Numerical Design of a Reactor-Heat Exchanger Combined Unit for Ammonia-SrCl2 Thermochemical Storage System

被引:3
作者
Gunasekara, Saman N. [1 ]
Soprani, Stefano [2 ]
Karabanova, Anastasiia [2 ]
Martini, Viktoria [1 ]
Blanchard, Didier [2 ]
机构
[1] KTH Royal Inst Technol, Dept Energy Technol, Stockholm, Sweden
[2] Tech Univ Denmark DTU, Dept Energy Convers & Storage, Roskilde, Denmark
来源
PROCEEDINGS OF THE ISES SOLAR WORLD CONFERENCE 2019 AND THE IEA SHC SOLAR HEATING AND COOLING CONFERENCE FOR BUILDINGS AND INDUSTRY 2019 | 2019年
关键词
Ammonia-SrCl2; absorption; desorption; thermochemical heat storage (TCS); reactor; COMSOL; SORPTION THERMAL BATTERY; ENERGY-STORAGE; RESORPTION SYSTEM; COLD;
D O I
10.18086/swc.2019.24.03
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This work presents the design of a reactor-heat exchanger combined unit using COMSOL transient simulations in 2D for a thermochemical storage (TCS) system of NH3-SrCl2 (absorption-desorption of SrCl2 center dot NH3 and SrCl2 center dot 8NH(3)). TCS with NH3-metal halide reactions is emerging, with many packed-bed reactors often incorporating salt with expanded graphite (EG) to improve thermal conductivity. Similarly, a packed-bed reactor is chosen here using SrCl2-EG composite, for a reaction pressure of 8 bar, accommodating desorption above 82 degrees C and absorption below 79 degrees C. The aim here is to find a simple and cost-effective reactor-heat exchanger (HEX) combined unit to store 0.5 kWh heat (1.1 kg of SrCl2 center dot NH3 forming 1.8 kg of SrCl2 center dot 8NH(3)). From several HEX configurations, the first configuration is modelled here. This is contains three reaction media cylinders (a composite of 87.5% w/w of SrCl2 center dot 8NH(3) in EG) sandwiching two units of tube -in-tube (TinT) HEXs. A stationary study for the heat transfer fluid (HTF) velocity analysis is coupled with a time -dependent study for the reaction phenomena, respectively for the salt-alone and salt-EG composite. For 15 hours reaction time, the reaction advancement (above 0.85) was enhanced significantly in the salt-EG composite, which was only above 0.55 for the salt-only case. The reaction progression is the slowest in the bottom of the innermost reaction media, where the HTF temperature is the lowest. Thus, an additional HEX unit along the center-axis of the reactor appears suitable to reduce the reaction time. As next, the effect of HEX thickness, number of TinT units, as well as other reactor-HEX configurations will be analyzed to choose the optimal setup.
引用
收藏
页码:1300 / 1311
页数:12
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