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Wikipedia

Liquid

A liquid is a nearly incompressible fluid that conforms to the shape of its container but retains a (nearly) constant volume independent of pressure. As such, it is one of the four fundamental states of matter (the others being solid, gas, and plasma), and is the only state with a definite volume but no fixed shape. A liquid is made up of tiny vibrating particles of matter, such as atoms, held together by intermolecular bonds. Like a gas, a liquid is able to flow and take the shape of a container. Most liquids resist compression, although others can be compressed. Unlike a gas, a liquid does not disperse to fill every space of a container, and maintains a fairly constant density. A distinctive property of the liquid state is surface tension, leading to wetting phenomena. Water is by far the most common liquid on Earth.

The formation of a spherical droplet of liquid water minimizes the surface area, which is the natural result of surface tension in liquids.

The density of a liquid is usually close to that of a solid, and much higher than that of a gas. Therefore, liquid and solid are both termed condensed matter. On the other hand, as liquids and gases share the ability to flow, they are both called fluids. Although liquid water is abundant on Earth, this state of matter is actually the least common in the known universe, because liquids require a relatively narrow temperature/pressure range to exist. Most known matter in the universe is in gaseous form (with traces of detectable solid matter) as interstellar clouds or plasma from within stars.

Introduction

 
Thermal image of a sink full of hot water with cold water being added, showing how the hot and the cold water flow into each other.

Liquid is one of the four primary states of matter, with the others being solid, gas and plasma. A liquid is a fluid. Unlike a solid, the molecules in a liquid have a much greater freedom to move. The forces that bind the molecules together in a solid are only temporary in a liquid, allowing a liquid to flow while a solid remains rigid.

A liquid, like a gas, displays the properties of a fluid. A liquid can flow, assume the shape of a container, and, if placed in a sealed container, will distribute applied pressure evenly to every surface in the container. If liquid is placed in a bag, it can be squeezed into any shape. Unlike a gas, a liquid is nearly incompressible, meaning that it occupies nearly a constant volume over a wide range of pressures; it does not generally expand to fill available space in a container but forms its own surface, and it may not always mix readily with another liquid. These properties make a liquid suitable for applications such as hydraulics.

Liquid particles are bound firmly but not rigidly. They are able to move around one another freely, resulting in a limited degree of particle mobility. As the temperature increases, the increased vibrations of the molecules causes distances between the molecules to increase. When a liquid reaches its boiling point, the cohesive forces that bind the molecules closely together break, and the liquid changes to its gaseous state (unless superheating occurs). If the temperature is decreased, the distances between the molecules become smaller. When the liquid reaches its freezing point the molecules will usually lock into a very specific order, called crystallizing, and the bonds between them become more rigid, changing the liquid into its solid state (unless supercooling occurs).

Examples

Only two elements are liquid at standard conditions for temperature and pressure: mercury and bromine. Four more elements have melting points slightly above room temperature: francium, caesium, gallium and rubidium.[1] In addition, certain mixtures of elements are liquid at room temperature, even if the individual elements are solid under the same conditions (see eutectic mixture). An example is the sodium-potassium metal alloy NaK.[2] Other metal alloys that are liquid at room temperature include galinstan, which is a gallium-indium-tin alloy that melts at −19 °C (−2 °F), as well as some amalgams (alloys involving mercury).[3]

Pure substances that are liquid under normal conditions include water, ethanol and many other organic solvents. Liquid water is of vital importance in chemistry and biology, and it is necessary for all known forms of life.[4][5]

Inorganic liquids include water, magma, inorganic nonaqueous solvents and many acids.

Important everyday liquids include aqueous solutions like household bleach, other mixtures of different substances such as mineral oil and gasoline, emulsions like vinaigrette or mayonnaise, suspensions like blood, and colloids like paint and milk.

Many gases can be liquefied by cooling, producing liquids such as liquid oxygen, liquid nitrogen, liquid hydrogen and liquid helium. Not all gases can be liquified at atmospheric pressure, however. Carbon dioxide, for example, can only be liquified at pressures above 5.1 atm.[6]

Some materials cannot be classified within the classical three states of matter. For example, liquid crystals (used in liquid-crystal displays) possess both solid-like and liquid-like properties, and belong to their own state of matter distinct from either liquid or solid.[7]

Applications

 
A lava lamp contains two immiscible liquids (a molten wax and a watery solution) which add movement due to convection. In addition to the top surface, surfaces also form between the liquids, requiring a tension breaker to recombine the wax droplets at the bottom.

Lubrication

Liquids are useful as lubricants due to their ability to form a thin, freely flowing layer between solid materials. Lubricants such as oil are chosen for viscosity and flow characteristics that are suitable throughout the operating temperature range of the component. Oils are often used in engines, gear boxes, metalworking, and hydraulic systems for their good lubrication properties.[8]

Solvation

Many liquids are used as solvents, to dissolve other liquids or solids. Solutions are found in a wide variety of applications, including paints, sealants, and adhesives. Naphtha and acetone are used frequently in industry to clean oil, grease, and tar from parts and machinery. Body fluids are water-based solutions.

Surfactants are commonly found in soaps and detergents. Solvents like alcohol are often used as antimicrobials. They are found in cosmetics, inks, and liquid dye lasers. They are used in the food industry, in processes such as the extraction of vegetable oil.[9]


Cooling

Liquids tend to have better thermal conductivity than gases, and the ability to flow makes a liquid suitable for removing excess heat from mechanical components. The heat can be removed by channeling the liquid through a heat exchanger, such as a radiator, or the heat can be removed with the liquid during evaporation.[10] Water or glycol coolants are used to keep engines from overheating.[11] The coolants used in nuclear reactors include water or liquid metals, such as sodium or bismuth.[12] Liquid propellant films are used to cool the thrust chambers of rockets.[13] In machining, water and oils are used to remove the excess heat generated, which can quickly ruin both the work piece and the tooling. During perspiration, sweat removes heat from the human body by evaporating. In the heating, ventilation, and air-conditioning industry (HVAC), liquids such as water are used to transfer heat from one area to another.[14]

Cooking

Liquids are often used in cooking due to their excellent heat-transfer capabilities. In addition to thermal conduction, liquids transmit energy by convection. In particular, because warmer fluids expand and rise while cooler areas contract and sink, liquids with low kinematic viscosity tend to transfer heat through convection at a fairly constant temperature, making a liquid suitable for blanching, boiling, or frying. Even higher rates of heat transfer can be achieved by condensing a gas into a liquid. At the liquid's boiling point, all of the heat energy is used to cause the phase change from a liquid to a gas, without an accompanying increase in temperature, and is stored as chemical potential energy. When the gas condenses back into a liquid this excess heat-energy is released at a constant temperature. This phenomenon is used in processes such as steaming.

