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1.青岛大学机电工程学院 青岛 266071
2. 海信冰箱有限公司 青岛 266071
王德昌,男,教授,青岛大学机电工程学院,0532-85952229,E-mail:wdechang@163.com。研究方向:换热器性能,吸收式制冷系统,热泵与储能。
收稿:2024-09-20,
修回:2024-12-03,
录用:2024-12-06,
网络出版:2025-09-29,
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Qian Puchi,Wang Dechang,Song Qinglu,et al.Experimental Study on Heat Transfer Performance and Pressure Drop of Microchannel Liquid Separation Condenser[J].Journal of Refrigeration,
钱蒲驰,王德昌,宋庆路等.微通道分液冷凝器小流量下的传热性能与压降实验研究[J].制冷学报, DOI:10.12465/issn.0253-4339.20240920003. CSTR: XXXXX.XX.XXX.20240920003.
Qian Puchi,Wang Dechang,Song Qinglu,et al.Experimental Study on Heat Transfer Performance and Pressure Drop of Microchannel Liquid Separation Condenser[J].Journal of Refrigeration, DOI:10.12465/issn.0253-4339.20240920003. CSTR: XXXXX.XX.XXX.20240920003.
制冷剂质量流量为1 g/s以下的低质量流量下分液孔的大小和位置对分液冷凝器的性能有重要影响。对R600a在5种不同微通道分液冷凝器内的传热性能和压降进行了实验研究,对不同制冷剂质量流量、入口空气温度和风量、冷凝压力下5种分液冷凝器的传热性能和压降特性进行分析。根据实验结果,第二隔板开孔分液冷凝器传热性能优于第三隔板开孔分液冷凝器。制冷剂质量流量越大,分液冷凝器制冷剂侧压降减小越明显。制冷剂质量流量为0.60、0.40 g/s时,第二隔板开孔分液冷凝器制冷剂侧压降较未分液冷凝器分别降低21.28%、17.29%。利用综合评价因子
P
EF
对比了不同开孔直径分液冷凝器的性能,分液孔径为1.2 mm的分液冷凝器平均
P
EF
值为1.58,在所有分液冷凝器中最高,综合性能最好。
The size and location of the separating holes at low mass flow rates (
<
1 g/s) have a significant impact on the performance of liquid separation condensers. The heat transfer performance and pressure drop of R600a in five microchannel liquid separation condensers were studied experimentally. Additionally, the heat transfer performance and pressure drop characteristics of the five liquid separation condensers under different refrigerant mass flows, inlet air temperatures and velocities, and condensing pressures were analyzed. According to the experimental results, the heat-exchange performance of the second-partition open-hole separating condenser was better than that of the third-separator open-hole separating condenser. As the mass flow rate of the refrigerant increased, the refrigerant-side pressure drop in the liquid separation condenser decreased significantly. When the refrigerant mass flow rate was 0.60 g/s and 0.40 g/s, the refrigerant-side pressure drop of the second separator liquid separation condenser was 21.28% and 17.29% lower, respectively, than that of the parallel flow condenser. The performances of the liquid separation condensers with different open-hole diameters were compared using the comprehensive evaluation factor
P
EF
. The average
P
EF
value of the liquid separation condenser with a separating hole size of 1.2 mm was 1.58. This was the highest among all the liquid separation condensers and yielded the best comprehensive performance.
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