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Heat capacity at constant volume and pressure | Physical Processes ...
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In thermodynamics, the heat capacity at constant volume, C V {\displaystyle C_{V}} , and the heat capacity at constant pressure, C P {\displaystyle C_{P}} , are extensive properties that have the magnitude of energy divided by temperature.


Video Relations between heat capacities



Relations

The laws of thermodynamics imply the following relations between these two heat capacities (Gaskell 2003:23):

C P - C V = V T ? 2 ? T {\displaystyle C_{P}-C_{V}=VT{\frac {\alpha ^{2}}{\beta _{T}}}\,}
C P C V = ? T ? S {\displaystyle {\frac {C_{P}}{C_{V}}}={\frac {\beta _{T}}{\beta _{S}}}\,}

Here ? {\displaystyle \alpha } is the thermal expansion coefficient:

? = 1 V ( ? V ? T ) P {\displaystyle \alpha ={\frac {1}{V}}\left({\frac {\partial V}{\partial T}}\right)_{P}\,}

? T {\displaystyle \beta _{T}} is the isothermal compressibility (the inverse of the bulk modulus):

? T = - 1 V ( ? V ? P ) T {\displaystyle \beta _{T}=-{\frac {1}{V}}\left({\frac {\partial V}{\partial P}}\right)_{T}\,}

and ? S {\displaystyle \beta _{S}} is the isentropic compressibility:

? S = - 1 V ( ? V ? P ) S {\displaystyle \beta _{S}=-{\frac {1}{V}}\left({\frac {\partial V}{\partial P}}\right)_{S}\,}

A corresponding expression for the difference in specific heat capacities (intensive properties) at constant volume and constant pressure is:

c p - c v = T ? 2 ? ? T {\displaystyle c_{p}-c_{v}={\frac {T\alpha ^{2}}{\rho \beta _{T}}}}

where ? is the density of the substance under the applicable conditions.

The corresponding expression for the ratio of specific heat capacities remains the same since the thermodynamic system size-dependent quantities, whether on a per mass or per mole basis, cancel out in the ratio because specific heat capacities are intensive properties. Thus:

c p c v = ? T ? S {\displaystyle {\frac {c_{p}}{c_{v}}}={\frac {\beta _{T}}{\beta _{S}}}\,}

The difference relation allows one to obtain the heat capacity for solids at constant volume which is not readily measured in terms of quantities that are more easily measured. The ratio relation allows one to express the isentropic compressibility in terms of the heat capacity ratio.


Maps Relations between heat capacities



Derivation

If an infinitesimally small amount of heat ? Q {\displaystyle \delta Q} is supplied to a system in a reversible way then, according to the second law of thermodynamics, the entropy change of the system is given by:

d S = ? Q T {\displaystyle dS={\frac {\delta Q}{T}}\,}

Since

? Q = C d T {\displaystyle \delta Q=CdT\,}

where C is the heat capacity, it follows that:

T d S = C d T {\displaystyle TdS=CdT\,}

The heat capacity depends on how the external variables of the system are changed when the heat is supplied. If the only external variable of the system is the volume, then we can write:

d S = ( ? S ? T ) V d T + ( ? S ? V ) T d V {\displaystyle dS=\left({\frac {\partial S}{\partial T}}\right)_{V}dT+\left({\frac {\partial S}{\partial V}}\right)_{T}dV}

From this follows:

C V = T ( ? S ? T ) V {\displaystyle C_{V}=T\left({\frac {\partial S}{\partial T}}\right)_{V}\,}

Expressing dS in terms of dT and dP similarly as above leads to the expression:

C P = T ( ? S ? T ) P {\displaystyle C_{P}=T\left({\frac {\partial S}{\partial T}}\right)_{P}\,}

One can find the above expression for C P - C V {\displaystyle C_{P}-C_{V}} by expressing dV in terms of dP and dT in the above expression for dS.

d V = ( ? V ? T ) P d T + ( ? V ? P ) T d P {\displaystyle dV=\left({\frac {\partial V}{\partial T}}\right)_{P}dT+\left({\frac {\partial V}{\partial P}}\right)_{T}dP\,}

results in

d S = [ ( ? S ? T ) V + ( ? S ? V ) T ( ? V ? T ) P ] d T + ( ? S ? V ) T ( ? V ? P ) T d P {\displaystyle dS=\left[\left({\frac {\partial S}{\partial T}}\right)_{V}+\left({\frac {\partial S}{\partial V}}\right)_{T}\left({\frac {\partial V}{\partial T}}\right)_{P}\right]dT+\left({\frac {\partial S}{\partial V}}\right)_{T}\left({\frac {\partial V}{\partial P}}\right)_{T}dP}

and it follows:

( ? S ? T ) P = ( ? S ? T ) V + ( ? S ? V ) T ( ? V ? T ) P {\displaystyle \left({\frac {\partial S}{\partial T}}\right)_{P}=\left({\frac {\partial S}{\partial T}}\right)_{V}+\left({\frac {\partial S}{\partial V}}\right)_{T}\left({\frac {\partial V}{\partial T}}\right)_{P}\,}

