Experimental Study of Domestic Refrigerator Performance Improvement with Evaporative Condenser

IF 0.8 Q4 THERMODYNAMICS
Kawal Preet Singh Khalsa, S. Sadhu
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引用次数: 2

Abstract

Evaporation of defrosted water in household refrigerators and condenser waste heat utilization has been reported by many researchers but limited literature is available on the study of evaporative cooling in domestic refrigerators (condenser waste heat utilization for defrost water evaporation) with helical coil heat exchangers. This paper is concerned with evaluating domestic refrigerator performance by employing an evaporative helical coil heat exchanger before hot wall condenser which is utilized for evaporation of defrost water and reducing the superheated refrigerant temperature to condensing temperature to reduce the condenser load and improve the overall performance of a domestic refrigerator. Results show that evaporative cooling increases COP of the system by 25.3%, reduces the energy consumption of the refrigerator by 7.3% and the compressor run time by 10.6%. These experimental results also revealed that using two different thermal conductivity tube materials for evaporative helical coil condenser (Copper tube and Zinc coated steel tube) provided with less wall thickness (0.2[Formula: see text]mm) PVC coating results in good agreement for the same evaporation rate of defrosted water.
蒸发式冷凝器改善家用冰箱性能的实验研究
家用冰箱除霜水蒸发和冷凝器余热利用的研究已经有很多报道,但利用螺旋盘管换热器研究家用冰箱的蒸发冷却(冷凝器余热蒸发利用除霜水蒸发)的文献很少。本文研究了在热壁冷凝器前采用蒸发式螺旋盘管换热器对除霜水进行蒸发,将过热制冷剂温度降至冷凝温度,从而降低冷凝器负荷,提高家用冰箱整体性能的方法。结果表明,蒸发冷却可使系统COP提高25.3%,制冷机能耗降低7.3%,压缩机运行时间减少10.6%。这些实验结果还表明,蒸发式螺旋盘管冷凝器采用两种不同导热系数的管材(铜管和镀锌钢管),其壁厚较小(0.2[公式:见文]mm), PVC涂层的除霜水蒸发速率相同,结果一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.70
自引率
10.00%
发文量
0
期刊介绍: As the only international journal in the field of air-conditioning and refrigeration in Asia, IJACR reports researches on the equipments for controlling indoor environment and cooling/refrigeration. It includes broad range of applications and underlying theories including fluid dynamics, thermodynamics, heat transfer, and nano/bio-related technologies. In addition, it covers future energy technologies, such as fuel cell, wind turbine, solar cell/heat, geothermal energy and etc.
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