TY - JOUR
T1 - A strategy to fast determine Chaboche elasto-plastic model parameters by considering ratcheting
AU - Liu, Shijie
AU - Liang, Guozhu
AU - Yang, Yichuan
N1 - Publisher Copyright:
© 2019 Elsevier Ltd
PY - 2019/5
Y1 - 2019/5
N2 - Ratcheting simulation for steel material is of importance especially when it is subjected to asymmetrical cyclic loading. A strategy to fast determine the Chaboche elasto-plastic model parameters is proposed by considering the ratcheting effect. First, one cyclic ascend experimental test with an equal strain increment of ±0.1% after each twenty-cycle loading phase up to ±1.2% is performed to observe the Masing effect. Then, a strain-controlled fatigue test is conducted at a strain range of ±0.8% to identify the parameters of Chaboche combined hardening model. Besides, a ratcheting test with stress variation from −361.6 MPa to 441.6 Mpa is executed. Based on these experiments, two computational programs are carried out to simulate the cyclic stress-strain response and ratcheting, respectively. In the parameters identification process, a pseudo-percent allocation method is developed to reduce the stress overestimation. Results indicate that: (i) 304SS presents Masing effect when the strain range is bound within ±0.9%, and it follows the previous experimental results about the serrated flow and ratcheting; (ii) The Armstrong-Frederick rules reverse in a small strain when the isotropic hardening considered, so the predicted ratcheting strains for the first few cycles are inevitably underestimated; (iii) Not only the third Armstrong-Frederick hardening rule, but the second Armstrong-Frederick hardening rule has also an effect on the ratcheting simulation.
AB - Ratcheting simulation for steel material is of importance especially when it is subjected to asymmetrical cyclic loading. A strategy to fast determine the Chaboche elasto-plastic model parameters is proposed by considering the ratcheting effect. First, one cyclic ascend experimental test with an equal strain increment of ±0.1% after each twenty-cycle loading phase up to ±1.2% is performed to observe the Masing effect. Then, a strain-controlled fatigue test is conducted at a strain range of ±0.8% to identify the parameters of Chaboche combined hardening model. Besides, a ratcheting test with stress variation from −361.6 MPa to 441.6 Mpa is executed. Based on these experiments, two computational programs are carried out to simulate the cyclic stress-strain response and ratcheting, respectively. In the parameters identification process, a pseudo-percent allocation method is developed to reduce the stress overestimation. Results indicate that: (i) 304SS presents Masing effect when the strain range is bound within ±0.9%, and it follows the previous experimental results about the serrated flow and ratcheting; (ii) The Armstrong-Frederick rules reverse in a small strain when the isotropic hardening considered, so the predicted ratcheting strains for the first few cycles are inevitably underestimated; (iii) Not only the third Armstrong-Frederick hardening rule, but the second Armstrong-Frederick hardening rule has also an effect on the ratcheting simulation.
KW - 304SS stainless steel
KW - Chaboche combined hardening model
KW - Masing effect
KW - Ratcheting behavior
KW - Stress-controlled algorithm
UR - https://www.scopus.com/pages/publications/85063930302
U2 - 10.1016/j.ijpvp.2019.01.017
DO - 10.1016/j.ijpvp.2019.01.017
M3 - 文章
AN - SCOPUS:85063930302
SN - 0308-0161
VL - 172
SP - 251
EP - 260
JO - International Journal of Pressure Vessels and Piping
JF - International Journal of Pressure Vessels and Piping
ER -