• 제목/요약/키워드: strain-softening behavior

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연화모델을 이용한 저토피 NATM 터널의 변형거동의 예측 (Prediction of Deformation Behavior of a Shallow NATM Tunnel by Strain Softening Analysis)

  • 이재호;아쿠타가와 신니치;김영수
    • 한국지반공학회논문집
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    • 제23권9호
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    • pp.17-28
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    • 2007
  • 도심지 지하 터널은 주변 구조물의 존재 하에서 미고결성 저토피고 지반에 건설되는 경우가 많기 때문에 일반 산악 터널이나 대심도 암반층에 건설되는 지하공동과는 달리 터널 주변의 지반 변위, 지표면 침하와 기울기가 터널 설계의 주요인자가 된다. 본 논문은 도심지 NATM 터널의 변형거동에 대한 합리적 해석 방법의 확립을 위한 연구로서 변형률 연화 모델을 이용한 수치해석적인 방법을 통하여 굴착에 따른 지반 평가와 거동 예측을 수행하였다. 적용되어진 변형률 연화모델은 지반이 항복후 전단변형률의 증가에 따른 전단강성와 강도정수의 저하를 고려한 것이다. 현장 계측 결과는 시공중 설계물성치의 재설정에 이용되어졌다. 연화모델의 결과와 현장 계측값과의 비교에서 적용되어진 모델이 지표 침하, 기울기, 지중 침하 및 지중 수평변위의 변형 양상을 어느 정도 재현될 수 있음을 알 수 있었다. 본 논문에서 제안된 모델을 토대로 시공조건이 엄밀한 도심지 터널의 변형거동에 정량적인 평가 및 예측이 가능할 것으로 기대된다.

대변형 탄소성유한요오법에 의한 재료의 연화현상을 고려한 파괴거동해석 (Finite Element Method for Failure Analysis Considering Large Deformation and Strain Softening)

  • 김영민
    • 한국지반공학회지:지반
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    • 제13권2호
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    • pp.29-38
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    • 1997
  • 암석과 같은 지반재료를 전단하게 되면 응력-변형률관계에서 변형률연화현상이 관찰되어진다. 변형률연화현상은 지반공학문제에서 논하고 있는 파괴거동현상과 밀접한 관계가 있으므로 그 거동을 묘사할 수 있는 수치해석방법의 확립이 중요하다. 본 논문에서는 대변형 탄소성유한요소법을 이용하여 지반재료의 파괴거동를 묘사하기 위해서 재료의 연화성질을 도입하여 해석하는 경우, 고려해야 할 요소의 선택, 배치, 초기부정의 영향, 미소변형과 대변형 해석의 차이, 최고점 하중후의 하중제어를 하기 위한 변위제어 및 압력제어의 차이에 대하여 검토하였다.

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Experimental and numerical investigations on the ratcheting characteristics of cylindrical shell under cyclic axial loading

  • Shariati, M.;Hatami, H.;Torabi, H.;Epakchi, H.R.
    • Structural Engineering and Mechanics
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    • 제44권6호
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    • pp.753-762
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    • 2012
  • The ratcheting characteristics of cylindrical shell under cyclic axial loading are investigated. The specimens are subjected to stress-controlled cycling with non-zero mean stress, which causes the accumulation of plastic strain or ratcheting behavior in continuous cycles. Also, cylindrical shell shows softening behavior under symmetric axial strain-controlled loading and due to the localized buckling, which occurs in the compressive stress-strain curve of the shell; it has more residual plastic strain in comparison to the tensile stress-strain hysteresis curve. The numerical analysis was carried out by ABAQUS software using hardening models. The nonlinear isotropic/kinematic hardening model accurately simulates the ratcheting behavior of shell. Although hardening models are incapable of simulating the softening behavior of the shell, this model analyzes the softening behavior well. Moreover, the model calculates the residual plastic strain close to the experimental data. Experimental tests were performed using an INSTRON 8802 servo-hydraulic machine. Simulations show good agreement between numerical and experimental results. The results reveal that the rate of plastic strain accumulation increases for the first few cycles and then reduces in the subsequent cycles. This reduction is more rapid for numerical results in comparison to experiments.

