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Modelling and performance study of a continuous adsorption refrigeration system driven by parabolic trough solar collector

机译:抛物槽式太阳能集热器驱动的连续吸附式制冷系统的建模与性能研究

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This article suggests a numerical study of a continuous adsorption refrigeration system consisting of two adsorbent beds and powered by parabolic trough solar collector (PTC). Activated carbon as adsorbent and ammonia as refrigerant are selected. A predictive model accounting for heat balance in the solar collector components and instantaneous heat and mass transfer in adsorbent bed is presented. The validity of the theoretical model has been tested by comparison with experimental data of the temperature evolution within the adsorber during isosteric heating phase. A good agreement is obtained. The system performance is assessed in terms of specific cooling power (SCP), refrigeration cycle COP (COP_(cycle)) and solar coefficient of performance (COP_s), which were evaluated by a cycle simulation computer program. The temperature, pressure and adsorbed mass profiles in the two adsorbers have been shown. The influences of some important operating and design parameters on the system performance have been analyzed.rnThe study has put in evidence the ability of such a system to achieve a promising performance and to overcome the intermittence of the adsorption refrigeration systems driven by solar energy. Under the climatic conditions of daily solar radiation being about 14 MJ per 0.8 m~2 (17.5 MJ/m~2) and operating conditions of evaporating temperature, T_(ev) = 0 ℃, condensing temperature, T_(com) = 30 ℃ and heat source temperature of 100 ℃, the results indicate that the system could achieve a SCP of the order of 104 W/kg, a refrigeration cycle COP of 0.43, and it could produce a daily useful cooling of 2515 kJ per 0.8 m~2 of collector area, while its gross solar COP could reach 0.18.
机译:本文建议对由两个吸附床组成并由抛物槽太阳能集热器(PTC)供电的连续吸附制冷系统进行数值研究。选择活性炭作为吸附剂,氨作为制冷剂。提出了一种预测模型,该模型考虑了太阳能收集器组件中的热量平衡以及吸附床中的瞬时热量和质量传递。通过与等温加热阶段吸附器内温度变化的实验数据进行比较,测试了理论模型的有效性。获得了良好的协议。根据比冷却功率(SCP),制冷循环COP(COP_(cycle))和太阳能性能系数(COP_s)评估系统性能,这些性能由循环模拟计算机程序评估。已经显示了两个吸附器中的温度,压力和吸附质量曲线。分析了一些重要的操作和设计参数对系统性能的影响。研究表明,这种系统具有实现令人鼓舞的性能并克服太阳能驱动的吸附式制冷系统的间歇性的能力。在每天太阳辐射为每0.8 m〜2(17.5 MJ / m〜2)约14 MJ的气候条件下以及蒸发温度T_(ev)= 0℃,冷凝温度T_(com)= 30℃的工作条件下热源温度为100℃,结果表明该系统的SCP可达到104 W / kg的量级,制冷循环COP为0.43,每天每0.8 m〜2可产生2515 kJ的有用制冷量的集热面积,而其太阳能总COP可能达到0.18。

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