Thermodynamics: Difference between revisions

For thermally perfect and calorically perfect gases

${\displaystyle \begin{array}{cc}& C_p=\frac{dh}{dT}\\ & C_v=\frac{de}{dT}\end{array}}$

(Eq. 1.1)

From the definition of enthalpy and the equation of state ${\displaystyle p=\rho RT}$

${\displaystyle h=e+\frac{p}{\rho }=e+RT}$

(Eq. 1.2)

Differentiate (Eq. 1.2) with respect to temperature gives

${\displaystyle \frac{dh}{dT}=\frac{de}{dT}+\frac{d(RT)}{dT}}$

(Eq. 1.3)

Inserting the specific heats gives

${\displaystyle C_p=C_v+R}$

(Eq. 1.4)

Dividing (Eq. 1.4) by ${\displaystyle C_v}$ gives

${\displaystyle \frac{C_p}{C_v}=1+\frac{R}{C_v}}$

(Eq. 1.5)

Introducing the ratio of specific heats defined as

${\displaystyle \gamma =\frac{C_p}{C_v}}$

(Eq. 1.6)

Now, inserting (Eq. 1.6) in Eqn. \ref{eq:specificheat:c} gives

${\displaystyle C_v=\frac{R}{\gamma -1}}$

(Eq. 1.7)

In the same way, dividing (Eq. 1.4) with ${\displaystyle C_p}$ gives

${\displaystyle 1=\frac{C_v}{C_p}+\frac{R}{C_p}=\frac{1}{\gamma }+\frac{R}{C_p}}$

(Eq. 1.8)

and thus

${\displaystyle C_p=\frac{\gamma R}{\gamma -1}}$

(Eq. 1.9)

First law of thermodynamics:

${\displaystyle de=\delta q-\delta w}$

(Eq. 1.10)

For a reversible process: ${\displaystyle \delta w=pd(1/\rho )}$ and ${\displaystyle \delta q=Tds}$

${\displaystyle de=Tds-pd\left(\frac{1}{\rho }\right)}$

(Eq. 1.11)

Enthalpy is defined as: ${\displaystyle h=e+p/\rho }$ and thus

${\displaystyle dh=de+pd\left(\frac{1}{\rho }\right)+\left(\frac{1}{\rho }\right)dp}$

(Eq. 1.12)

Eliminate ${\displaystyle de}$ in (Eq. 1.11) using (Eq. 1.12)

${\displaystyle Tds=dh-\cancel{pd\left(\frac{1}{\rho }\right)}-\left(\frac{1}{\rho }\right)dp+\cancel{pd\left(\frac{1}{\rho }\right)}}$

(Eq. 1.13)

${\displaystyle ds=\frac{dh}{T}-\frac{dp}{\rho T}}$

(Eq. 1.14)

Using ${\displaystyle dh=C_{p}T}$ and the equation of state ${\displaystyle p=\rho RT}$, we get

${\displaystyle ds=C_p\frac{dT}{T}-R\frac{dp}{p}}$

(Eq. 1.15)

Integrating (Eq. 1.15) gives

${\displaystyle s_2-s_1={\displaystyle \underset{1}{\overset{2}{\int }}}{C}_p\frac{dT}{T}-R\ln \left(\frac{p_2}{p_1}\right)}$

(Eq. 1.16)

For a calorically perfect gas, ${\displaystyle C_p}$ is constant (not a function of temperature) and can be moved out from the integral and thus

${\displaystyle s_2-s_1=C_p\ln \left(\frac{T_2}{T_1}\right)-R\ln \left(\frac{p_2}{p_1}\right)}$

(Eq. 1.17)

An alternative form of (Eq. 1.17) is obtained by using ${\displaystyle de=C_{v}dT}$ in (Eq. 1.11), which gives

${\displaystyle s_2-s_1={\displaystyle \underset{1}{\overset{2}{\int }}}{C}_v\frac{dT}{T}-R\ln \left(\frac{{\rho }_2}{{\rho }_1}\right)}$

