Method for expert evaluation of the technical con-dition of the cylinder-piston group of automotive engines after hydrolock

A. Khrulev, O. Saraiev, I. Saraieva
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Abstract

Problem: The study examines the thermogasdynamic process within an internal combustion engine cylinder during cold cranking mode while measuring compression. Analysis of various models and comparison of known data revealed unresolved challenges in constructing mathematical models of the engine operating cycle. The vast majority of practical data and recommendations for compression measurement in a cylinder are based on empirical knowledge, numerous experiments, and tests. Consequently, there arises a need for computational models of the compression measurement process and their theoretical justification, particularly in cases where engine damage occurs during hydrolock in a cylinder. Methodology. To address the identified issues, a mathematical model of the thermogasdynamic process within the cylinder during cold cranking while measuring compression was developed. Originality. Unlike existing models, this model describes the processes in the cylinder step by step, considering the real nature of intake-exhaust processes, air leakage through part interfaces, and heat exchange with the walls. Through modeling, the main patterns of compression changes depending on the modes and the nature of damage to associated parts of the valve mechanism and the cylinder-piston group were identified, including deformation of the connecting rod during hydraulic lock due to liquid entering the cylinder. Practical value. Based on the study results, it was concluded that the model's properties make it effectively applicable in diagnosing and monitoring the technical condition of automotive engines during operation.
水锁后汽车发动机汽缸活塞组技术状况的专家评估方法
问题:本研究探讨了内燃机气缸在冷启动模式下测量压缩时的热气动力过程。对各种模型的分析和已知数据的比较显示,在构建发动机工作循环的数学模型方面存在尚未解决的难题。有关气缸压缩测量的绝大多数实用数据和建议都是基于经验知识、大量实验和测试。因此,有必要建立压缩测量过程的计算模型及其理论依据,特别是在气缸水锁期间发生发动机损坏的情况下。方法。为解决已发现的问题,开发了冷曲柄测量压缩过程中气缸内热气动力过程的数学模型。独创性。与现有模型不同,该模型逐步描述了气缸内的过程,考虑了进气-排气过程、通过部件界面的空气泄漏以及与缸壁的热交换的实际性质。通过建模,确定了压缩变化的主要模式取决于气门机构和气缸活塞组相关部件的损坏模式和性质,包括液体进入气缸导致液压锁定时连杆的变形。实用价值。根据研究结果得出的结论是,该模型的特性使其可有效用于诊断和监测汽车发动机在运行过程中的技术状况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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