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首页> 外文期刊>Transactions of the Indian Institute of Metals >Cyclic Stress Analysis of a Rocket Engine Thrust Chamber Using Chaboche, Voce and Creep Constitutive Models
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Cyclic Stress Analysis of a Rocket Engine Thrust Chamber Using Chaboche, Voce and Creep Constitutive Models

机译:Chaboche,VOCE和CREEP组成型火箭发动机推力室的循环应力分析

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High thrust rockets require high performance liquid engines for its propulsion. The thrust necessary for propulsion is produced by mixing, burning and ejecting a fuel and an oxidizer inside the thrust chamber of the engine. The engine investigated in this study is an indigenously developed semi-cryogenic engine developing a thrust of 2000 kN in vacuum. Its thrust chamber is of double walled construction, with inner wall of an indigenously developed high conductivity high ductility copper alloy and outer wall of high strength stainless steel. The inner wall operates in the elasto plastic condition due to high thermal and pressure loads. Structural failure of the chamber occurs due to repeated hot tests of the engine by low cycle fatigue (LCF), high temperature creep and thermal ratcheting of inner wall. In this paper, cyclic stress analysis of the thrust chamber is done using ANSYS (Version 16) code. A combination of Chaboche nonlinear kinematic hardening plasticity model, Voce nonlinear isotropic hardening model and Norton secondary creep model is used for copper, while bi-linear kinematic hardening model is selected for stainless steel. Steps for calibration of Chaboche and Voce model parameters from tensile and LCF tests are given in detail while published creep properties are used directly in the analysis. Stress analysis of chamber is done for 25 cycles and permissible number of hot tests evaluated based on Coffin-Manson type LCF equation.
机译:高推力火箭需要高性能液体发动机的推进。推进所需的推力是通过混合,燃烧和喷射发动机的推力室内的燃料和氧化剂来产生的。本研究中调查的发动机是本发明的半低温发动机在真空中发育2000 kN的推力。其推力室是双墙结构,内壁的内壁开发出高导电性高延展性铜合金和高强度不锈钢外墙。内壁由于高热和压力负载而在弹性塑料状态下运行。由于低循环疲劳(LCF),高温蠕变和内壁的热棘轮,由于发动机的重复热试验而发生的腔室的结构失败。在本文中,使用ANSYS(版本16)代码进行推力室的循环应力分析。 Chaboche非线性运动硬化塑性模型,VOCE非线性各向同性固化模型和诺顿二次蠕变模型的组合用于铜,而双线性运动硬化模型被选为不锈钢。在公开的蠕变性能直接用于分析中,详细给出了从拉伸和LCF测试校准Chaboche和Voce模型参数的步骤,同时在分析中直接使用。采用腔室的应力分析进行25个循环和基于棺材 - 曼森型LCF方程评估的允许数量的热试数。

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