Proposal of a Probabilistic Model on Rotating Bending Fatigue Property of a Bearing Steel in a Very High Cycle Regime
Abstract
:1. Introduction
2. Experimental Fatigue Test Data Referred in This Study
3. Probabilistic Model to Explain the Statistical Fatigue Property in Interior-Induced Fracture
3.1. Effects of Size and Depth of Inclusions on the Fatigue Strength
3.2. Distribution Characteristics of Inclusion Size and Inclusion Depth
3.3. Joint Distribution of Inclusion Size and Inclusion Depth and Analysis of Fatigue Strength Distribution
4. Results and Discussions
4.1. Distribution Characteristics of Fatigue Strength
4.2. Expansion of the Probabilistic Model to Analyze P-S-N Characteristics in Interior-Induced Fracture
4.3. Analysis of the Fatigue Life Distributions in Interior-Induced Fracture Mode
4.4. Reconfirmation of the Number of Inclusions in the Critical Volume
4.5. Mutual Relationship between Both Distributions of Fatigue Strength and Fatigue Life
5. Conclusions
- 1.
- The probability density functions of the inclusion size at the crack initiation site, , was successfully derived by combining the Weibull distribution and the concept of extreme distribution. In addition, the probability density function of the inclusion depth, , was also derived from the uniform distribution of the location of the inclusion in the material space.
- 2.
- Since the inclusion size and the crack depth ξ are statistically independent, the joint probability density function of these random variables, , is given by the direct multiplication of the above two probability density functions, such as .
- 3.
- For the hourglass type specimen of a bearing steel with the definite hardness, the rotating bending fatigue strength of the specimen with any size and depth ξ of the inclusion at the arbitrarily given number of stress cycles Nfix is analytically provided in the very high cycle regime.
- 4.
- Based on the above joint probability density function of , repeating the numerical calculations following , one could obtain the fatigue strength distribution at any number of stress cycles and the fatigue life distribution at any stress level. The analytical results thus obtained were in good agreement with the statistical feature of the experimental fatigue test data.
Author Contributions
Funding
Conflicts of Interest
References
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Tensile strength | 2316 (MPa) |
Vickers’ hardness | 778 (HV) |
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Sakai, T.; Nakagawa, A.; Nakamura, Y.; Oguma, N. Proposal of a Probabilistic Model on Rotating Bending Fatigue Property of a Bearing Steel in a Very High Cycle Regime. Appl. Sci. 2021, 11, 2889. https://doi.org/10.3390/app11072889
Sakai T, Nakagawa A, Nakamura Y, Oguma N. Proposal of a Probabilistic Model on Rotating Bending Fatigue Property of a Bearing Steel in a Very High Cycle Regime. Applied Sciences. 2021; 11(7):2889. https://doi.org/10.3390/app11072889
Chicago/Turabian StyleSakai, Tatsuo, Akiyoshi Nakagawa, Yuki Nakamura, and Noriyasu Oguma. 2021. "Proposal of a Probabilistic Model on Rotating Bending Fatigue Property of a Bearing Steel in a Very High Cycle Regime" Applied Sciences 11, no. 7: 2889. https://doi.org/10.3390/app11072889
APA StyleSakai, T., Nakagawa, A., Nakamura, Y., & Oguma, N. (2021). Proposal of a Probabilistic Model on Rotating Bending Fatigue Property of a Bearing Steel in a Very High Cycle Regime. Applied Sciences, 11(7), 2889. https://doi.org/10.3390/app11072889