Distillation

Since liquids often have different boiling points, mixtures or solutions of liquids or gases can typically be separated by distillation, using heat, cold, vacuum, pressure, or other means. Distillation can be found in everything from the production of alcoholic beverages, to oil refineries, to the cryogenic distillation of gases such as argon, oxygen, nitrogen, neon, or xenon by liquefaction (cooling them below their individual boiling points).[15]

Hydraulics

Liquid is the primary component of hydraulic systems, which take advantage of Pascal's law to provide fluid power. Devices such as pumps and waterwheels have been used to change liquid motion into mechanical work since ancient times. Oils are forced through hydraulic pumps, which transmit this force to hydraulic cylinders. Hydraulics can be found in many applications, such as automotive brakes and transmissions, heavy equipment, and airplane control systems. Various hydraulic presses are used extensively in repair and manufacturing, for lifting, pressing, clamping and forming.[16]

Liquid metals

Liquid metals have several properties that are useful in sensing and actuation, particularly their electrical conductivity and ability to transmit forces (incompressibility). As freely flowing substances, liquid metals retain these bulk properties even under extreme deformation. For this reason, they have been proposed for use in soft robots and wearable healthcare devices, which must be able to operate under repeated deformation.[17][18] The metal gallium is considered to be a promising candidate for these applications as it is a liquid near room temperature, has low toxicity, and evaporates slowly.[19]

Miscellaneous

Liquids are sometimes used in measuring devices. A thermometer often uses the thermal expansion of liquids, such as mercury, combined with their ability to flow to indicate temperature. A manometer uses the weight of the liquid to indicate air pressure.[20]

The free surface of a rotating liquid forms a circular paraboloid and can therefore be used as a telescope. These are known as liquid-mirror telescopes.[21] They are significantly cheaper than conventional telescopes,[22] but can only point straight upward (zenith telescope). A common choice for the liquid is mercury.

Mechanical properties

Volume

 
Cavitation in water from a boat propeller

Quantities of liquids are measured in units of volume. These include the SI unit cubic metre (m3) and its divisions, in particular the cubic decimeter, more commonly called the litre (1 dm3 = 1 L = 0.001 m3), and the cubic centimetre, also called millilitre (1 cm3 = 1 mL = 0.001 L = 10−6 m3).[23]

The volume of a quantity of liquid is fixed by its temperature and pressure. Liquids generally expand when heated, and contract when cooled. Water between 0 °C and 4 °C is a notable exception.[24]

On the other hand, liquids have little compressibility. Water, for example, will compress by only 46.4 parts per million for every unit increase in atmospheric pressure (bar).[25] At around 4000 bar (400 megapascals or 58,000 psi) of pressure at room temperature water experiences only an 11% decrease in volume.[26] Incompressibility makes liquids suitable for transmitting hydraulic power, because a change in pressure at one point in a liquid is transmitted undiminished to every other part of the liquid and very little energy is lost in the form of compression.[27]

However, the negligible compressibility does lead to other phenomena. The banging of pipes, called water hammer, occurs when a valve is suddenly closed, creating a huge pressure-spike at the valve that travels backward through the system at just under the speed of sound. Another phenomenon caused by liquid's incompressibility is cavitation. Because liquids have little elasticity they can literally be pulled apart in areas of high turbulence or dramatic change in direction, such as the trailing edge of a boat propeller or a sharp corner in a pipe. A liquid in an area of low pressure (vacuum) vaporizes and forms bubbles, which then collapse as they enter high pressure areas. This causes liquid to fill the cavities left by the bubbles with tremendous localized force, eroding any adjacent solid surface.[28]

Pressure and buoyancy

In a gravitational field, liquids exert pressure on the sides of a container as well as on anything within the liquid itself. This pressure is transmitted in all directions and increases with depth. If a liquid is at rest in a uniform gravitational field, the pressure   at depth   is given by[29]

 

where:

  is the pressure at the surface
  is the density of the liquid, assumed uniform with depth
  is the gravitational acceleration

For a body of water open to the air,   would be the atmospheric pressure.

Static liquids in uniform gravitational fields also exhibit the phenomenon of buoyancy, where objects immersed in the liquid experience a net force due to the pressure variation with depth. The magnitude of the force is equal to the weight of the liquid displaced by the object, and the direction of the force depends on the average density of the immersed object. If the density is smaller than that of the liquid, the buoyant force points upward and the object floats, whereas if the density is larger, the buoyant force points downward and the object sinks. This is known as Archimedes' principle.[30]

Surfaces

 
Surface waves in water

Unless the volume of a liquid exactly matches the volume of its container, one or more surfaces are observed. The presence of a surface introduces new phenomena which are not present in a bulk liquid. This is because a molecule at a surface possesses bonds with other liquid molecules only on the inner side of the surface, which implies a net force pulling surface molecules inward. Equivalently, this force can be described in terms of energy: there is a fixed amount of energy associated with forming a surface of a given area. This quantity is a material property called the surface tension, in units of energy per unit area (SI units: J/m2). Liquids with strong intermolecular forces tend to have large surface tensions.[31]

A practical implication of surface tension is that liquids tend to minimize their surface area, forming spherical drops and bubbles unless other constraints are present. Surface tension is responsible for a range of other phenomena as well, including surface waves, capillary action, wetting, and ripples. In liquids under nanoscale confinement, surface effects can play a dominating role since – compared with a macroscopic sample of liquid – a much greater fraction of molecules are located near a surface.

The surface tension of a liquid directly affects its wettability. Most common liquids have tensions ranging in the tens of mJ/m2, so droplets of oil, water, or glue can easily merge and adhere to other surfaces, whereas liquid metals such as mercury may have tensions ranging in the hundreds of mJ/m2, thus droplets do not combine easily and surfaces may only wet under specific conditions.

The surface tensions of common liquids occupy a relatively narrow range of values when exposed to changing conditions such as temperature, which contrasts strongly with the enormous variation seen in other mechanical properties, such as viscosity.[32]

The free surface of a liquid is disturbed by gravity (flatness) and waves (surface roughness).

Flow

 
A simulation of viscosity. The fluid on the left has a lower viscosity and Newtonian behavior while the liquid on the right has higher viscosity and non-Newtonian behavior.

An important physical property characterizing the flow of liquids is viscosity. Intuitively, viscosity describes the resistance of a liquid to flow.

More technically, viscosity measures the resistance of a liquid to deformation at a given rate, such as when it is being sheared at finite velocity.[33] A specific example is a liquid flowing through a pipe: in this case the liquid undergoes shear deformation since it flows more slowly near the walls of the pipe than near the center. As a result, it exhibits viscous resistance to flow. In order to maintain flow, an external force must be applied, such as a pressure difference between the ends of the pipe.