Therefore,

C P - C V = T ( ? S ? V ) T ( ? V ? T ) P = V T ? ( ? S ? V ) T {\displaystyle C_{P}-C_{V}=T\left({\frac {\partial S}{\partial V}}\right)_{T}\left({\frac {\partial V}{\partial T}}\right)_{P}=VT\alpha \left({\frac {\partial S}{\partial V}}\right)_{T}\,}

The partial derivative ( ? S ? V ) T {\displaystyle \left({\frac {\partial S}{\partial V}}\right)_{T}} can be rewritten in terms of variables that do not involve the entropy using a suitable Maxwell relation. These relations follow from the fundamental thermodynamic relation:

d E = T d S - P d V {\displaystyle dE=TdS-PdV\,}

It follows from this that the differential of the Helmholtz free energy F = E - T S {\displaystyle F=E-TS} is:

d F = - S d T - P d V {\displaystyle dF=-SdT-PdV\,}

This means that

- S = ( ? F ? T ) V {\displaystyle -S=\left({\frac {\partial F}{\partial T}}\right)_{V}\,}

and

- P = ( ? F ? V ) T {\displaystyle -P=\left({\frac {\partial F}{\partial V}}\right)_{T}\,}

The symmetry of second derivatives of F with respect to T and V then implies

( ? S ? V ) T = ( ? P ? T ) V {\displaystyle \left({\frac {\partial S}{\partial V}}\right)_{T}=\left({\frac {\partial P}{\partial T}}\right)_{V}\,}

allowing one to write:

C P - C V = V T ? ( ? P ? T ) V {\displaystyle C_{P}-C_{V}=VT\alpha \left({\frac {\partial P}{\partial T}}\right)_{V}\,}

The r.h.s. contains a derivative at constant volume, which can be difficult to measure. It can be rewritten as follows. In general,

d V = ( ? V ? P ) T d P + ( ? V ? T ) P d T {\displaystyle dV=\left({\frac {\partial V}{\partial P}}\right)_{T}dP+\left({\frac {\partial V}{\partial T}}\right)_{P}dT\,}

Since the partial derivative ( ? P ? T ) V {\displaystyle \left({\frac {\partial P}{\partial T}}\right)_{V}} is just the ratio of dP and dT for dV = 0, one can obtain this by putting dV = 0 in the above equation and solving for this ratio:

( ? P ? T ) V = - ( ? V ? T ) P ( ? V ? P ) T = ? ? T {\displaystyle \left({\frac {\partial P}{\partial T}}\right)_{V}=-{\frac {\left({\frac {\partial V}{\partial T}}\right)_{P}}{\left({\frac {\partial V}{\partial P}}\right)_{T}}}={\frac {\alpha }{\beta _{T}}}\,}

which yields the expression:

C P - C V = V T ? 2 ? T {\displaystyle C_{P}-C_{V}=VT{\frac {\alpha ^{2}}{\beta _{T}}}\,}

The expression for the ratio of the heat capacities can be obtained as follows:

C P C V = ( ? S ? T ) P ( ? S ? T ) V {\displaystyle {\frac {C_{P}}{C_{V}}}={\frac {\left({\frac {\partial S}{\partial T}}\right)_{P}}{\left({\frac {\partial S}{\partial T}}\right)_{V}}}\,}

The partial derivative in the numerator can be expressed as a ratio of partial derivatives of the pressure w.r.t. temperature and entropy. If in the relation

d P = ( ? P ? S ) T d S + ( ? P ? T ) S d T {\displaystyle dP=\left({\frac {\partial P}{\partial S}}\right)_{T}dS+\left({\frac {\partial P}{\partial T}}\right)_{S}dT\,}

we put d P = 0 {\displaystyle dP=0} and solve for the ratio d S d T {\displaystyle {\frac {dS}{dT}}} we obtain ( ? S ? T ) P {\displaystyle \left({\frac {\partial S}{\partial T}}\right)_{P}} . Doing so gives:

( ? S ? T ) P = - ( ? P ? T ) S ( ? P ? S ) T {\displaystyle \left({\frac {\partial S}{\partial T}}\right)_{P}=-{\frac {\left({\frac {\partial P}{\partial T}}\right)_{S}}{\left({\frac {\partial P}{\partial S}}\right)_{T}}}\,}

One can similarly rewrite the partial derivative ( ? S ? T ) V {\displaystyle \left({\frac {\partial S}{\partial T}}\right)_{V}} by expressing dV in terms of dS and dT, putting dV equal to zero and solving for the ratio d S d T {\displaystyle {\frac {dS}{dT}}} . When one substitutes that expression in the heat capacity ratio expressed as the ratio of the partial derivatives of the entropy above, it follows:

C P C V = ( ? P ? T ) S ( ? P ? S ) T ( ? V ? S ) T ( ? V ? T ) S {\displaystyle {\frac {C_{P}}{C_{V}}}={\frac {\left({\frac {\partial P}{\partial T}}\right)_{S}}{\left({\frac {\partial P}{\partial S}}\right)_{T}}}{\frac {\left({\frac {\partial V}{\partial S}}\right)_{T}}{\left({\frac {\partial V}{\partial T}}\right)_{S}}}\,}

