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Design of solar adsorption refrigeration system with CPC and study on the heat and mass transfer performance

机译:CPC太阳能吸附制冷系统设计与热传质性能研究

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To overcome the problem that the heat source temperature is limited and the lower part of the adsorption tube cannot effectively absorb the solar radiation when solar radiation as the heat source of the adsorption refrigeration system. From the perspective of enhancing the adsorption refrigeration unit tube to absorb solar radiation, thereby strengthening the heat transfer characteristic of adsorption bed, which can improve the efficiency of the refrigeration unit refrigerating capacity and system refrigeration efficiency. Solar adsorption refrigeration system based on CPC was designed and constructed in this paper. The heat and mass transfer performance of the adsorption refrigeration system were studied. The experimental results show that the temperature of the adsorption bed with parabolic concentrating structure can rise to 100°C under low irradiation condition. When the irradiation intensity is 600 w/m~2 and 400 w/m~2, the average temperature rising to desorption temperature reaches 0.67°C and 0.50°C, respectively. It can effectively solve the problem that the conventional adsorption bed is difficult to reach the required desorption temperature due to the low power density of the sunlight. In the experiment, the system COP were 0.166 and 0.143 when the system in the irradiance of 600 w/m~2 and 400 w/m~2.
机译:为了克服热源温度有限的问题,并且吸附管的下部不能在太阳辐射作为吸附制冷系统的热源时有效地吸收太阳辐射。从增强吸附制冷单元管吸收太阳辐射的角度来看,加强吸附床的传热特性,可以提高制冷单元冷冻能力和系统制冷效率的效率。本文设计和构建了基于CPC的太阳能吸附制冷系统。研究了吸附制冷系统的热量和传质性能。实验结果表明,在低辐照条件下,具有抛物型浓缩结构的吸附床的温度可升至100℃。当照射强度为600W / m〜2和400W / m〜2时,平均温度上升到解吸温度达到0.67℃和0.50℃。它可以有效解决由于阳光低功率密度而难以达到所需的解吸温度难以达到所需的解吸温度的问题。在实验中,当系统在600W / m〜2和400W / m〜2的辐照度时,系统COP为0.166和0.143。

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