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首页> 外文期刊>Mathematical and Computer Modelling of Dynamical Systems >Modelling And Simulation Of Steam Turbine Processes: Individual Models For Individual Tasks
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Modelling And Simulation Of Steam Turbine Processes: Individual Models For Individual Tasks

机译:汽轮机过程的建模与仿真:用于单独任务的单独模型

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Within power plants, several physical, chemical and mechanical processes are conducted to transfer the energy, stored in fossil fuel, into electrical energy. This energy conversion is divided into several stages. Hitherto, the largest conventional power plants employ steam turbines as prime movers to drive a generator. Hence, a steam turbine is one module to convert heat energy into mechanical energy. And thus it is one link in the chain of energy conversions with the aim of generating electrical energy. Today, steam turbine industry faces numerous challenges concerning efficiency, commissioning time, start-up times, operation, availability, safety, cost-effectiveness, etc. Many of these tasks can be supported by simulating the transient operational behaviour of the turbine in advance. For example, the commissioning time can be shortened if the turbine controllers are initialized with well-tuned pre-set parameters; cost-effectiveness can be increased by setting aside unnecessary devices and exactly determining material specifications; safety may be increased by predicting the impacts of failures and thus taking the necessary precautions. Different tasks require different details regarding the employed turbine simulation model. Thus, the turbine controller may be well tuned with less complex simulation models of turbine, generator and electrical grid, whereas detailed studies of failures, mainly the transient behaviour which may lead to serious damages, may require detailed modelling of the turbine-internal thermodynamic processes. Here, a brief overview of models which simulate the transient thermodynamic behaviour of a steam turbine is presented. Three different approaches will be introduced and compared with respect to different operating situations. Also, special attention is directed towards the time dependence of critical states, mainly turbine speed and pressure development in certain areas. The first model is based on a simple, linear approach and is suitable of giving a quick overview. The second one incorporates more details and is useful if the operating point is close to the design point. Finally, the last model incorporates mass and energy balances as well as the major non-linearities. Hence it depicts the turbine behaviour over a large range of operating points.
机译:在发电厂内,进行了一些物理,化学和机械过程,以将存储在化石燃料中的能量转换为电能。该能量转换分为几个阶段。迄今为止,最大的常规发电厂采用蒸汽轮机作为原动机来驱动发电机。因此,蒸汽轮机是将热能转换成机械能的一个模块。因此,它是能量转换链中旨在产生电能的一个环节。如今,蒸汽轮机行业面临着许多与效率,调试时间,启动时间,运行,可用性,安全性,成本效益等有关的挑战。可以通过预先模拟涡轮机的瞬态运行行为来支持许多这些任务。例如,如果使用精心调整的预设参数初始化涡轮机控制器,则可以缩短调试时间。通过搁置不必要的设备并准确确定材料规格,可以提高成本效益;通过预测故障的影响并采取必要的预防措施,可以提高安全性。关于所采用的涡轮机仿真模型,不同的任务需要不同的细节。因此,可以用不太复杂的涡轮机,发电机和电网仿真模型很好地调整涡轮机控制器,而对故障的详细研究(主要是可能导致严重损坏的瞬态行为)可能需要对涡轮机内部热力过程进行详细建模。在此,简要介绍了模拟蒸汽轮机瞬态热力学行为的模型。将介绍三种不同的方法,并针对不同的操作情况进行比较。而且,特别注意的是临界状态的时间依赖性,主要是某些地区的涡轮速度和压力发展。第一个模型基于简单的线性方法,适合快速概述。第二个包含更多细节,如果操作点接近设计点,则很有用。最后,最后一个模型结合了质量和能量平衡以及主要的非线性。因此,它描述了大范围工作点上的涡轮行为。

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