Taking together the two derivatives at constant S:

( ? P ? T ) S ( ? V ? T ) S = ( ? P ? T ) S ( ? T ? V ) S = ( ? P ? V ) S {\displaystyle {\frac {\left({\frac {\partial P}{\partial T}}\right)_{S}}{\left({\frac {\partial V}{\partial T}}\right)_{S}}}=\left({\frac {\partial P}{\partial T}}\right)_{S}\left({\frac {\partial T}{\partial V}}\right)_{S}=\left({\frac {\partial P}{\partial V}}\right)_{S}\,}

Taking together the two derivatives at constant T:

( ? V ? S ) T ( ? P ? S ) T = ( ? V ? S ) T ( ? S ? P ) T = ( ? V ? P ) T {\displaystyle {\frac {\left({\frac {\partial V}{\partial S}}\right)_{T}}{\left({\frac {\partial P}{\partial S}}\right)_{T}}}=\left({\frac {\partial V}{\partial S}}\right)_{T}\left({\frac {\partial S}{\partial P}}\right)_{T}=\left({\frac {\partial V}{\partial P}}\right)_{T}\,}

From this one can write:

C P C V = ( ? P ? V ) S ( ? V ? P ) T = ? T ? S {\displaystyle {\frac {C_{P}}{C_{V}}}=\left({\frac {\partial P}{\partial V}}\right)_{S}\left({\frac {\partial V}{\partial P}}\right)_{T}={\frac {\beta _{T}}{\beta _{S}}}\,}

Molar HEAT CAPACITY Cp & Cv relation in hindi - YouTube
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Ideal gas

This is a derivation to obtain an expression for C P - C V {\displaystyle C_{P}-C_{V}\,} for an ideal gas.

An ideal gas has the equation of state: P V = n R T {\displaystyle PV=nRT\,}

where

P = pressure
V = volume
n = number of moles
R = universal gas constant
T = temperature

The ideal gas equation of state can be arranged to give:

V = n R T / P {\displaystyle V=nRT/P\,} or n R = P V / T {\displaystyle \,nR=PV/T}

The following partial derivatives are obtained from the above equation of state:

( ? V ? T ) P   = n R P   = ( V P T ) ( 1 P ) = V T {\displaystyle \left({\frac {\partial V}{\partial T}}\right)_{P}\ ={\frac {nR}{P}}\ =\left({\frac {VP}{T}}\right)\left({\frac {1}{P}}\right)={\frac {V}{T}}}
( ? V ? P ) T   = - n R T P 2   = - P V P 2   = - V P {\displaystyle \left({\frac {\partial V}{\partial P}}\right)_{T}\ =-{\frac {nRT}{P^{2}}}\ =-{\frac {PV}{P^{2}}}\ =-{\frac {V}{P}}}

The following simple expressions are obtained for thermal expansion coefficient ? {\displaystyle \alpha } :

? = 1 V ( ? V ? T ) P   = 1 V ( V T ) {\displaystyle \alpha ={\frac {1}{V}}\left({\frac {\partial V}{\partial T}}\right)_{P}\ ={\frac {1}{V}}\left({\frac {V}{T}}\right)}
? = 1 / T {\displaystyle \alpha =1/T\,}

and for isothermal compressibility ? T {\displaystyle \beta _{T}} :

? T = - 1 V ( ? V ? P ) T   = - 1 V ( - V P ) {\displaystyle \beta _{T}=-{\frac {1}{V}}\left({\frac {\partial V}{\partial P}}\right)_{T}\ =-{\frac {1}{V}}\left(-{\frac {V}{P}}\right)}
? T = 1 / P {\displaystyle \beta _{T}=1/P\,}

One can now calculate C P - C V {\displaystyle C_{P}-C_{V}\,} for ideal gases from the previously-obtained general formula:

C P - C V = V T ? 2 ? T   = V T ( 1 / T ) 2 1 / P = V P T {\displaystyle C_{P}-C_{V}=VT{\frac {\alpha ^{2}}{\beta _{T}}}\ =VT{\frac {(1/T)^{2}}{1/P}}={\frac {VP}{T}}}

Substituting from the ideal gas equation gives finally:

C P - C V = n R {\displaystyle C_{P}-C_{V}=nR\,}

where n = number of moles of gas in the thermodynamic system under consideration and R = universal gas constant. On a per mole basis, the expression for difference in molar heat capacities becomes simply R for ideal gases as follows:

C P , m - C V , m = C P - C V n = n R n = R {\displaystyle C_{P,m}-C_{V,m}={\frac {C_{P}-C_{V}}{n}}={\frac {nR}{n}}=R}

This result would be consistent if the specific difference were derived directly from the general expression for c p - c v {\displaystyle c_{p}-c_{v}\,} .


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See also

  • Heat capacity ratio

Specific heat capacity with hydrogen and nitrogen jee mains 2017 ...
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References

  • David R. Gaskell (2008), Introduction to the thermodynamics of materials, Fifth Edition, Taylor & Francis. ISBN 1-59169-043-9.

Source of the article : Wikipedia

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