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ADAPTIVE CONTROL OF MICRO GAS TURBINE FOR ENGINE DEGRADATION COMPENSATION

机译:微型燃气轮机对发动机降解的自适应控制

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Micro gas turbine engines in the range of 1-100 kW are playing a key role in distributed generation applications, due to the high reliability and quick load following that favor their integration with intermittent renewable sources. Micro-CHP systems based on gas turbine technology are obtaining a higher share in the market and are aiming at reducing the costs and increasing energy conversion efficiency. An effective control of system operating parameters during the whole engine lifetime is essential to maintain desired performance and at the same time guarantee safe operations. Because of the necessity to reduce the costs, fewer sensors are usually available than in standard industrial gas turbines, limiting the choice of control parameters. This aspect is aggravated by engine aging and deterioration phenomena that change operating performance from the expected one. In this situation, a control architecture designed for healthy operations may not be adequate anymore, because the relationship between measured parameters and unmeasured variables (e.g. turbine inlet temperature or efficiency) varies depending on the level of engine deterioration. In this work, an adaptive control scheme is proposed to compensate the effects of engine degradation over the lifetime. Component degradation level is monitored by a diagnostic tool that estimates performance variations from available measurements; then, the information on the gas turbine health condition is used by an observer-based model predictive controller to maintain the machine in a safe range of operation and limit the reduction in system efficiency.
机译:1-100 kW范围内的微型燃气轮机在分布式发电应用中起着关键作用,这归因于其高可靠性和快速负载,从而有利于与间歇性可再生能源的集成。基于燃气轮机技术的微型热电联产系统在市场上获得了更高的份额,旨在降低成本并提高能量转换效率。在整个发动机寿命期间,对系统运行参数的有效控制对于维持所需性能并同时确保安全运行至关重要。由于必须降低成本,因此与标准的工业燃气轮机相比,通常可用的传感器更少,从而限制了控制参数的选择。发动机老化和劣化现象使预期的性能改变,这加剧了这一方面。在这种情况下,为健康运行而设计的控制架构可能不再足够了,因为测量参数与未测量变量(例如,涡轮机入口温度或效率)之间的关系会根据发动机劣化程度而变化。在这项工作中,提出了一种自适应控制方案来补偿发动机在整个寿命期内的退化影响。组件的降解水平由诊断工具监控,该工具根据可用的测量结果估算性能变化;然后,基于观察者的模型预测控制器将有关燃气轮机健康状况的信息用于将机器维持在安全的操作范围内,并限制系统效率的降低。

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