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Thermodynamic Study of Advanced Supercritical Carbon Dioxide Power Cycles for High Performance Concentrating Solar Power Systems

机译:高性能聚光太阳能系统高级超临界二氧化碳功率循环的热力学研究

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In 2011, the U.S. Department of Energy (DOE) initiated a "SunShot Concentrating Solar Power R&D" program to develop technologies that have the potential for much higher efficiency, lower cost, and/or more reliable performance than existing CSP systems. The DOE seeks to develop highly disruptive Concentrating Solar Power (CSP) technologies that will meet 6¢/kWh cost targets by the end of the decade, and a high-efficiency, low-cost thermal power cycle is one of the important components to achieve the goal. Supercritical CO_2 (S-CO_2) operated in a closed-loop Brayton cycle offers the potential of equivalent or higher cycle efficiency versus superheated or supercritical steam cycles at temperatures relevant for CSP applications. Brayton-cycle systems using s-CO_2 have a smaller weight and volume, lower thermal mass, and less complex power blocks versus Rankine cycles due to the higher density of the fluid and simpler cycle design. The simpler machinery and compact size of the s-CO_2 process may also reduce the installation, maintenance and operation cost of the system.
机译:2011年,美国能源部(DOE)发起了“ SunShot聚光太阳能研发”计划,以开发与现有CSP系统相比具有更高效率,更低成本和/或更可靠性能的技术。 DOE寻求开发具有破坏性的聚光太阳能(CSP)技术,该技术到本十年末将达到6 ¢ / kWh的成本目标,而高效,低成本的热电循环是实现这一目标的重要组成部分之一目标。在与CSP应用相关的温度下,在闭环布雷顿循环中运行的超临界CO_2(S-CO_2)具有与过热或超临界蒸汽循环相当或更高的循环效率潜力。与兰金循环相比,使用s-CO_2的布雷顿循环系统具有更小的重量和体积,更低的热质量以及更简单的动力块,这是由于流体的密度更高且循环设计更简单。 s-CO_2工艺更简单的机械和紧凑的尺寸也可以减少系统的安装,维护和运营成本。

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