Numerical analysis on the performance of sodium chloride solution evaporative crystallization system driven by high-temperature heat pump

被引:0
作者
Zhang, Chenghu [1 ]
Shi, Xilong [1 ]
Liu, Sixu [1 ]
Wu, Jianfeng [2 ]
You, Shijie [3 ]
机构
[1] Harbin Inst Technol, Sch Architecture & Design, Key Lab Cold Reg Urban & Rural Human Settlement En, Minist Ind & Informat Technol, Harbin, Peoples R China
[2] SpiraxSarco Engn China Co Ltd, Shanghai 201100, Peoples R China
[3] Harbin Inst Technol, Sch Environm, State Key Lab Urban Water Resources & Environm, Harbin, Peoples R China
关键词
High-temperature heat pump; Evaporative crystallization; Operating performance; Coefficient of performance; Recycling of waste heat; Secondary steam; DISTILLATION; DESIGN;
D O I
10.1016/j.tsep.2024.102959
中图分类号
O414.1 [热力学];
学科分类号
摘要
In the context of sustainable development, heat pump technology is increasingly recognized as a key method for enhancing the efficiency of evaporative crystallization processes. In this study, we propose a high-temperature heat pump evaporative crystallization system to facilitate the recycling of waste heat from secondary steam in low-vacuum and low-temperature evaporative crystallization, thereby achieving the cyclic utilization of condensation heat from secondary steam. The primary objective of this research is to develop a comprehensive mathematical model for the HPC system that investigate its operating performance under varying conditions, with the aim of promoting its practical application. The results demonstrate that by adjusting operating pressures, the temperature of the secondary steam can be controlled, allowing for regulation of the main particle size of the product. Specially, when maintaining the flow rate of the raw material liquid at 90 % of design condition, it is possible to achieve a maximum main particle size of 2.8 mm. Additionally, fluctuations in the flow rate of the raw material liquid significantly impact the cycle rate, with the optimum operating flow rate range identified as 75 % to 110 % of the rated value. The coefficient of performance of the system can achieve 5.85 under design conditions with a concentration of 4 % and flow rate of 310 kg/h. This research provides a theoretical foundation for the practical operation and commissioning of the HPC units.
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页数:17
相关论文
共 39 条
[1]   Optimal Charge Amount for Different Refrigerants in Air-to-Water Heat Pumps [J].
Afshari, Faraz ;
Comakli, Omer ;
Adiguzel, Nesrin ;
Karagoz, Sendogan .
IRANIAN JOURNAL OF SCIENCE AND TECHNOLOGY-TRANSACTIONS OF MECHANICAL ENGINEERING, 2016, 40 (04) :325-335
[2]   Crystallization kinetics in an airlift and a stirred draft draft tube crystallizer; Secondary nucleation models revisited [J].
Anisi, Fatemeh ;
Kramer, Herman J. M. .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2018, 138 :200-211
[3]   High temperature heat pumps: Market overview, state of the art, research status, refrigerants, and application potentials [J].
Arpagaus, Cordin ;
Bless, Frederic ;
Uhlmann, Michael ;
Schiffmann, Jurg ;
Bertsch, Stefan S. .
ENERGY, 2018, 152 :985-1010
[4]   EXPERIMENTAL STUDY TO EVALUATE EFFECT OF SOURCE TEMPERATURE ON COP AND COMPRESSOR STATUS IN WATER-TO-AIR HEAT PUMPS [J].
Ceviz, Mehmet Akif ;
Afshari, Faraz ;
Ceylan, Murat ;
Muratcobanoglu, Burak ;
Mandev, Emre ;
Gelen, Gokhan .
HEAT TRANSFER RESEARCH, 2023, 54 (16) :51-66
[5]  
Chuanhong F., 2017, Pet. Refin. Eng.
[6]   Design of single-effect mechanical vapor compression [J].
Ettouney, H .
DESALINATION, 2006, 190 (1-3) :1-15
[7]   Experimental study of forced circulation evaporator in zero discharge desalination process [J].
Farahbod, Farshad ;
Mowla, Dariush ;
Nasr, M. R. Jafari ;
Soltanieh, Mohammad .
DESALINATION, 2012, 285 :352-358
[8]  
Gao J.H., 2019, Research on double-effect evaporation concentration system based on high temperature heat pump
[9]   MVR heat pump distillation coupled with ORC process for separating a benzene-toluene mixture [J].
Gao, Xiaoxin ;
Gu, Qiang ;
Ma, Jiangquan ;
Zeng, Yifan .
ENERGY, 2018, 143 :658-665
[10]  
Gutman E.M., 1994, Mechanochem. Solid Surf., P120