首页> 外文会议>9th biennial conference on engineering systems design and analysis 2008 >SYSTEM PARAMETERS IDENTIFYING AND PERFORMANCE PREDICTING OF ICEs COMBINING MULTIDISCIPLINARY MODEL WITH SYSTEM RESPONDING DATA
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SYSTEM PARAMETERS IDENTIFYING AND PERFORMANCE PREDICTING OF ICEs COMBINING MULTIDISCIPLINARY MODEL WITH SYSTEM RESPONDING DATA

机译:多学科模型与系统响应数据相结合的冰的系统参数识别与性能预测

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For complex equipments, the phenomena of system declining such as wear and fatigue often takes place and spreads after a period of running. So it is important to identify the interior structural change of system during maintenance to avoid the system to be broken abruptly. Traditionally there are two methods to analyze and predict the structural change of system. One is from the monitoring data of equipments. Another is from the mechanism of structural changing and the interior working process of equipments. In this paper a combining method, which combining the advantages of the above two methods, is used to identify the structural change of internal combustion engines. The principle of the method is to firstly build an analytical system model, in which the system parameters stand for the structural parameters or constraints. Then the current value of system parameters in the model can be identified by comparing the calculating responding results and the detected responding data. From the varying of system parameters the structural change of system can be deduced. For internal combustion engines (ICEs), the most important CPSR (combustion Chamber-Piston-cylinder Sleeve-piston Rings) system is taken as the research object. A multidisciplinary model is built to simulate the interior working processes, especially the combustion process, the structural dynamics process, the tribology process and the coupling processes among them. Then the seeking-roots method (SRM) is used to identify the value of system parameters. A case study on a low power gasoline engine verifies the above method. In the case study, the blow by gap, which stands for the wear of piston rings and cylinder sleeve, is identified with the detected combustion pressure. The case study shows that the method of this paper can identify the structural change of complex equipments. It can provide accurate information for equipments maintenance as well as the residual life prediction.
机译:对于复杂的设备,经过一段时间的运行后,经常会发生系统蔓延的现象,例如磨损和疲劳。因此,重要的是在维护过程中识别系统的内部结构变化,以避免系统突然断裂。传统上有两种分析和预测系统结构变化的方法。一是来自设备的监控数据。另一个是从结构变化的机理和设备的内部工作过程。在本文中,结合了以上两种方法的优点的组合方法被用于识别内燃机的结构变化。该方法的原理是首先建立一个分析系统模型,其中系统参数代表结构参数或约束。然后,通过比较计算的响应结果和检测到的响应数据,可以确定模型中系统参数的当前值。从系统参数的变化可以推断出系统的结构变化。对于内燃机(ICE),最重要的CPSR(燃烧室-活塞-气缸套-活塞环)系统被作为研究对象。建立了一个多学科模型来模拟内部工作过程,尤其是燃烧过程,结构动力学过程,摩擦学过程以及它们之间的耦合过程。然后使用寻根法(SRM)来识别系统参数的值。以低功率汽油机为例,验证了上述方法。在案例研究中,通过检测到的燃烧压力识别间隙的空转,代表活塞环和气缸套的磨损。实例研究表明,本文方法可以识别复杂设备的结构变化。它可以为设备维护以及剩余寿命预测提供准确的信息。

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