(Eq. 1.18)

Again, for a calorically perfect gas, we get

${\displaystyle s_2-s_1=C_v\ln \left(\frac{T_2}{T_1}\right)-R\ln \left(\frac{{\rho }_2}{{\rho }_1}\right)}$

(Eq. 1.19)

Adiabatic and reversible processes, i.e., isentropic processes implies ${\displaystyle ds=0}$ and thus (Eq. 1.17) reduces to

${\displaystyle \frac{C_p}{R}\ln \left(\frac{T_2}{T_1}\right)=\ln \left(\frac{p_2}{p_1}\right)}$

(Eq. 1.20)

$${\displaystyle \frac{C_p}{R}=\frac{\gamma }{\gamma -1}}$$

$${\displaystyle \frac{\gamma }{\gamma -1}\ln \left(\frac{T_2}{T_1}\right)=\ln \left(\frac{p_2}{p_1}\right)\Rightarrow }$$

${\displaystyle \frac{p_2}{p_1}={\left(\frac{T_2}{T_1}\right)}^{\gamma /(\gamma -1)}}$

(Eq. 1.21)

In the same way, (Eq. 1.19) gives

${\displaystyle \frac{{\rho }_2}{{\rho }_1}={\left(\frac{T_2}{T_1}\right)}^{1/(\gamma -1)}}$

(Eq. 1.22)

Eqn. (Eq. 1.21) and Eqn. (Eq. 1.22) constitutes the isentropic relations

${\displaystyle \frac{p_2}{p_1}={\left(\frac{{\rho }_2}{{\rho }_1}\right)}^{\gamma }={\left(\frac{T_2}{T_1}\right)}^{\gamma /(\gamma -1)}}$

(Eq. 1.23)

${\displaystyle ds=C_v\frac{dT}{T}+R\frac{d\nu }{\nu }}$

(Eq. 1.24)

${\displaystyle d\nu =\frac{\nu }{R}ds-C_v\frac{\nu }{RT}dT=\frac{\nu }{R}ds-\frac{C_v}{p}dT}$

(Eq. 1.25)

for an isentropic process (${\displaystyle ds=0}$), ${\displaystyle d\nu <0}$ for positive values of ${\displaystyle dT}$.

${\displaystyle ds=C_p\frac{dT}{T}-R\frac{dp}{p}}$

(Eq. 1.26)

${\displaystyle dp=-\frac{p}{R}ds+C_p\frac{p}{RT}dT=-\frac{p}{R}ds+C_p\rho dT}$

(Eq. 1.27)

for an isentropic process (${\displaystyle ds=0}$), ${\displaystyle dp>0}$ for positive values of ${\displaystyle dT}$.

Since ${\displaystyle \nu }$ decreases with temperature and pressure increases with temperature for an isentropic process, we can see from (Eq. 1.25) that ${\displaystyle d\nu }$ will be greater at lower temperatures and thus isochores (lines of constant specific volume) will be closely spaced at low temperatures and more sparse at higher temperatures. For an isochore ${\displaystyle dv=0}$ which implies

${\displaystyle 0=\frac{\nu }{R}(ds-C_v\frac{dT}{T})\Rightarrow \frac{dT}{ds}=\frac{T}{C_v}}$

(Eq. 1.28)

and thus we can see that the slope of an isochore in a ${\displaystyle T-s}$-diagram is positive and that the slope increases with temperature.

In analogy, we can see that an isobar (${\displaystyle dp=0}$) leads to the following relation

${\displaystyle 0=\frac{p}{R}(C_p\frac{dT}{T}-ds)\Rightarrow \frac{dT}{ds}=\frac{T}{C_p}}$

(Eq. 1.29)

and consequently isobars will also have a positive slope that increases with temperature in a ${\displaystyle T-s}$-diagram. Moreover, isobars are less steep than ischores as ${\displaystyle C_p>C_v}$.