An air-standard cycle, called the dual cycle, with constant specific heats is executed in a closed piston– cylinder system and is composed of the following five processes:
1-2 Isentropic compression with a compression ratio, r = V1/V2
2-3 Constant-volume heat addition with a pressure ratio, rp = P3/P2
3-4 Constant-pressure heat addition with a volume ratio, rc V4/V3
4-5 Isentropic expansion while work is done until V5 = V1
5-1 Constant-volume heat rejection to the initial state
- (a) Sketch the P-ν and T-s diagrams for this cycle.
- (b) Obtain an expression for the cycle thermal efficiency as a function of k, r, rc, and rp.
- (c) Evaluate the limit of the efficiency as rp approaches unity, and compare your answer with the expression for the Diesel cycle efficiency.
- (d) Evaluate the limit of the efficiency as rc approaches unity, and compare your answer with the expression for the Otto cycle efficiency.
(a)
Draw the
Answer to Problem 64P
The
Explanation of Solution
Draw the
Thus, the
(b)
The expression for the back work ratio as a function of k and r.
Answer to Problem 64P
The expression for the back work ratio as a function of
Explanation of Solution
Apply first law to the closed system for processes 2-3, 3-4, and 5-1 to get the expression of
Here, heat added to the system and heat rejected from the system is
Express the cycle thermal efficiency.
Conclusion:
Process 1-2: Isentropic
Calculate the ratio of
Here, volume at states 1 and 2 is
Process 2-3: Constant volume
Calculate the expression for
Here, pressure at state 1 and 2 is
Process 3-4: Constant pressure
Calculate the expression for
Here, compression ratio is
Process 4-5: Isentropic
Calculate the expression for
Process 5-1: Constant volume
Calculate the expression for
Substitute
Calculate the ratio of
Substitute
Substitute
Substitute
Thus, the expression for the back work ratio as a function of
(c)
The limit of the efficiency as
Answer to Problem 64P
The limit of the efficiency as
Explanation of Solution
Recall the expression for the back work ratio as a function of
Thus, the limit of the efficiency as
The limit of the efficiency as
(d)
The limit of the efficiency as
Answer to Problem 64P
The limit of the efficiency as
Explanation of Solution
Recall the expression for the back work ratio as a function of
Thus, the limit of the efficiency as
The limit of the efficiency as
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Chapter 9 Solutions
EBK THERMODYNAMICS: AN ENGINEERING APPR
- Required information Problem 09.015 - 3-Step Air-Standard Cycle with Constant Specific Heats - DEPENDENT MULTI-PART PROBLEM - ASSIGN ALL PARTS An air-standard cycle with constant specific heats at room temperature is executed in a closed system with 0.003 kg of air and consists of the following three processes: 1-2 v= Constant heat addition from 95 kPa and 17°C to 380 kPa 2-3 Isentropic expansion to 95 kPa 3-1 P = Constant heat rejection to initial state The properties of air at room temperature are cp = 1.005 kJ/kg-K, cy= 0.718 kJ/kg-K, and k = 1.4. Problem 09.015.b - Net Work for Constant Heat Capacity Air-Standard Cycle Calculate the net work per cycle, in kJ. (You must provide an answer before moving on to the next part.) The net work per cycle is kJ.arrow_forwardRequired information Problem 09.015 - 3-Step Air-Standard Cycle with Constant Specific Heats - DEPENDENT MULTI-PART PROBLEM - ASSIGN ALL PARTS An air-standard cycle with constant specific heats at room temperature is executed in a closed system with 0.003 kg of air and consists of the following three processes: 1-2 v= Constant heat addition from 95 kPa and 17°C to 380 kPa 2-3 Isentropic expansion to 95 kPa 3-1 P=Constant heat rejection to initial state The properties of air at room temperature are cp=1.005 kJ/kg-K, cv=0.718 kJ/kg-K, and k=1.4. Problem 09.015.c - Cycle Efficiency for Constant Heat Capacity Air-Standard Cycle Determine the thermal efficiency. The thermal efficiency is %.arrow_forward4. Plot the cycle diagram for the air-standard Carnot cycle operating with 1 lbm of working fluid between 60 and 400 °F, if the maximum volume reached in the cycle is 1 ft3 and the maximum pressure in the cycle is 2000 psia. Plot the P-v, T-s, P-h, and h-s diagrams. Assume that the specific heat of air can be taken as temperature-independent.arrow_forward
