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Optimum choice and placement of concentrating solar power technologies in integrated solar combined cycle systems

机译:集成太阳能联合循环系统中集中太阳能技术的最佳选择和布置

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摘要

Concentrating solar power plants projects have been rapidly increasing over the last few years driven by the advances in the solar technology. The operational issues associated with the variable nature of solar energy could be overcome by integrating the solar input into fossil-fuelled power plants. In this paper solar energy is added to the bottoming part of a state-of-the-art three pressure level natural gas combined cycle and parabolic trough, linear Fresnel and solar tower technologies are considered in the search for the optimum integration. Detailed models of the combined cycle and solar field are built in the Thermoflex (R) environment to evaluate the performance of different integrated solar combined cycle system configurations. Results show how the placement of solar heat addition affects the heat absorption in the heat recovery steam generator and, in turn, the overall system performance. Unlike solar-only power plants which call for the highest temperature concentrating solar technologies to maximize thermal efficiency, the best integration is obtained here using moderate temperature concentrating solar technologies which enable a significant reduction of the heat transfer irreversibility in the heat recovery steam generator. Accordingly, high solar radiation-to-electricity conversion efficiencies approaching 30% are achieved using well-established solar technologies. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在过去的几年中,随着太阳能技术的发展,集中式太阳能发电厂项目迅速增加。通过将太阳能输入集成到化石燃料发电厂中,可以解决与太阳能可变性相关的操作问题。在本文中,将太阳能添加到最先进的三压力级天然气联合循环的底部,并考虑抛物线槽,线性菲涅耳和太阳能塔技术,以寻求最佳集成。在Thermoflex(R)环境中建立了联合循环和太阳能场的详细模型,以评估不同的集成太阳能联合循环系统配置的性能。结果表明,太阳能附加热量的放置如何影响热回收蒸汽发生器中的热量吸收,进而影响整个系统的性能。与仅太阳能发电厂需要最高温度的太阳能技术来最大化热效率不同,这里使用中等温度的太阳能技术可以实现最佳集成,这可以显着降低热回收蒸汽发生器中的传热不可逆性。因此,使用成熟的太阳能技术可达到接近30%的高太阳辐射-电转换效率。 (C)2016 Elsevier Ltd.保留所有权利。

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