抛物线槽
集中太阳能
布莱顿循环
按来源划分的电力成本
朗肯循环
热能储存
工艺工程
太阳能
有机朗肯循环
太阳能
核工程
联合循环
发电
可再生能源
环境科学
光电-热混合太阳能集热器
热效率
工程类
机械工程
涡轮机
电气工程
燃烧
功率(物理)
余热
化学
热力学
热交换器
物理
有机化学
作者
Achintya Sharma,Anoop Kumar Shukla,Onkar Singh,Meeta Sharma
标识
DOI:10.1080/01430750.2021.1919552
摘要
Nowadays, solar energy is attempted being utilised extensively to generate electrical power. Solar energy can be employed independently or with fossil fuels to reduce CO2 emission and the Levelized cost of power generation. This paper reviews the advances in thermal power cycles concerning concentrating solar power (CSP) applications. Based on the studies, it is evident that the supercritical steam turbines are an appealing option at a larger scale when employing multiple solar towers combined with heat transfer fluid (HTF). The advancement of the supercritical CO2 Brayton cycle also provides the prospects of lower Levelized cost for getting higher cycle efficiency across a range of capacity at acceptable temperatures. CSP applications to advanced power cycle and heat energy storage provide a superior arrangement to the grid at lower stability cost and high reliability, which helps solar energy make rapid commercial progress; nevertheless, lower prices and higher efficiency are critical.Abbreviations: HTF, Heat Transfer Fluid; CC, Combined Cycle; CSP, Concentrated Solar Power; FPC, Flat Plate Collector; PDC, Parabolic Dish Collector; DSG, Direct Steam Generator; LFR, Linear Fresnel Lenses; ISCC, Integrated Solar Combined Cycle; SPT, Solar Power Tower; TES, Thermal Energy Storage; TET, Turbine entry temperature; ETC, Evacuated Tube Collector; PTC, Parabolic Trough Collector; PCC, Post Combustion Carbon Capture; ORC, Organic Rankine Cycle; GHGs, Green House Gases.
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