The viscosity of liquids decreases with increasing temperature.[34][35]

Precise control of viscosity is important in many applications, particularly the lubrication industry. One way to achieve such control is by blending two or more liquids of differing viscosities in precise ratios.[36] In addition, various additives exist which can modulate the temperature-dependence of the viscosity of lubricating oils. This capability is important since machinery often operate over a range of temperatures (see also viscosity index).[37]

The viscous behavior of a liquid can be either Newtonian or non-Newtonian. A Newtonian liquid exhibits a linear strain/stress curve, meaning its viscosity is independent of time, shear rate, or shear-rate history. Examples of Newtonian liquids include water, glycerin, motor oil, honey, or mercury. A non-Newtonian liquid is one where the viscosity is not independent of these factors and either thickens (increases in viscosity) or thins (decreases in viscosity) under shear. Examples of non-Newtonian liquids include ketchup, mayonnaise, hair gels, Play-Doh, or starch solutions.[38]

Elasticity under confinement

Confined liquids may exhibit different mechanical properties compared to bulk liquids. For example, liquids under sub-millimeter confinement (e.g. in the gap between rigid walls) exhibit a solid-like mechanical response and possess a surprisingly large low-frequency elastic shear modulus, which scales with the inverse cubic power of the confinement length.[39]

Sound propagation

The speed of sound in a liquid is given by   where   is the bulk modulus of the liquid and   the density. As an example, water has a bulk modulus of about 2.2 GPa and a density of 1000 kg/m3, which gives c = 1.5 km/s.[40]

Thermodynamics

Phase transitions

 
A typical phase diagram. The dotted line gives the anomalous behaviour of water. The green lines show how the freezing point can vary with pressure, and the blue line shows how the boiling point can vary with pressure. The red line shows the boundary where sublimation or deposition can occur.

At a temperature below the boiling point, any matter in liquid form will evaporate until reaching equilibrium with the reverse process of condensation of its vapor. At this point the vapor will condense at the same rate as the liquid evaporates. Thus, a liquid cannot exist permanently if the evaporated liquid is continually removed.[41] A liquid at or above its boiling point will normally boil, though superheating can prevent this in certain circumstances.

At a temperature below the freezing point, a liquid will tend to crystallize, changing to its solid form. Unlike the transition to gas, there is no equilibrium at this transition under constant pressure,[citation needed] so unless supercooling occurs, the liquid will eventually completely crystallize. However, this is only true under constant pressure, so that (for example) water and ice in a closed, strong container might reach an equilibrium where both phases coexist. For the opposite transition from solid to liquid, see melting.

Liquids in space

The phase diagram explains why liquids do not exist in space or any other vacuum. Since the pressure is zero (except on surfaces or interiors of planets and moons) water and other liquids exposed to space will either immediately boil or freeze depending on the temperature. In regions of space near the earth, water will freeze if the sun is not shining directly on it and vaporize (sublime) as soon as it is in sunlight. If water exists as ice on the moon, it can only exist in shadowed holes where the sun never shines and where the surrounding rock does not heat it up too much. At some point near the orbit of Saturn, the light from the sun is too faint to sublime ice to water vapor. This is evident from the longevity of the ice that composes Saturn's rings.[42]

Solutions

Liquids can form solutions with gases, solids, and other liquids.

Two liquids are said to be miscible if they can form a solution in any proportion; otherwise they are immiscible. As an example, water and ethanol (drinking alcohol) are miscible whereas water and gasoline are immiscible.[43] In some cases a mixture of otherwise immiscible liquids can be stabilized to form an emulsion, where one liquid is dispersed throughout the other as microscopic droplets. Usually this requires the presence of a surfactant in order to stabilize the droplets. A familiar example of an emulsion is mayonnaise, which consists of a mixture of water and oil that is stabilized by lecithin, a substance found in egg yolks.[44]

Microscopic description

The microscopic structure of liquids is complex and historically has been the subject of intense research and debate.[45][46][47][48] A few of the key ideas are explained below.

General description

Microscopically, liquids consist of a dense, disordered packing of molecules. This contrasts with the other two common phases of matter, gases and solids. Although gases are disordered, the molecules are well-separated in space and interact primarily through molecule-molecule collisions. Conversely, although the molecules in solids are densely packed, they usually fall into a regular structure, such as a crystalline lattice (glasses are a notable exception).

Short-range ordering

 
Structure of a classical monatomic liquid. Atoms have many nearest neighbors in contact, yet no long-range order is present.

While liquids do not exhibit long-range ordering as in a crystalline lattice, they do possess short-range order, which persists over a few molecular diameters.[49][50]

In all liquids, excluded volume interactions induce short-range order in molecular positions (center-of-mass coordinates). Classical monatomic liquids like argon and krypton are the simplest examples. Such liquids can be modeled as disordered "heaps" of closely packed spheres, and the short-range order corresponds to the fact that nearest and next-nearest neighbors in a packing of spheres tend to be separated by integer multiples of the diameter.[51][52]

In most liquids, molecules are not spheres, and intermolecular forces possess a directionality, i.e., they depend on the relative orientation of molecules. As a result, there is short-ranged orientational order in addition to the positional order mentioned above. Orientational order is especially important in hydrogen-bonded liquids like water.[53][54] The strength and directional nature of hydrogen bonds drives the formation of local "networks" or "clusters" of molecules. Due to the relative importance of thermal fluctuations in liquids (compared with solids), these structures are highly dynamic, continuously deforming, breaking, and reforming.[51][53]

Energy and entropy

The microscopic features of liquids derive from an interplay between attractive intermolecular forces and entropic forces.[55]

The attractive forces tend to pull molecules close together, and along with short-range repulsive interactions, they are the dominant forces behind the regular structure of solids. The entropic forces are not "forces" in the mechanical sense; rather, they describe the tendency of a system to maximize its entropy at fixed energy (see microcanonical ensemble). Roughly speaking, entropic forces drive molecules apart from each other, maximizing the volume they occupy. Entropic forces dominant in gases and explain the tendency of gases to fill their containers. In liquids, by contrast, the intermolecular and entropic forces are comparable, so it is not possible to neglect one in favor of the other. Quantitatively, the binding energy between adjacent molecules is the same order of magnitude as the thermal energy  .[56]

No small parameter

The competition between energy and entropy makes liquids difficult to model at the molecular level, as there is no idealized "reference state" that can serve as a starting point for tractable theoretical descriptions. Mathematically, there is no small parameter from which one can develop a systematic perturbation theory.[46] This situation contrasts with both gases and solids. For gases, the reference state is the ideal gas, and the density can be used as a small parameter to construct a theory of real (nonideal) gases (see virial expansion).[57] For crystalline solids, the reference state is a perfect crystalline lattice, and possible small parameters are thermal motions and lattice defects.[53]

Role of quantum mechanics

Like all known forms of matter, liquids are fundamentally quantum mechanical. However, under standard conditions (near room temperature and pressure), much of the macroscopic behavior of liquids can be understood in terms of classical mechanics.[56][58] The "classical picture" posits that the constituent molecules are discrete entities that interact through intermolecular forces according to Newton's laws of motion. As a result, their macroscopic properties can be described using classical statistical mechanics. While the intermolecular force law technically derives from quantum mechanics, it is usually understood as a model input to classical theory, obtained either from a fit to experimental data or from the classical limit of a quantum mechanical description.[59][49] An illustrative, though highly simplified example is a collection of spherical molecules interacting through a Lennard–Jones potential.[56]

Table 1: Thermal de Broglie wavelengths   of selected liquids.[56] Quantum effects are negligible when the ratio   is small, where   is the average distance between molecules.
Liquid Temperature (K)   (nm)  
Hydrogen (H2) 14.1 0.33 0.97
Neon 24.5 0.078 0.26
Krypton 116 0.018 0.046
Carbon tetrachloride (CCl4) 250 0.009 0.017

