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The challenge of solar powered combined cycles — Providing dispatchability and increasing efficiency by integrating the open volumetric air receiver technology

机译:太阳能联合循环的挑战—通过集成开放式容积式空气接收器技术来提供可调度性和提高效率

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摘要

This work analyzes the performance potential of solar-only powered combined cycles, comparing the impact of two different solar receiver technologies (opaque-heat-exchanger-type vs. volumetric). Due to material and receiver performance constraints, as well as the absence of internal combustion, the gas turbine inlet temperature (TIT) is limited to considerably lower values than observed in current fossil-fired state-of-the-art combined cycle plants. Therefore, the analysis includes the evaluation of a reheated topping Brayton cycle, aiming for a higher mean temperature of the heat input, thereby allowing fair conversion efficiencies despite moderate TITs. An extensive parametric optimization analysis compares different solar combined cycle configurations and benchmarks them against conventional CSP single-cycle plants. High thermal losses in the receiver tend to offset the gain allowed by the power cycle. The innovative coupling of an open volumetric air receiver with a regenerative heat exchange system that works in alternating operating modes (non-pressurized heating period, pressurized cooling period) could be a promising solution to efficiently drive a solar powered combined cycle. Furthermore, the optimum solar combined cycle performance for typical mean concentration ratios (C ≈ 500) is fully compatible with high temperature TES, providing the promising possibility of fully dispatchable operation at highest thermal-to-electric conversion efficiency.
机译:这项工作分析了仅使用太阳能的联合循环的性能潜力,比较了两种不同的太阳能接收器技术(不透明的热交换器类型与体积)的影响。由于材料和接收器性能的限制,以及没有内燃的存在,燃气轮机的入口温度(TIT)被限制在比目前使用化石燃料的最先进的联合循环电厂所观察到的温度低得多的水平。因此,该分析包括对再加热的顶部布雷顿循环的评估,其目标是提高热输入的平均温度,从而尽管有中等的TIT,也可以实现合理的转换效率。广泛的参数优化分析比较了不同的太阳能联合循环配置,并将其与常规的CSP单循环电厂进行基准比较。接收器中的高热损耗往往会抵消功率循环所允许的增益。开放式容积式空气接收器与以交替运行模式(非加压加热期,加压冷却期)工作的蓄热式热交换系统的创新结合可能是有效驱动太阳能联合循环的有前途的解决方案。此外,典型平均浓度比(C≈500)的最佳太阳能联合循环性能与高温TES完全兼容,从而提供了在最高热电转换效率下可完全调度运行的可能性。

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