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首页> 外文期刊>CEAS Space Journal >Life prediction of thermally highly loaded components: modelling the damage process of a rocket combustion chamber hot wall
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Life prediction of thermally highly loaded components: modelling the damage process of a rocket combustion chamber hot wall

机译:高负载零件的寿命预测:模拟火箭燃烧室热壁的损坏过程

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摘要

During their operational life-time, actively cooled liners of cryogenic combustion chambers are known to exhibit a characteristic so-called doghouse deformation, pursued by formation of axial cracks. The present work aims at developing a model that quantitatively accounts for this failure mechanism. High-temperature material behaviour is characterised in a test programme and it is shown that stress relaxation, strain rate dependence, isotropic and kinematic hardening as well as material ageing have to be taken into account in the model formulation. From fracture surface analyses of a thrust chamber it is concluded that the failure mode of the hot wall ligament at the tip of the doghouse is related to ductile rupture. A material model is proposed that captures all stated effects. Basing on the concept of continuum damage mechanics, the model is further extended to incorporate softening effects due to material degradation. The model is assessed on experimental data and quantitative agreement is established for all tests available. A 3D finite element thermo-mechanical analysis is performed on a representative thrust chamber applying the developed material-damage model. The simulation successfully captures the observed accrued thinning of the hot wall and quantitatively reproduces the doghouse deformation.
机译:众所周知,低温燃烧室的主动冷却衬套在其使用寿命期间会表现出特征性的所谓“狗窝变形”,该变形通过轴向裂纹的形成来实现。当前的工作旨在开发一种模型,该模型可以定量地说明这种失效机制。在测试程序中对高温材料的行为进行了表征,结果表明,在模型公式中必须考虑应力松弛,应变率依赖性,各向同性和运动学硬化以及材料老化。从推力室的断裂表面分析可以得出结论,狗窝尖端的热壁韧带的破坏模式与韧性断裂有关。提出了一个材料模型,该模型可以捕获所有规定的效果。基于连续性损伤力学的概念,该模型进一步扩展以包含由于材料降解而产生的软化效果。根据实验数据评估模型,并为所有可用测试建立定量协议。应用已开发的材料损伤模型,对具有代表性的推力室进行3D有限元热力学分析。该模拟成功地捕获了观察到的热墙累积的变薄,并定量地再现了狗窝变形。

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