For the classical limit to apply, a necessary condition is that the thermal de Broglie wavelength,

 

is small compared with the length scale under consideration.[56][60] Here,   is the Planck constant and   is the molecule's mass. Typical values of   are about 0.01-0.1 nanometers (Table 1). Hence, a high-resolution model of liquid structure at the nanoscale may require quantum mechanical considerations. A notable example is hydrogen bonding in associated liquids like water,[61][62] where, due to the small mass of the proton, inherently quantum effects such as zero-point motion and tunneling are important.[63]

For a liquid to behave classically at the macroscopic level,   must be small compared with the average distance   between molecules.[56] That is,

 

Representative values of this ratio for a few liquids are given in Table 1. The conclusion is that quantum effects are important for liquids at low temperatures and with small molecular mass.[56][58] For dynamic processes, there is an additional timescale constraint:

 

where   is the timescale of the process under consideration. For room-temperature liquids, the right-hand side is about 10-14 seconds, which generally means that time-dependent processes involving translational motion can be described classically.[56]

At extremely low temperatures, even the macroscopic behavior of certain liquids deviates from classical mechanics. Notable examples are hydrogen and helium. Due to their low temperature and mass, such liquids have a thermal de Broglie wavelength comparable to the average distance between molecules.[56]

Dynamic phenomena

The expression for the sound velocity of a liquid,

 ,

contains the bulk modulus K. If K is frequency-independent, then the liquid behaves as a linear medium, so that sound propagates without dissipation or mode coupling. In reality, all liquids show some dispersion: with increasing frequency, K crosses over from the low-frequency, liquid-like limit   to the high-frequency, solid-like limit  . In normal liquids, most of this crossover takes place at frequencies between GHz and THz, sometimes called hypersound.

At sub-GHz frequencies, a normal liquid cannot sustain shear waves: the zero-frequency limit of the shear modulus is 0. This is sometimes seen as the defining property of a liquid.[64][65] However, like the bulk modulus K, the shear modulus G is also frequency-dependent and exhibits a similar crossover at hypersound frequencies.

According to linear response theory, the Fourier transform of K or G describes how the system returns to equilibrium after an external perturbation; for this reason, the dispersion step in the GHz to THz region is also called relaxation. As a liquid is supercooled toward the glass transition, the structural relaxation time exponentially increases, which explains the viscoelastic behavior of glass-forming liquids.

 
Radial distribution function of the Lennard-Jones model fluid.

Experimental methods

The absence of long-range order in liquids is mirrored by the absence of Bragg peaks in X-ray and neutron diffraction. Under normal conditions, the diffraction pattern has circular symmetry, expressing the isotropy of the liquid. Radially, the diffraction intensity smoothly oscillates. This can be described by the static structure factor  , with wavenumber   given by the wavelength   of the probe (photon or neutron) and the Bragg angle  . The oscillations of   express the short-range order of the liquid, i.e., the correlations between a molecule and "shells" of nearest neighbors, next-nearest neighbors, and so on.

An equivalent representation of these correlations is the radial distribution function  , which is related to the Fourier transform of  .[51] It represents a spatial average of a temporal snapshot of pair correlations in the liquid.

