Optimization of Autoclave Reactors to Improve Bearing Life Using the Taguchi Method and the Response Surface Methodology

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY
Farghani Fariz, Brijesh Patel, Hsien-Cheng Chiu, Shih-Jie Pan, Cheng-Liang Chen, Hao-Yeh Lee, Po Ting Lin
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Abstract

Plastic pervasiveness in daily life has increased in tandem with population growth. Ethylene–vinyl acetate (EVA) is emerging as a popular compound for manufacturing plastic, which is obtained from ethylene and vinyl acetate synthesis. EVA is produced using autoclave reactors, which often encounter bearing damage under specific operating conditions. This research aims to optimize the parameters in autoclave reactors to enhance bearing life. The study focuses on two crucial factors: the number of impellers and the temperature, with bearing life as the response variable. Simulations using finite-element analysis were conducted to obtain the fatigue life of bearings and validated using real-time company data stating the damage of bearings within 80 days. The optimization process employed the Taguchi method (TM) and the response surface methodology (RSM). A comparison of these techniques revealed that temperature had the most significant influence on the response. Interestingly, both methods yielded the same optimal parameters: seven impellers and a temperature of 150 °C. The simulation results using these optimized parameters demonstrated a noteworthy 3.095% increase in bearing life compared to the initial design. The RSM outperformed the Taguchi method in accurately predicting response values with minimum prediction error under optimal conditions.
利用田口法和响应面法优化高压釜反应器以提高轴承寿命
随着人口的增长,塑料在日常生活中的普及程度也在增加。乙烯-醋酸乙烯酯(EVA)是由乙烯和醋酸乙烯合成而成的一种新兴的塑料原料。EVA是使用高压灭菌反应器生产的,在特定的操作条件下经常遇到轴承损坏。本研究旨在优化热压釜反应器的参数,以提高轴承寿命。研究重点是两个关键因素:叶轮数量和温度,轴承寿命作为响应变量。利用有限元分析进行了模拟,以获得轴承的疲劳寿命,并使用公司实时数据验证了轴承在80天内的损坏情况。优化过程采用田口法(TM)和响应面法(RSM)。对这些技术的比较表明,温度对响应的影响最为显著。有趣的是,两种方法都得到了相同的最佳参数:7个叶轮和150°C的温度。使用这些优化参数的仿真结果表明,与初始设计相比,轴承寿命提高了3.095%。在最优条件下,RSM能以最小的预测误差准确预测响应值,优于田口法。
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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来源期刊
Inventions
Inventions Engineering-Engineering (all)
CiteScore
4.80
自引率
11.80%
发文量
91
审稿时长
12 weeks
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