finish notes on semester 1 thermodynamics

2021-12-26 22:00:00 +00:00 · 2021-12-26 22:00:00 +00:00 · 02a98be18e
commit 02a98be18e
parent 2a32037e1c
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--- a/uni/mmme/1048_thermodynamics_and_fluid_mechanics/thermodynamics.md
+++ b/uni/mmme/1048_thermodynamics_and_fluid_mechanics/thermodynamics.md
@ -40,7 +40,7 @@ The system is not in equilibrium if parts of the system are at different conditi
 #### Adiabatic
-A process in which does not cross the system boundary
+A process in which heat does not cross the system boundary
 ## Perfect (Ideal) Gasses
@ -204,6 +204,41 @@ Entropy is defined as the following, given that the process s reversible:
 $$S_2 - S_1 = \int\! \frac{\mathrm{d}Q}{T}$$
 #### Change of Entropy of a Perfect Gas
 Consider the 1st corollary of the 1st law:
 $$\mathrm dq + \mathrm dw = \mathrm du$$
 and that the process is reversible:
 \begin{align*}
 \mathrm ds &= \frac{\mathrm dq} T \bigg|_{rev} \\
 \mathrm dq = \mathrm ds \times T \\
 \mathrm dw &= -p\mathrm dv \\
 \end{align*}
 The application of the 1st corollary leads to:
 $$T\mathrm ds - p\mathrm dv = \mathrm du$$
 Derive the change of entropy
 \begin{align*}
 \mathrm ds &= \frac{\mathrm du}{T} + \frac{p \mathrm dv}{T} \\
 \\
 \mathrm du &= c_v \mathrm{d}T \\
 \frac p T &= \frac R v \\
 \\
 \mathrm ds &= \frac{c_v\mathrm{d}T}{T} \frac{R\mathrm dv}{v} \\
 s_2 - s_1 &= c_v\ln\left(\frac{T_2}{T_1}\right) + R\ln\left(\frac{v_2}{v_1}\right)
 \end{align*}
 There are two other forms of the equation that can be derived:
 $$s_2 - s_1 = c_v\ln\left(\frac{p_2}{p_1}\right) + c_p\ln\left(\frac{v_2}{v_1}\right)$$
 $$s_2 - s_1 = c_p\ln\left(\frac{T_2}{T_1}\right) - R\ln\left(\frac{p_2}{p_1}\right)$$
 ### Heat Capacity and Specific Heat Capacity
 Heat capacity is quantity of heat required to raise the temperature of a system by a unit
@ -375,3 +410,125 @@ The 1st Law of Thermodynamics can be thought of as:
 > The internal energy of a closed system remains unchanged if it
 > [thermally isolated](#thermally-insulated-and-isolated-systems) from its surroundings
 # Polytropic Processes
 A polytropic process is one which obeys the polytropic law:
 $$pv^n = k \text{ or } p_1v_1^n = p_2v_2^n$$
 where $n$ is a constant called the polytropic index, and $k$ is a constant too.
 A typical polytropic index is between 1 and 1.7.
 <details>
 <summary>
 #### Example 1
 Derive
 $$\frac{p_2}{p_1} = \left(\frac{T_2}{T_1}\right)^{\frac{n}{n-1}}$$
 </summary>
 \begin{align*}
 p_1v_1^n &= p_2v_2^n \\
 pv &= RT \rightarrow v = R \frac{T}{p} \\
 \frac{p_2}{p_1} &= \left( \frac{v_1}{v_2} \right)^n \\
                &= \left(\frac{p_2T_1}{T_2p_1}\right)^n \\
                &= \left(\frac{p_2}{p_1}\right)^n \left(\frac{T_1}{T_2}\right)^n \\
 \left(\frac{p_2}{p_1}\right)^{1-n} &= \left(\frac{T_1}{T_2}\right)^n \\
 \frac{p_2}{p_1} &= \left(\frac{T_1}{T_2}\right)^{\frac{n}{1-n}} \\
                &= \left(\frac{T_2}{T_1}\right)^{\frac{n}{n-1}} \\
 \end{align*}
 <details>
 <summary>
 How did you do that last step?
