tHERMAL bYU 40 - CHATUP707

Composite Cycle Efficiency

Composite Cycle Efficiency Analysis

We need to determine the efficiency of the composite cycle $1 \to 2 \to 3 \to 4 \to 1$, given the efficiencies of two component cycles:

Cycle I ($1 \to 2 \to 3 \to 1$): Efficiency $\eta_1$
Cycle II ($1 \to 3 \to 4 \to 1$): Efficiency $\eta_2$

Detailed Breakdown

Let’s define the heat and work interactions for the two constituent cycles.

Cycle I ($1 \to 2 \to 3 \to 1$)

Process $1 \to 2$ (Straight line): Gas expands, pressure rises. Heat is absorbed ($Q_{12} > 0$).
Process $2 \to 3$ (Adiabatic): $Q = 0$.
Process $3 \to 1$ (Isotherm): Compression. Heat is rejected ($Q_{31} < 0$).

The efficiency $\eta_1$ is given by:

$$\eta_1 = \frac{W_1}{Q_{in}} = \frac{Q_{12} – |Q_{31}|}{Q_{12}} = 1 – \frac{|Q_{31}|}{Q_{12}}$$

From this, we can deduce the relationship between the rejected and absorbed heat:

$$|Q_{31}| = Q_{12}(1 – \eta_1) \quad \dots \text{(Eq. 1)}$$

Cycle II ($1 \to 3 \to 4 \to 1$)

Note: The cycle effectively runs as $1 \to 3 \to 4 \to 1$.

Process $1 \to 3$ (Isotherm): Expansion. This is the reverse of process $3 \to 1$ in Cycle I. Heat is absorbed. Since the path is identical but reversed, the heat absorbed here ($Q_{13}$) is equal in magnitude to the heat rejected in Cycle I.
Process $3 \to 4$ (Isobar): Compression. Heat is rejected ($Q_{34} < 0$).
Process $4 \to 1$ (Adiabatic): $Q = 0$.

The only heat input in Cycle II is during the isothermal expansion $1 \to 3$. Thus, the efficiency $\eta_2$ is:

$$\eta_2 = \frac{W_2}{Q_{13}} \implies W_2 = \eta_2 Q_{13}$$

Composite Cycle ($1 \to 2 \to 3 \to 4 \to 1$)

We now combine the cycles. The total work done is the sum of the areas enclosed by both loops:

$$W_{total} = W_1 + W_2$$

The only heat supplied to the entire composite engine comes from the external heater during process $1 \to 2$. (Process $2 \to 3$ and $4 \to 1$ are adiabatic, and $3 \to 4$ rejects heat). The internal heat exchange along the isotherm $1 \leftrightarrow 3$ is internal to the system boundary and cancels out.

$$Q_{in, total} = Q_{12}$$

The efficiency of the composite cycle is:

$$\eta = \frac{W_{total}}{Q_{in, total}} = \frac{W_1 + W_2}{Q_{12}}$$

We know $W_1 = \eta_1 Q_{12}$.

We also know $W_2 = \eta_2 Q_{13}$. Using Eq. 1 ($Q_{13} = |Q_{31}| = Q_{12}(1 – \eta_1)$), we get:

$$W_2 = \eta_2 [Q_{12}(1 – \eta_1)]$$

Substituting these into the efficiency equation:

$$\eta = \frac{\eta_1 Q_{12} + \eta_2 Q_{12}(1 – \eta_1)}{Q_{12}}$$

Canceling $Q_{12}$ from the numerator and denominator:

$$\eta = \eta_1 + \eta_2(1 – \eta_1)$$ $$\eta = \eta_1 + \eta_2 – \eta_1\eta_2$$

        Final Answer: The efficiency of the cycle is $\eta = \eta_1 + \eta_2 – \eta_1\eta_2$.
    