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Thermodynamic analysis of a novel ammonia-water trilateral Rankine cycle

机译:新型氨水三边朗肯循环的热力学分析

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摘要

In this paper we thermodynamically assess the performance of an ammonia-water Rankine cycle that uses no boiler, but rather the saturated liquid is flashed by a positive displacement expander (e.g., reciprocating, centrifugal, rotating vane, screw or scroll type expander) for power generation. This cycle has no pinch point and thus the exergy of the heat Source can be better used by matching the temperature profiles of the hot and the working fluids in the benefit of performance improvement. The second feature comes from the use of the ammonia-water mixture that offers further opportunity to better match the temperature profiles at the sink level. The influence of the expander efficiency, ammonia concentration and the coolant flow rate is investigated and reported for a case Study. The optimized cycle is then compared to four organic Rankine cycles and a Kalina-type cycle and shows the best performance. It is also shown that, in order to determine the best cycle configuration and parameters, energy efficiency must be used only in conjunction with the amount of the heat recovered from the source. The efficiency of the cycle running with ammonia-water is 0.30 in contrast to steam-only case showing 0.23 exergy efficiency, which means an increment of 7.0% is obtained for the same operating conditions. If cogeneration is used the cycle effectiveness may even be over 70%. The cycle can be applied for low power/low temperature heat recovery from geothermal sources, ocean thermal energy conversion, solar energy or process waste heat, etc.
机译:在本文中,我们热力学评估了不使用锅炉的氨水兰金循环的性能,而是通过容积式膨胀机(例如,往复式,离心式,旋转叶片,螺杆式或涡旋式膨胀机)闪蒸出了饱和液体。代。该循环没有收缩点,因此可以通过匹配热流体和工作流体的温度曲线来更好地利用热源的火用,从而提高性能。第二个特征来自氨水混合物的使用,这提供了进一步的机会来更好地匹配水槽水平的温度曲线。研究并报告了膨胀机效率,氨气浓度和冷却剂流速的影响,并进行了案例研究。然后将优化的循环与四个有机朗肯循环和一个Kalina型循环进行比较,并显示出最佳性能。还表明,为了确定最佳的循环配置和参数,必须仅将能量效率与从热源回收的热量结合使用。氨水循环运行的效率为0.30,而仅蒸汽的情况则显示出0.23的火用效率,这意味着在相同的运行条件下,效率为7.0%。如果使用热电联产,则循环效率甚至可能超过70%。该循环可用于地热资源的低功率/低温热回收,海洋热能转化,太阳能或工艺余热等。

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