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Exergy and Thermoeconomic Analyses of Central Receiver Concentrated Solar Plants Using Air as Heat Transfer Fluid

机译:使用空气作为传热流体的中央接收器集中式太阳能发电厂的火用和热经济分析

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摘要

The latest developments in solar technologies demonstrated that the solar central receiver configuration is the most promising application among concentrated solar power (CSP) plants. In CSPs solar-heated air can be used as the working fluid in a Brayton thermal cycle and as the heat transfer fluid for a Rankine thermal cycle as an alternative to more traditional working fluids thereby reducing maintenance operations and providing the power section with a higher degree of flexibility To supply thermal needs when the solar source is unavailable, an auxiliary burner is requested. This configuration is adopted in the Julich CSP (J-CSP) plant, operating in Germany and characterized by a nominal power of 1.5 MW, the heat transfer fluid (HTF) is air which is heated in the solar tower and used to produce steam for the bottoming Rankine cycle. In this paper, the J-CSP plant with thermal energy storage has been compared with a hybrid CSP plant (H-CSP) using air as the working fluid. Thermodynamic and economic performances of all the simulated plants have been evaluated by applying both exergy analysis and thermoeconomic analysis (TA) to determine the yearly average operation at nominal conditions. The exergy destructions and structure as well as the exergoeconomic costs of products have been derived for all the components of the plants. Based on the obtained results, the thermoeconomic design evaluation and optimization of the plants has been performed, allowing for improvement of the thermodynamic and economic efficiency of the systems as well as decreasing the exergy and exergoeconomic cost of their products.
机译:太阳能技术的最新发展表明,太阳能中央接收器配置是集中式太阳能(CSP)电厂中最有希望的应用。在CSP中,太阳能加热的空气可用作布雷顿(Brayton)热循环中的工作流体,并且可以用作兰金热循环中的传热流体,以替代更传统的工作流体,从而减少维护工作并为动力部分提供更高的程度灵活性的考虑为了在没有太阳能时提供热能需求,需要使用辅助燃烧器。此配置在德国运营的Julich CSP(J-CSP)工厂中采用,其特征是标称功率为1.5 MW,传热流体(HTF)是空气,在太阳能塔中被加热并用于产生蒸汽。触底的兰金循环。在本文中,将具有热能存储的J-CSP工厂与使用空气作为工作流体的混合CSP工厂(H-CSP)进行了比较。通过应用火用分析和热经济分析(TA)来确定标称条件下的年平均运行量,对所有模拟工厂的热力学和经济性能进行了评估。对于植物的所有组成部分,已经得出了产品的火用破坏和结构以及用能的经济成本。基于获得的结果,已经进行了设备的热经济设计评估和优化,从而可以改善系统的热力学和经济效率,并降低其产品的火用和能效经济成本。

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