• Title/Summary/Keyword: Strain of Structure

검색결과 2,015건 처리시간 0.028초

Nonlinear bending of multilayer functionally graded graphene-reinforced skew microplates under mechanical and thermal loads using FSDT and MCST: A study in large deformation

  • J. Jenabi;A.R. Nezamabadi;M. Karami Khorramabadi
    • Structural Engineering and Mechanics
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    • 제90권3호
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    • pp.219-232
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    • 2024
  • In current study, for the first time, Nonlinear Bending of a skew microplate made of a laminated composite strengthened with graphene nanosheets is investigated. A mixture of mechanical and thermal stresses is applied to the plate, and the reaction is analyzed using the First Shear Deformation Theory (FSDT). Since different percentages of graphene sheets are included in the multilayer structure of the composite, the characteristics of the composite are functionally graded throughout its thickness. Halpin-Tsai models are used to characterize mechanical qualities, whereas Schapery models are used to characterize thermal properties. The microplate's non-linear strain is first calculated by calculating the plate shear deformation and using the Green-Lagrange tensor and von Karman assumptions. Then the elements of the Couple and Cauchy stress tensors using the Modified Coupled Stress Theory (MCST) are derived. Next, using the Hamilton Principle, the microplate's governing equations and associated boundary conditions are calculated. The nonlinear differential equations are linearized by utilizing auxiliary variables in the nonlinear solution by applying the Frechet approach. The linearized equations are rectified via an iterative loop to precisely solve the problem. For this, the Differential Quadrature Method (DQM) is utilized, and the outcomes are shown for the basic support boundary condition. To ascertain the maximum values of microplate deflection for a range of circumstances-such as skew angles, volume fractions, configurations, temperatures, and length scales-a parametric analysis is carried out. To shed light on how the microplate behaves in these various circumstances, the resulting results are analyzed.

온도변화 삼축압축 실험을 이용한 Heating-Cooling 반복 작용시 화강풍화토의 비배수 거동 (Undrained Behavior of Weathered Granite Soil of Heating-Cooling Repeated Acts Using Temperature Control Triaxial Test)

  • 신승민;신춘원;유충식
    • 한국지반신소재학회논문집
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    • 제15권3호
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    • pp.1-12
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    • 2016
  • 본 논문에서는 지열 활용시스템을 지반구조물에 적용시 발생하는 주변 지반에 부과되는 다양한 온도 및 온도변화 사이클이 흙의 역학적 특성에 미치는 영향에 대한 내용을 다루었다. 이를 위해 화강풍화토를 대상으로 다양한 온도변화 조건을 구현하고 이에 따른 흙의 입자구조 및 열전도특성 변화 경향을 고찰하였다. 아울러 다양한 OCR(over consolidation ratio)값을 가지는 시료를 제작하여 내부 온도를 $20^{\circ}C{\sim}70^{\circ}C$까지 변화시키며 온도상승과 가열-냉각 반복작용 횟수에 따른 흙에 미치는 영향을 분석하고자 온도계로 압축셀 내부 온도를 측정하였으며 비배수 실험을 통해 시료에 작용하는 축차응력 및 간극수압을 측정하여 온도변화가 화강풍화토에 미치는 영향을 분석하였다. 그 결과 온도상승과 가열-냉각 반복 작용으로 인해 간극수압이 증가하며 축차응력 또한 감소하는 것으로 관찰되었다.

