Dynamic simulation of horizontal condenser of R1233zd(E) high temperature heat pump

被引:0
作者
Jiang J. [1 ]
Hu B. [1 ]
Wang R. [1 ]
Liu H. [1 ,2 ]
Zhang Z. [2 ]
Li H. [2 ]
机构
[1] Institute of Refrigeration and Cryogenics, Shanghai Jiao Tong University, Shanghai
[2] State Key Laboratory of Energy Saving Equipment and System Operation, Zhuhai Gree Electric Appliance Co., Ltd., Zhuhai
来源
Huagong Xuebao/CIESC Journal | 2021年 / 72卷
关键词
Dynamic simulation; Equation of state; Gas holdup; Heat transfer; Mathematical modeling;
D O I
10.11949/0438-1157.20201521
中图分类号
学科分类号
摘要
This paper presents the dynamic heat transfer model of a R1233zd(E) horizontal condenser. Compared with the steady-state model, the dynamic model has obvious advantages in predicting the system operating performance and understanding the working principle. This article introduces the equations, discrete methods and model calculation logic in detail. From the results, the state parameters of the refrigerant, tube wall, and cooling water in every control volume of the condenser at each time step can be obtained. Since the model covers the geometric parameters of the heat exchange tubes, the geometric parameters variation of the heat exchange tubes can cause the great effect of heat transfer performance of the condenser. The study compares the phase area, heating capacity and output water temperature under different heat exchange tubes. For the results, when a low-rib heat exchange tube with the fin pitch of 1.3 mm is used, the temperature of the outlet water is increased by more than 1.5℃ than that of the light tube, the time to reach stable output is more than 1 minute earlier, and the heating capacity is increased by 2.3 times. R1233zd(E) acts as a new environmental protection working fluid, and there are not too much studies about the heat pump model. So this condenser model is an important basis for the further research of R1233zd(E) high temperature heat pump. © 2021, Editorial Board of CIESC Journal. All right reserved.
引用
收藏
页码:98 / 105
页数:7
相关论文
共 30 条
[1]  
Zhang D, Yang G, Liu D P, Et al., Research progress of low GWP working fluid HFO-1234ze(Z) for high temperature heat pumps, CIESC Journal, 71, 9, pp. 3995-4005, (2020)
[2]  
Shi L, An Q S., Low GWP refrigerants options and countermeasures discussion after the entry into force of Kigali Amendment, Refrigeration and Air-Conditioning, 19, 9, pp. 50-58, (2019)
[3]  
Arpagaus C, Bless F, Uhlmann M, Et al., High temperature heat pumps: market overview, state of the art, research status, refrigerants, and application potentials, Energy, 152, pp. 985-1010, (2018)
[4]  
Eyerer S, Dawo F B, Kaindl J, Et al., Experimental investigation of modern ORC working fluids R1224yd(Z) and R1233zd(E) as replacements for R245fa, Applied Energy, 240, pp. 946-963, (2019)
[5]  
Welzl M, Heberle F, Bruggemann D., Experimental evaluation of nucleate pool boiling heat transfer correlations for R245fa and R1233zd(E) in ORC applications, Renewable Energy, 147, pp. 2855-2864, (2020)
[6]  
Yang J Y, Sun Z Y, Yu B B, Et al., Experimental comparison and optimization guidance of R1233zd(E) as a drop-in replacement to R245fa for organic Rankine cycle application, Applied Thermal Engineering, 141, pp. 10-19, (2018)
[7]  
Kondou C, Koyama S., Thermodynamic assessment of high-temperature heat pumps using low-GWP HFO refrigerants for heat recovery, International Journal of Refrigeration, 53, pp. 126-141, (2015)
[8]  
Frate G F, Ferrari L, Desideri U., Analysis of suitability ranges of high temperature heat pump working fluids, Applied Thermal Engineering, 150, pp. 628-640, (2019)
[9]  
Mikielewicz D, Wajs J., Performance of the very high-temperature heat pump with low GWP working fluids, Energy, 182, pp. 460-470, (2019)
[10]  
Alhamid M I, Aisyah N, Nasruddin N, Et al., Thermodynamic and environmental analysis of a high-temperature heat pump using HCFO-1224yd(Z) and HCFO-1233zd(E), International Journal of Technology, 10, 8, (2019)