• 제목/요약/키워드: energy dissipated mechanism

검색결과 29건 처리시간 0.022초

Energy-based evaluation of liquefaction potential of uniform sands

  • Sonmezer, Yetis Bulent
    • Geomechanics and Engineering
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    • 제17권2호
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    • pp.145-156
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    • 2019
  • Since behaviors of loose, dense, silty sands vary under seismic loading, understanding the liquefaction mechanism of sandy soils continues to be an important challenges of geotechnical earthquake engineering. In this study, 36 deformation controlled cyclic simple shear tests were performed and the liquefaction potential of the sands was investigated using three different relative densities (40, 55, 70%), four different effective stresses (25, 50, 100, 150 kPa) and three different shear strain amplitudes (2, 3.5, 5%) by using energy based approach. Experiments revealed the relationship between per unit volume dissipated energy with effective stress, relative density and shear strain. The dissipate energy per unit volume was much less affected by shear strain than effective stress and relative density. In other words, the dissipated energy is strongly dependent on relative density and effective stress. These results show that the dissipated energy per unit volume is very useful and may contain the non-uniform loading conditions of the earthquake spectrum. When multiple regression analysis is performed on experiment results, a relationship is proposed that gives liquefaction energy of sandy soils depending on relative density and effective stress parameters.

선박충돌에 의한 선박과 방호공의 에너지 소산 메카니즘 (The energy dissipation mechanism of ship and fender system by vessel collision)

  • 홍관영;이계희;고재용;이성로
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2005년도 춘계 학술발표회 논문집
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    • pp.696-703
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    • 2005
  • Recently, the collision problems between a bridge and a navigating ship are frequently issued at the stage of structure design. Even the many study results about vessel to vessel collision are presented, but the collision studies between vessel and bridge structure have been hardly presented. In this study, nonlinear dynamic analysis of vessel and fender system carry out using ABAQUS/Explicit commercial program with consideration of some parameters, such as bow structure we composed to shell element also ship's hull is modeling to beam element. Also, buoyancy effect is considered as spring element. The two types of fender systems was comparable with both collision analysis about steel materials fender system and rubber fender system On the purpose of study is analyzed the plasticity dissipated energy of vessel and fender system. We blow characteristic that kinetic energy is disappeared by plastic large deformation in case of collision. Also, We considered dissipated kinetic energy considering friction effect.

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Dynamic response of a hinged-free beam subjected to impact at an arbitrary location along its span with shear effect

  • Zhang, Y.;Yang, J.L.
    • Structural Engineering and Mechanics
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    • 제26권5호
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    • pp.483-498
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    • 2007
  • In case of considering the shear effect, the complete solutions are obtained for dynamic plastic response of a rigid, perfectly plastic hinged-free beam, of which one end is hinged and the other end free, subjected to a transverse strike by a travelling rigid mass at an arbitrary location along its span. Special attention is paid to new deformation mechanisms due to shear sliding on both sides of the rigid mass and the plastic energy dissipation. The dimensionless numerical results demonstrate that three parameters, i.e., mass ratio, impact position of mass, as well as the non-dimensional fully plastic shear force, have significant influence on the partitioning of dissipated energy and failure mode of the hingedfree beam. The shear effect can never be negligible when the mass ratio is comparatively small and the impact location of mass is close to the hinged end.

Stress-related energy dissipation and damping model of concrete considering moisture content

  • Liu, Baodong;Zhang, Pengyuan;Lyu, Wenjuan
    • Advances in concrete construction
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    • 제13권6호
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    • pp.423-431
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    • 2022
  • Although the influence of moisture content on the mechanical properties of concrete has been studied for a long time, research related to its influence on the damping and energy dissipation property of concrete structure is still very limited. In this paper, the relationship between damping property and moisture content of concrete using cyclic uniaxial compression is firstly presented, and the mechanism of the influence of moisture content on concrete damping and energy dissipation capacity is analyzed. Based on the experimental research, moisture-related damping and energy dissipation model is proposed. Results show that the dissipated energy of concrete and loss factor increase as the moisture content increasing. The energy dissipation coefficient reflecting the influence of stress level of concrete under cyclic load, decreases first and then increases as the moisture content increasing. The mechanism of moisture-related energy dissipation behavior can be divided into the reactive force of water, the development of the internal micro cracks and the pore water pressure. Finally, the proposed moisture-related damping and energy dissipation model are verified.