유·무기 섬유를 복합사용한 HPFRCC의 공학적 특성 (Engineering Properties of HPFRCC Including Both Organic and Inoranic Fibers)

  • 이종태;한천구
    • 한국건축시공학회지
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    • 제15권6호
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    • pp.615-620
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    • 2015
  • 고성능 시멘트 복합재료(HPFRCC)는 인장력 작용 하에 있어서 초기 균열이 발생한 이후에도 변형의 증가와 함께 응력이 증가하는 변형경화 특성과 다수의 미세 균열이 발생함으로써 균열 폭 제어 특성을 나타낸다. 그러나 국내의 HPFRCC의 연구는 단일섬유를 중심으로한 제조방법이나 경화전후의 재료적 성상에 관한 연구들이 진행되어지고 있으나 복합섬유인 HPFRCC를 실무에서 활용하기 위한 연구는 미미한 실정이다. 따라서 본 연구에서는 시공성 및 경제성을 고려하여 실무에서 효율적인 활용성을 검토하기 위한 방안으로 강섬유(이하 SL)와 유기섬유(이하 OL)를 조합한 복합섬유로 유동성 및 강도 등 제반 공학적 특성을 검토하고자 한다. 결과적으로 강섬유 장섬유(SL)과 유기섬유 장섬유(OL)의 복합섬유를 활용하는 HPFRCC의 제반 공학적 성능을 검토한 결과 복합섬유 혼입율 1.5%일 때 가장 우수한 것으로 판단되었다.

지능형 로봇 발을 위한 6 축 힘/모멘트센서 개발 (Development of 6-axis force/moment sensor for an intelligent robot's foot)

  • 김갑순;신희준;허덕찬;윤정원
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2007년도 춘계학술대회A
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    • pp.1097-1102
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    • 2007
  • This paper describes the development of 6-axis force/moment sensor for an intelligent robot's foot. In order to walk on uneven terrain safely, the foot should perceive the applied forces Fx, Fy, Fz and moments Mx, My, Mz to itself. The applied forces and moments should be measured from a 6-axis force/moment sensor attached to a humanoid robot's foot(ankle). They in the published paper already have some disadvantage in the size of the sensor, the rated output and so on. The rated output of each component sensor (6-axis force/moment sensor) is very important to design the 6-axis force/moment sensor for precision measurement. Therefore, each sensor should be designed to be gotten similar the rated output under each rated load. So, the sensing elements of the 6-axis force/moment sensor should get lots of design variables. Also, the size of 6- axis force/moment sensor is very important for mounting to robot's foot. In this paper, a 6-axis force/moment sensor for perceiving forces and moments in a humanoid robot's foot was developed using many PPBs (parallel plate-beams). The structure of the sensor was newly modeled, and the sensing elements (plate-beams) of the sensor were designed using FEM (Finite Element Method) analysis. Then, the 6-axis force/moment sensor was fabricated by attaching strain-gages on the sensing elements, and the characteristic test of the developed sensor was carried out. The rated outputs from FEM analysis agree well with that from the characteristic test.

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지지구조의 유연성을 고려한 고속 유연 폴리곤 미러 스캐너 모터의 유한 요소 불평형 응답 해석 (Finite Element Analysis of Unbalance Response of a High Speed Flexible Polygon Mirror Scanner Motor Considering the Flexibility of Supporting Structure)

  • 정경문;서찬희;김명규;장건희
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2007년도 춘계학술대회논문집
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    • pp.859-865
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    • 2007
  • This paper presents a method to analyze the unbalance response of a high speed polygon mirror scanner motor supported by sintered bearing and flexible supporting structures by using the finite element method and the mode superposition method. The appropriate finite element equations for polygon mirror are described by rotating annular sector element using Kirchhoff plate theory and von Karman non-linear strain, and its rigid body motion is also considered. The rotating components except for the polygon mirror are modeled by Timoshenko beam element including the gyroscopic effect. The flexible supporting structures are modeled by using a 4-node tetrahedron element and 4-node shell element with rotational degrees of freedom. Finite element equations of each component of the polygon mirror scanner motor and the flexible supporting structures are consistently derived by satisfying the geometric compatibility in the internal boundary between each component. The rigid link constraints are also imposed at the interface area between sleeve and sintered bearing to describe the physical motion at this interface. A global matrix equation obtained by assembling the finite element equations of each substructure is transformed to a state-space matrix-vector equation, and both damped natural frequencies and modal damping ratios are calculated by solving the associated eigenvalue problem by using the restarted Arnoldi iteration method. Unbalance responses in time and frequency domain are performed by superposing the eigenvalues and eigenvectors from the free vibration analysis. The validity of the proposed method is verified by comparing the simulated unbalance response with the experimental results. This research also shows that the flexibility of supporting structures plays an important role in determining the unbalance response of the polygon mirror scanner motor.

