• 제목/요약/키워드: deformation behavior stability

검색결과 237건 처리시간 0.02초

Stability of perforated nanobeams incorporating surface energy effects

  • Almitani, Khalid H.;Abdelrahman, Alaa A.;Eltaher, Mohamed A.
    • Steel and Composite Structures
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    • 제35권4호
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    • pp.555-566
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    • 2020
  • This paper aims to present an analytical methodology to investigate influences of nanoscale and surface energy on buckling stability behavior of perforated nanobeam structural element, for the first time. The surface energy effect is exploited to consider the free energy on the surface of nanobeam by using Gurtin-Murdoch surface elasticity theory. Thin and thick beams are considered by using both classical beam of Euler and first order shear deformation of Timoshenko theories, respectively. Equivalent geometrical constant of regularly squared perforated beam are presented in simplified form. Problem formulation of nanostructure beam including surface energies is derived in detail. Explicit analytical solution for nanoscale beams are developed for both beam theories to evaluate the surface stress effects and size-dependent nanoscale on the critical buckling loads. The closed form solution is confirmed and proven by comparing the obtained results with previous works. Parametric studies are achieved to demonstrate impacts of beam filling ratio, the number of hole rows, surface material characteristics, beam slenderness ratio, boundary conditions as well as loading conditions on the non-classical buckling of perforated nanobeams in incidence of surface effects. It is found that, the surface residual stress has more significant effect on the critical buckling loads with the corresponding effect of the surface elasticity. The proposed model can be used as benchmarks in designing, analysis and manufacturing of perforated nanobeams.

외부 하중에 따른 세그먼트 라이닝 변형과 보강용 내부 강재 라이닝의 거동 특성 (Deformation of segment lining and behavior characteristics of inner steel lining under external loads)

  • 이경주;송기일
    • 한국터널지하공간학회 논문집
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    • 제26권3호
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    • pp.255-280
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    • 2024
  • 쉴드TBM 터널에서 단면 부족이나 큰 변형이 세그먼트 라이닝의 안정성에 우려될 경우 터널 외부에 지반 그라우팅으로 보강하거나 터널 내부에 강판 보강, 링 빔 보강, Inner double layer lining으로 보강하는 경우가 있다. 또한, 기존의 쉴드 TBM 터널의 해석은 세그먼트라이닝의 분절 특성을 고려하지 않는 연속체의 강성일체법으로 해석되어왔다. 본 연구는 내부 강재 라이닝으로 보강한 double layer 보강 단면에 대해 보강 메커니즘을 연구하였다. 본 연구는 세그먼트 라이닝에 대한 모델링을 개선하여 세그먼트 라이닝의 분절 특성을 고려한 분절체 모델링(BJM)을 적용하였고 이를 통해 세그먼트 라이닝의 변형 특성을 반영한 double layer 보강 단면을 해석하였다. 연구 결과 기존 콘크리트 세그먼트 라이닝은 하중을 일정부분 분담하는 역할이 아닌 터널 주변 지반을 보강한 것과 같은 역할을 하였다. 일반적으로, 세그먼트 라이닝의 분절을 고려한 BJM 모델과 분절을 고려하지 않는 강성일체법 모두 하중을 받은 라이닝의 변형 형상과 응력 분포가 유사하게 나타났다. 그러나 하중의 강도가 임계치를 넘는 경우 변형의 양상에 차이가 있으며 변형 특성을 보다 면밀히 검토할 수 있는 것으로 나타났다.

일정 수직강성 조건하 화강암 인장절리의 전단거동 특성 (Shear Behavior of Rough Granite Joints Under CNS Conditions)