토목섬유 interface의 변형율 연화 모델 개발 (Development of Strain-softening Modeling for Interfaces between Geosynthetics)

  • 서민우;박준범;박인준;조남준
    • 한국지반신소재학회논문집
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    • 제2권1호
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    • pp.57-68
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    • 2003
  • Strain-softening model is developed to characterize the interface behavior of geomembrane with geotextile and geosynthetic clay liner(GCL). The model proposed in this research is calibrated by using data from direct shear tests conducted on smooth and textured geomembrane. The research is divided into two regions, pre-peak and post-peak, to take into account of strain-softening effect. Although slight difference between measured and back calculated data is observed under high normal stress, good agreements, in general, are found from back calculations. Especially, good consistency is observed in the case of low normal stress. Based on the results, it can be concluded that the proposed model can be a reasonable constitutive law to figure out the behavior of strain-softening between interfaces of geomembrane. In addition, DSC(Disturbed State Concept) model is also presented for further application in geosynthetic interfaces.

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A Study on Dynamic Crack-Tip Fields in a Strain Softening Material

  • Jang, Seok-Ki;Xiankui Zhu
    • Journal of Advanced Marine Engineering and Technology
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    • 제27권4호
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    • pp.494-502
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    • 2003
  • The near-tip field of mode-I dynamic cracks steadily propagating in a strain softening material is investigated under plane strain conditions. The material is assumed to be incompressible and its deformation obeys the $J_2$ flow theory of plasticity. A power-law stress-strain relation with strain softening is adopted to account for the damage behavior of materials near the dynamic crack tip. By assuming that the stresses and strain have the same singularity at the crack tip. this paper obtains a fully continuous dynamic crack-tip field in the damage region. Results show that the stress and strain components the same logarithmic singularity of (In(R/r))$\delta$, and the angular variations of filed quantities are identical to those corresponding to the dynamic cracks in the elastic-perfectly plastic material.

The ground response curve of underwater tunnels, excavated in a strain-softening rock mass

  • Fahimifar, Ahmad;Ghadami, Hamed;Ahmadvand, Masoud
    • Geomechanics and Engineering
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    • 제8권3호
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    • pp.323-359
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    • 2015
  • This paper presents an elasto-plastic model for determination of the ground response curve of a circular underwater tunnel excavated in elastic-strain softening rock mass compatible with a nonlinear Hoek-Brown yield criterion. The finite difference method (FDM) was used to propose a new solution to calculate pore water pressure, stress, and strain distributions on periphery of circular tunnels in axisymmetric and plain strain conditions. In the proposed solution, a modified non-radial flow pattern, for the hydraulic analysis, is utilized. To evaluate the effect of gravitational loads and variations of pore water pressure, the equations concerning different directions around the tunnel (crown, wall, and floor) are derived. Regarding the strain-softening behavior of the rock mass, the stepwise method is executed for the plastic zone in which parameters of strength, dilatancy, stresses, strains, and deformation are different from their elasto-plastic boundary values as compared to the tunnel boundary values. Besides, the analytical equations are developed for the elastic zone. The accuracy and application of the proposed method is demonstrated by a number of examples. The results present the effects of seepage body forces, gravitational loads and dilatancy angle on ground response curve appropriately.

A numerical stepwise approach for cavity expansion problem in strain-softening rock or soil mass

  • Zou, Jin-Feng;Yang, Tao;Ling, Wang;Guo, Wujun;Huang, Faling
    • Geomechanics and Engineering
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    • 제18권3호
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    • pp.225-234
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    • 2019
  • A numerical stepwise approach for cavity expansion problem in strain-softening rock or soil mass is investigated, which is compatible with Mohr-Coulomb and generalized Hoek-Brown failure criteria. Based on finite difference method, plastic region is divided into a finite number of concentric rings whose thicknesses are determined internally to satisfy the equilibrium and compatibility equations, the material parameters of the rock or soil mass are assumed to be the same in each ring. For the strain-softening behavior, the strength parameters are assumed to be a linear function of deviatoric plastic strain (${\gamma}p^*$) for each ring. Increments of stress and strain for each ring are calculated with the finite difference method. Assumptions of large-strain for soil mass and small-strain for rock mass are adopted, respectively. A new numerical stepwise approach for limited pressure and plastic radius are obtained. Comparisons are conducted to validate the correctness of the proposed approach with Vesic's solution (1972). The results show that the perfectly elasto-plastic model may underestimate the displacement and stresses in cavity expansion than strain-softening coefficient considered. The results of limit expansion pressure based on the generalised H-B failure criterion are less than those obtained based on the M-C failure criterion.

