A new method of defrosting evaporator coils

被引:25
作者
Mader, G. [1 ]
Thybo, C. [1 ]
机构
[1] Danfoss AS, Thermodynam & Prod Concepts, DK-6430 Nordborg, Denmark
关键词
Heat pump; Defrost; Expansion valve; Energy efficiency; Microchannel heat exchanger; TUBE HEAT-EXCHANGERS; FROSTING CONDITIONS; PERFORMANCE; PUMP; FIN; GROWTH; SIMULATION; MODEL;
D O I
10.1016/j.applthermaleng.2012.01.033
中图分类号
O414.1 [热力学];
学科分类号
摘要
A new method is presented to defrost evaporator coils of heat pumps using air as a heat source. At low outdoor temperatures the evaporation temperature can drop below the freezing point of water, the water vapor in the air then freezes on the outer surface of the coil. This increases air side pressure drop and reduces the heat transfer capability of the evaporator coil, leading to a decrease in system efficiency. Long frost build-up times would lead to a partly or totally blocked evaporator coil, rendering the system inoperable. To maintain the functionality of the system it is therefore necessary to remove the frost regularly. For a reversible air conditioning system this is typically done by reversing the flow of the system. In the reversed mode the outdoor coil serves as a condenser, hereby melting the frost on the coil surface. Each of these defrost cycles however further reduces the system efficiency substantially. The new method uses an actively distributing valve which is able to feed parallel evaporator passes individually. With this valve single evaporator circuits are regularly shut off. While no refrigerant is evaporated in a closed circuit, the coil surface temperature increases and the flow of the ambient air is sufficient to defrost this part of the evaporator as long as the air temperature is above 0 degrees C. Experimental results show that under standard frost conditions the evaporator can be kept frost-free and even under severe conditions most of the highly inefficient system reversals can be avoided. Thereby system efficiency is increased significantly. (C) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:78 / 85
页数:8
相关论文
共 20 条
[1]   Modelling and experimental validation of the hot-gas defrost process of an air-cooled evaporator [J].
Alberto Dopazo, J. ;
Fernandez-Seara, Jose ;
Uhia, Francisco J. ;
Diz, Ruben .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 2010, 33 (04) :829-839
[2]  
[Anonymous], 2008, 210240 AHRI
[3]   Experimental study on frost growth and dynamic performance of air source heat pump system [J].
Guo, Xian-Min ;
Chen, Yi-Guang ;
Wang, Wei-Hua ;
Chen, Chun-Zheng .
APPLIED THERMAL ENGINEERING, 2008, 28 (17-18) :2267-2278
[4]   PERFORMANCE OF FINNED-TUBE HEAT-EXCHANGERS UNDER FROSTING CONDITIONS .1. SIMULATION-MODEL [J].
KONDEPUDI, SN ;
ONEAL, DL .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 1993, 16 (03) :175-180
[5]   EFFECT OF FROST GROWTH ON THE PERFORMANCE OF LOUVERED FINNED TUBE HEAT-EXCHANGERS [J].
KONDEPUDI, SN ;
ONEAL, DL .
INTERNATIONAL JOURNAL OF REFRIGERATION-REVUE INTERNATIONALE DU FROID, 1989, 12 (03) :151-158
[6]   A study on the performance enhancement of heat pump using electric heater under the frosting condition: Heat pump under frosting condition [J].
Kwak, Kyungmin ;
Bai, Cheolho .
APPLIED THERMAL ENGINEERING, 2010, 30 (6-7) :539-543
[7]   The effects of design and operating factors on the frost growth and thermal performance of a flat plate fin-tube heat exchanger under the frosting condition [J].
Lee, KS ;
Kim, WS .
KSME INTERNATIONAL JOURNAL, 1999, 13 (12) :973-981
[8]   Dynamic simulation of air-source heat pump during hot-gas defrost [J].
Liu, ZQ ;
Tang, GF ;
Zhao, FY .
APPLIED THERMAL ENGINEERING, 2003, 23 (06) :675-685
[9]  
Mader G., 2010, DKV TAG MAGD
[10]  
Mei V.C., 2002, ASHRAE Transactions, V108