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MODEL BASED PERFORMANCE CORRECTION METHODOLOGY - A CASE STUDY

机译:基于模型的性能校正方法-案例研究

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Correction curves are of great importance in the performance evaluation of heavy duty gas turbines (HDGT). They provide the means by which to translate performance test results from test conditions to the rated conditions. The correction factors are usually calculated using the original equipment manufacturer (OEM) gas turbine thermal model (a.k.a. cycle deck), varying one parameter at a time throughout a given range of interest. For some parameters bi-variate effects are considered when the associated secondary performance effect of another variable is significant. Although this traditional approach has been widely accepted by the industry, has offered a simple and transparent means of correcting test results, and has provided a reasonably accurate correction methodology for gas turbines with conventional control systems, it neglects the associated interdependence of each correction parameter from the remaining parameters. Also, its inherently static nature is not well suited for today's modern gas turbine control systems employing integral gas turbine aero-thermal models in the control system that continuously adapt the turbine's operating parameters to the "as running" aero-thermal component performance characteristics. Accordingly, the most accurate means by which to correct the measured performance from test conditions to the guarantee conditions is by use of Model-Based Performance Corrections, in agreement with the current PTC-22 and ISO 2314, although not commonly used or accepted within the industry. The implementation of Model-based Corrections is presented for the Case Study of a GE 9FA gas turbine upgrade project, with an advanced model-based control system that accommodated a multitude of operating boundaries. Unique plant operating restrictions, coupled with its focus on partial load heat rate, presented a perfect scenario to employ Model-Based Performance Corrections.
机译:在重型燃气轮机(HDGT)的性能评估中,校正曲线非常重要。它们提供了将性能测试结果转换为额定条件的手段。校正因子通常使用原始设备制造商(OEM)燃气轮机热模型(A.K.A.CRY.CREACK)计算,在整个兴趣范围内发生一个参数。对于某些参数,当另一变量的相关次级性能效果显着时,考虑双变化效果。虽然这种传统方法已被行业被广泛接受,但提供了一种简单透明的校正测试结果的手段,并且为具有传统控制系统的燃气轮机提供了合理准确的校正方法,它忽略了每个校正参数的相关相互依赖性剩余的参数。此外,其本质上静态性质对当今的现代燃气轮机控制系统不太适用于采用控制系统中的整体燃气轮机航空热模型,该系统在控制系统中连续地调整涡轮机的操作参数,以“运行”航空热部件性能特性。因此,最准确的方法通过使用基于模型的性能校正来校正测量条件的最准确的方法是与当前的PTC-22和ISO 2314一致,尽管在其中不常用或接受行业。介绍了用于GE 9FA燃气轮机升级项目的案例研究的模型的校正的实现,具有高级模型的控制系统,该控制系统适用于多个操作边界。独特的植物操作限制,再加上其专注于部分负载热速率,提出了采用基于模型的性能校正的完美情景。

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