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liquid, other, uses, disambiguation, liquid, nearly, incompressible, fluid, that, conforms, shape, container, retains, nearly, constant, volume, independent, pressure, such, four, fundamental, states, matter, others, being, solid, plasma, only, state, with, de. For other uses see Liquid disambiguation A liquid is a nearly incompressible fluid that conforms to the shape of its container but retains a nearly constant volume independent of pressure As such it is one of the four fundamental states of matter the others being solid gas and plasma and is the only state with a definite volume but no fixed shape A liquid is made up of tiny vibrating particles of matter such as atoms held together by intermolecular bonds Like a gas a liquid is able to flow and take the shape of a container Most liquids resist compression although others can be compressed Unlike a gas a liquid does not disperse to fill every space of a container and maintains a fairly constant density A distinctive property of the liquid state is surface tension leading to wetting phenomena Water is by far the most common liquid on Earth The formation of a spherical droplet of liquid water minimizes the surface area which is the natural result of surface tension in liquids The density of a liquid is usually close to that of a solid and much higher than that of a gas Therefore liquid and solid are both termed condensed matter On the other hand as liquids and gases share the ability to flow they are both called fluids Although liquid water is abundant on Earth this state of matter is actually the least common in the known universe because liquids require a relatively narrow temperature pressure range to exist Most known matter in the universe is in gaseous form with traces of detectable solid matter as interstellar clouds or plasma from within stars Contents 1 Introduction 2 Examples 3 Applications 3 1 Lubrication 3 2 Solvation 3 3 Cooling 3 4 Cooking 3 5 Distillation 3 6 Hydraulics 3 7 Liquid metals 3 8 Miscellaneous 4 Mechanical properties 4 1 Volume 4 2 Pressure and buoyancy 4 3 Surfaces 4 4 Flow 4 5 Elasticity under confinement 4 6 Sound propagation 5 Thermodynamics 5 1 Phase transitions 5 2 Liquids in space 5 3 Solutions 6 Microscopic description 6 1 General description 6 2 Short range ordering 6 3 Energy and entropy 6 3 1 No small parameter 6 4 Role of quantum mechanics 6 5 Dynamic phenomena 6 6 Experimental methods 7 ReferencesIntroduction Thermal image of a sink full of hot water with cold water being added showing how the hot and the cold water flow into each other Liquid is one of the four primary states of matter with the others being solid gas and plasma A liquid is a fluid Unlike a solid the molecules in a liquid have a much greater freedom to move The forces that bind the molecules together in a solid are only temporary in a liquid allowing a liquid to flow while a solid remains rigid A liquid like a gas displays the properties of a fluid A liquid can flow assume the shape of a container and if placed in a sealed container will distribute applied pressure evenly to every surface in the container If liquid is placed in a bag it can be squeezed into any shape Unlike a gas a liquid is nearly incompressible meaning that it occupies nearly a constant volume over a wide range of pressures it does not generally expand to fill available space in a container but forms its own surface and it may not always mix readily with another liquid These properties make a liquid suitable for applications such as hydraulics Liquid particles are bound firmly but not rigidly They are able to move around one another freely resulting in a limited degree of particle mobility As the temperature increases the increased vibrations of the molecules causes distances between the molecules to increase When a liquid reaches its boiling point the cohesive forces that bind the molecules closely together break and the liquid changes to its gaseous state unless superheating occurs If the temperature is decreased the distances between the molecules become smaller When the liquid reaches its freezing point the molecules will usually lock into a very specific order called crystallizing and the bonds between them become more rigid changing the liquid into its solid state unless supercooling occurs ExamplesThis section needs additional citations for verification Please help improve this article by adding citations to reliable sources Unsourced material may be challenged and removed July 2022 Learn how and when to remove this template message Only two elements are liquid at standard conditions for temperature and pressure mercury and bromine Four more elements have melting points slightly above room temperature francium caesium gallium and rubidium 1 In addition certain mixtures of elements are liquid at room temperature even if the individual elements are solid under the same conditions see eutectic mixture An example is the sodium potassium metal alloy NaK 2 Other metal alloys that are liquid at room temperature include galinstan which is a gallium indium tin alloy that melts at 19 C 2 F as well as some amalgams alloys involving mercury 3 Pure substances that are liquid under normal conditions include water ethanol and many other organic solvents Liquid water is of vital importance in chemistry and biology and it is necessary for all known forms of life 4 5 Inorganic liquids include water magma inorganic nonaqueous solvents and many acids Important everyday liquids include aqueous solutions like household bleach other mixtures of different substances such as mineral oil and gasoline emulsions like vinaigrette or mayonnaise suspensions like blood and colloids like paint and milk Many gases can be liquefied by cooling producing liquids such as liquid oxygen liquid nitrogen liquid hydrogen and liquid helium Not all gases can be liquified at atmospheric pressure however Carbon dioxide for example can only be liquified at pressures above 5 1 atm 6 Some materials cannot be classified within the classical three states of matter For example liquid crystals used in liquid crystal displays possess both solid like and liquid like properties and belong to their own state of matter distinct from either liquid or solid 7 Applications A lava lamp contains two immiscible liquids a molten wax and a watery solution which add movement due to convection In addition to the top surface surfaces also form between the liquids requiring a tension breaker to recombine the wax droplets at the bottom Lubrication See also Tribology Liquids are useful as lubricants due to their ability to form a thin freely flowing layer between solid materials Lubricants such as oil are chosen for viscosity and flow characteristics that are suitable throughout the operating temperature range of the component Oils are often used in engines gear boxes metalworking and hydraulic systems for their good lubrication properties 8 Solvation Many liquids are used as solvents to dissolve other liquids or solids Solutions are found in a wide variety of applications including paints sealants and adhesives Naphtha and acetone are used frequently in industry to clean oil grease and tar from parts and machinery Body fluids are water based solutions Surfactants are commonly found in soaps and detergents Solvents like alcohol are often used as antimicrobials They are found in cosmetics inks and liquid dye lasers They are used in the food industry in processes such as the extraction of vegetable oil 9 Cooling Liquids tend to have better thermal conductivity than gases and the ability to flow makes a liquid suitable for removing excess heat from mechanical components The heat can be removed by channeling the liquid through a heat exchanger such as a radiator or the heat can be removed with the liquid during evaporation 10 Water or glycol coolants are used to keep engines from overheating 11 The coolants used in nuclear reactors include water or liquid metals such as sodium or bismuth 12 Liquid propellant films are used to cool the thrust chambers of rockets 13 In machining water and oils are used to remove the excess heat generated which can quickly ruin both the work piece and the tooling During perspiration sweat removes heat from the human body by evaporating In the heating ventilation and air conditioning industry HVAC liquids such as water are used to transfer heat from one area to another 14 Cooking Liquids are often used in cooking due to their excellent heat transfer capabilities In addition to thermal conduction liquids transmit energy by convection In particular because warmer fluids expand and rise while cooler areas contract and sink liquids with low kinematic viscosity tend to transfer heat through convection at a fairly constant temperature making a liquid suitable for blanching boiling or frying Even higher rates of heat transfer can be achieved by condensing a gas into a liquid At the liquid s boiling point all of the heat energy is used to cause the phase change from a liquid to a gas without an accompanying increase in temperature and is stored as chemical potential energy When the gas condenses back into a liquid this excess heat energy is released at a constant temperature This phenomenon is used in processes such as steaming Distillation Since liquids often have different boiling points mixtures