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Experimental and Numerical Investigation Into the Aerodynamics of a Novel Steam Turbine Valve and Its Field Application

机译:新型汽轮机阀的空气动力学实验与数值研究及其现场应用

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Control valves are one of the key steam turbine components that guarantee operational safety in a power plant. There are two aerodynamic aspects, which are the current focus for the development of Alstom's valves. One is the reduction of the aerodynamic loss to increase the efficiency of the power plant. The other is operational flexibility, which is increasingly required to react faster to load requirements from the electric grid. This is becoming more important as power generation becomes increasingly decentralized, with a growing contribution from renewable energy sources. For this reason, a fast control loop is required for valve operation, which depends on an accurate linearization of the valve characteristic. In this paper the flow fields in an existing steam control valve have been analyzed and subsequently optimized using CFD techniques. The approach specifically designed for drilled strainers is further illustrated. Following the validation of the baseline design with model testing, an improved diffuser has been designed using CFD analysis and the resulting performance benefit has been confirmed with further testing. The grid frequency support requires control valve throttling. For this reason, an accurate prediction of the linearization table is extremely important to support the required response time limits. Further numerical work has been carried out with various opening positions of the valve, leading to an improved valve linearization characteristic. It is demonstrated that the numerical prediction of the linearization curve agrees very well with data obtained from operating power plants.
机译:控制阀是确保发电厂运行安全的重要蒸汽轮机组件之一。空气动力学方面有两个方面,这是阿尔斯通气门嘴开发的当前重点。一种是减少空气动力损失以提高发电厂的效率。另一个是操作灵活性,这越来越需要对电网的负载要求做出更快的反应。随着可再生能源发电的日益分散化,这变得越来越重要。因此,阀门操作需要一个快速的控制环,这取决于阀门特性的精确线性化。在本文中,已经对现有蒸汽控制阀中的流场进行了分析,然后使用CFD技术对其进行了优化。进一步说明了专门为钻孔过滤器设计的方法。在通过模型测试验证了基线设计之后,已使用CFD分析设计了一种改进的扩散器,并通过进一步测试确认了所产生的性能优势。电网频率支持需要控制阀节流。因此,对线性化表的准确预测对于支持所需的响应时间限制极为重要。在阀门的各种打开位置上进行了进一步的数值工作,从而改善了阀门的线性化特性。结果表明,线性化曲线的数值预测与从电厂获得的数据非常吻合。

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