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RC보의 부착보강공법과 외부강선보강공법의 유효응력에 관한 연구 (A Study on the Effective Stress of RC Beams in Applying the Adhesion Reinforced and the External Post-Tensioning Method)

  • 박용걸;최정열;최준혁
    • 한국철도학회논문집
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    • 제10권2호
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    • pp.186-194
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    • 2007
  • This study was performed to compare the load-carrying capacities of the reinforced concrete structure between the carbon fiber adhesion reinforcement method and the external post-tensioning method and further estimate the effective stress of the reinforced material by analyzing the experimental reinforcing effect of each method and the behavior resulting from each method. As a result, it was found out that the effective stress of the carbon fiber reinforcement according to the carbon fiber adhesion reinforcement method had an unexpected value, and also, bearing of the stress was found to be far from sharing thereof. That is to say, while the carbon fiber was bearing the whole stress to some limits, it got to be momentarily ruptured as soon as it went beyond such limits. On the other hand, the external post-tensioning method has the advantage of inducing an initial effective stress by introducing a strain, and thus, it was found that behavior or bearing of the stress was also found to be a solid behavior of the steel wire. This method was also found to be more efficient and excellent than the carbon fiber adhesion reinforcement method in the reinforcing effect or securing the effective stress. Accordingly, we were to discuss the effective stress as comparatively examined, focusing on deriving of the more enhanced reinforcing effect on the basis of the experiment to which the field characteristic is added.

미소시험편에 의한 재질열화된 내열강의 고온 크리프 특성 평가 (High Temperature Creep Characteristics Evaluation for Degraded Heat Resistance Steel of Power Plant by Mini-Specimen)

  • 류대영;백승세;유효선
    • 한국재료학회지
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    • 제13권7호
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    • pp.429-435
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    • 2003
  • In this study the new creep test using miniaturized specimen(10${\times}$10${\times}$0.5 ㎣) was performed to evaluate the creep characteristics for degraded materials of 2.25Cr-1Mo steel. For this creep test, the artificially aged materials for 330 hrs and 1820hrs at $630^{\circ}C$ were used. The test temperatures applied for the creep deformation of miniaturized specimens was X$630^{\circ}C$ and the applied loads were between 45 kg∼80 kg. After creep test, macro- and microscopic observation were conducted by the scanning electron microscope(SEM). The creep curves depended definitely on applied load and microstructure and showed the three stages of creep behavior like uniaxial tensile creep curves. The load exponents of virgin, 330 hrs and 1820 hrs materials based on creep rate showed 14.8, 9.5 and 8.3 at $550^{\circ}C$ respectively, The 1820 hrs material showed the lowest load exponent and this behavior was also observed in the case of load exponent based on creep rupture time. In contrast to virgin material which exhibited fined dimple fractography, a lot of carbides like net structure and voids were observed on the fractography of degraded materials.

그래핀 기반 지능형 나노복합소재를 이용한 고감도 임팩트 페인트 센서 개발 연구 (Development of Novel Impact Paint Sensor by Using Graphene based Smart Nano Composite)

  • 김성용;박세훈;최경락;박형기;강인필
    • 한국소음진동공학회논문집
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    • 제24권3호
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    • pp.247-252
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    • 2014
  • This paper presents a novel impact sensor which can be fabricated with smart paint made of grapheme. This smart nano paint can be easily installed on structures using a spray-on technique and that can make the sensor low cost and practical. The graphene effectively improves the piezoresistivity of the smart paint and that is available to achieve sensitive impact sensor with high gauge factor. The nano smart-paint can detect sufficient impact to cover the damaged energy range of the composite around 1~3J. The voltage outputs from the sprayed paints show fairly linear responses after signal processing. The impact makes deformation of the structure and it brings change of piezoresistivity of the paint and those converts into voltage output consequently by means of a simple signal processing system. The nano smart paint is lightweight and easily applied to the structural surface, and there is no stress concentration. The nano smart paint is expected to be a cost effective and sensitive multi-functional sensor for composites and other damage monitoring applications in the field of structural health monitoring.