커플링보의 주기거동특성 및 에너지소산능력 (Behavioral Characteristics and Energy Dissipation Capacity of Coupling Beams Subject to Cyclic Loads)

  • 엄태성;박홍근;강수민
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2004년도 추계 학술발표회 제16권2호
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    • pp.9-12
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    • 2004
  • Coupling beams subject to cyclic loads exhibit different behavioral characteristics and energy dissipation capacity varying with re-bar layouts. In the present study, nonlinear analysis method was developed using analogous truss model. Using the numerical method, parametric studies were performed to investigate the behavioral characteristics and the energy dissipation mechanism of coupling beams with various re-bar layouts subject to cyclic loading. Based on the investigation, a simple and practical method for evaluating the energy dissipation capacity of coupling beams was developed and verified by experiments. The proposed method accurately predicted the dissipated energy during cyclic loading addressing design parameters such as re-bar layouts, re-bar ratio, and deformation. The proposed method can be easily applied to nonlinear static and dynamic methods for seismic analysis and design.

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The rock fragmentation mechanism and plastic energy dissipation analysis of rock indentation

  • Zhu, Xiaohua;Liu, Weiji
    • Geomechanics and Engineering
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    • 제16권2호
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    • pp.195-204
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    • 2018
  • Based on theories of rock mechanics, rock fragmentation, mechanics of elasto-plasticity, and energy dissipation etc., a method is presented for evaluating the rock fragmentation efficiency by using plastic energy dissipation ratio as an index. Using the presented method, the fragmentation efficiency of rocks with different strengths (corresponding to soft, intermediately hard and hard ones) under indentation is analyzed and compared. The theoretical and numerical simulation analyses are then combined with experimental results to systematically reveal the fragmentation mechanism of rocks under indentation of indenter. The results indicate that the fragmentation efficiency of rocks is higher when the plastic energy dissipation ratio is lower, and hence the drilling efficiency is higher. For the rocks with higher hardness and brittleness, the plastic energy dissipation ratio of the rocks at crush is lower. For rocks with lower hardness and brittleness (such as sandstone), most of the work done by the indenter to the rocks is transferred to the elastic and plastic energy of the rocks. However, most of such work is transferred to the elastic energy when the hardness and the brittleness of the rocks are higher. The plastic deformation is small and little energy is dissipated for brittle crush, and the elastic energy is mainly transferred to the kinetic energy of the rock fragment. The plastic energy ratio is proved to produce more accurate assessment on the fragmentation efficiency of rocks, and the presented method can provide a theoretical basis for the optimization of drill bit and selection of well drilling as well as for the selection of the rock fragmentation ways.

고속카메라 영상분석 데이타를 이용한 충격흡수시설의 충돌거동 분석에 관한 연구 (Study on Behavior Analysis of Crash Cushion Using Analysis Data of High-Speed Camera)

  • 장대영;고만기;이윤기;주재웅
    • 한국도로학회논문집
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    • 제11권2호
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    • pp.75-83
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    • 2009
  • 충격흡수시설의 충돌거동은 보통 0.4초 미만의 짧은 순간에 일어나므로 삼차원의 매우 복잡한 거동을 수치적으로 계산한다는 것은 쉽지 않다. 따라서 새로운 충격흡수시설을 개발할 때 특별한 설계단계를 거치지 않고 실물차량 충돌시험에만 의존하고 있는 실정이다. 충돌시험에서 탑승자 안전도를 평가하기 위해서 계측기를 통해 가속도와 각속도를 추출하여 계산하고 있으며 고속카메라를 이용해 차량과 충격흡수시설의 충돌거동을 촬영한다. 하지만 고속카메라 영상의 활용범위는 제한적으로 사용되고 있으며, 탑승자 안전도 분석이나 충격흡수시설의 에너지소산 메커니즘을 분석하기위해 활용된 사례가 없다. 본 연구에서는 계측기로부터 획득한 데이타와 고속카메라 영상분석을 통해 추출된 데이타를 비교해 적합성 여부를 판단하고 탑승자 안전도 해석이나 충돌거동을 분석 에 활용할 수 있는 방안을 모색하였다.

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재료의 역학적 거동특성에 기초한 액상화 평가방법 (New Methods for Assessing Liquefaction Potential Based on the Characteristics of Material)

