Solar adsorption cooling system operating by activated–carbon–ethanol bed

Mena Safaa Mohammed, Nibal Fadel Farman
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Abstract

One efficient way to convert small thermally energized into effective cooling is through adsorption cooling technology, which increases energy efficiency and reduces environmental pollution.  This study's primary goal is to hypothetically examine the thermal coefficient of performing the solar adsorptive refrigerator machine operated with an activating carbon/Ethanol operating dual. The impact of different operating situations and design factors on the machine's performance is inspected and evaluated. The present double-bed solar energy adsorptive-cooler unit is modeled by thermodynamic methodology.  Then, it was analyzed to evaluate its effectiveness work under Baghdad climate conditions. For the current study, the two-bed solar adsorption cooling unit with 0.5 kW capacity input heat 11893 that operates at 5 °C for the evaporator and 45 °C for the condenser is presented. The Engineering-Equation-Solver (EES) simulation program was created and used to solve the modeling equations that predict the optimal cycle performance and evaluate the optimum reasonable values of the operation parameters of the proposed system. The pressure range for the refrigeration cycle is 2.408 kPa for the evaporation state and 23.14 kPa for the condensation state. The findings demonstrate that an optimum coefficient of performance (COP) is 0.702 at 95 °C, a 20% performance increase, which generates 39.4 of cooling water. It produced 1 kg of chilled water for 2.463 kg of activated carbon at a temperature of 5°C. The improved solar-powered adsorption systems and refrigeration technologies are appealing substitutes that can satisfy energy demands in addition to meeting needs for cooling, ice production, air conditioning, and refrigeration preservation and safeguarding of the environment with Iraq's climate conditions.
利用活性碳-乙醇床运行的太阳能吸附冷却系统
将小热能转化为有效冷却的一种有效方法是通过吸附冷却技术,这种技术可以提高能源效率并减少环境污染。 本研究的主要目标是假设性地检验太阳能吸附式制冷机在活性炭/乙醇双重操作下的热系数。检查和评估了不同运行情况和设计因素对机器性能的影响。本双层太阳能吸附式制冷机采用热力学方法建模。 然后,对其进行了分析,以评估其在巴格达气候条件下的工作效果。在本次研究中,介绍了双床太阳能吸附冷却装置,其输入热118图库彩图开奖结果为 0.5 千瓦,蒸发器工作温度为 5 °C,冷凝器工作温度为 45 °C。我们创建了工程方程求解器(EES)模拟程序,用于求解预测最佳循环性能的建模方程,并评估拟议系统运行参数的最佳合理值。制冷循环的压力范围为:蒸发态 2.408 kPa,冷凝态 23.14 kPa。研究结果表明,在 95 °C 时,最佳性能系数(COP)为 0.702,性能提高了 20%,可产生 39.4 的冷却水。在温度为 5°C 时,2.463 千克活性炭可产生 1 千克冷却水。改进后的太阳能吸附系统和制冷技术是很有吸引力的替代品,除了满足制冷、制 冰、空调和冷藏需求外,还能保护伊拉克气候条件下的环境。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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