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Multiple coherence analysis on engine degree-of-freedom study for exhaust system testing

机译:发动机自由度研究的多个相干性分析

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An Automotive Exhaust System Structural Key Life Test has been successfully developed, in part, due to investigations into the boundary conditions of powertrain input. The powertrain (engine and transmission) degree-of-freedom study (hereafter referred to as engine) was investigated in order to determine the sensitivity of the exhaust system to engine motion. Understanding engine motion was necessary in order to establish proper control strategy in the laboratory simulation process. Accurate reproduction of exhaust system response to input road load events was crucial to reproducing known exhaust system fracture modes in early life wear-out conditions. A method multiple coherence analysis has been used to analytically measure the degree of severity between engine input motion and exhaust system output response by analyzing dynamic strain and acceleration. Removing one engine control input at a time, a multiple coherence function was calculated and the exhaust response computed. In all, eighteen case studies were investigated for one vehicle line. Results showed that engine longitudinal translation, and roll were not as critical as engine vertical, lateral, pitch, and yaw motions. This information was then used to drive the real-time simulation control strategies for engine motion.
机译:由于调查进入动力总成输入的边界条件,成功开发了一种汽车排气系统结构关键寿命测试。动力总成(发动机和传输)自由度研究(以下简称发动机)以确定排气系统对发动机运动的敏感性。了解发动机运动是必要的,以便在实验室模拟过程中建立适当的控制策略。准确再现排气系统响应输入道路载荷事件对于在早期寿命磨损条件下再现已知的排气系统骨折模式至关重要。方法通过分析动态应变和加速来分析发动机输入运动和排气系统输出响应之间的严重程度来分析方法多相相干性分析。一次去除一个发动机控制输入,计算多个相干功能并计算排气响应。总而言之,对一条车线进行了一项案例研究。结果表明,发动机纵向翻译,辊与发动机垂直,横向,间距和偏航运动不那么关键。然后使用此信息来推动发动机运动的实时仿真控制策略。

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