DEGRADATION OF THE DEFORMATION CAPACITY UNDER CREEP DUE TO MULTIAXIAL STATES OF STRESS

被引:1
作者
EWALD, J
机构
关键词
D O I
10.1002/mawe.19910221002
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A method is proposed, which describes the degradation of the uniform true (rupture) strain phi due to the multiaxial stress states in creep. The method is based on the formulas of Siebel which describe the ratios of the uniform true strains in the 3 principle stress directions for any given states of stress: phi-1/phi-2/phi-3 = (sigma-1 - sigma-m)/(sigma-2-sigma-m)/(sigma-3-sigma-m) sigma-m is the hydrostatic stress. These values for different given stress states are normalized by the principle stress sigma-1ZV for uniaxial tension with the same amount as for the multiaxial stress states. From such ratios [sigma-1-sigma-m/sigma-1ZV] it is possible to find out the real uniform true (rupture) strains phi for the different stress states in taking the uniform true (rupture) strain for uniaxial tension, phi-1BZV, as a basis: [GRAPHICS] The comparison of predicted and tested phi-values proves that the formulas describe the toughness-degradations with the right tendency. For multiaxial states of stress it has to be kept in mind that we have two counterbalancing influences which are on the one hand the reduction of the creep rate due to lower nu. Mises equivalent stresses and on the other hand the reduction of the deformation capacity, described above. A model ist proposed to estimate these influences of the states of stress on the creep rupture times.
引用
收藏
页码:359 / 369
页数:11
相关论文
共 50 条
[41]   Assessment of Creep Deformation, Damage, and Rupture Life of 304HCu Austenitic Stainless Steel Under Multiaxial State of Stress [J].
Sahoo, K. C. ;
Goyal, Sunil ;
Parameswaran, P. ;
Ravi, S. ;
Laha, K. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2018, 49A (03) :881-898
[42]   Assessment of Creep Deformation, Damage, and Rupture Life of 304HCu Austenitic Stainless Steel Under Multiaxial State of Stress [J].
K. C. Sahoo ;
Sunil Goyal ;
P. Parameswaran ;
S. Ravi ;
K. Laha .
Metallurgical and Materials Transactions A, 2018, 49 :881-898
[43]   NUMERICAL EVALUATION OF 2 CREEP-FATIGUE DAMAGE MODELS UNDER COMPLEX LOADING HISTORIES AND MULTIAXIAL STATES OF STRESS [J].
BERTINI, L ;
VITALE, E .
JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 1988, 110 (01) :97-100
[44]   Creep behavior of Grade 91 steel under uniaxial and multiaxial state of stress [J].
Ren, Facai ;
Tang, Xiaoying .
2017 3RD INTERNATIONAL CONFERENCE ON APPLIED MATERIALS AND MANUFACTURING TECHNOLOGY (ICAMMT 2017), 2017, 242
[45]   CYCLIC RATCHETTING OF 1070 STEEL UNDER MULTIAXIAL STRESS STATES [J].
JIANG, YY ;
SEHITOGLU, H .
INTERNATIONAL JOURNAL OF PLASTICITY, 1994, 10 (05) :579-608
[46]   CAVITY GROWTH IN CERAMIC MATERIALS UNDER MULTIAXIAL STRESS STATES [J].
COCKS, ACF ;
SEARLE, AA .
ACTA METALLURGICA ET MATERIALIA, 1990, 38 (12) :2493-2505
[47]   A LINEAR FAILURE CRITERION FOR CONCRETE UNDER MULTIAXIAL STATES OF STRESS [J].
DONIDA, G ;
MENTRASTI, L .
INTERNATIONAL JOURNAL OF FRACTURE, 1982, 19 (01) :53-66
[48]   Multiaxial Inverse Stress Analysis for Indentation Creep [J].
Sakane, Masao ;
Hirano, Akihiko ;
Hamada, Naomi ;
Hoya, Yukari ;
Oka, Takahiro ;
Furukawa, Masataka ;
Itoh, Takamoto .
ICMFF12 - 12TH INTERNATIONAL CONFERENCE ON MULTIAXIAL FATIGUE AND FRACTURE, 2019, 300
[49]   Enhanced degradation of nMOSFETS under dynamic stress due to the broad distribution of interface states [J].
Hwang, H .
SOLID-STATE ELECTRONICS, 1997, 41 (01) :125-126
[50]   Creep Strength of High Chromium Steels Welded Parts under Multiaxial Stress Conditions [J].
Yaguchi, Masatsugu ;
Ogata, Takashi ;
Sakai, Takayuki .
CREEP & FRACTURE IN HIGH TEMPERATURE COMPONENTS: DESIGN & LIFE ASSESSMENT ISSUES, PROCEEDINGS, 2009, :215-226