首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >STRUCTURAL ANALYSIS OF AN AUXETIC CASING STRUCTURE INCORPORATING TIP BLOWING CASING TREATMENT MODIFICATION
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STRUCTURAL ANALYSIS OF AN AUXETIC CASING STRUCTURE INCORPORATING TIP BLOWING CASING TREATMENT MODIFICATION

机译:结合吹气套管处理的辅助套管结构的结构分析。

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In axial compressor design for aero engines high system efficiency and operational stability are two main objectives. Both depend on clearance-induced losses. Previous investigations at the Institute have resulted in a passive clearance controlled compressor design using additively manufactured auxetic casing structures. The extension to an active clearance controlled device to keep an approximately constant tip gap ratio during the entire flight mission is currently investigated. Constructive on these deliverables, the implementation of tip blowing casing treatment modification in a double-walled compressor casing including an auxetic inner structure is covered in this work and studied for maximum load conditions by means of Finite Element Analysis. The idea to supplement the current auxetic casing construction with casing treatment modification emerges from the aspiration to generate further stability improvements in the high-pressure domain and the exploitation of the design freedom provided by additive manufacturing. Key issues addressed in this work by conducting parameter studies are casing treatment positioning and corresponding structural correlations depending on circumferential quantity. The evaluation section concentrates mainly on the calculated stress level associated with tip blowing casing treatments because this value is crucial for prospective fatigue predictions. In order to compare the results, the auxetic casing structure without casing treatment modification serves as reference. Promising solutions for local stress reductions are also proposed and discussed. From a structural mechanics perspective, the casing treatment modification generates very high and comparable notch stress levels at each position. Placing the casing treatments at the framework of the auxetic cells and splitting the inner casing ring results in tolerable stress levels.
机译:在航空发动机的轴向压缩机设计中,高系统效率和运行稳定性是两个主要目标。两者都取决于清关导致的损失。该研究所先前的研究已经得出了采用增材制造的膨胀套管结构进行被动间隙控制的压缩机设计的结论。目前正在研究一种主动间隙控制装置的扩展,以在整个飞行任务中保持近似恒定的叶尖间隙比。在这些可交付成果的基础上,本工作介绍了在具有高膨胀内部结构的双壁压缩机壳体中进行顶吹式壳体处理的改进方案,并通过有限元分析研究了最大负荷条件。希望通过对套管处理进行改进来补充当前的膨胀套管结构,是出于在高压领域进一步提高稳定性并利用增材制造所提供的设计自由性的愿望。在这项工作中,通过进行参数研究解决的关键问题是套管处理的定位以及取决于周向量的相应结构相关性。评估部分主要集中在计算的与顶吹套管处理相关的应力水平,因为该值对于预期的疲劳预测至关重要。为了比较结果,对未进行套管处理的修改的膨胀套管结构作为参考。还提出并讨论了减少局部应力的有希望的解决方案。从结构力学的角度来看,套管处理的改进会在每个位置产生非常高且相当的缺口应力水平。将套管处理物放置在膨胀细胞的框架上,并拆开内部套管环会导致可承受的应力水平。

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