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Feasibility of using ammonia-water mixture in high temperature concentrated solar power plants with direct vapour generation

机译:用直接蒸汽产生高温浓缩太阳能发电厂中氨水混合物的可行性

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Concentrated solar power plants have attracted an increasing interest in the past few years-both with respect to the design of various plant components, and extending the operation hours by employing different types of storage systems. One approach to improve the overall plant performance is to use direct vapour generation with water/steam as both the heat transfer fluid in the solar receivers and the cycle working fluid. This enables to operate the plant with higher turbine inlet temperatures. Available literature suggests that it is feasible to use ammonia-water mixture at high temperatures without corroding the equipment by using suitable additives with the mixture. This paper assesses the thermodynamic feasibility of using ammonia-water mixture in high temperature (450 °C) and high pressure (over 100 bar) concentrated solar power plants with direct vapour generation. The following two cases are compared for the analysis: a simple Rankine cycle and an ammonia-water cycle with a separator for varying the ammonia mass fraction within the cycle. Thermodynamic simulations are performed using Aspen Plus and MATLAB, and performances in terms of overall plant efficiency are evaluated. The comparison between the two cycles when operating from a two-tank molten-salt storage system is also presented. The results suggest that the ammonia-water mixtures show a clear advantage while operating from storage but the simple Rankine cycle outperforms the ammonia-water cycle when the heat input is from solar receiver only.
机译:集中的太阳能发电厂在过去几年中吸引了越来越多的兴趣 - 两者都相对于各种植物部件的设计,并通过采用不同类型的储存系统来扩展操作时间。一种改善整体植物性能的方法是使用与水/蒸汽的直接蒸汽产生,作为太阳能接收器中的传热流体和循环工作流体。这使得能够用更高的涡轮机入口温度操作工厂。可用文献表明,在高温下使用氨水混合物在不使用与混合物中的合适添加剂进行腐蚀而不腐蚀设备是可行的。本文评估了在高温(450℃)中使用氨水混合物的热力学可行性,高压(超过100巴)浓缩太阳能发电厂,具有直接蒸气。比较以下两种情况,分析:简单的兰氏菌循环和具有分离器的氨水循环,用于在循环内改变氨质量分数。热力学模拟使用Aspen Plus和Matlab进行,评估整体植物效率方面的性能。还介绍了从双罐熔盐储存系统操作时的两个循环之间的比较。结果表明,氨水混合物在储存过程中出现明显的优势,但是当热量输入来自太阳能接收器时,简单的兰氏峰循环越高。

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