electric field is the gradient of the voltage electrostatic induction is also responsible for making the electric potential voltage constant throughout a conductive object Static electricity EditMain article Static electricity Lightning over Oradea in Romania Before the year 1832 when Michael Faraday published the results of his experiment on the identity of electricities physicists thought static electricity was somehow different from other electrical charges Michael Faraday proved that the electricity induced from the magnet voltaic electricity produced by a battery and static electricity are all the same Static electricity is usually caused when certain materials are rubbed against each other like wool on plastic or the soles of shoes on carpet The process causes electrons to be pulled from the surface of one material and relocated on the surface of the other material A static shock occurs when the surface of the second material negatively charged with electrons touches a positively charged conductor or vice versa Static electricity is commonly used in xerography air filters and some coating processes used in manufacturing Static electricity is a build up of electric charges on two objects that have become separated from each other Small electrical components can be damaged by static electricity and component manufacturers use a number of antistatic devices to avoid this Static electricity and chemical industry Edit When different materials are brought together and then separated an accumulation of electric charge can occur which leaves one material positively charged while the other becomes negatively charged The mild shock that you receive when touching a grounded object after walking on carpet is an example of excess electrical charge accumulating in your body from frictional charging between your shoes and the carpet The resulting charge build up upon your body can generate a strong electrical discharge Although experimenting with static electricity may be fun similar sparks create severe hazards in those industries dealing with flammable substances where a small electrical spark may ignite explosive mixtures with devastating consequences A similar charging mechanism can occur within low conductivity fluids flowing through pipelines a process called flow electrification Fluids which have low electrical conductivity below 50 picosiemens per meter are called accumulators Fluids having conductivities above 50 pS m are called non accumulators In non accumulators charges recombine as fast as they are separated and hence electrostatic charge generation is not significant In the petrochemical industry 50 pS m is the recommended minimum value of electrical conductivity for adequate removal of charge from a fluid An important concept for insulating fluids is the static relaxation time This is similar to the time constant tau within an RC circuit For insulating materials it is the ratio of the static dielectric constant divided by the electrical conductivity of the material For hydrocarbon fluids this is sometimes approximated by dividing the number 18 by the electrical conductivity of the fluid Thus a fluid that has an electrical conductivity of 1 pS cm 100 pS m will have an estimated relaxation time of about 18 seconds The excess charge within a fluid will be almost completely dissipated after 4 to 5 times the relaxation time or 90 seconds for the fluid in the above example Charge generation increases at higher fluid velocities and larger pipe diameters becoming quite significant in pipes 8 inches 200 mm or larger Static charge generation in these systems is best controlled by limiting fluid velocity The British standard BS PD CLC TR 50404 2003 formerly BS 5958 Part 2 Code of Practice for Control of Undesirable Static Electricity prescribes velocity limits Because of its large impact on dielectric constant the recommended velocity for hydrocarbon fluids containing water should be limited to 1 m s Bonding and earthing are the usual ways by which charge buildup can be prevented For fluids with electrical conductivity below 10 pS m bonding and earthing are not adequate for charge dissipation and anti static additives may be required Applicable standards Edit BS PD CLC TR 50404 2003 Code of Practice for Control of Undesirable Static Electricity NFPA 77 2007 Recommended Practice on Static Electricity API RP 2003 1998 Protection Against Ignitions Arising Out of Static Lightning and Stray CurrentsElectrostatic induction in commercial applications EditElectrostatic induction was used in the past to build high voltage generators known as influence machines The main component that emerged in these times is the capacitor Electrostatic induction is also used for electro mechanic precipitation or projection In such technologies charged particles of small sizes are collected or deposited intentionally on surfaces Applications range from electrostatic precipitator to electrostatic coating and inkjet printing Electrostatic actuators have recently been attracting interest in the soft robotics research area Electrostatic actuators can be employed as clutches for wearable devices which can exhibit mechanical impedance tuning and improved energy efficiency 11 12 13 Other relevant applications include but not limited to multimode hydraulically amplified electrostatic actuators for wearable haptics 14 and robots driven