Transient Exergy Analysis of the Dynamic Operation of a Combined Cycle Power Plant

R. Wittenburg, Moritz Hübel, Dorian Holtz, K. Müller
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Abstract

The increasing share of fluctuating electricity feed-in from wind energy and photovoltaic systems has a significant impact on the operating regime of conventional power plants. Since frequent load changes were not the focus of optimization in the past, there is still potential for improving the transient operating behavior. Exergy analyses are increasingly used to determine optimization potentials in energy conversion processes, but are mostly limited to stationary conditions. In order to perform an exergy analysis of the transient operation of a combined cycle power plant on component level, detailed information on the state and process variables of the individual components is required. These are not completely accessible via measurement data alone. For this reason, a comprehensive dynamic simulation model was developed, which includes the process components and the power plant control system. With the help of the implemented exergetic balance and state equations, the desired exergy quantities can be determined. The simulation results are used to evaluate the transient operating behaviour at different load change gradients and control actions on the basis of exergetic parameters. The exergy analysis results in an improved understanding of the causes of exergy destruction in the system, which can be used for optimization approaches. As expected, the main causes of exergy destruction are combustion processes and increased temperature gradients during transient operation. Overall, however, only moderately increased exergy destruction can be determined for the transient operation of the investigated plant compared to the steady state.
联合循环电厂动态运行的暂态火用分析
来自风能和光伏系统的波动电力输入份额的增加对传统发电厂的运行制度产生了重大影响。由于频繁的负荷变化并不是过去优化的重点,因此仍有可能改善暂态运行行为。火用分析越来越多地用于确定能量转换过程的优化潜力,但大多局限于固定条件。为了在部件层面上对联合循环电厂的暂态运行进行火用分析,需要得到各个部件的状态和过程变量的详细信息。这些不能完全通过测量数据单独获得。为此,建立了包括过程部件和电厂控制系统在内的综合动态仿真模型。利用所实现的火用平衡和状态方程,可以确定所需的火用量。利用仿真结果评估了不同负荷变化梯度下的暂态运行特性和基于火用参数的控制动作。火用分析可以更好地理解系统中火用破坏的原因,从而可以用于优化方法。正如预期的那样,火用破坏的主要原因是燃烧过程和瞬态运行期间温度梯度的增加。然而,总的来说,与稳定状态相比,所研究的工厂的瞬态运行只能确定适度增加的火用破坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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