Centrifugal compressor design and cycle analysis of large-scale high temperature heat pumps using hydrocarbons

被引:10
作者
Uusitalo, Antti [1 ]
Jaatinen-Varri, Ahti [1 ]
Turunen-Saaresti, Teemu [1 ]
Honkatukia, Juha [1 ]
Tiainen, Jonna [2 ]
机构
[1] LUT Univ, Sch Energy Syst, Lappeenranta, Finland
[2] Yaskawa Environm Energy Switch, Lappeenranta, Finland
关键词
High temperature heat pump; Waste heat upgrading; Working fluid; Centrifugal compressor; TURBOMACHINERY DESIGN; REFRIGERATION CYCLE; PERFORMANCE; PREDICTION; RECOVERY; SWEDISH; SYSTEM; MODEL;
D O I
10.1016/j.applthermaleng.2024.123035
中图分类号
O414.1 [热力学];
学科分类号
摘要
Using natural refrigerants in heat pumps, including hydrocarbons, is becoming attractive because of the tightening regulations concerning synthetic refrigerants. In the literature there is lack of studies investigating detailed component design, including compressor design when using hydrocarbons. This study investigates numerically centrifugal compressor design with hydrocarbons for large-scale high -temperature heat pumps. The compressor analysis was combined with a thermodynamic analysis of a two -stage heat pump. The effect of temperature lift and flash intercooler temperature on compressor sizing, rotational speed, efficiency, axial force, and Mach number were investigated. Generally, the use of hydrocarbons with five carbon atoms resulted in higher coefficient of performance and required lower compressor rotational speeds and larger compressor dimensions when compared to the hydrocarbons with four carbon atoms. The simulated rotational speeds were ranging from 8 krpm to 30 krpm, impeller diameters from 0.15 m to over 0.7 m and compressor efficiencies from 77% to over 85%. The use of cyclic molecules, namely cyclopentane and cyclobutene resulted in the highest heat pump coefficient of performance. Also, the flash intercooler temperature had a notable effect on the compressor design and axial force which has to be taken into account in heat pump cycle design.
引用
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页数:18
相关论文
共 70 条
[31]  
JAPIKSE D, 1982, P 1 INT C TURB TURB, P143
[32]  
Johnson Ilona., 2008, Technology and opportunities in US industry
[33]   LOSSES IN VANELESS DIFFUSERS OF CENTRIFUGAL COMPRESSORS AND PUMPS - ANALYSIS EXPERIMENT AND DESIGN [J].
JOHNSTON, JP ;
DEAN, RC .
JOURNAL OF ENGINEERING FOR POWER, 1966, 88 (01) :49-&
[34]   Optimal temperature between high and low stage cycles for R134a/R410A cascade heat pump based water heater system [J].
Kim, Dong Ho ;
Park, Han Saem ;
Kim, Min Soo .
EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2013, 47 :172-179
[35]   Techno-economic analysis of high-temperature heat pumps with low-global warming potential refrigerants for upgrading waste heat up to 150 °C [J].
Kosmadakis, George ;
Arpagaus, Cordin ;
Neofytou, Panagiotis ;
Bertsch, Stefan .
ENERGY CONVERSION AND MANAGEMENT, 2020, 226
[36]   Development of one-dimensional model for initial design and evaluation of oil-free CO2 turbo-compressor [J].
Kus, Bartosz ;
Neksa, Petter .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2013, 36 (08) :2079-2090
[37]  
Larjola J., 1988, Publ. No. EN B-61.
[38]   Supercritical Carbon Dioxide turbomachinery design for water-cooled Small Modular Reactor application [J].
Lee, Jekyoung ;
Lee, Jeong Ik ;
Yoon, Ho Joon ;
Cha, Jae Eun .
NUCLEAR ENGINEERING AND DESIGN, 2014, 270 :76-89
[39]  
Lemmon E. W., 2010, NIST Standard Reference Database 23: Reference Fluid Thermodynamic And Transport Properties-REFPROP, Version 10.0, DOI [10.18434/T4D303, DOI 10.18434/T4D303]
[40]   Assessment of the low-GWP refrigerants R600a, R1234ze(Z) and R1233zd(E) for heat pump and organic Rankine cycle applications [J].
Longo, Giovanni A. ;
Mancin, Simone ;
Righetti, Giulia ;
Zilio, Claudio ;
Brown, J. Steven .
APPLIED THERMAL ENGINEERING, 2020, 167