Page 50 - Defrosting for Air Source Heat Pump
P. 50

40                                          Defrosting for Air Source Heat Pump

         [29] Ye HY, Lee KS. Performance prediction of a fin-and-tube heat exchanger considering air-
             flow reduction due to the frost accumulation. Int J Heat Mass Transf 2013;67:225–33.
         [30] Moallem E, Hong T, Cremaschi L, Fisher DE. Experimental investigation of adverse
             effect of frost formation on microchannel evaporators, Part 1: effect of fin geometry
             and environmental effects. Int J Refrig 2013;36:1762–75.
         [31] Yan QL, Zhu L, Zhang ME, Yan NX, Hui XY. Study on ultrasonic defrost technology of
             refrigeration fan. Trans Chin Soc Agric Mach 2003;34:74–85.
         [32] Li D, Chen Z, Shi M. Effect of ultrasound on frost formation on a cold flat surface in atmo-
             spheric air flow. Exp Therm Fluid Sci 2010;34:1247–52.
         [33] Wang D, Tao T, Xu G, Luo A, Kang S. Experimental study on frosting suppression for a
             finned-tube evaporator using ultrasonic vibration. Exp Therm Fluid Sci 2012;36:1–11.
         [34] Tan HH, Xu GH, Tao TF, Sun XQ, Yao WD. Experimental investigation on the defrosting
             performance of a finned-tube evaporator using intermittent ultrasonic vibration. Appl
             Energy 2015;158:220–32.
         [35] Fei Q, Mao YB. Research on defrost of air cooler by use of compressed air jet sweeping.
             Mech Electr Equipm 2000;5:8–12.
         [36] Sonobe N, Fukiba K, Sato S, Yoshimura Y. Method for defrosting heat exchangers using
             an air-particle jet. Int J Refrig 2015;60:261–9.
         [37] Watters RJ, O’Neal DL, Yang JX. Frost/defrost performance of a three-row fin staged heat
             pump evaporator. ASHRAE Trans 2002;108:318–29.
         [38] Yan WM, Li HY, Wu YJ, Lin JY, Chang WR. Performance of finned tube heat exchangers
             operating under frosting conditions. Int J Heat Mass Transf 2003;46:871–7.
         [39] Sommers AD, Jacobi AM. Air-side heat transfer enhancement of a refrigerator evaporator
             using vortex generation. Int J Refrig 2005;28:1006–17.
         [40] Yang DK, Lee KS, Song S. Fin spacing optimization of a fin-tube heat exchanger under
             frosting conditions. Int J Heat Mass Transf 2006;49:2619–25.
         [41] Lee M, Kim Y, Lee H, Kim Y. Air-side heat transfer characteristics of flat plate finned-
             tube heat exchangers with large fin pitches under frosting conditions. Int J Heat Mass
             Transf 2010;53:2655–61.
         [42] Park JS, Kim DR, Lee KS. Frosting behaviors and thermal performance of louvered fins
             with unequal louver pitch. Int J Heat Mass Transf 2016;95:499–505.
         [43] Yan WM, Li HY, Tsay YL. Thermofluid characteristics of frosted finned-tube heat
             exchangers. Int J Heat Mass Transf 2005;48:3073–80.
         [44] Dong H, Zhao RJ, Yun L, Yi DB. Effect of fin types of outdoor fan-supplied finned-tube
             heat exchanger on periodic frosting and defrosting performance of a residential air-source
             heat pump. Appl Therm Eng 2014;69:251–60.
         [45] Zhang P, Hrnjak PS. Air-side performance evaluation of three types of heat exchangers in
             dry, wet and periodic frosting conditions. Int J Refrig 2009;32:911–21.
         [46] Okoroafor EU, Newborough M. Minimizing frost growth on cold surfaces exposed to
             humid air by means of crosslinked hydrophilic polymeric coatings. Appl Therm Eng
             2000;20:737–58.
         [47] Wu XM, Webb RL. Investigation of the possibility of frost release from a cold surface.
             Exp Therm Fluid Sci 2001;24:151–6.
         [48] Cai L, Wang RH, Hou PX, Zhang XS. Study on restraining frost growth at initial stage by
             hydrophobic coating and hygroscopic coating. Energy Build 2011;43:1159–63.
         [49] Jhee S, Lee KS, Kim WS. Effect of surface treatments on the frosting/defrosting behavior
             of a fin-tube heat exchanger. Int J Refrig 2002;25:1047–53.
         [50] Liu L, Wang HY, Zhang XH, Meng S, Ma CF. An experimental study on minimizing frost
             deposition on a cold surface under natural convection conditions by use of a novel anti-
   45   46   47   48   49   50   51   52   53   54   55