by electrostatic actuator 15 16 See also EditElectromagnetism Electronegativity Electrostatic discharge Electrostatic separator Electrostatic voltmeter Ionic bond Permittivity and relative permittivity Quantisation of chargeFootnotes Edit Ling Samuel J Moebs William Sanny Jeff 2019 University Physics Vol 2 OpenStax ISBN 9781947172210 Ch 30 Conductors Insulators and Charging by Induction Bloomfield Louis A 2015 How Things Work The Physics of Everyday Life John Wiley and Sons p 270 ISBN 9781119013846 Polarization Static Electricity Lesson 1 Basic Terminology and Concepts The Physics Classroom 2020 Retrieved 18 June 2021 Thompson Xochitl Zamora 2004 Charge It All About Electrical Attraction and Repulsion Teach Engineering Stem curriculum for K 12 University of Colorado Retrieved 18 June 2021 Matthew Sadiku 2009 Elements of electromagnetics p 104 ISBN 9780195387759 a b Purcell Edward M 2013 Electricity and Magnetism Cambridge University Press pp 16 18 ISBN 978 1107014022 Heras J A 2010 The Galilean limits of Maxwell s equations American Journal of Physics 78 10 1048 1055 arXiv 1012 1068 Bibcode 2010AmJPh 78 1048H doi 10 1119 1 3442798 S2CID 118443242 Fleming John Ambrose 1911 Electricity In Chisholm Hugh ed Encyclopaedia Britannica Vol 9 11th ed Cambridge University Press pp 179 193 see page 181 second para three lines from end the Swede Johann Karl Wilcke 1732 1796 then resident in Germany who in 1762 published an account of experiments in which Heilbron J L 1979 Electricity in the 17th and 18th Centuries A Study of Early Modern Physics Univ of California Press ISBN 0520034783 Sarkar T K Mailloux Robert Oliner Arthur A Ed 2006 History of Wireless John Wiley and Sons p 9 ISBN 0471783013 Diller Stuart B Collins Steven H Majidi Carmel November 2018 The effects of electroadhesive clutch design parameters on performance characteristics Journal of Intelligent Material Systems and Structures 29 19 3804 3828 doi 10 1177 1045389X18799474 ISSN 1045 389X S2CID 52904769 Ramachandran Vivek Shintake Jun Floreano Dario February 2019 All Fabric Wearable Electroadhesive Clutch Advanced Materials Technologies 4 2 1800313 doi 10 1002 admt 201800313 S2CID 139121491 Diller Stuart Majidi Carmel Collins Steven H May 2016 A lightweight low power electroadhesive clutch and spring for exoskeleton actuation 2016 IEEE International Conference on Robotics and Automation ICRA Stockholm Sweden IEEE 682 689 doi 10 1109 ICRA 2016 7487194 ISBN 978 1 4673 8026 3 S2CID 206851724 Leroy Edouard Hinchet Ronan Shea Herbert 2020 07 23 Multimode Hydraulically Amplified Electrostatic Actuators for Wearable Haptics Advanced Materials 32 36 2002564 doi 10 1002 adma 202002564 ISSN 0935 9648 PMID 32700326 S2CID 220716480 Shigemune Hiroki Maeda Shingo Cacucciolo Vito Iwata Yoshitaka Iwase Eiji Hashimoto Shuji Sugano Shigeki April 2017 Printed Paper Robot Driven by Electrostatic Actuator IEEE Robotics and Automation Letters 2 2 1001 1007 doi 10 1109 LRA 2017 2658942 ISSN 2377 3766 S2CID 17743332 Wu Qiyang Diaz Jimenez Tomas G Qu Juntian Zhao Chen Liu Xinyu September 2017 Regulating surface traction of a soft robot through electrostatic adhesion control 2017 IEEE RSJ International Conference on Intelligent Robots and Systems IROS Vancouver BC IEEE 488 493 doi 10 1109 IROS 2017 8202198 ISBN 978 1 5386 2682 5 S2CID 27169691 References EditThis article includes a list of general references but it lacks sufficient corresponding inline citations Please help to improve this article by introducing more precise citations September 2019 Learn how and when to remove this template message Faraday Michael 1839 Experimental Researches in Electricity London Royal Inst Michael Faraday Experimental Researches in Electricity Volume 1 at Project Gutenberg Halliday David Robert Resnick Kenneth S Krane 1992 Physics New York John Wiley amp Sons ISBN 0 471 80457 6 Griffiths David J 1999 Introduction to Electrodynamics Upper Saddle River NJ Prentice Hall ISBN 0 13 805326 X Hermann A Haus James R Melcher 1989 Electromagnetic Fields and Energy Englewood Cliffs NJ Prentice Hall ISBN 0 13 249020 X Further reading EditEssaysWilliam J Beaty 1997 Humans and sparks The Cause Stopping the Pain and Electric People BooksWilliam Cecil Dampier 1905 The Theory of Experimental Electricity Cambridge University Press Cambridge physical series xi 334 p illus diagrs 23 cm LCCN 05 40419 William Thomson Kelvin 1872 Reprint of Papers on Electrostatics and Magnetism By William Thomson Kelvin Macmillan Alexander McAulay 1893 The Utility of Quaternions in Physics Electrostatics General Problem Macmillan Alexander Russell 1904 A Treatise on the Theory of Alternating Currents Cambridge University Press Second edition 1914 volume 1 Second edition 1916 volume 2 via Internet Archive External links Edit Wikisource has the text of the 1911 Encyclopaedia Britannica article Electrostatics Media related to Electrostatics at Wikimedia Commons Look up electrostatics in Wiktionary the free dictionary The Feynman Lectures on Physics Vol II Ch 4 Electrostatics Introduction to Electrostatics Point charges can be treated as a distribution using the Dirac delta function Learning materials related to Electrostatics at Wikiversity Retrieved from https en wikipedia org w index php title Electrostatics amp oldid 1151629621, wikipedia, wiki, book, books, library,

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