 </summary>
 For any values of $x$ and $y$
 \begin{align*}
 \frac x y &= \left(\frac y x \right) ^{-1} \\
 \left(\frac x y \right)^n &= \left(\frac y x \right)^{-n} \\
 \left(\frac x y \right)^{\frac{n}{1-n}} &= \left(\frac y x \right)^{\frac{-n}{1-n}} \\
 &= \left(\frac y x \right)^{\frac{n}{n-1}} \\
 \end{align*}
 </details>
 </details>
 # Isentropic
 *Isentropic* means constant entropy:
 $$\Delta S = 0 \text{ or } s_1 = s_2 \text{ for a precess 1-2}$$
 A process will be isentropic when:
 $$pv^\gamma = \text{constant}$$
 This is basically the [polytropic law](#polytropic-processes) where the polytropic index, $n$, is
 always equal to $\gamma$.
 <details>
 <summary>
 Derivation
 </summary>
 \begin{align*}
 0 &= s_2 - s_1 = c_v \ln{\left(\frac{p_2}{p_1}\right)} + c_p \ln{\left( \frac{v_2}{v_1} \right)} \\
 0 &= \ln{\left(\frac{p_2}{p_1}\right)} + \frac{c_p}{c_v} \ln{\left( \frac{v_2}{v_1} \right)} \\
  &= \ln{\left(\frac{p_2}{p_1}\right)} + \gamma \ln{\left( \frac{v_2}{v_1} \right)} \\
  &= \ln{\left(\frac{p_2}{p_1}\right)} + \ln{\left( \frac{v_2}{v_1} \right)^\gamma} \\
  &= \ln{\left[\left(\frac{p_2}{p_1}\right)\left( \frac{v_2}{v_1} \right)^\gamma\right]} \\
 e^0  = 1 &= \left(\frac{p_2}{p_1}\right)\left( \frac{v_2}{v_1} \right)^\gamma \\
 &\therefore p_2v_2^\gamma = p_1v_1^\gamma \\
 \\
 pv^\gamma = \text{constant}
 \end{align*}
 </details>
 During isentropic processes, it is assumed that no heat is transferred into or out of the cylinder.
 It is also assumed that friction is 0 between the piston and cylinder and that there are no energy
 losses of any kind.
 This results in a reversible process in which the entropy of the system remains constant.
 An isentropic process is an idealization of an actual process, and serves as the limiting case for
 real life processes.
 They are often desired and often the processes on which device efficiencies are calculated.
 ## Heat Transfer During Isentropic Processes
 Assume that the compression 1-2 follows a polytropic process with a polytropic index $n$.
 The work transfer is:
 $$W  = - \frac{1}{1-n} (p_2V_2 - p_1V_1) = \frac{mR}{n-1} (T_2-T_1)$$
 Considering the 1st corollary of the 1st law, $Q + W = \Delta U$, and assuming the gas is an ideal
 gas [we know that](#obey-the-perfect-gas-equation) $\Delta U = mc_v(T_2-T_1)$ we can deduce:
 \begin{align*}
 Q &= \Delta U - W = mc_v(T_2-T_1) - \frac{mR}{n-1} (T_2-T_1) \\
  &= m \left(c_v - \frac R {n-1}\right)(T_2-T-1)
 \end{align*}
 Now, if the process was *isentropic* and not *polytropic*, we can simply substitute $n$ for
 $\gamma$ so now:
 $$Q = m \left(c_v - \frac R {\gamma-1}\right)(T_2-T-1)$$
 But since [we know](#relationship-between-specific-gas-constant-and-specific-heats) $c_v = \frac R {\gamma - 1}$:
 $$Q = m (c_v-c_v)(T_2-T_1) = 0 $$
 This proves that the isentropic version of the process adiabatic (no heat is transferred across the
 boundary).