A piston–cylinder device initially contains 0.35 kg of steam at 3.5 MPa, superheated by 7.4°C. Now the steam loses heat to the surroundings and the piston moves down, hitting a set of stops at which point the cylinder contains saturated liquid water. The cooling continues until the cylinder contains water at 200°C. Determine (a) the final pressure and the quality (if mixture), (b) the boundary work, (c) the amount of heat transfer when the piston first hits the stops, and (d) the total heat transfer.
FIGURE P4–141
(a)

The final pressure of the piston-cylinder device.
The quality at the final state of the piston-cylinder device.
Answer to Problem 139RP
The final pressure of the piston-cylinder device is
The quality at the final state of the piston-cylinder device is
Explanation of Solution
Write the expression for the energy balance equation.
Here, the total energy entering the system is
Simplify Equation (I) and write energy balance relation of piston-cylinder device.
Here, the work to be done into the system is
Simplify the Equation (III), write energy balance relation when the piston first hits the stops state(1-2).
Here, the mass of the piston-cylinder device is
Similarly the Equation (IV), when the piston first hits and the final state(1-3).
Here, the mass of the piston-cylinder device is
Determine the state 1 temperature of the piston-cylinder device.
Here, the saturated temperature at 3500 kPa is
Conclusion:
Write the unit conversion pressure from MPa to kPa for piston-cylinder device.
From the Table A-5 “Saturated water-Pressure table”, obtain the value of saturated temperature at 3500 kPa pressure as
Substitute
From the Table A-4 through A-6 “Saturated water”, obtain the value of steam at various states for piston-cylinder device.
At state 1 pressure and temperature of steam as
At state 1-2 pressure and quality of state of steam as
At state 2-3 specific volume and temperature of steam as
Thus, the final pressure of the piston-cylinder device is
(b)

The boundary work done of the piston-cylinder device.
Answer to Problem 139RP
The boundary work done of the piston-cylinder device is
Explanation of Solution
Substitute 0 for
Here, the mass of piston-cylinder device is
Conclusion:
Substitute
Thus, the boundary work done of the piston-cylinder device is
(c)

The amount of heat transfer when the piston first hits the stops.
Answer to Problem 139RP
The amount of heat transfer when the piston first hits the stops is
Explanation of Solution
Conclusion:
Substitute
Thus, the amount of heat transfer when the piston first hits the stops is
(d)

The total amount heat transfer in the piston-cylinder device.
Answer to Problem 139RP
The total amount heat transfer in the piston-cylinder device is
Explanation of Solution
Conclusion:
Substitute
Thus, the total amount heat transfer in the piston-cylinder device is
Want to see more full solutions like this?
Chapter 4 Solutions
THERMODYNAMICS(SI UNITS,INTL.ED)EBOOK>I
- Please do not use any AI tools to solve this question. I need a fully manual, step-by-step solution with clear explanations, as if it were done by a human tutor. No AI-generated responses, please.arrow_forwardPlease do not use any AI tools to solve this question. I need a fully manual, step-by-step solution with clear explanations, as if it were done by a human tutor. No AI-generated responses, please.arrow_forwardThis is an old practice exam. Fce = 110lb and FBCD = 62 lb but whyarrow_forward
- Quiz/An eccentrically loaded bracket is welded to the support as shown in Figure below. The load is static. The weld size for weld w1 is h1 = 4mm, for w2 h2 = 6mm, and for w3 is h3 =6.5 mm. Determine the safety factor (S.f) for the welds. F=29 kN. Use an AWS Electrode type (E100xx). 163 mm S 133 mm 140 mm Please solve the question above I solved the question but I'm sure the answer is wrong the link : https://drive.google.com/file/d/1w5UD2EPDiaKSx3W33aj Rv0olChuXtrQx/view?usp=sharingarrow_forwardQ2: (15 Marks) A water-LiBr vapor absorption system incorporates a heat exchanger as shown in the figure. The temperatures of the evaporator, the absorber, the condenser, and the generator are 10°C, 25°C, 40°C, and 100°C respectively. The strong liquid leaving the pump is heated to 50°C in the heat exchanger. The refrigerant flow rate through the condenser is 0.12 kg/s. Calculate (i) the heat rejected in the absorber, and (ii) the COP of the cycle. Yo 8 XE-V lo 9 Pc 7 condenser 5 Qgen PG 100 Qabs Pe evaporator PRV 6 PA 10 3 generator heat exchanger 2 pump 185 absorberarrow_forwardQ5:(? Design the duct system of the figure below by using the balanced pressure method. The velocity in the duct attached to the AHU must not exceed 5m/s. The pressure loss for each diffuser is equal to 10Pa. 100CFM 100CFM 100CFM ☑ ☑ 40m AHU -16m- 8m- -12m- 57m 250CFM 40m -14m- 26m 36m ☑ 250CFMarrow_forward
- A mass of ideal gas in a closed piston-cylinder system expands from 427 °C and 16 bar following the process law, pv1.36 = Constant (p times v to the power of 1.36 equals to a constant). For the gas, initial : final pressure ratio is 4:1 and the initial gas volume is 0.14 m³. The specific heat of the gas at constant pressure, Cp = 0.987 kJ/kg-K and the specific gas constant, R = 0.267 kJ/kg.K. Determine the change in total internal energy in the gas during the expansion. Enter your numerical answer in the answer box below in KILO JOULES (not in Joules) but do not enter the units. (There is no expected number of decimal points or significant figures).arrow_forwardmy ID# 016948724. Please solve this problem step by steparrow_forwardMy ID# 016948724 please find the forces for Fx=0: fy=0: fz=0: please help me to solve this problem step by steparrow_forward
- My ID# 016948724 please solve the proble step by step find the forces fx=o: fy=0; fz=0; and find shear moment and the bending moment diagran please draw the diagram for the shear and bending momentarrow_forwardMy ID#016948724. Please help me to find the moment of inertia lx ly are a please show to solve step by stepsarrow_forwardplease solve this problem step by steparrow_forward
- Refrigeration and Air Conditioning Technology (Mi...Mechanical EngineeringISBN:9781305578296Author:John Tomczyk, Eugene Silberstein, Bill Whitman, Bill JohnsonPublisher:Cengage LearningPrinciples of Heat Transfer (Activate Learning wi...Mechanical EngineeringISBN:9781305387102Author:Kreith, Frank; Manglik, Raj M.Publisher:Cengage Learning

