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Life evaluation of a combustion chamber by thermomechanical fatigue panel tests based on a creep fatigue and ductile damage model

机译:基于蠕变疲劳和延展性损伤模型的热机械疲劳面板试验燃烧室寿命评价

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摘要

The inner liner of a combustion chamber of a cryogenic liquid rocket engine is exposed to a high load induced by the high temperature of the hot gas and the low temperature of the coolant. The high load causes some inelastic strain that accumulates with each operational cycle until the fracture or rupture of the inner liner. A model that can reproduce the propagation of damage under a thermally cycled load is essential for precisely predicting the chamber life. However, the damage propagation phenomenon or the quantitative value of the damage was so far not fully discussed using the damage data obtained from basic testing of a rocket chamber material. The purpose of the present study was to investigate a precise prediction model based on damage mechanics for simulating the damage propagation of a rocket chamber material. In this study, low cycle fatigue test data at a high temperature (900 K) were analyzed, and damage models that could reproduce the damage propagation under cyclic load conditions were investigated. Then the parameters were identified to reproduce uniaxial test data. These damage models were also subject to a finite element method analysis of a thermomechanical fatigue panel test in order to quantitatively evaluate the deformation, damage propagation, and life of a chamber wall. The analysis of low cycle fatigue test data at 900 K suggested a specific model that could precisely reproduce the damage propagation phenomenon and the basic material test data. From the results, it was confirmed that the model could predict the location of crack initiation.
机译:低温液体火箭发动机的燃烧室的内衬暴露于由热气体的高温和冷却剂的低温引起的高负荷。高负荷导致一些无弹性应变,其与每个操作循环累积,直到内衬的骨折或破裂。可以在热循环负载下再现损坏传播的模型对于精确地预测腔室寿命是必不可少的。然而,到目前为止,损坏的损坏现象或损坏的定量值未使用从火箭室材料的基本测试获得的损伤数据完全讨论。本研究的目的是基于损伤力学来研究模拟火箭箱材料的损伤传播的精确预测模型。在本研究中,分析了高温(900 k)处的低周疲劳试验数据,研究了可以在循环载荷条件下再现损伤传播的损伤模型。然后识别参数以再现单轴测试数据。这些损坏模型也受到热机械疲劳面板测试的有限元方法分析,以定量评估室壁的变形,损坏传播和寿命。在900 k下对低周期疲劳试验数据的分析建议特定模型,可以精确地再现损伤传播现象和基本材料测试数据。从结果中,证实该模型可以预测裂纹启动的位置。

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