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Inelastic Constitutive Models for the Simulation of a Cyclic Softening Behavior of Modified 9Cr-1Mo Steel at Elevated Temperatures
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  • Inelastic Constitutive Models for the Simulation of a Cyclic Softening Behavior of Modified 9Cr-1Mo Steel at Elevated Temperatures
  • Inelastic Constitutive Models for the Simulation of a Cyclic Softening Behavior of Modified 9Cr-1Mo Steel at Elevated Temperatures
저자명
Koo. Gyeong-Hoi,Lee. Jae-Han
간행물명
Journal of mechanical science and technology
권/호정보
2007년|21권 5호|pp.699-707 (9 pages)
발행정보
대한기계학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
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기타언어초록

In this paper, the inelastic constitutive models for the simulations of the cyclic softening behavior of the modified 9Cr-1Mo steel, which has a significant cyclic softening characteristic especially in elevated temperature regions, are investigated in detail. To do this, the plastic modulus, which primarily governs the calculation scheme of the plasticity, is formulated for the inelastic constitutive models such as the Armstrong-Frederick model, Chaboche model, and Ohno-Wang model. By implementing the extracted plastic modulus and the consistency conditions into the computer program, the inelastic constitutive parameters are identified to present the best fit of the uniaxial cyclic test data by strain-controlled simulations. From the computer simulations by using the obtained constitutive parameters, it is found that the Armstrong-Frederick model is simple to use but it causes significant overestimated strain results when compared with the Chaboche and the Ohno-Wang models. And from the ratcheting simulation results, it is found that the cyclic softening behavior of the modified 9Cr-1Mo steel can invoke a ratcheting instability when the applied cyclic loads exceed a certain level of the ratchet loading condition.