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Numerical Investigation of Abradable Coating Removal in Aircraft Engines Through Plastic Constitutive Law

机译:飞机本构关系的塑性本构关系数值研究。

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In the field of turbomachines, better engine performances are achieved by reducing possible parasitic leakage flows through the closure of the clearance distance between blade tips and surrounding stationary casings and direct structural contact is now considered as part of the normal life of aircraft engines. In order to avoid catastrophic scenarios due to direct tip incursions into a bare metal housing, implementation of abradable coatings has been widely recognized as a robust solution offering several advantages: reducing potential nonrepairable damage to the incurring blade as well as adjusting operating clearances, in situ, to accept physical contact events. Nevertheless, the knowledge on the process of material removal affecting abradable coatings is very limited and it seems urgent to develop dedicated predicting numerical tools. The present work introduces a macroscopic model of the material removal through a piecewise linear plastic constitutive law which allows for real time access to the current abradable liner profile within a time-stepping approach of the explicit family. In order to reduce computational loads, the original finite element formulation of the blade of interest is projected onto a reduced-order basis embedding centrifugal stiffening. First results prove convergence in time and space and show that the frequency content of the blade response is clearly sensitive to the presence of abradable material. The continuous opening of the clearance between the blade tip and the casing due to the material removal yields larger amplitudes of motion and new scenarios of structural divergence far from the usual linear conditions provided by the well-known Campbell diagrams.
机译:在涡轮机领域,通过减小叶片尖端与周围固定壳体之间的间隙的距离来减少可能的寄生泄漏流,从而获得更好的发动机性能,并且现在将直接结构接触视为飞机发动机正常使用寿命的一部分。为了避免由于尖端直接侵入裸机壳而导致的灾难性后果,耐磨涂层的实施已被公认为一种可靠的解决方案,它具有以下优点:减少了对产生的刀片造成的不可修复的损坏以及就地调整操作间隙,接受身体接触事件。然而,有关影响耐磨涂层的材料去除过程的知识非常有限,因此迫切需要开发专用的预测数值工具。本工作通过分段线性塑性本构关系介绍了材料去除的宏观模型,该模型允许在显式族的时间步长方法内实时访问当前的可磨损衬里轮廓。为了减少计算量,将目标叶片的原始有限元公式投影到嵌入离心刚度的降阶基础上。最初的结果证明了在时间和空间上的收敛性,并且表明叶片响应的频率成分对可磨耗材料的存在明显敏感。由于去除了材料,叶片尖端与外壳之间的间隙连续打开会产生更大的运动幅度,并产生新的结构差异,这与众所周知的坎贝尔图所提供的通常线性条件相去甚远。

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