- An air-standard dual cycle has a compression ratio of 12.5. At the beginning of compression, p1 = 100 kPa, T1 = 300 K, and V1 = 14 L. The total amount of energy added by heat transfer is 22.7 kJ. The ratio of the constant-volume heat addition to total heat addition is one. (a) the temperatures at the end of each heat addition process, in K.(b) the net work per unit of mass of air, in kJ/kg.(c) the percent thermal efficiency.(d) the mean effective pressure, in kPa.arrow_forwardAn air-standard cycle is executed within a closed piston–cylinder system, and it consists of the following three processes: 1–2 V = Constant heat addition from 100 kPa and 32°C to 850 kPa 2–3 Isothermal expansion until V3 = 8.5V2 3–1 P = Constant heat rejection to the initial state Assume air has constant properties with cv = 0.718 kJ/kg·K, cp = 1.005 kJ/kg·K, R = 0.287 kJ/kg·K, and k = 1.4. Determine the cycle thermal efficiency.arrow_forward2, A diesel Cycle engine with k of 1.33 has an air standard efficiency of 60.5%. The temperature atthe end of isentropic compression is 695°C and the maximum pressure of 62 bar. If the energy released during combustion is 710 KJ/Kg of air, and the temperature at the end expansion is 515°C determine • The maximum temperature of the cycle • The temperature at the beginning ofcompression • The cut off ratio • The compression ratioarrow_forward
- 4arrow_forward3. An ideal Brayton cycle is used in a gas-turbine power plant with two stages of expansion and two stages of compression. Air enters each stage of the compressor and turbine at 17°C and 1067 °C, respectively. If the overall pressure ratio is 9.5, determine the efficiency of the cycle considering the variation of specific heat with temperature. O a. 37.2% Ob. 42% Oc. 36.8% O'd. 28.9% O e. 48.1%arrow_forwardAn air-standard cycle with variable specific heats isexecuted in a closed system and is composed of the followingfour processes:1-2 Isentropic compression from 100 kPa and 228C to600 kPa2-3 v = constant heat addition to 1500 K3-4 Isentropic expansion to 100 kPa4-1 P = constant heat rejection to initial state(a) Show the cycle on P-v and T-s diagrams.(b) Calculate the net work output per unit mass.(c) Determine the thermal efficiency.arrow_forward
- An air-standard cycle with variable specific heats is executed in a closed system with 0.0045 kg of air and consists of the following three processes: 1–2 v = Constant heat addition from 95 kPa and 17°C to 380 kPa 2–3 Isentropic expansion to 95 kPa 3–1 P = Constant heat rejection to initial state Use data from tables. Calculate the thermal efficiency % ? Hint : The answer should be a percentagearrow_forwardRefer to the following figure for an Air Standard Otto Cycle. At the beginning of compression stroke: • Volume is 0.45 m³; • Pressure is 1 bar; and • Temperature is 30°C; At the end of the compression stroke: • Pressure is 11 bar; 210 kJ of heat is added at constant volume. Assuming the cycle is reversible. T(K) = 273 +T(°C); Determine the following to the approximation. • Pressures at point 4 bar • Swept Volume= m • Maximum Temperature of the cycle = °C • Net work output of the cycle = kJ • Heat Rejected from the cycle = kJ • Thermal efficiency of the cycle = • Mean Effective Pressure = bar % p (bar) 21.48 11 V₁ = 0.45 m³ Adiabatics → V (m³)arrow_forward! Required information Problem 09.015 - 3-Step Air-Standard Cycle with Constant Specific Heats - DEPENDENT MULTI-PART PROBLEM - ASSIGN ALL PARTS An air-standard cycle with constant specific heats at room temperature is executed in a closed system with 0.003 kg of air and consists of the following three processes: 1-2 v= Constant heat addition from 95 kPa and 17°C to 380 kPa 2-3 Isentropic expansion to 95 kPa 3-1 P=Constant heat rejection to initial state The properties of air at room temperature are cp=1.005 kJ/kg-K, cv=0.718 kJ/kg-K, and k=1.4. Problem 09.015.a - P-v and T-s Diagrams for Constant Heat Capacity Air-Standard Cycle Show the cycle on P-v and T-s diagrams. (Please upload your response/solution using the controls provided below.) (You must provide an answer before moving on to the next part.) upload a response file (15MB max) Browse... No file selected. savearrow_forward
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