or solutions of liquids or gases can typically be separated by distillation using heat cold vacuum pressure or other means Distillation can be found in everything from the production of alcoholic beverages to oil refineries to the cryogenic distillation of gases such as argon oxygen nitrogen neon or xenon by liquefaction cooling them below their individual boiling points 15 Hydraulics Liquid is the primary component of hydraulic systems which take advantage of Pascal s law to provide fluid power Devices such as pumps and waterwheels have been used to change liquid motion into mechanical work since ancient times Oils are forced through hydraulic pumps which transmit this force to hydraulic cylinders Hydraulics can be found in many applications such as automotive brakes and transmissions heavy equipment and airplane control systems Various hydraulic presses are used extensively in repair and manufacturing for lifting pressing clamping and forming 16 Liquid metals See also Liquid metal Applications Liquid metals have several properties that are useful in sensing and actuation particularly their electrical conductivity and ability to transmit forces incompressibility As freely flowing substances liquid metals retain these bulk properties even under extreme deformation For this reason they have been proposed for use in soft robots and wearable healthcare devices which must be able to operate under repeated deformation 17 18 The metal gallium is considered to be a promising candidate for these applications as it is a liquid near room temperature has low toxicity and evaporates slowly 19 Miscellaneous Liquids are sometimes used in measuring devices A thermometer often uses the thermal expansion of liquids such as mercury combined with their ability to flow to indicate temperature A manometer uses the weight of the liquid to indicate air pressure 20 The free surface of a rotating liquid forms a circular paraboloid and can therefore be used as a telescope These are known as liquid mirror telescopes 21 They are significantly cheaper than conventional telescopes 22 but can only point straight upward zenith telescope A common choice for the liquid is mercury Mechanical propertiesVolume Cavitation in water from a boat propeller Quantities of liquids are measured in units of volume These include the SI unit cubic metre m3 and its divisions in particular the cubic decimeter more commonly called the litre 1 dm3 1 L 0 001 m3 and the cubic centimetre also called millilitre 1 cm3 1 mL 0 001 L 10 6 m3 23 The volume of a quantity of liquid is fixed by its temperature and pressure Liquids generally expand when heated and contract when cooled Water between 0 C and 4 C is a notable exception 24 On the other hand liquids have little compressibility Water for example will compress by only 46 4 parts per million for every unit increase in atmospheric pressure bar 25 At around 4000 bar 400 megapascals or 58 000 psi of pressure at room temperature water experiences only an 11 decrease in volume 26 Incompressibility makes liquids suitable for transmitting hydraulic power because a change in pressure at one point in a liquid is transmitted undiminished to every other part of the liquid and very little energy is lost in the form of compression 27 However the negligible compressibility does lead to other phenomena The banging of pipes called water hammer occurs when a valve is suddenly closed creating a huge pressure spike at the valve that travels backward through the system at just under the speed of sound Another phenomenon caused by liquid s incompressibility is cavitation Because liquids have little elasticity they can literally be pulled apart in areas of high turbulence or dramatic change in direction such as the trailing edge of a boat propeller or a sharp corner in a pipe A liquid in an area of low pressure vacuum vaporizes and forms bubbles which then collapse as they enter high pressure areas This causes liquid to fill the cavities left by the bubbles with tremendous localized force eroding any adjacent solid surface 28 Pressure and buoyancy Main article Fluid statics In a gravitational field liquids exert pressure on the sides of a container as well as on anything within the liquid itself This pressure is transmitted in all directions and increases with depth If a liquid is at rest in a uniform gravitational field the pressure p displaystyle p at depth z displaystyle z is given by 29 p p 0 r g z displaystyle p p 0 rho gz where p 0 displaystyle p 0 is the pressure at the surface r displaystyle rho is the density of the liquid assumed uniform with depth g displaystyle g is the gravitational accelerationFor a body of water open to the air p 0 displaystyle p 0 would be the atmospheric pressure Static liquids in uniform gravitational fields also exhibit the phenomenon of buoyancy where objects immersed in the liquid experience a net force due to the pressure variation with depth The magnitude of the force is equal to the weight of the liquid displaced by the object and the direction of the force depends on the average density of the immersed object If the density is smaller than that of the liquid the buoyant force points upward and the object floats whereas if the density is larger the buoyant force points downward and the object sinks This is known as Archimedes principle 30 Surfaces Main articles Surface tension and Surface science Surface waves in water Unless the volume of a liquid exactly matches the volume of its container one or more surfaces are observed The presence of a surface introduces new phenomena which are not present in a bulk liquid This is because a molecule at a surface possesses bonds with other liquid molecules only on the inner side of the surface which implies a net force pulling surface molecules inward Equivalently this force can be described in terms of energy there is a fixed amount of energy associated with forming a surface of a given area This quantity is a material property called the surface tension in units of energy per unit area SI units J m2 Liquids with strong intermolecular forces tend to have large surface tensions 31 A practical implication of surface tension is that liquids tend to minimize their surface area forming spherical drops and bubbles unless other constraints are present Surface tension is responsible for a range of other phenomena as well including surface waves capillary action wetting and ripples In liquids under nanoscale confinement surface effects can play a dominating role since compared with a macroscopic sample of liquid a much greater fraction of molecules are located near a surface The surface tension of a liquid directly affects its wettability Most common liquids have tensions ranging in the tens of mJ m2 so droplets of oil water or glue can easily merge and adhere to other surfaces whereas liquid metals such as mercury may have tensions ranging in the hundreds of mJ m2 thus droplets do not combine easily and surfaces may only wet under specific conditions The surface tensions of common liquids occupy a relatively narrow range of values when exposed to changing conditions such as temperature which contrasts strongly with the enormous variation seen in other mechanical properties such as viscosity 32 The free surface of a liquid is disturbed by gravity flatness and waves surface roughness Flow A simulation of viscosity The fluid on the left has a lower viscosity and Newtonian behavior while the liquid on the right has higher viscosity and non Newtonian behavior Main articles Fluid mechanics and Fluid dynamics An important physical property characterizing the flow of liquids is viscosity Intuitively viscosity describes the resistance of a liquid to flow More technically viscosity measures the resistance of a liquid to deformation at a given rate such as when it is being sheared at finite velocity 33 A specific example is a liquid flowing through a pipe in this case the liquid undergoes shear deformation since it flows more slowly near the walls of the pipe than near the center As a result it exhibits viscous resistance to flow In order to maintain flow an external force must be applied such as a pressure difference between the ends of the pipe The viscosity of liquids decreases with increasing temperature 34 35 Precise control of viscosity is important in many applications particularly the lubrication industry One way to achieve such control is by blending two or more liquids of differing viscosities in precise ratios 36 In addition various additives exist which can modulate the temperature dependence of the viscosity of lubricating oils This capability is important since machinery often operate over a range of temperatures see also viscosity index 37 The viscous behavior of a liquid can be either Newtonian or non Newtonian A Newtonian liquid exhibits a linear strain stress curve meaning its viscosity is independent of time shear rate or shear rate history Examples of Newtonian liquids include water glycerin motor oil honey or mercury A non Newtonian liquid is one where the viscosity is not independent of these factors and either thickens increases in viscosity or thins decreases in viscosity under shear Examples of non Newtonian liquids include ketchup mayonnaise hair gels Play Doh or starch solutions 38 Elasticity under confinement Confined liquids may exhibit different mechanical properties