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DYNAMIC SIMULATION OF STARTUP CHARACTERISTICS FOR THE ADVANCED HUMID AIR TURBINE SYSTEM

机译:高级湿式汽轮机系统启动特性的动态仿真

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Thermal power generation systems have played an important role to adjust power supply and demand balance in power grid due to the high operational flexibility. It is required for next future thermal power generation systems to have higher thermal efficiency and operational flexibility, not only to reduce CO_2 emission but also to cope with the increase of electricity generation by renewable energy sources which are changeable depending on the weather. The Advanced Humid Air Gas Turbine (AHAT) system is expected to meet these requirements and now proceeding with the development by Mitsubishi Hitachi Power Systems Ltd., Central Research Institute of Electric Power Industry (CRIEPI) and Sumitomo Precision Products Co., Ltd. So far, the system concept and cycle performance of the AHAT system were verified by operational tests of a 3MW-class pilot plant and a 40MW-class test facility. However, the characteristics of operational flexibility, such as load following capability and fast startup speed, have not been clarified sufficiently. It is considered that dynamic characteristics analysis is useful to evaluate and improve operational flexibility. On the other hand, CRIEPI is now developing the dynamic analysis tool for thermal power generation systems based on Modelica language using Dymola, in the aim of evaluating operational characteristics of both a new thermal power system and existing thermal power plant. The component models of this tool are basically developed based on mass and energy conservation equations. In this paper, we try to construct the dynamic model using this tool for the startup characteristics analysis and to investigate the possibility of shortening startup speed of AHAT system. First, the validity of the dynamic model of AHAT system was verified compared with the 3MW-class pilot plant operational data. As a result, the simulation result agrees almost well with the operational data and the validity of this dynamic model was confirmed. And next, the startup characteristics in the case of increasing startup load ratio by dynamic simulation were investigated. The simulation result show that it is difficult to achieve the rated power output only by changing startup load ratio because the humidification rate of humidification tower is rate-limiting and the gas turbine exhaust gas temperature reaches the limit value before achieving the rated power output. And it is found that the effects of the water valve operational speed of humidification tower and of the heat capacity of the recuperator are important to shorten the startup time of AHAT system.
机译:热发电系统都起到调节电网电力供需平衡的重要作用,由于高操作灵活性。它所需的下一将来热发电系统具有较高的热效率和操作的灵活性,不仅减少CO_2发射而且还应对由可再生能源,其是可变的取决于天气增加发电的。高级湿空气燃气轮机(AHAT)系统有望满足这些要求,现在与三菱日立电力系统有限公司,电力等行业的中央研究所(CRIEPI)和住友精密工业有限公司这样的发展出发到目前为止,AHAT系统的系统概念和循环性能是由一个3MW级中试装置的操作测试和40MW级的测试设施验证。然而,操作灵活性的特点,如负载追随性和快速启动的速度,没有得到充分澄清。据认为,动态特性分析是评价和改进的操作灵活性是有用的。在另一方面,CRIEPI现在正在开发使用Dymola的基于Modelica的语言热发电系统的动态的分析工具,在评价两个新的热电力系统和现有火力发电厂的操作特性的目的。该工具的组件模型基于质量和能量守恒方程基本形成。在本文中,我们尝试使用这个工具的启动特性分析,以构建动态模型,探讨缩短AHAT系统的启动速度的可能性。首先,AHAT系统的动态模型的有效性是与3MW级试验工厂的运行数据进行比较验证。其结果是,模拟结果一致几乎很好地与操作数据和该动态模型的有效性得到了确认。和下,在通过动态仿真增加启动负荷比的情况下的启动特性进行了研究。仿真结果表明,这是很难仅通过改变启动负荷比,因为加湿塔的加湿速率是速率限制和燃气轮机排气温度达到实现额定功率输出之前的限制值达到额定功率输出。并且发现增湿塔的和同流换热器的热容量的水阀门操作速度的效果是重要的,以缩短AHAT系统的启动时间。

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