Influence of geometrical parameters arrangement on solidification process of ice-on-coil storage system

被引:0
作者
Seyed Soheil Mousavi Ajarostaghi
Kurosh Sedighi
Mojtaba Aghajani Delavar
Sébastien Poncet
机构
[1] Babol Noshirvani University of Technology,Mechanical Engineering Department
[2] Université de Sherbrooke,Mechanical Engineering Department
来源
SN Applied Sciences | 2020年 / 2卷
关键词
Ice-on-coil; Cold storage system; Solidification; Thermal energy system (TES); Numerical simulation; Enthalpy-porosity method;
D O I
暂无
中图分类号
学科分类号
摘要
Ice storage systems are one kind of thermal (cold) storage systems which by shifting the usage from high to low load hours (midnight or morning), balances the period of consumption. In the present investigation, the solidification process is studied in an ice storage system. The considered system is the ice-on-coil type which the ice is formed around the cold wall of coils. The considered ice storage system is a two dimensional square shell and different numbers of heat transfer fluid tubes. Two-dimensional transient numerical simulations are performed by ANSYS FLUENT 18.2. The influences of the tube diameter and number and the arrangement of the tubes on the solidification process are evaluated. Three different tube diameters, including 12, 18, and 24 mm are considered. Also, two different arrangements of tubes, including in-line and triangular arrangements are studied. Results indicate that as the diameter of the tubes decreases or the number of tubes increases at constant mass flowrate of the heat transfer fluid, ice formation speeds up. Also, the triangular arrangement as a staggered arrangement results in faster ice formation in comparison with the in-line arrangement. As a result, an accepted correlation for liquid fraction is presented between the numerical results and predicted values as a function of tube diameter and melting time.
引用
收藏
相关论文
共 88 条
  • [1] Knebel DE(1990)Off-peak cooling with thermal storage ASHRAE J 32 40-44
  • [2] Basecq V(2013)Short-term storage systems of thermal energy for buildings: a review Adv Build Energy Res 7 66-119
  • [3] Michaux G(2015)Modeling and simulation of discharging characteristics of external melt ice-on coil storage system Int J Smart Home 9 179-192
  • [4] Inard C(2016)Numerical heat flux simulations on double-pass solar collector with PCM spheres media Int J Air-Cond Refrig 24 1650010-399
  • [5] Blondeau P(2016)A comparative study on PCM and ice thermal energy storage tank for air-conditioning systems in office buildings Appl Therm Eng 96 391-1747
  • [6] Yi W(2017)Research status of ice-storage air-conditioning system Procedia Eng 205 1741-384
  • [7] Dong W(2017)Experimental and numerical study of thin ring and annular fin effects on improving the ice formation in ice-on-coil thermal storage systems Appl Energy 189 369-260
  • [8] Korti AIN(2005)Numerical study of solidification around staggered cylinders in a fixed space Numer Heat Trans Part A Appl 48 239-87
  • [9] Rahdar MH(2018)The impact of refrigerant inlet temperature on the ice storage process in an ice-on-coil storage plate Energy Procedia 145 82-176
  • [10] Emamzadeh A(2007)Experimental and numerical study on charging processes of an ice-on-coil thermal energy storage system Int J Energy Res 31 158-6386