Homework Answers
All subdivisions are solved below.
![c] Thormal efficiency (: Whet 205. 2046 n = Qin 386.0573 0.53154 = 53.154 % diesel cycle](http://img.homeworklib.com/questions/032f3cc0-f9c9-11ea-aeac-25b4d8c9042d.png?x-oss-process=image/resize,w_560)
Note:
- There will be no heat transfer in process 1-2 and 3-4, as they are reversible adiabatic process (isentropic process). Hence, the heat transfer values for process 1-2 and 3-4 are 0 KJ.
- There will be no work done in process 2-3 and 4-1, as they are purely heat addition and heat rejection process respectively. Hence, the work done values for process 2-3 and 4-1 are 0 KJ
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7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa: T = 300 K State 2: p = 2000 kPa State 3: T = 1100 K
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T= 1100 K
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. () the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T= 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
The principal states in a cold air-standard Diesel cycle are given below. The mass of air...
The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p = 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T = 1100 K
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kl. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of...
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kl. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa: T = 300 K State 2: p = 2000 kPa State 3: T = 1100 K
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T= 1100 K
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. () the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k=1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p = 2000 kPa State 3: T= 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kJ. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kl. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
7. The principal states in a cold air-standard Diesel cycle are given below. The mass of air is 1 kg. The Cv of air is 0.7 kJ/kg.K and k = 1.4. Determine: (a) the heat addition and work done in each process, in kJ. (b) the net work output, in kl. (c) the thermal efficiency. State 1: p= 100 kPa; T = 300 K State 2: p= 2000 kPa State 3: T = 1100 K (35 points)
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