- Abstract
- 1. 서론
- 2. 구성적 모델링
- 3. 수치해석
- 4. 결론
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https://www.riss.kr/link?id=A99717760
2010
Korean
551
KCI등재
학술저널
468-473(6쪽)
3
0
상세조회0
다운로드목차 (Table of Contents)
참고문헌 (Reference)
1 A. Krausz, "Unified constitutive laws of plastic deformation" Academic Press 1996
2 D. C. Lagoudas, "Thermomechanical modeling of polycrystalline SMAs under cyclic loading, Part II: material characterization and experimental results for a stable transformation cycle" 37 : 1205-1249, 1999
3 E. Patoor, "Thermomechanical behavior of shape memory alloys" 40 : 775-794, 1988
4 W. Yan, "Theoretical modeling of the effect of plasticity on reverse transformation in superelastic shape memory alloys" 354 : 146-157, 2003
5 Z. Moumni, "Theoretical and numerical modeling of solid-solid phase change: Application to the description of the thermomechanical behavior of shape memory alloys" 24 : 614-645, 2008
6 C. Liang, "One-dimensional thermomechanical constitutive relations for shape memory materials" 1 : 207-234, 1990
7 L. C. Brinson, "One dimensional constitutive behavior of shape memory alloys: thermomechanical derivation with non-constant material functions, J. Intell" 4 : 229-242, 1993
8 J. V. Humbeeck, "Non-medical applications of shape memory alloys" 273 : 134-148, 1999
9 D. C. Lagoudas, "Modelling of transformation-induced plasticity and its effect on the behavior of porous shape memory alloys, Part I: constitutive model for fully dense SMAs" 36 : 865-892, 2004
10 K. Ho, "Modeling of nonlinear rate sensitivity by using an overstress model" 2 (2): 351-364, 2001
1 A. Krausz, "Unified constitutive laws of plastic deformation" Academic Press 1996
2 D. C. Lagoudas, "Thermomechanical modeling of polycrystalline SMAs under cyclic loading, Part II: material characterization and experimental results for a stable transformation cycle" 37 : 1205-1249, 1999
3 E. Patoor, "Thermomechanical behavior of shape memory alloys" 40 : 775-794, 1988
4 W. Yan, "Theoretical modeling of the effect of plasticity on reverse transformation in superelastic shape memory alloys" 354 : 146-157, 2003
5 Z. Moumni, "Theoretical and numerical modeling of solid-solid phase change: Application to the description of the thermomechanical behavior of shape memory alloys" 24 : 614-645, 2008
6 C. Liang, "One-dimensional thermomechanical constitutive relations for shape memory materials" 1 : 207-234, 1990
7 L. C. Brinson, "One dimensional constitutive behavior of shape memory alloys: thermomechanical derivation with non-constant material functions, J. Intell" 4 : 229-242, 1993
8 J. V. Humbeeck, "Non-medical applications of shape memory alloys" 273 : 134-148, 1999
9 D. C. Lagoudas, "Modelling of transformation-induced plasticity and its effect on the behavior of porous shape memory alloys, Part I: constitutive model for fully dense SMAs" 36 : 865-892, 2004
10 K. Ho, "Modeling of nonlinear rate sensitivity by using an overstress model" 2 (2): 351-364, 2001
11 Q. P. Sun, "Micromechanics modeling for the constitutive behavior of polycrystalline shape memory alloys - I. Derivation of general relations" 41 : 1-17, 1993
12 X. M. Wang, "Micromechanical modeling of the effect of plastic deformation on the mechanical behavior in pseudoelastic shape memory alloys" 24 : 1307-1332, 2008
13 N. B. Morgan, "Medical shape memory alloy applications - the market and its products" 378 : 16-23, 2004
14 T. J. Lim, "Mechanical behavior of an Ni-Ti shape memory alloy under axial-torsional proportional and nonproportional loading" 121 : 9-18, 1999
15 K. Ho, "Effect of the rate dependence of nonlinear kinematic hardening rule on relaxation behavior" 45 : 821-839, 2008
16 S. Manchiraju, "Coupling between martensitic phase transformation and plasticity: A microstructure-based finite element model" Int. J. Plasticity 2010
17 Q. Kan, "Constitutive model for uniaxial transformation ratcheting of super-elastic NiTi shape memory alloy at room temperature" 26 : 441-465, 2010
18 T. Duerig, "An overview of nitinol medical applications" 273 : 149-160, 1999
19 K. Tanaka, "A thermomechanical description of materials with internal variable in the process of phase transitions" 51 : 287-299, 1982
20 X. Gao, "A multivariant micromechanical model for SMAs: Part I. Crystallographic issues for single crystal model" 16 : 1345-1369, 2000
21 X. Peng, "A microstructurebased constitutive model for the pseudoelastic behavior of NiTi SMAs" 24 : 966-990, 2008
22 호광수, "304 스테인리스강의 점소성 특성에 관한 연구" 한국소성가공학회 16 (16): 101-106, 2007
액슬하우징의 온간 후판단조에서 굽힘 변형된 모서리에서 발생하는 두께 감소 방지를 위하여 고안된 금형 시스템
알루미늄 판재의 압출점접합공정에 있어서 접합강도에 관한 연구
고효율 Hybrid LED 패키지 설계 및 초정밀 광학패턴 가공에 관한 연구
학술지 이력
연월일 | 이력구분 | 이력상세 | 등재구분 |
---|---|---|---|
2026 | 평가예정 | 재인증평가 신청대상 (재인증) | |
2020-01-01 | 평가 | 등재학술지 유지 (재인증) | |
2017-01-01 | 평가 | 등재학술지 유지 (계속평가) | |
2013-01-01 | 평가 | 등재학술지 유지 (등재유지) | |
2010-01-01 | 평가 | 등재 1차 FAIL (등재유지) | |
2008-01-01 | 평가 | 등재학술지 유지 (등재유지) | |
2006-01-01 | 평가 | 등재학술지 유지 (등재유지) | |
2004-01-01 | 평가 | 등재학술지 유지 (등재유지) | |
2001-01-01 | 평가 | 등재학술지 선정 (등재후보2차) | |
1998-07-01 | 평가 | 등재후보학술지 선정 (신규평가) |
학술지 인용정보
기준연도 | WOS-KCI 통합IF(2년) | KCIF(2년) | KCIF(3년) |
---|---|---|---|
2016 | 0.22 | 0.22 | 0.25 |
KCIF(4년) | KCIF(5년) | 중심성지수(3년) | 즉시성지수 |
0.22 | 0.2 | 0.478 | 0.07 |