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Improving thermal efficiency of hydrate-based heat engine generating renewable energy from low-grade heat sources using a crystal engineering approach

机译:使用晶体工程方法提高从低品位热源产生可再生能源的水合物基热机的热效率

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The development of the eco-friendly technology generating energy will be a gradual requirement all over the world to replace thermal power releasing CO_2 and nuclear power for which the wastes are disposed of with great difficultly. The hydrate-heat engine is a new cycle obtaining mechanical work from temperature differences that normally cannot generate energy, for example, heat differences between the top and bottom seawater. Although the hydrate cycle is a more sustainable power generation system than typically used Rankine cycle from the aspect of using environmental harmless working media, this new cycle has an issue as the low thermal efficiency. To increase the thermal efficiency, the performance of the hydrate-based heat engine utilizing structure II and H hydrates is theoretically evaluated for various models of low-grade heat sources. The results showed that the structure II and H hydrates formed by adding large guest molecule compounds to a second small guest gas system were effective in improving thermal efficiency. Especially, the double hydrate with Kr and cyclopentane enable the hydrate cycle to perform as efficiently as Rankine cycle, having the thermal efficiency around 3.0%, for the ocean thermal energy conversion in the temperature range from 282 K to 293 K.
机译:发展能源友好型环保技术将成为世界范围内逐步取代热能释放的CO_2和核能的一项渐进要求,而对于这些热能释放的CO_2和核能而言,其处理起来非常困难。水合物-热力发动机是一个新的循环,其通过通常无法产生能量的温差(例如顶部和底部海水之间的温差)获得机械功。尽管从使用对环境无害的工作介质的角度来看,水合物循环是比通常使用的兰金循环更可持续的发电系统,但是这种新循环具有热效率低的问题。为了提高热效率,理论上针对各种低品位热源模型评估了利用结构II和H水合物的水合物基热机的性能。结果表明,通过向第二个小的客气系统中添加大客体分子化合物而形成的结构II和H水合物有效地提高了热效率。尤其是,在282 K至293 K的温度范围内进行海洋热能转换时,具有Kr和环戊烷的双重水合物使水合物循环能够像兰金循环一样高效地运行,热效率约为3.0%。

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