DocumentCode :
2049497
Title :
The vibration suppression optimization of electronic apparatus rack based on design of experiment method
Author :
Bo Yuan ; Limei Xu
Author_Institution :
Tech. & Service Center, Westeast Pipline Co., Urumqi, China
fYear :
2015
fDate :
2-5 Aug. 2015
Firstpage :
2466
Lastpage :
2473
Abstract :
The optimization of the mechanical reliability of the electronic rack is considered to be an important part of the product manufacture. In the present study, we used the FEA method to estimate the nature frequency and mode shape of the rack; in addition, the vibration experiment was used to validate the FEA model. The method of design of experiment (DOE) was then integrated into the optimization framework. Statistical analysis and analysis of variance (ANOVA) were also employed to determine the relationship between experimental conditions and yield levels. The effects of influential factors on nature frequency, mass and dynamic stress were investigated. The systematical and analytical evaluation method of Taguchi quality engineering was introduced to evaluate the optimal experimental conditions and hence to achieve the highest dynamic performance and the best robustness of quality from the least number of the experimental plan. The product which was produced with the optimization level of the DOE experiment passed the durability test. The results show that the method presented is theoretical and practical, and this approach provides a powerful design tool for selecting combination of parameters for optimal anti-vibration performance of the rack.
Keywords :
design of experiments; finite element analysis; vibrations; ANOVA; DOE experiment; FEA method; FEA model; Taguchi quality engineering; analysis of variance; analytical evaluation method; design of experiment method; durability test; dynamic stress; electronic apparatus rack; electronic rack; mechanical reliability; optimal antivibration performance; optimization framework; optimization level; powerful design tool; product manufacture; statistical analysis; vibration experiment; vibration suppression optimization; Analysis of variance; Finite element analysis; Flanges; Optimization; Stress; Tin; Vibrations; Modal Analysis; design of experiment; optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Mechatronics and Automation (ICMA), 2015 IEEE International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4799-7097-1
Type :
conf
DOI :
10.1109/ICMA.2015.7237874
Filename :
7237874
Link To Document :
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