西安交通大学能源与动力工程学院,西安,710049
网络首发:2014-03-10,
纸质出版:2014
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刘云, 赵日晶, 黄东. 并联双循环风冷冰箱冷冻/冷藏切换时制冷剂迁移研究[J]. 西安交通大学学报, 2014,48(3):17-21.
Refrigerant Migration During Switching of a Parallel Cycle Frost-Free Refrigerator-Freezer[J]. 2014, 48(3): 17-21.
刘云, 赵日晶, 黄东. 并联双循环风冷冰箱冷冻/冷藏切换时制冷剂迁移研究[J]. 西安交通大学学报, 2014,48(3):17-21. DOI: 10.7652/xjtuxb201403004.
Refrigerant Migration During Switching of a Parallel Cycle Frost-Free Refrigerator-Freezer[J]. 2014, 48(3): 17-21. DOI: 10.7652/xjtuxb201403004.
针对并联双循环风冷冰箱在冷冻/冷藏切换时的制冷剂迁移特性进行了实验研究
该冰箱主要由压缩机、蒸发器、节流装置及冷凝器组成。冷藏、冷冻空间分别拥有独立的蒸发器、风机及主风道
冷藏、冷冻室有各自的感温包。依据蒸发器温度变化
冷冻向冷藏切换时的制冷剂迁移过程依次分压力平衡、制冷剂迁出冷冻蒸发、制冷剂迁移至冷藏蒸发这3个阶段。研究表明:阶段1
低压压力由冷冻蒸发压力向冷藏蒸发压力攀升; 阶段2
冷藏蒸发器内基本无两相段
制冷量较少; 阶段3
冷藏蒸发器出现稳定的两相段
且两相段长度不断增大
制冷量逐渐增多; 冷冻向冷藏切换的过渡过程时长约为冷藏运行的23%
耗电量为20%
获取的冷量仅约3.4%
即存在较大的制冷剂迁移损失; 冷藏向冷冻切换的过渡过程对冰箱整体性能几乎无影响。该结果可为风冷变频多门冰箱设计提供参考。
The refrigerant migration during the operation switching of a parallel cycle frost-free refrigerator-freezer was experimentally studied. The refrigerator-freezer mainly consists of a compressor
two evaporators
two capillary tubes and a condenser. The refrigeration zone and the freezing zone have separate evaporators
fans
wind tunnels
and temperature wraps. The results show that the process of the freezing operation switching to the refrigeration operation can be divided into three stages according to the temperature of two evaporators
i.e.
pressure equilibrium
refrigerant emigrating from the F-evaporator
and refrigerant immigrating to the R-evaporator. In the first stage
the pressure of the low side begins to rise from the freezing evaporating pressure to the refrigeration evaporating pressure. In the second stage
the two-phase state of the refrigerant occurs slightly in the R-evaporator most of the time and the capacity is very small. In the third stage
the refrigerant in the R-evaporator begins to keep the stable two-phase state and the capacity increases with the extending of the two-phase. The switching from the freezing operation to the refrigeration operation possesses 23% of the whole refrigeration operation time while the energy consumption and the capacity in this process are 20% and 3.4% of the total
respectively
indicating that the process has great migrating loss. In addition
the effect of the refrigerant migration switching from the refrigeration operation to the freezing operation on the system performance can be ignored.
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YOON W J, JUNG H W, CHUNG H J. Performance optimization of a two-circuit cycle with parallel evaporators for a domestic refrigerator-freezer[J]. International Journal of Refrigeration, 2011, 34(1): 216-224.
卢智利, 丁国良. 蒸发器并联双循环冰箱的温度与分时运行控制策略Ⅰ: 理论分析[J]. 上海交通大学学报, 2006, 40(2): 267-271.
LU Zhili, DING Guoliang. Temperature and time-sharing running combination control strategy of two-circuit cycle refrigerator-freezer with parallel evaporators Ⅰ: theoretical analysis[J]. Journal of Shanghai Jiaotong University, 2006, 40(2): 267-271.
卢智利, 丁国良. 蒸发器并联双循环冰箱的温度与分时运行控制策略Ⅱ: 实验验证[J]. 上海交通大学学报, 2006, 40(2): 272-281.
LU Zhili, DING Guoliang. Temperature and time-sharing running combination control strategy of two-circuit cycle refrigerator-freezer with parallel evaporatorsⅡ: experimental verification[J]. Journal of Shanghai Jiaotong University, 2006, 40(2): 272-281.
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