首页> 外文会议>ASME international mechanical engineering congress and exposition >EFFICIENCY ENHANCEMENT OF A SMALL SCALE CLOSED SOLAR THERMAL BRAYTON CYCLE BY A COMBINED SIMPLE ORGANIC RANKINE CYCLE
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EFFICIENCY ENHANCEMENT OF A SMALL SCALE CLOSED SOLAR THERMAL BRAYTON CYCLE BY A COMBINED SIMPLE ORGANIC RANKINE CYCLE

机译:组合简单有机RANKINE循环提高小规模封闭式太阳能热布雷顿循环的效率

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In this paper efficiency enhancement of a small scale closed solar thermal Brayton cycle is investigated by combining it to a simple organic Rankine cycle. Brayton power cycles are generally known as the enabling technology for high temperature solar power towers due to their higher efficiencies compared to other power cycles. Unlike conventional solar-thermal plants, which concentrate the sun's energy to generate steam for driving a turbine, the Brayton thermodynamic does not use water. Instead, the concentrated solar energy is used to heat compressed air, which then expands through a gas turbine to generate power. Irreversible loss in compressor and turbine, the operating temperature of solar collector and recuperator effectiveness are the main features that limit the net power output of the system which should be considered and analyzed. The exhaust of the gas turbine is still at high temperature that should be cooled down before entering the compressor. Thus, this heat can be utilized to operate a low temperature Rankine cycle and increase the system efficiency and power generation. Operating points of off the shelf micro-turbines and steam turbine with parabolic solar dish concentrator of various concentrating ratios are considered. Thermodynamic analysis is applied, by using the first and second law of thermodynamics, to obtain the optimum temperature of solar collector, minimum irreversibility rates to maximize the efficiency and net power output of the system at various steady-state conditions. Results show that for the closed solar thermal Brayton cycle the maximum overall first law efficiency of the system can be increased of more than 5% by combining a simple Rankine cycle to recover the exhaust heat and a significant 20% increase in the second law efficicency. The system efficiency is related to the solar concentration ratio with an optimum operating temperature and the choice of micro-turbine. On this basis, both the overall efficiency and the total output power may reach their maximum value by optimizing the pressure ratio. In a small scale closed solar thermal Brayton cycle combined by a Rankine cycle with a micro turbine operating at its highest compressor efficiency, the operating conditions can be optimized in such a way that the system produces maximum net power output or having the highest overall efficiency.
机译:在本文中,通过将其与简单的有机朗肯循环相结合,研究了小规模封闭太阳热布雷顿循环的效率提高。布雷顿功率循环由于与其他功率循环相比效率更高而通常被称为高温太阳能发电塔的启用技术。与传统的太阳热电厂不同,传统的太阳热电厂会集中太阳的能量来产生蒸汽来驱动涡轮,而布雷顿热力学则不使用水。取而代之的是,将聚集的太阳能用于加热压缩空气,然后压缩空气通过燃气轮机膨胀以发电。压缩机和涡轮机的不可逆损耗,太阳能集热器的工作温度和换热器效率是限制系统净功率输出的主要特征,应加以考虑和分析。燃气轮机的排气仍处于高温,应在进入压缩机之前先进行冷却。因此,该热量可用于操作低温朗肯循环并增加系统效率和发电量。考虑了现成的微型涡轮机和带有各种浓缩比的抛物面太阳能碟形浓缩器的蒸汽轮机的工作点。通过使用热力学的第一定律和第二定律进行热力学分析,以获得太阳能集热器的最佳温度,最小不可逆率,以在各种稳态条件下最大化系统的效率和净功率输出。结果表明,对于封闭的太阳热布雷顿循环,通过结合简单的兰金循环以回收废热以及第二定律效率显着提高20%,可以使系统的最大整体第一定律效率提高超过5%。系统效率与最佳工作温度下的太阳能集中度以及微型涡轮机的选择有关。在此基础上,通过优化压力比,总体效率和总输出功率都可以达到其最大值。在小规模的封闭式太阳能热布雷顿循环(由兰金循环与具有最高压缩机效率的微型涡轮机组合)中,可以优化运行条件,以使系统产生最大的净功率输出或具有最高的整体效率。

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