This paper proposes simplified methods to evaluate fatigue damage in a component subjected to cyclic thermal loads to visualize damage distribution by using typical computer-aided engineering systems. The objective is to perform the evaluations on a standard desktop PC within a reasonably short computation time. Three simplified methods for defining elastic stress ranges are proposed in place of the method in the ASME Subsection NH procedures. A thermal fatigue test that was previously performed using a type-304 stainless steel (304SS) cylinder is simulated to validate the proposed methods. Heat transfer and elastic analyses are conducted. Simultaneously with the analyses, fatigue usage factors are calculated using user subroutines formulated in this study, including the three simplified methods and the ASME NH-based method. The calculated values of the fatigue usage factor are visualized using a graphical user interface (GUI) incorporated into a commercial finite-element analysis (FEA) code. The fatigue usage factor distribution obtained using the simplified methods could be calculated without requiring large amounts of memory and long computation time. In addition, the distribution of the fatigue usage factor was consistent with the distribution of cracks observed in the test.
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December 2018
Research-Article
Visualization of Thermal Fatigue Damage Distribution With Simplified Stress Range Calculations
Junya Miura,
Junya Miura
Graduate School of Science and Engineering,
Course of Advanced Mechatronics Systems,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: s36a01700082@toyo.jp
Course of Advanced Mechatronics Systems,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: s36a01700082@toyo.jp
Search for other works by this author on:
Terutaka Fujioka,
Terutaka Fujioka
Mem. ASME
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: fujioka@toyo.jp
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: fujioka@toyo.jp
Search for other works by this author on:
Yasuhiro Shindo
Yasuhiro Shindo
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: shindo060@toyo.jp
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: shindo060@toyo.jp
Search for other works by this author on:
Junya Miura
Graduate School of Science and Engineering,
Course of Advanced Mechatronics Systems,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: s36a01700082@toyo.jp
Course of Advanced Mechatronics Systems,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: s36a01700082@toyo.jp
Terutaka Fujioka
Mem. ASME
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: fujioka@toyo.jp
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: fujioka@toyo.jp
Yasuhiro Shindo
Faculty of Science and Engineering,
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: shindo060@toyo.jp
Department of Mechanical Engineering,
Toyo University,
2100 Kujirai,
Kawagoe 350-8585, Saitama, Japan
e-mail: shindo060@toyo.jp
Contributed by the Pressure Vessel and Piping Division of ASME for publication in the JOURNAL OF PRESSURE VESSEL TECHNOLOGY. Manuscript received November 9, 2017; final manuscript received July 11, 2018; published online November 12, 2018. Assoc. Editor: Oreste S. Bursi.
J. Pressure Vessel Technol. Dec 2018, 140(6): 061403 (7 pages)
Published Online: November 12, 2018
Article history
Received:
November 9, 2017
Revised:
July 11, 2018
Citation
Miura, J., Fujioka, T., and Shindo, Y. (November 12, 2018). "Visualization of Thermal Fatigue Damage Distribution With Simplified Stress Range Calculations." ASME. J. Pressure Vessel Technol. December 2018; 140(6): 061403. https://doi.org/10.1115/1.4041057
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