  • 박병기;이창수;전석원
    • 터널과지하공간
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    • 제17권3호
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    • pp.203-215
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    • 2007
  • 암반의 역학적 변형거동과 안정성은 불연속면의 역학적 특성에 크게 좌우되기 때문에 터널이나 암반구조물의 안정성 해석 및 설계를 위해서는 반드시 암반 불연속면의 역학적 성질을 규명할 필요가 있다. 지하암반 절리면의 실제 거동을 실내에서 정확히 모사하기 위해 본 연구에서는 일련의 일정 수직강성 조건하 직접 전단시험을 수행하여 초기 수직응력, 전단속도 그리고 절리면의 거칠기가 거친 화강암 절리면의 전단거동특성에 미치는 영향을 살펴보았다. 일정 수직강성 조건에서 거친 암석절리에 대한 시험 결과 전단거동은 일반적으로 1차 정점 전단응력에서의 전단응력 감소 정도에 따라 크게 두 가지 형태의 전단거동을 보이는 것으로 구분되었다. 초기 수직응력이 증가함에 따라 정점 전단변위와 1차 정점 전단응력은 증가하지만 마찰각과 정점 마찰계수의 경우 감소하는 것으로 나타났으며, 전단강성과 평균마찰계수의 경우는 초기 수직응력에 영향을 받지 않는 것으로 나타났다. 거친 절리에 대한 전단속도의 영향은 초기 수직응력이 낮은 경우 일부 전단변수들에서 약간 관찰되었으나 수직응력이 증가함에 따라 대부분의 전단시험 결과변수들에서 전단속도의 영향은 미미하였다. 거칠기에 따른 전단거동의 변화를 분석하였으나 명확한 관련성이 나타나는 경우보다 시료간의 편차가 심한 경우가 많았다.

Stability analysis of functionally graded heterogeneous piezoelectric nanobeams based on nonlocal elasticity theory

  • Ebrahimi, Farzad;Barati, Mohammad Reza
    • Advances in nano research
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    • 제6권2호
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    • pp.93-112
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    • 2018
  • An analytical solution of the buckling governing equations of functionally graded piezoelectric (FGP) nanobeams obtained by using a developed third-order shear deformation theory is presented. Electro-mechanical properties of FGP nanobeam are supposed to change continuously in the thickness direction based on power-law model. To capture the small size effects, Eringen's nonlocal elasticity theory is adopted. Employing Hamilton's principle, the nonlocal governing equations of a FG nanobeams made of piezoelectric materials are obtained and they are solved using Navier-type analytical solution. Results are provided to show the effect of different external electric voltage, power-law index, nonlocal parameter and slenderness ratio on the buckling loads of the size-dependent FGP nanobeams. The accuracy of the present model is verified by comparing it with nonlocal Timoshenko FG beams. So, this study makes the first attempt for analyzing buckling behavior of higher order shear deformable FGP nanobeams.

위생용 부직포의 키토산/은나노 혼합용액 처리에 의한 역학적 특성 변화 (Changes in Mechanical Properties of Sanitary Nonwoven Fabrics by Chitosan/Nanosilver Mixed Solution Treatment)

  • 배현숙
    • 한국염색가공학회지
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    • 제22권2호
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    • pp.163-172
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    • 2010
  • In order to investigate the changes in mechanical properties of sanitary nonwoven fabrics actually used as a top sheet, the fabric was treated with a mixture of chitosan and nanosilver colloidal solution in accordance with the prescribed ratio. The former is a natural polymer with excellent biocompatibility and the latter can give an additional performance while compensating the weaknesses of chitosan of deteriorating adherence efficiency. It was shown that the bending and shearing characteristics of the chitosan/nanosilver treated fabrics decreased, which helped to make it softer, smoother and more flexible. The shape stability and drapability of the treated fabrics improved. As KES-FB system evaluation showed that Koshi was deduced, and both Numeri and Fukurami were increased. Thereby, the chitosan/nanosilver treated fabrics were smoother to provide elasticity. In the change of hand value compared to chitosan only treatment, a better THV was shown in the fabrics treated with chitosan/nanosilver mixed solution than the fabric treated with chitosan alone.