  • 김경환;박인준;김수일
    • 한국지반공학회지:지반
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    • 제14권5호
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    • pp.205-218
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    • 1998
  • 사질토로 구성된 지반은 점토로 구성된 지반에 비해 배수 및 강도면에서 우수하다는 장점이 있다. 하지만 느슨한 사질토 지반의 경우 지진하중과 같은 급속하중이 가해지면 전단력을 상실하고 유체와 같은 거동을 하는 액상화가 발생할 가능성이 있다. 따라서 본 연구에서는 사질토의 액상화현상을 재료의 역학적 거동특성의 관점에서 접근하는 연구를 수행하였다. 재료의 역학적 거동특성에 기초한 개념으로써 소산에너지 개념에 기초를 하고 있는 에너지법과 토폐의 연화응답(softening response)에 대한 구성방정식을 기초로 하는 교란상태개념(disturbed state concept , DSC)을 이용한 방법을 액상화에 대한 해석에 적용하였다. 주문진 표준사를 대상으로 수행한 다양한 상대밀도에 대한 진동삼축시험결과를 해석에 적용하였다. 주문진 표준사를 대상으로 한 진동삼축시험결과는 다른 조건이 동일한 경우 상대밀도가 증가함에 따라 액상화 발생에 요구되는 반복하중의 재하회수가 증가하였다. DSC법을 통한 액상화평가 결과, 상대밀도가 증가함에 따라 액상화발생에 요구되는 시료의 교란 또는 증가하였고 소성변형률은 감소하는 결과를 보였다. 이는 시료의 상대밀도가 증가함에 따라 시료는 보다 견고한 상태에 있으며 그로 인해 액상화에 요구되는 시료의 교란도가 보다 크며 소성변형도 감소되는 것으로 판단된다. 에너지법에 의한 액상화평가 결과, 반복하중의 재하시 시료내부 미세구조의 변화에 기인하는 소산에너지는 과잉간극수압과 일정한 함수관계가 있는 것으로 나타났다. 본 연구에서는 에너지법에 의한 액상화 발생시기를 시료내부의 소산에너지의 변화가 가장 급격한 시기로 제안하였으며, 이를 통한 해석결과는 시험결과와 비교해 볼 때 타당성있는 결과를 보여주었다. DSC법에 소개된 액상화발생시기의 판정방법과 본 연구에서 제시한 에너지법에 의한 액상화발생 시기의 판정방법을 시험결과를 통해 검증한 결과 신뢰할 말한 결과를 보여주고 있으며. 이를 통해 포화사질토에 대한 합리적인 액상화판정의 수행이 가능하다고 판단된다.

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Numerical simulations of progression of damage in concrete embedded chemical anchors

  • Sasmal, S.;Thiyagarajan, R.;Lieberum, K.H.;Koenders, E.A.B.
    • Computers and Concrete
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    • 제22권4호
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    • pp.395-405
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    • 2018
  • In this paper, the performance of post-installed adhesive bonded anchor embedded in concrete is assessed using numerical simulations. This study aims at studying the influence of parameters on the performance of a chemically bonded anchorage system. Non-linear finite element modelling and simulations are carried out by properly using the material properties and phenomenon. Materials parameters such as characteristic length, fracture energy, damage criteria, tension retention and crack width of concrete and interface characteristics are carefully assigned so as to obtain a most realistic behaviour of the chemical anchor system. The peak strength of two different anchor systems obtained from present numerical studies is validated against experimental results. Furthermore, validated numerical models are used to study the load transferring mechanism and damage progression characteristics of various anchors systems where strength of concrete, strength of epoxy, and geometry and disposition of anchors are the parameters. The process of development of strain in concrete adjacent to the anchor and energy dissipated during the course of damage progression are analysed. Results show that the performance of the considered anchorage system is, though a combined effect of material and geometric parameters, but a clear distinction could be made on the parameters to achieve a desired performance based on strength, slip, strain development or dissipated energy. Inspite the increase in anchor capacity with increase in concrete strength, it brings some undesirable performance as well. Furthermore, the pullout capacity of the chemical anchor system increases with a decrease in disparity among the strength of concrete and epoxy.

Coupled Eulerian-Lagrangian 기법을 이용한 선박의 수중사면 충돌해석 2 : 매개변수연구 (Vessel Collision Analysis of an Underwater Soil Slope using Coupled Eulerian-Lagrangian Scheme 2: Parametric Study)

  • 이계희
    • 한국전산구조공학회논문집
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    • 제33권1호
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    • pp.25-33
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    • 2020
  • 본 논문에서는 Coupled Eulerian-Lagrangian(CEL) 기법을 이용하여 인공섬 형식의 방호공을 구성하는 수중사면에 선박이 충돌하는 경우 발생하는 선박의 선수와 지반의 거동에 대한 매개변수 해석을 수행하였다. 고려된 매개변수는 선수의 경우 선수각, 스템각, 충돌위치 그리고 충돌속도이며, 지반의 조건으로 사면의 기울기, 지반과 선박의 마찰계수 그리고 지반의 강도이다. 선수의 거동으로부터 소산된 충돌력과 운동에너지를 각 매개변수에 대해 산정하고, 이를 지반의 변형과 연계하여 에너지 소산기구의 거동을 파악하였다. 충돌력을 변위의 지수함수로 가정하고 매개변수의 영향을 검토하였다. 그 결과 지수함수의 계수는 사면의 경사와 선박과의 마찰계수에만 영향을 받는 결과를 얻었다. 이 관계로부터 소산되는 충돌에너지를 타당하게 산정할 수 있었다. 충돌 시 선수에 의해 밀려난 원지반의 부피와 소산된 충돌에너지는 비례하는 관계로 나타낼 수 있다는 것을 보였고, 이 관계는 선박의 형상보다는 선박과 사면의 마찰계수와 지반의 강도에 영향을 받는 것으로 나타났다.