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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Maximizing the power block efficiency of solar tower plants: Dual-pressure level steam generator
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Maximizing the power block efficiency of solar tower plants: Dual-pressure level steam generator

机译:最大化太阳能塔工厂的功率块效率:双压水平蒸汽发生器

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摘要

Solar tower plants (STP) are one of the most promising renewable technologies to substitute conventional power plants. To further increase its penetration in electricity markets, it is necessary to maximize its efficiency. This work addresses the challenge of increasing the inlet pressure up to 165 bar at the high pressure turbine (HPT) to improve the power block efficiency. Nowadays, these plants operate Rankine cycle with reheating using steam at 126 bar at the inlet of the HPT. This pressure is limited in current STP by the working temperatures of the molten salt, which range from 285 degrees C and 565 degrees C, the pinch point temperature difference in the evaporator and the current steam generator (SG) layout. A new steam generator design with dual-pressure level evaporation is proposed. The heat exchangers that form the SG are designed thermomechanically and the power cycle performance is analyzed using the first and second laws of thermodynamics. The results show that the novel dual-pressure level SG layout increases the power block efficiency from 44.14% to 44.64%. Assuming a market pricing scenario of two-tier tariff and a power purchase agreement price of 16.3c & euro;/kWh(e), the new SG layout yields an extra economic benefit of 623 k & euro; per year due to an increase of energy produced of 5.71 GWh(e),/year.
机译:太阳能塔植物(STP)是替代传统发电厂的最有前途的可再生技术之一。为了进一步提高电力市场的渗透,有必要最大限度地提高其效率。这项工作解决了在高压涡轮机(HPT)上增加了高达165巴的入口压力的挑战,以提高功率块效率。如今,这些植物在HPT的入口处使用126杆在126巴中使用蒸汽进行再加热。该压力通过熔融盐的工作温度限制在电流STP中,该熔盐的工作温度范围为285℃和565摄氏度,蒸发器中的夹点温度差和电流蒸汽发生器(SG)布局。提出了一种新的蒸汽发生器设计,具有双压水平蒸发。形成SG的热交换器是在热机械上设计的,并且使用热力学的第一和第二定律进行分析功率循环性能。结果表明,新型双压力水平SG布局从44.14%增加到44.64%的动力块效率增加。假设双层关税的市场定价场景和电力购买协议价格为16.3C€ / KWH(E),新的SG布局产生了623 K&​​EURO的额外经济效益;由于5.71 GWH(e),/年的能量增加,每年。

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