지반 크리프 거동의 미시학적 모델링 (Microscopic Modeling of Creep Behavior for Soils)

  • 김대규
    • 한국산학기술학회논문지
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    • 제7권3호
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    • pp.409-413
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    • 2006
  • 미시학적 비배수 크리프 현상의 누적 변형은 점성토 시공지역 지반의 전반 파괴를 야기 할 수 있다. 본 연구에서는 점성토의 비배수 크리프 거동을 예측하기 위하여 Perzyna의 일반 점성이론을 소성론의 개념에서 간략화하고 수정 Cam clay 모델 및 데미지 이론을 포함하는 하나의 시간의존적 구성방정식을 유도하였다. 유도된 구성방정식을 활용하여 예측한 크리프 거동은 비배수 크리프 파괴를 포함하는 크리프 실험결과와 잘 부합하였다.

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원심모형실험에 의한 굴착 흙막이벽의 안정 및 토압분포 (Stability and Earth Pressure Distribution of Excavated Earth Retaining Wall by Centrifugal Model Tests)

  • 김영철;이처근;김홍종;안광국;이명원;허열
    • 한국안전학회지
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    • 제12권3호
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    • pp.139-146
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    • 1997
  • In this study, centrifugal model tests were performed to investigate the behavior of excavated earth retaining wall with the depth of excavation and different types of wall(aluminum, steel panel). Jumunjin standard sand was used for foundation soil. The raining method was adopted to form the required relative density of the model ground. The lateral earth pressure measured from tests were compared with estimated active earth pressure by Rankine's theory. The test results have shown that the earth pressure acting on the retaining wall and the rotation displacement of the wall are influenced by the depth of excavation and the type of wall. It was found from the test results that the deformation of the wall increases with the depth of excavation.

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Dynamic stability analysis of laminated composite plates in thermal environments

  • Chen, Chun-Sheng;Tsai, Ting-Chiang;Chen, Wei-Ren;Wei, Ching-Long
    • Steel and Composite Structures
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    • 제15권1호
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    • pp.57-79
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    • 2013
  • This paper studies the dynamic instability of laminated composite plates under thermal and arbitrary in-plane periodic loads using first-order shear deformation plate theory. The governing partial differential equations of motion are established by a perturbation technique. Then, the Galerkin method is applied to reduce the partial differential equations to ordinary differential equations. Based on Bolotin's method, the system equations of Mathieu-type are formulated and used to determine dynamic instability regions of laminated plates in the thermal environment. The effects of temperature, layer number, modulus ratio and load parameters on the dynamic instability of laminated plates are investigated. The results reveal that static and dynamic load, layer number, modulus ratio and uniform temperature rise have a significant influence on the thermal dynamic behavior of laminated plates.

측방변형을 일으키는 모래지반속의 H형 말뚝에 작용하는 수평력 (Behavior and Lateral Force of H-piles under lateral Soil Movement in Sand)

  • 김영인
    • 한국해양공학회지
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    • 제16권6호
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    • pp.44-48
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    • 2002
  • In lateral ground flow, slope stability, and land slide problems, H-piles have often been used, on a horizontally deforming ground, to prevent the failure of mass of soil in a downward and outward movement of a slope. Here, theoretical equations are derived to estimate the lateral force, assuming that the Mohr-Coulomb's plastic states occur in the ground, just around H-piles. In this study, some model experiments were performed to check the lateral forces determined from theoretical equations, using several pile widths, heights and various interval ratios between H-piles for sand specimens. The solution of the theoretical equation, derived from previous studies, showed reasonable characteristics for constants of soil, as well as for the interval, widths, and heights of H-Pile.

굽힘하중 하의 벌크형 와이어 직조 카고메 트러스 중간재를 갖는 샌드위치 판재의 기계적 거동 (Finite Element Simulation of Behavior of WBK Cored Sandwich Panels Subjected to Bending Loads)

  • 최지은;강기주
    • 대한기계학회논문집A
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    • 제33권4호
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    • pp.353-359
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    • 2009
  • Wire-woven Bulk Kagome (WBK) is a new truss type cellular metal fabricated by systematic assembling of helical wires in six directions. In this work, the experiments of mechanical behaviors of WBK cored sandwich panels subjected to bending load were performed and the results were compared with those by the corresponding analytic solutions. And also, finite element simulations were performed to validate the optimal design according to the analytic solutions. It is found the sandwich panel with WBK core performed excellently in terms of energy absorption and deformation stability after the peak point as well as the load capacity.