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Performance analysis of ventilation systems with desiccant wheel cooling based on exergy destruction

机译:基于火用破坏的带有干燥剂轮冷却的通风系统性能分析。

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This paper investigates the performances of ventilation systems with desiccant wheel cooling from the perspective of exergy destructions. Based on the inherent influencing factors for exergy destructions of heat and mass transfer and heat sources, provide guidelines for efficient system design. First, performances of a basic ventilation system are simulated, which is operated at high regeneration temperature and low coefficient of performance (COP). Then, exergy analysis of the basic ventilation system shows that exergy destructions mainly exist in the heat and mass transfer components and the heat source. The inherent influencing factors for the heat and mass transfer exergy destruction are heat and mass transfer capacities, which are related to over dehumidification of the desiccant wheel, and unmatched coefficients, which represent the uniformity of the temperature or humidity ratio differences fields for heat and mass transfer components. Based on these findings, two improved ventilation systems are suggested. For the first system, over dehumidification is avoided and unmatched coefficients for each component are reduced. With lower heat and mass transfer exergy destructions and lower regeneration temperature, COP and exergy efficiency of the first system are increased compared with the basic ventilation system. For the second system, a heat pump, which recovers heat from the process air to heat the regeneration air, is adopted to replace the electrical heater and cooling devices. The exergy destruction of the heat pump is considerably reduced as compared with heat source exergy destruction of the basic ventilation system and the first system, leading to a great enhancement of COP and exergy efficiency. (C) 2016 Published by Elsevier Ltd.
机译:本文从火用能破坏的角度研究了带有干燥剂轮冷却的通风系统的性能。基于热量和传质以及热源的火用破坏的内在影响因素,为有效的系统设计提供指导。首先,模拟了基本通风系统的性能,该系统在较高的再生温度和较低的性能系数(COP)下运行。然后,对基本通风系统的火用分析表明,火用破坏主要存在于传热传质组件和热源中。传热和传热本能破坏的内在影响因素是传热和传质能力,这与干燥剂轮的过度除湿有关,系数不匹配,代表了传热和传质的温度或湿度比差场的均匀性。传输组件。基于这些发现,提出了两种改进的通风系统。对于第一系统,避免了过度除湿并且减少了每个组件的不匹配系数。与基本通风系统相比,由于较低的热量和传质传递的能值破坏和较低的再生温度,第一个系统的COP和能值效率得到提高。对于第二个系统,采用了热泵来代替电加热器和冷却设备,该热泵从过程空气中回收热量以加热再生空气。与基本通风系统和第一个系统的热源火用破坏相比,热泵的火用破坏大大减少,从而大大提高了COP和火用效率。 (C)2016由Elsevier Ltd.出版

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