首页> 外文会议>ASME turbo expo: turbomachinery technical conference and exposition >A NUMERICAL STUDY ON REDUCING THE STATOR BLADE SURFACE TEMPERATURE IN THE ULTRA-HIGH EFFICIENCY GAS TURBINE ENGINE BY INDEXING FUEL INJECTORS AND USING FILM COOLING
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A NUMERICAL STUDY ON REDUCING THE STATOR BLADE SURFACE TEMPERATURE IN THE ULTRA-HIGH EFFICIENCY GAS TURBINE ENGINE BY INDEXING FUEL INJECTORS AND USING FILM COOLING

机译:燃料喷射器和膜冷却技术降低超高效率燃气轮机发动机定子叶片表面温度的数值研究

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The Ultra-High Efficiency Gas Turbine technology, UHEGT, has been introduced in our previous publications. In UHEGT, the combustion process is no longer contained in isolation between the compressor and turbine, rather distributed and integrated within the axial gaps before each stator row. As shown in the previous publications, this technology substantially increases the thermal efficiency of the engine to 45% and above. Since the combustion process is brought into the turbine stages in UHEGT, the stator blades are exposed to high temperature gases and are prone to be overheated. To address this issue, two different approaches are investigated in this paper in order to control and reduce the temperature on the stator blade surface. The first approach is indexing (clocking) of the fuel injectors (cylindrical tubes extended from hub to shroud), in which the positions of the injectors are adjusted relative to each other and the stator blades. The second approach is using film cooling, in which cooling holes are added on the blade surface to bring down the temperature via coolant injection. Four configurations are designed and studied via computational fluid dynamics (CFD) to evaluate the effectiveness of the two approaches. The objective functions in this evaluation are stator blade surface temperature, temperature non-uniformity at rotor inlet, total pressure loss over the injectors, and total power production by rotor. The results show that the second configuration, which uses the indexing approach, presents the most promising case in controlling the stator blade surface temperature. This configuration produces the lowest temperature distribution over the stator blade surface and the least amount of total pressure loss.
机译:我们以前的出版物中已经介绍了超高效燃气轮机技术UHEGT。在UHEGT中,燃烧过程不再孤立地包含在压缩机和涡轮之间,而是在每个定子行之前分布并集成在轴向间隙内。如先前出版物中所示,该技术将发动机的热效率大大提高到45%或更高。由于燃烧过程进入了UHEGT的涡轮级,因此定子叶片会暴露于高温气体中,并且容易过热。为了解决这个问题,本文研究了两种不同的方法来控制和降低定子叶片表面的温度。第一种方法是对燃油喷射器(从轮毂延伸到护罩的圆柱管)进行分度(计时),在这种方法中,相对于彼此和定子叶片调节喷射器的位置。第二种方法是使用薄膜冷却,其中在叶片表面上增加了冷却孔,以通过注入冷却剂来降低温度。通过计算流体动力学(CFD)设计和研究了四种配置,以评估这两种方法的有效性。该评估的目标功能是定子叶片表面温度,转子入口处的温度不均匀性,喷射器上的总压力损失以及转子产生的总功率。结果表明,使用分度方法的第二种配置是控制定子叶片表面温度最有希望的情况。这种构造在定子叶片表面上产生最低的温度分布,并且产生最小的总压力损失。

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