DocumentCode
2698126
Title
A general energy-based model for fatigue life prediction of high-temperature structural materials
Author
Liao, Qiang ; Yang, Yuanjian ; Yang, Jianping ; Huang, Hong-Zhong ; He, Liping
Author_Institution
Sch. of Mechatron. Eng., Univ. of Electron. Sci. & Technol. of China, Chengdu, China
fYear
2012
fDate
15-18 June 2012
Firstpage
236
Lastpage
239
Abstract
Improved fatigue life prediction methods will assist in reducing life cycle costs and increasing the availability of mechanical components. These methods include Stromeyer function, Basquin law, Manson-Coffin law, frequency modified damage function (FMDF) model, strain range partition (SRP) and so on. However, different models are applied to assess the life under high cycle fatigue (HCF) and low cycle fatigue (LCF). This is a domain of concern in the development of fatigue life prediction models which contain combinations of HCF and LCF. In this paper, based on the Manson-Coffin law and an energy-based damage parameter, a general energy-based model is presented to predict fatigue life under both HCF and LCF conditions. By correlated with the energy-based damage parameter to the test data of superalloys GH901 and K403 in existing literatures, the lives predicted by the proposed model are compared with experimental results resulting in a good agreement.
Keywords
cost reduction; fatigue; life cycle costing; reliability; structural engineering; superalloys; Basquin law; FMDF model; HCF; Manson-Coffin law; SRP; Stromeyer function; energy-based damage parameter; fatigue life prediction; frequency modified damage function; general energy-based model; high cycle fatigue; high-temperature structural materials; life cycle costs reduction; low cycle fatigue; mechanical components availability; strain range partition; superalloys GH901; superalloys K403; Fatigue; Load modeling; Loading; Materials; Predictive models; Strain; Stress; damage accumulation; energy; fatigue; life prediction;
fLanguage
English
Publisher
ieee
Conference_Titel
Quality, Reliability, Risk, Maintenance, and Safety Engineering (ICQR2MSE), 2012 International Conference on
Conference_Location
Chengdu
Print_ISBN
978-1-4673-0786-4
Type
conf
DOI
10.1109/ICQR2MSE.2012.6246227
Filename
6246227
Link To Document