compared to bulk liquids For example liquids under sub millimeter confinement e g in the gap between rigid walls exhibit a solid like mechanical response and possess a surprisingly large low frequency elastic shear modulus which scales with the inverse cubic power of the confinement length 39 Sound propagation Main article Speed of sound Speed of sound in liquids The speed of sound in a liquid is given by c K r displaystyle c sqrt K rho where K displaystyle K is the bulk modulus of the liquid and r displaystyle rho the density As an example water has a bulk modulus of about 2 2 GPa and a density of 1000 kg m3 which gives c 1 5 km s 40 ThermodynamicsPhase transitions Main articles Boiling Boiling point Melting and Melting point A typical phase diagram The dotted line gives the anomalous behaviour of water The green lines show how the freezing point can vary with pressure and the blue line shows how the boiling point can vary with pressure The red line shows the boundary where sublimation or deposition can occur At a temperature below the boiling point any matter in liquid form will evaporate until reaching equilibrium with the reverse process of condensation of its vapor At this point the vapor will condense at the same rate as the liquid evaporates Thus a liquid cannot exist permanently if the evaporated liquid is continually removed 41 A liquid at or above its boiling point will normally boil though superheating can prevent this in certain circumstances At a temperature below the freezing point a liquid will tend to crystallize changing to its solid form Unlike the transition to gas there is no equilibrium at this transition under constant pressure citation needed so unless supercooling occurs the liquid will eventually completely crystallize However this is only true under constant pressure so that for example water and ice in a closed strong container might reach an equilibrium where both phases coexist For the opposite transition from solid to liquid see melting Liquids in space The phase diagram explains why liquids do not exist in space or any other vacuum Since the pressure is zero except on surfaces or interiors of planets and moons water and other liquids exposed to space will either immediately boil or freeze depending on the temperature In regions of space near the earth water will freeze if the sun is not shining directly on it and vaporize sublime as soon as it is in sunlight If water exists as ice on the moon it can only exist in shadowed holes where the sun never shines and where the surrounding rock does not heat it up too much At some point near the orbit of Saturn the light from the sun is too faint to sublime ice to water vapor This is evident from the longevity of the ice that composes Saturn s rings 42 Solutions Main article Solution chemistry Liquids can form solutions with gases solids and other liquids Two liquids are said to be miscible if they can form a solution in any proportion otherwise they are immiscible As an example water and ethanol drinking alcohol are miscible whereas water and gasoline are immiscible 43 In some cases a mixture of otherwise immiscible liquids can be stabilized to form an emulsion where one liquid is dispersed throughout the other as microscopic droplets Usually this requires the presence of a surfactant in order to stabilize the droplets A familiar example of an emulsion is mayonnaise which consists of a mixture of water and oil that is stabilized by lecithin a substance found in egg yolks 44 Microscopic descriptionSee also Structure of liquids and glasses The microscopic structure of liquids is complex and historically has been the subject of intense research and debate 45 46 47 48 A few of the key ideas are explained below General description Microscopically liquids consist of a dense disordered packing of molecules This contrasts with the other two common phases of matter gases and solids Although gases are disordered the molecules are well separated in space and interact primarily through molecule molecule collisions Conversely although the molecules in solids are densely packed they usually fall into a regular structure such as a crystalline lattice glasses are a notable exception Short range ordering Structure of a classical monatomic liquid Atoms have many nearest neighbors in contact yet no long range order is present While liquids do not exhibit long range ordering as in a crystalline lattice they do possess short range order which persists over a few molecular diameters 49 50 In all liquids excluded volume interactions induce short range order in molecular positions center of mass coordinates Classical monatomic liquids like argon and krypton are the simplest examples Such liquids can be modeled as disordered heaps of closely packed spheres and the short range order corresponds to the fact that nearest and next nearest neighbors in a packing of spheres tend to be separated by integer multiples of the diameter 51 52 In most liquids molecules are not spheres and intermolecular forces possess a directionality i e they depend on the relative orientation of molecules As a result there is short ranged orientational order in addition to the positional order mentioned above Orientational order is especially important in hydrogen bonded liquids like water 53 54 The strength and directional nature of hydrogen bonds drives the formation of local networks or clusters of molecules Due to the relative importance of thermal fluctuations in liquids compared with solids these structures are highly dynamic continuously deforming breaking and reforming 51 53 Energy and entropy The microscopic features of liquids derive from an interplay between attractive intermolecular forces and entropic forces 55 The attractive forces tend to pull molecules close together and along with short range repulsive interactions they are the dominant forces behind the regular structure of solids The entropic forces are not forces in the mechanical sense rather they describe the tendency of a system to maximize its entropy at fixed energy see microcanonical ensemble Roughly speaking entropic forces drive molecules apart from each other maximizing the volume they occupy Entropic forces dominant in gases and explain the tendency of gases to fill their containers In liquids by contrast the intermolecular and entropic forces are comparable so it is not possible to neglect one in favor of the other Quantitatively the binding energy between adjacent molecules is the same order of magnitude as the thermal energy k B T displaystyle k text B T 56 No small parameter The competition between energy and entropy makes liquids difficult to model at the molecular level as there is no idealized reference state that can serve as a starting point for tractable theoretical descriptions Mathematically there is no small parameter from which one can develop a systematic perturbation theory 46 This situation contrasts with both gases and solids For gases the reference state is the ideal gas and the density can be used as a small parameter to construct a theory of real nonideal gases see virial expansion 57 For crystalline solids the reference state is a perfect crystalline lattice and possible small parameters are thermal motions and lattice defects 53 Role of quantum mechanics Like all known forms of matter liquids are fundamentally quantum mechanical However under standard conditions near room temperature and pressure much of the macroscopic behavior of liquids can be understood in terms of classical mechanics 56 58 The classical picture posits that the constituent molecules are discrete entities that interact through intermolecular forces according to Newton s laws of motion As a result their macroscopic properties can be described using classical statistical mechanics While the intermolecular force law technically derives from quantum mechanics it is usually understood as a model input to classical theory obtained either from a fit to experimental data or from the classical limit of a quantum mechanical description 59 49 An illustrative though highly simplified example is a collection of spherical molecules interacting through a Lennard Jones potential 56 Table 1 Thermal de Broglie wavelengths L displaystyle Lambda of selected liquids 56 Quantum effects are negligible when the ratio L a displaystyle Lambda a is small where a displaystyle a is the average distance between molecules Liquid Temperature K L displaystyle Lambda nm L a displaystyle Lambda a Hydrogen H2 14 1 0 33 0 97Neon 24 5 0 078 0 26Krypton 116 0 018 0 046Carbon tetrachloride CCl4 250 0 009 0 017For the classical limit to apply a necessary condition is that the thermal de Broglie wavelength L 2 p ℏ 2 m k B T 1 2 displaystyle Lambda left frac 2 pi hbar 2 mk text B T right 1 2 is small compared with the length scale under consideration 56 60 Here ℏ displaystyle hbar is the Planck constant and m displaystyle m is the molecule s mass Typical values of L displaystyle Lambda are about 0 01 0 1 nanometers Table 1 Hence a high resolution model of liquid structure at the nanoscale may require quantum mechanical considerations A notable example is hydrogen bonding in associated liquids like water 61 62 where due to the small mass of the proton inherently quantum effects such as zero point motion and tunneling are important 63 For a liquid to behave classically at the