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HEAT TRANSFER IN TURBINE HUB CAVITIES ADJACENT TO THE MAIN GAS PATH INCLUDING FE-CFD COUPLED THERMAL ANALYSIS

机译:涡轮轮毂腔中与主气路相邻的传热,包括FE-CFD耦合热分析

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Reliable means of predicting heat transfer in cavities adjacent to the main gas path are increasingly being sought by engineers involved in the design of gas turbines. In this paper an up-dated analysis of the interim results from an extended research programme, MAGPI, sponsored by the EU and several leading gas turbine manufactures and universities, will be presented. Extensive use is made of CFD and FE modelling techniques to understand the thermo-mechanical behaviour and convective heat transfer of a turbine stator well cavity, including the interaction of cooling air supply with the main annulus gas. It is also important to establish the hot running seal clearances for a full understanding of the cooling flow distribution and heat transfer in the cavity. The objective of the study has been to provide a means of optimising the design of such cavities (see Figure 1) for maintaining a safe environment for critical parts, such as disc rims and blade fixings, whilst maximising the turbine efficiency by means of reducing the fuel burn and emissions penalties associated with the secondary airflow system. The modelling methods employed have been validated against data gathered from a dedicated two-stage turbine rig, running at engine representative conditions. Extensive measurements are available for a range of flow conditions and alternative cooling arrangements. The analysis method has been used to inform a design change which will be tested in a second test phase. Data from this test will also be used to further benchmark the analysis method. Comparisons are provided between the predictions and measurements from the original configuration, turbine stator well component temperature survey, including the use of a coupled analysis technique between FE and CFD solutions.
机译:参与燃气轮机设计的工程师正越来越多地寻求可靠的方法来预测邻近主燃气通道的空腔中的热传递。本文将介绍由欧盟和一些领先的燃气轮机制造商和大学赞助的扩展研究计划MAGPI的中期结果的最新分析。广泛使用CFD和FE建模技术来了解涡轮定子井腔的热机械行为和对流传热,包括冷却空气供应与主要环空气体的相互作用。建立热密封间隙对于全面了解型腔中的冷却流分布和热传递也很重要。该研究的目的是提供一种优化此类腔体的设计的方法(参见图1),以便为关键部件(例如圆盘轮缘和叶片固定件)保持安全的环境,同时通过降低涡轮增压器的效率来最大程度地提高涡轮机的效率。与二次气流系统相关的燃料燃烧和排放罚款。所采用的建模方法已经针对在发动机代表性条件下运行的专用两级涡轮机所收集的数据进行了验证。广泛的测量可用于各种流量条件和可选的冷却装置。分析方法已用于告知设计更改,该更改将在第二个测试阶段中进行测试。该测试的数据还将用于进一步确定分析方法的基准。在原始配置的预测和测量之间进行了比较,涡轮定子井部件温度调查包括在FE和CFD解决方案之间使用耦合分析技术。

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