SCM 440 강재의 동적 재결정 조직 변화에 관한 연구 (The Evolution of Dynamically Recrystallized Microstructure for SCM 440)

  • 한형기;유연철
    • 소성∙가공
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    • 제10권1호
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    • pp.35-41
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    • 2001
  • The high temperature deformation behavior of SCM 440 can be characterized by the hot torsion test in the temperature ranges of $900^{\circ}C$~$1100^{\circ}C$ and strain rate ranges of 0.05/sec~5/sec. The aim of this paper is to establish the quantitative equation of the volume fraction of dynamic recrystallization (DRX) as a function of processing variables, such as strain rate ($\varepsilon$), temperature (T), and strain ('$\varepsilon$). During hot deformation, the evolution of microstructure could be analyzed from work hardening rate ($\theta$). For the exact prediction of dynamic softening mechanism the critical strain ($\varepsilon_c$), the strain for maximum softening rate ($\varepsilon^*$ and Avrami' exponent (m') were quantitatively expressed by dimensionless parameter, Z/A, respectively. The transformation-effective strain-temperature curve for DRX could be composed. It was found that the calculated results were agreed with the experimental data for the steel at any deformation conditions.

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수정 다층 모델을 이용한 이력곡선의 묘사 (Description of Hysteresis Loops using Modified Overlay Model)

  • 윤삼손;홍성구;이순복
    • 대한기계학회논문집A
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    • 제27권11호
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    • pp.1856-1863
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    • 2003
  • Overlay model had several advantages to describe hysteretic behavior of material and showed good capability for many engineering materials. However, this model is only applicable to material obeying Masing postulate. Some materials such as 316L stainless steel do not follow Masing postulate and show cyclic hardening(or softening) and strain range dependence. Low cycle fatigue tests of 316L stainless steel at 600$^{\circ}C$ were performed to investigate the characteristics of cyclic behavior of non-Masing material. From all tests cyclic softening was observed. There were differences in elastic limit of hysteresis loop according to applied strain range. To consider these features, modified overlay model was developed. Yield stresses of subelements were divided into isotropic and anisotropic part to describe the non-Masing behavior. The plastic strain range memorization was introduced to consider the strain range dependence. The prediction using modified overlay model showed a good accordance to actual hysteresis loops.

Mohr-Coulomb 암반에 굴착된 원형 터널의 변형률연화 거동해석 (Strain-Softening Behavior of Circular Tunnel Excavated in Mohr-Coulomb Rock Mass)

  • 이연규
    • 터널과지하공간
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    • 제16권6호
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    • pp.495-505
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    • 2006
  • 정수압 상태의 등방 무한 매질에 원형 터널이 굴착될 때 터널 주변부에서 발생되는 응력 및 변위 분포를 해석하는 것은 암반공학의 가장 기본적인 문제들 중의 하나이다. 암반을 탄성, 완전소성, 취성-소성 거동체로 가정한 경우 응력 및 변위 분포에 대한 정해가 알려져 있다. 그러나 변형률연화를 가정한 경우는 정해가 존재하지 않으며 여러 가지 가정에 기초한 수치해석적 근사해들이 보고되고 있을 뿐이다. 이 연구에서는 Mohr-Coulomb 암반을 대상으로 이러한 원형 터널의 변형률연화 거동을 간단하게 해석할 수 있는 수치해석 방법을 소개하였다. 이 방법은 변형률연화 거동 뿐만아니라 취성-소성 및 완전소성 거동의 해석에도 적용이 가능하다 정해가 알려진 취성-소성 거동의 검증을 통하여 제안된 모델의 정확성을 입증하였다. 변형률연화 거동해석 예로서 연화지수에 대한 매개변수 해석을 실시하였고 지반반응곡선을 작성하였다. 탄소성 해석시 터널 주변의 변위 분포 특성은 소성영역의 체적팽창성에 크게 영향을 받음을 알 수 있었다.