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Error propagation analysis models for aero-engine rotor assembly: A systematic review

不确定性传播 转子(电动) 还原(数学) 数学模型 计算机科学 过程(计算) 振动 系统误差 控制理论(社会学) 控制工程 误差分析 工程类 直升机旋翼 错误检测和纠正 观测误差 算法 概念设计
作者
Muhammad Arif,Tanweer Hussain,Nayyar Hussain Mirjat,Asif Ali Shaikh,Shoaib Ahmed Khatri
标识
DOI:10.1177/09544054261433838
摘要

Accurate rotor installation is essential in order to ensure the performance, reliability, and safety of aero-engines. However, manufacturing errors introduced during the assembly process have the potential to propagate and drive the entire assembly out of their desired specifications. According to the reviewed studies, advanced mathematical models show notable improvements in rotor assembly precision. Reported outcomes include reduction of maximum coaxiality errors from 48.8 μ m to 17.9 μ m, reduced fitting-axis offsets from 21.3 μ m to 8.5 μ m, docking error reductions of 50%–65%, and prediction deviations maintained below 14%. Additional findings show 22.5% reduction in vibration amplitude, 44.1% reduction in unbalance, and error reduction rates reaching 86% using intelligent optimization approaches. This review provides a systematic and comprehensive analysis of the state-of-the-art mathematical models employed for the error propagation analysis in aero-engine rotor assembly. These models are effectively used for evaluating and mitigating errors from the conceptual design to the final assembly. The primary objective of this review study is to identify the most widely adopted mathematical model used for error propagation analysis in aero-engine rotor assembly. Forty-five scholarly research papers, including journal articles, patents, and a conference paper have been thoroughly reviewed to provide key insights pertaining to error propagation rotor assembly. The findings of this study underscore the growing importance of mathematical models in improving aero-engine rotor assembly precision, particularly HMT based models thus paving the way for more efficient and robust aero-engine manufacturing processes. This review serves as a valuable source of knowledge for researchers and engineers, guiding them in selecting the most appropriate model to improve assembly accuracy and ensure the safe functioning of aero-engines.
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