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SIMULATION STUDY OF THE HEAT AND MASS RECOVERY ON THE PERFORMANCE OF ADSORPTION COOLING SYSTEMS

机译:吸附冷却系统性能的热质回收模拟研究

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In this study, simulation was conducted to investigate the effect of mass recovery, heat recovery, pre-heating and pre-cooling time on the system performance of a double-bed adsorption cooling system. Pressures of different system components were considered in the simulation. The adsorbent-adsorbate pair used was silica-gel and water. The heating and cooling temperatures were selected to be 85°C and 27°C respectively. Both the adsorption and desorption phase times were set at 15 minutes. The coefficient of performance (COP) and specific cooling power (SCP) were used to quantify the performance of the system. From the simulation, the basic cycle provided COP and SCP of 0.20 and 40.9W/kg respectively. By conducting heat recovery for 120 seconds, the system COP was largely increased by 99% to 0.40 compared to the basic cycle. The SCP was also increased to 42.3W/kg. Mass recovery, however, did not have too much effect on the system performance. The COP and SCP only increased by 4.5% and 3.9% respectively when conducting mass recovery for 4.7 seconds. For conducting heat and mass recovery, the COP and SCP were increased to 0.36 and 44.68W/kg, respectively. Pre-heating and pre-cooling can also be beneficial in improving both COP and SCP. The COP and SCP were increased by 14.5% and 10.1% respectively, to 0.23 and 45.0W/kg by conducting pre-heating and pre-cooling for 50.3 seconds. The combinations of these processes were also studied. It is suggested heat and mass recovery then preheating and pre-cooling should be conducted to improve COP and SCP. The improvements showed 31.2% for COP, increasing to 0.27, and 11.9% for SCP, increasing to 45.7W/kg.
机译:在这项研究中,进行了仿真以研究质量回收,热回收,预热和预冷却时间对双层吸附冷却系统的系统性能的影响。在仿真中考虑了不同系统组件的压力。所使用的吸附剂-吸附剂对是硅胶和水。加热和冷却温度分别选择为85℃和27℃。吸附和解吸阶段时间均设置为15分钟。性能系数(COP)和比冷却功率(SCP)用于量化系统性能。通过模拟,基本循环的COP和SCP分别为0.20和40.9W / kg。通过进行120秒的热回收,系统COP与基本循环相比大大提高了99%,达到0.40。 SCP也增加到42.3W / kg。但是,批量恢复对系统性能没有太大影响。当进行4.7秒的质量恢复时,COP和SCP仅分别增加了4.5%和3.9%。为了进行热量和质量回收,COP和SCP分别提高到0.36和44.68W / kg。预热和预冷在改善COP和SCP方面也可能都是有益的。通过进行50.3秒的预热和预冷,COP和SCP分别增加了14.5%和10.1%,分别为0.23和45.0W / kg。还研究了这些过程的组合。建议进行热量和质量回收,然后进行预热和预冷以提高COP和SCP。改进显示,COP的31.2%,增至0.27,SCP的11.9%,增至45.7W / kg。

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