macroscopic level L displaystyle Lambda must be small compared with the average distance a r 1 3 displaystyle a approx rho 1 3 between molecules 56 That is L a 1 displaystyle frac Lambda a ll 1 Representative values of this ratio for a few liquids are given in Table 1 The conclusion is that quantum effects are important for liquids at low temperatures and with small molecular mass 56 58 For dynamic processes there is an additional timescale constraint t h k B T displaystyle tau gg frac h k B T where t displaystyle tau is the timescale of the process under consideration For room temperature liquids the right hand side is about 10 14 seconds which generally means that time dependent processes involving translational motion can be described classically 56 At extremely low temperatures even the macroscopic behavior of certain liquids deviates from classical mechanics Notable examples are hydrogen and helium Due to their low temperature and mass such liquids have a thermal de Broglie wavelength comparable to the average distance between molecules 56 Dynamic phenomena The expression for the sound velocity of a liquid c K r displaystyle c sqrt K rho contains the bulk modulus K If K is frequency independent then the liquid behaves as a linear medium so that sound propagates without dissipation or mode coupling In reality all liquids show some dispersion with increasing frequency K crosses over from the low frequency liquid like limit K 0 displaystyle K 0 to the high frequency solid like limit K displaystyle K infty In normal liquids most of this crossover takes place at frequencies between GHz and THz sometimes called hypersound At sub GHz frequencies a normal liquid cannot sustain shear waves the zero frequency limit of the shear modulus is 0 This is sometimes seen as the defining property of a liquid 64 65 However like the bulk modulus K the shear modulus G is also frequency dependent and exhibits a similar crossover at hypersound frequencies According to linear response theory the Fourier transform of K or G describes how the system returns to equilibrium after an external perturbation for this reason the dispersion step in the GHz to THz region is also called relaxation As a liquid is supercooled toward the glass transition the structural relaxation time exponentially increases which explains the viscoelastic behavior of glass forming liquids Radial distribution function of the Lennard Jones model fluid Experimental methods The absence of long range order in liquids is mirrored by the absence of Bragg peaks in X ray and neutron diffraction Under normal conditions the diffraction pattern has circular symmetry expressing the isotropy of the liquid Radially the diffraction intensity smoothly oscillates This can be described by the static structure factor S q displaystyle S q with wavenumber q 4 p l sin 8 displaystyle q 4 pi lambda sin theta given by the wavelength l displaystyle lambda of the probe photon or neutron and the Bragg angle 8 displaystyle theta The oscillations of S q displaystyle S q express the short range order of the liquid i e the correlations between a molecule and shells of nearest neighbors next nearest neighbors and so on An equivalent representation of these correlations is the radial distribution function g r displaystyle g r which is related to the Fourier transform of S q displaystyle S q 51 It represents a spatial average of a temporal snapshot of pair correlations in the liquid References Theodore Gray The Elements A Visual Exploration of Every Known Atom in the Universe New York Workman Publishing 2009 p 127 ISBN 1 57912 814 9 Leonchuk Sergei S Falchevskaya Aleksandra S Nikolaev Vitaly Vinogradov Vladimir V 2022 NaK alloy underrated liquid metal Journal of Materials Chemistry A Royal Society of Chemistry RSC 10 43 22955 22976 doi 10 1039 d2ta06882f ISSN 2050 7488 Surmann Peter Zeyat Hanan 2005 10 15 Voltammetric analysis using a self renewable non mercury electrode Analytical and Bioanalytical Chemistry Springer Science and Business Media LLC 383 6 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2015 Interatomic repulsion softness directly controls the fragility of supercooled metallic melts Proceedings of the National Academy of Sciences of the USA 112 45 13762 13767 arXiv 1510 08117 Bibcode 2015PNAS 11213762K doi 10 1073 pnas 1503741112 PMC 4653154 PMID 26504208 Zhmud Boris 2014 Viscosity Blending Equations PDF Lube Tech 93 Viscosity Index UK Anton Paar Archived from the original on March 9 2020 Retrieved 29 August 2018 Honey in Traditional and Modern Medicine by Laid Boukraa CRC Press 2014 Page 22 24 Zaccone A Trachenko K 2020 Explaining the low frequency shear elasticity of confined liquids Proceedings of the National Academy of Sciences of the USA 117 33 19653 19655 arXiv 2007 11916 Bibcode 2020PNAS 11719653Z doi 10 1073 pnas 2010787117 PMC 7443959 PMID 32747540 Taylor John R 2005 Classical Mechanics University Science Books pp 727 729 ISBN 978 1 891389 22 1 March N H Tosi M P 2002 Introduction to Liquid State Physics World Scientific p 7 Bibcode 2002ilsp book M doi 10 1142 4717 ISBN 978 981 3102 53 8 Siegel Ethan 2014 12 11 Does water freeze or boil in space Starts With A Bang Retrieved 2022 02 10 Silberberg pp 188 and 502 Miodownik Mark 2019 Liquid rules The Delightful and Dangerous Substances that Flow Through Our Lives Houghton Mifflin Harcourt p 124 ISBN 978 0 544 85019 4 Chandler David 2017 05 05 From 50 Years Ago the Birth of Modern Liquid State Science Annual Review of Physical Chemistry Annual Reviews 68 1 19 38 doi 10 1146 annurev physchem 052516 044941 ISSN 0066 426X a b Trachenko K Brazhkin V V 2015 12 22 Collective modes and thermodynamics of the liquid state Reports on Progress in Physics IOP Publishing 79 1 016502 arXiv 1512 06592 doi 10 1088 0034 4885 79 1 016502 ISSN 0034 4885 Ben Naim Arieh 2009 Molecular theory of water and aqueous solutions Part 1 Understanding water Singapore World Scientific ISBN 978 981 283 761 5 OCLC 696342117 Pothoczki Szilvia Temleitner Laszlo Pusztai Laszlo 2015 12 01 Structure of Neat Liquids Consisting of Perfect and Nearly Tetrahedral Molecules Chemical Reviews American Chemical Society ACS 115 24 13308 13361 doi 10 1021 acs chemrev 5b00308 ISSN 0009 2665 a b Maitland Geoffrey C Rigby Maurice Smith E Brian Wakeham W A 1981 Intermolecular forces their origin and determination Oxford ISBN 0 19 855611 X OCLC 8139179 Gallo Paola Rovere Mauro 2021 Physics of liquid matter Cham Springer ISBN 978 3 030 68349 8 OCLC 1259588062 a b c Chandler David 1987 Introduction to modern statistical mechanics New York Oxford University Press ISBN 0 19 504276 X OCLC 13946448 Finney John L 2013 02 22 Bernal s road to random packing and the structure of liquids Philosophical Magazine Informa UK Limited 93 31 33 3940 3969 doi 10 1080 14786435 2013 770179 ISSN 1478 6435 a b c Finney J L 2015 Water a very short introduction Oxford United Kingdom pp 48 52 ISBN 978 0 19 870872 8 OCLC 914537747 Ludwig Ralf 2005 07 11 The Structure of Liquid Methanol ChemPhysChem Wiley 6 7 1369 1375 doi 10 1002 cphc 200400663 ISSN 1439 4235 Chandler David 2009 09 08 Liquids Condensed disordered and sometimes complex Proceedings of the National Academy of Sciences Proceedings of the National Academy of Sciences 106 36 15111 15112 doi 10 1073 pnas 0908029106 ISSN 0027 8424 a b c d e f g h i Hansen Jean Pierre McDonald Ian R 2013 Theory of simple liquids with applications to soft matter Amsterdam ISBN 978 0 12 387033 9 OCLC 855895733 Kardar Mehran 2007 Statistical physics of particles New York NY Cambridge University Press p 130 ISBN 978 0 521 87342 0 OCLC 148639922 a b Gray C G Gubbins Keith E Joslin C G 1984 2011 Theory of molecular fluids Oxford Oxford University Press ISBN 0 19 855602 0 OCLC 10145548 a href Template Cite book html title Template Cite book cite book a CS1 maint date format link Marx Dominik Hutter Jurg 2012 Ab initio molecular dynamics basic theory and advanced methods Cambridge ISBN 978 0 521 89863 8 OCLC 869135580 Fisher I Z 1964 Statistical Theory of Liquids The University of Chicago Press Ceriotti Michele Cuny Jerome Parrinello Michele Manolopoulos David E 2013 09 06 Nuclear quantum effects and hydrogen bond fluctuations in water Proceedings of the National Academy of Sciences Proceedings of the National Academy of Sciences 110 39 15591 15596 doi 10 1073 pnas 1308560110 ISSN 0027 8424 Markland Thomas E Ceriotti Michele 2018 02 28 Nuclear quantum effects enter the mainstream Nature Reviews Chemistry Springer Science and Business Media LLC 2 3 arXiv 1803 01037 doi 10 1038 s41570 017 0109 ISSN 2397 3358 Li Xin Zheng Walker Brent Michaelides Angelos 2011 04 04 Quantum nature of the hydrogen bond Proceedings of the National Academy of Sciences Proceedings of the National Academy of Sciences 108 16 6369 6373 doi 10 1073 pnas 1016653108 ISSN 0027 8424 Born Max 1940 On the stability of crystal lattices Mathematical Proceedings Cambridge Philosophical Society 36 2 160 172 Bibcode 1940PCPS 36 160B doi 10 1017 S0305004100017138 S2CID 104272002 Born Max 1939 Thermodynamics of Crystals and Melting Journal of Chemical Physics 7 8 591 604 Bibcode 1939JChPh 7 591B doi 10 1063 1 1750497 Archived from the original on 2016 05 15 Retrieved from https en wikipedia org w index php title Liquid amp oldid 1145563178, wikipedia, wiki, book, books, library,

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