Flip Chip PBGA 패키지의 온도변화에 대한 변형거동 해석 (Thermo-mechanical Deformation Analysis of Filu Chip PBGA Packages Subjected to Temperature Change)

  • 주진원;김도형
    • 마이크로전자및패키징학회지
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    • 제13권4호
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    • pp.17-25
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    • 2006
  • 본 논문에서는 FC-PBGA 패키지를 대상으로 하여 온도변화에 따른 열변형에 대한 실험과 해석을 수행하였다. 모아레 간섭계를 이용하여 각 온도단계에서 변위분포를 나타내는 간섭무늬를 얻고, 그로부터 굽힘변형 거동 및 솔더볼의 변형률에 대한 해석을 수행하였다. 한 개의 패키지가 PCB에 연결되어 있는 단면 패키지 결합체와 두 개의 패키지가 PCB의 양쪽에 연결되어 있는 양면 패키지 결합체의 변형 거동을 비교하였다. FC-PBGA의 단면 패키지 결합체 패키지의 최대 굽힘변위는 결합되지 않은 패키지보다 20%정도 작게 발생된 것으로 나타났으며 앙면 패키지의 경우는 대칭성으로 인하여 칩 윗면의 최대 굽힘변위가 단면패키지보다 반 정도 작게 발생되었다. 솔더볼의 파손에 큰 영향을 미치는 유효변형률은 단면 패키지 결합체의 경우 칩 가장자리의 바로 바깥쪽 솔더볼에서, 양면 패키지 결합체의 경우는 칩 가장자리의 바로 안쪽 솔더볼에서 가장 큰 값을 가졌으며, 그 최대값은 양면패키지 결합체의 경우가 50%정도 더 큰 것으로 나타났다.

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철근 및 프리스트레스트 콘크리트 슬래브의 비선형 해석 (Nonlinear Analysis of Reinforced and Prestressed Concrete Slabs)

  • 최정호;김운학;신현목
    • 콘크리트학회지
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    • 제8권6호
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    • pp.223-234
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    • 1996
  • 본 논문에서는 단조증가하중을 받는 철근 및 프리스트레스트 콘크리트 슬래브의 비선형거동, 즉 탄성, 비탄성, 극한영역에 이르기까지의 모든 하중이력에 대한 응력-변형도 관계와 균열의 진행 및 철근 및 텐던과 콘트리트의 응력과 변형도 등을 정확히 해석할 수 잇는 해석법의 제시를 목적으로 한다. 이러한 목적을 위하여 본 연구에서는 재료적 및 기하학적 비선형성을 고려하였다. 기하학적 비선형성은 Von Karman의 가정에 기본을 둔 total Lagrangian formulation에 의해 고려하였으며 재료적 비선형성에 대해서는 균열콘크리트에대한 인장, 압축, 전단모델과 콘크리트 중에 있는 철근 및 텐던모델을 조합하여 고려하였다. 이에 대한 콘크리트의 균열모델로서는 분산균열모델을 사용하였으며, 철근 및 텐던에 대해서는 1축 응력상태로 가정하여 등가의 분산분포된 철근 및 텐던층으로 모델화하였다. 본 논문에서 제안한 해석방법의 타당성을 검증하기 위하여 몇 개의 실험치를 해석치와 비교.검토한 결과, 본 논문의 해석방법에 의하면 철근 및 프리스트레스트 콘크리트 슬래브의 비선형거동을 보다 정확하게 예측할 수 있었다.