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Design and evaluation of a micro combined cooling, heating, and power system based on polymer exchange membrane fuel cell and thermoelectric cooler

机译:基于聚合物交换膜燃料电池和热电冷却器的微冷热电联产系统的设计与评估

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摘要

The main purpose of the present study is to propose a combined cooling; heating and power cycle in microscale to be portable, maintenance free, undetectable, environmentally friendly and can provide the energy demand of a single-family when access to energy suppliers is limited. The prime mover of the cycle is a polymer exchange membrane fuel cell. Heat is recovered from a low-quality waste of 80 degrees C and water condensate is also recovered from the electrochemical products for domestic hot water. A thermoelectric cooler is used as the cooling system. The mathematical models of the fuel cell and the thermoelectric cooler are coded and the results of simulations are validated with the published data in the literature. The results show that the models are qualified and they can be trusted to be combined for proposing a new micro combined cooling, heating, and power system. The results show that the cycle is capable of producing 2.79 kW of electricity, 3.04 kW of heat and 26.8 W of cooling. The overall efficiency of the trigeneration cycle has reached 76.94% and a fuel saving of 43.25% is achieved. The exergy efficiency is 53.86%. In addition, the carbon dioxide production has reduced about 2.58 kg. hr(-1). The overall weight of the proposed cycle is estimated less than 100 kg. The exergy analysis introduces the fuel cell as the most exergy destructor.
机译:本研究的主要目的是提出一种组合冷却方法。微型供暖和电源循环可携带,免维护,不可检测,环境友好,并且在限制能源供应商访问时可以满足单户家庭的能源需求。循环的原动力是聚合物交换膜燃料电池。从80摄氏度的劣质废料中回收热量,还从家用热水的电化学产品中回收冷凝水。热电冷却器用作冷却系统。对燃料电池和热电冷却器的数学模型进行编码,并用文献中公开的数据验证仿真结果。结果表明,这些模型是合格的,可以信任地将它们组合起来以提出新的微型组合式制冷,供暖和电力系统。结果表明,该循环能够产生2.79 kW的电能,3.04 kW的热量和26.8 W的冷却能力。三代循环的整体效率已达到76.94%,节油效果达到43.25%。火用效率为53.86%。另外,二氧化碳的产生减少了约2.58kg。 hr(-1)。提议的循环的总重量估计少于100千克。火用分析将燃料电池介绍为最大的火用破坏者。

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