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Calcium looping in solar power generation plants

机译:太阳能发电厂中的钙循环

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The use of a calcium looping based process as a thermal storage and transportation system for concentrated solar power plants is proposed in this work. This system exploits the reversible calcination-carbonation reaction of limestone and lime. Concentrated solar heat is used to calcine CaCO_3, which is then released as required by carbonating the resulting CaO. The CaO/CaCO_3 system has a high energy density and its high temperature operation allows the use of a gas turbine for power production. This paper presents a first order evaluation of the potential of this application of calcium looping, with particular consideration given to carbonation activity of the sor- bent. A model including a solar calciner and a pressurised fluidised bed carbonator feeding a gas turbine in an open Brayton cycle has been developed. Results from the model indicate that electric efficiencies of 40-50% could be achieved with sorbent carbonation activities between 15% and 40%. Higher sorbent activity levels do not affect efficiency but would lead to lower capital costs. According to the model, CaO activity levels above 17% lead to significant reductions in the required storage volume over existing systems, such as molten salts. In principle, high efficiency and smaller footprint solar thermal power plants are possible with calcium looping. Such plants would have no process use of water and could be used as baseload, variable demand load or microgrid systems.
机译:在这项工作中,提出了使用基于钙循环的工艺作为集中式太阳能发电厂的储热和运输系统。该系统利用了石灰石和石灰的可逆煅烧-碳化反应。集中的太阳能用于煅烧CaCO_3,然后根据需要通过将生成的CaO碳化来释放。 CaO / CaCO_3系统具有高能量密度,并且其高温运行允许使用燃气轮机发电。本文介绍了钙环化应用潜力的一阶评估,特别考虑了吸附剂的碳酸化活性。已经开发出包括太阳能煅烧炉和以开放布雷顿循环向燃气轮机供气的加压流化床碳酸化器的模型。该模型的结果表明,吸附剂碳酸化活性在15%至40%之间时,可以达到40-50%的电效率。较高的吸附剂活性水平不会影响效率,但会降低资本成本。根据该模型,CaO活性水平高于17%导致与熔融盐等现有系统相比所需的存储量显着减少。原则上,通过钙循环可以实现高效率和较小占地面积的太阳能热电厂。这样的工厂将不需要过程用水,并且可以用作基本负荷,可变需求负荷或微电网系统。

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