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MIT 5 62 - Kinetic Theory of Gases

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MIT OpenCourseWare http://ocw.mit.edu 5.62 Physical Chemistry II Spring 2008 For information about citing these materials or our Terms of Use, visit: http://ocw.mit.edu/terms.5.62 Spring 2008 Lecture #31 Page 1 Kinetic Theory of Gases: Mean Free Path and Transport The mean free path λ. The mean free path is the average distance a particle traverses before it experiences a collision. In Lecture #31 we determined the average collision frequency for a particle, Z. The mean time between collisions is simply Z-1. If the mean speed of a particle is vthen the mean free path is ! =vZ. As a result, for like particles we find the mean free path equal to: ! =12"#d2. This is an important and interesting result. For a dilute hard sphere gas, the mean freepath depends only on density; it is independent of temperature. However, if the particles had an attractive or repulsive potential between them, the mean free path would depend on T. Typical values at 300K for O2 d = 0.361 nm πd2 = 41Å2 Z ZTOT/ V λ 1 bar 6.2 × 109 coll s–1 7.6 × 1034 coll m–3s –1 7.1 ×10–8 m (10–6 in) 10–6 bar 6.2 × 103 coll s–1 7.6 × 1022 coll m–3s –1 7.1 × 10–2 m (3 in) Why is Z proportional to ρ and ZTOT to ρ2? The effusion picture described in Lecture #31 assumed that no collisions occur when molecules pass through a hole of area A and thickness d. This means that it is necessary to assume that d  λ. If this is condition is not satisfied, the description of gas escaping from the vessel must include collisions and transport phenomena. The probability of a particle traveling a distance r before experiencing a collision is revised 4/24/08 3:49 PM5.62 Spring 2008 Lecture #31 Page 2 p(r)rp(r) = !e"!r 0 < r < #Is this probability distribution normalized? What are ? r and r2Variation of the mean free path with density and temperature. The expression we have derived for the m.f.p. is valid only for hard spheres at very low density. How does them.f.p. behave under more general conditions? The simple expression predicts that the m.f.p. goes to zero at infinite density. Howeverwe should instead expect that the m.f.p. goes to zero at a critical density ρc which corresponds to the volume per particle: !c=1vc=34"d3so a more general prediction of the behavior of the m.f.p. with density might be: ! =12"d21#$1#c%&'()*. If the particles attract or repel each other, there will also be an effect on the m.f.p.Qualitatively, we expect that if the potential is repulsive between the particles, the frequency of collisions will decrease and the m.f.p. will increase. If the potential isattractive, we expect that the frequency of collisions will increase and the m.f.p. willdecrease. Both of these effects will be more pronounced at lower temperatures when theforces between the particles results in a larger fractional change in the velocity ( ! v v) of the particles, because v ! T. The mean free path and collisions. In dilute gases the m.f.p. is an important quantitybecause it gives the microscopic distance scale over which collisions will influence thetransfer of physical quantities such as mass, momentum, and energy between colliding partners. revised 4/24/08 3:49 PM5.62 Spring 2008 Lecture #31 Page 3 122!This pair-collision picture lies at the heart of the elementary kinetic theory of transport. Elementary kinetic theory describes the main transport processes in aunified way and provides molecular expressions for the transport coefficients. Transport equations. These are equations that describe non-equilibrium phenomena – the flow of a physical quantity in response to perturbation of the local thermodynamicvariable. When the perturbation from equilibrium is “small,” the transport equations have the form: Flux Transport coefficient Gradient of thermodynamicvariable mass Diffusion coefficient. Concentration momentum Shear viscosity Velocity heat Thermal conductivity Temperature The fluxes are all defined as the physical quantity transported per unit area per unit time. We consider the simple physical situation of the gradient in the “z” direction and becausethe gas is isotropic, the flux in the “z” direction. The flux (denoted by j with a rightsuperscript that specifies the physical quantity transported and a right subscript thatspecifies the direction of flow) flows in the direction opposite to the gradient in order to re-establish equilibrium. Thus, transport equation are often referred to as “relaxation equations.” Transport equations. The transport equations describe the movement of physical quantities on a macroscopic scale. For diffusion (transport of mass), jzm(z, t) = !D"#(z, t)"z. Here D is the diffusion coefficient and the superscript “m” on the flux denotes majzm(z, t)ss. Since the units of are mass/area-time, and the units of ρ are mass/volume, the units of D must be area/time, usually cm2/sec. revised 4/24/08 3:49 PM5.62 Spring 2008 Lecture #31 Page 4 For heat conduction (transport of energy): jze(z, t) = !"#T(z, t)#zwhere κ is the thermal conductivity, T is the temperature, and the superscript “e” on theflux denotes energy. The units of κ are energy/ length-sec-degree. For viscosity (transport of momentum). The situation is more complicated. The prototype physical situation is gas (or a fluid) located between two plates. The bottom plate is stationary and the top plate is pulled with a certain force. The force in the x direction Fx per unit area of the plate, will cause the x-component of velocity to vary with z, vx(z). The transport equation is: Fx= !"dvx(z, t)dz. Note that force/unit area has the same units as momentum per unit time per unit area, so Fx is a momentum flux. The units of the viscosity coefficient, η, are mass/ length-sec. Kinetic theory has two tasks. The first is to explain why the transport equations have theparticular form of a flux proportional to a spatial gradient of a local thermodynamicquantity. The second task is to obtain a molecular expression for each transport coefficient (e.g. D, κ, η). In the simple form of kinetic theory this is accomplished by considering themicroscopic process of collisions in the gas. The analysis is based on some importantapproximations, but


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MIT 5 62 - Kinetic Theory of Gases

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