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Thermo-Mechanical Analysis of the Exhaust Manifold of a High Performance Turbocharged Engine

机译:高性能涡轮增压发动机排气歧管的热力学分析

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摘要

This contribution presents a methodology for the structural analysis of the exhaust manifold of an internal combustion engine. In particular, the thermal loading and the related thermal fatigue damage mechanism are addressed. The component investigated is a melted exhaust manifold which includes the turbine involute. The complex geometry of the component derives from the project constrains in terms of engine performance and sound targets. Finite Element simulations are performed to obtain a virtual approval of the component geometry, in advance with respect to the component manufacturing. The Finite Element analysis accurately follow the experimental approval procedure which considers different warming and rapid cooling cycles to mimic typical engine operating conditions. Two particular aspects of the developed numerical methodology are described in details: a) the elasto-plastic behaviour of the material at high temperatures;;b) a damage criterion for thermal fatigue. Following the Ferrari expertise derived by previous experimental and numerical analysis of other exhaust manifolds, the increase of the equivalent plastic strain registered for a single thermal cycle (delta PEEQ) is firstly adopted as a damage criterion. The methodology reveals itself to be well correlated with the experimental evidences thus limiting the number of tests necessary for the component approval.
机译:该贡献呈现了内燃机排气歧管的结构分析的方法。特别地,寻址热负荷和相关的热疲劳损坏机制。研究的组件是熔化的排气歧管,其包括涡轮机渐渐性。组件的复杂几何形状在发动机性能和声音目标方面来自项目约束。执行有限元模拟以预先获得组件几何体的虚拟批准,相对于组件制造。有限元分析准确地遵循实验审批程序,以考虑不同的变暖和快速冷却循环以模拟典型发动机操作条件。详细描述了所发育数值方法的两个特定方面:a)高温下材料的弹性塑性行为;; b)损伤热疲劳的标准。通过以前的实验和数值分析的法拉利专业知识和其他排气歧管的数值分析,首先采用了为单个热循环(Delta PEEQ)注册的等效塑料应变的增加作为损坏标准。该方法揭示了与实验证据完全相关,从而限制了组件批准所需的测试数量。

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