• 제목/요약/키워드: transient strain of concrete

검색결과 23건 처리시간 0.024초

하중조건에 따른 경량골재 콘크리트의 열팽창변형 특성 (Properties of Thermal Expansion Strain of Light Weight Aggregate Concrete with Loading Conditions)

  • 윤민호;김규용;이태규;남정수;신경수;이상수
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2012년도 춘계 학술논문 발표대회
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    • pp.255-256
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    • 2012
  • In this study, strain properties of high strength concrete using light weight aggregate which is widely used in recent years are evaluated. For these purpose, thermal strain, transient creep were measured in prestressed condition as 0, 20, 40% of specimen strength at target temperature with 60MPa specimens which was using normal and light weight aggregate. As a result, light weight aggregate is more advantageous for the control of strain than normal aggregate because of its low thermal expansion.

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화재에 손상된 철근콘크리트 부재의 수치모델 및 내화성능해석 (A Numerical Model to Evaluate Fire-Resistant Capacity of the Reinforced Concrete Members)

  • 황진욱;하상희;이용훈;김화중;곽효경
    • 콘크리트학회논문집
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    • 제25권5호
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    • pp.497-508
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    • 2013
  • 이 논문에서는 화재 발생에 따른 구조물의 성능 변화를 평가하기 위한 철근콘크리트 부재의 수치해석모델이 제안되었다. 화재 발생 시 유발되는 전도, 대류 및 복사열의 효과를 고려한 비정상 열전달 해석을 수행하였으며 이를 통해 단면 내 온도분포를 결정하였다. 또한, 적층섬유단면을 적용하여 온도증가로 인해 단면 내 위치에 따라 달라지는 재료의 비선형성을 고려하였다. 이 때, 온도변화에 따라 유발되는 열팽창 변형률, 비정상상태 변형률, 크리프 변형률 등의 비역학적 변형특성을 단면 내 각 섬유에 대해 고려함으로써 화재 발생 시의 극심한 온도증가를 고려한 비선형 해석을 수행하였다. 제안된 해석모델의 타당성을 입증하기 위하여 철근콘크리트부재의 표준화재실험으로부터 얻어진 실험결과와 해석결과를 비교하였으며, 특히, 화재 시간에 따른 저항능력의 변화를 살펴봄으로써, 철근콘크리트 부재의 거동특성을 평가하고 이를 설계규준에서 제시하는 단면 및 저항능력과 비교하였다.

고온가열 및 하중재하에 따른 80, 130, 180 MPa 초고강도콘크리트의 역학적특성평가 (Evaluation of Properties of 80, 130, 180 MPa High Strength Concrete at High Temperature with Heating and Loading)

  • 최경철;윤민호;이태규;이승훈;김규용
    • 콘크리트학회논문집
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    • 제25권6호
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    • pp.613-620
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    • 2013
  • 콘크리트는 고온에 강한재료로 인식되어 왔으나, 화재 등의 고온에 의해 내부조직의 물리 화학적 변화가 발생해 역학적 특성이 저하하게 된다. 이에, 고온시 콘크리트의 역학적 특성의 저하에 관한 연구보고 및 기준이 제시되고 있다. 그러나 고강도 콘크리트 및 하중을 재하한 상태에 관한 연구데이터는 적다. 따라서 이 연구에서는 고온 및 하중재하에 따른 고강도 콘크리트의 고온특성을 평가하였다. W/B 12.5%, 14.5%, 20%의 고강도 콘크리트를 대상으로 비재하상태 및 $0.25f_{cu}$의 하중조건을 설정하여, 고온시의 응력-변형, 최대하중에서의 변형, 압축강도, 탄성계수, 열팽창변형, 단기 고온크리프을 평가하였다. 실험 결과, 압축강도가 높아질수록 가열에 의한 압축강도의 저하가 크게 나타났고, $500^{\circ}C$이상의 온도에서 고온에 의한 열팽창변형과 하중재하에 의한 수축변형이 상쇄되어 압축강도 및 탄성계수의 잔존율이 높아지는 것을 확인할 수 있었다.

설계하중 및 고온을 받은 초고강도 콘크리트의 잔존압축강도 및 변형 특성 평가 (Evaluation on Residual Compressive Strength and Strain Properties of Ultra High Strength Concrete with Design Load and Elevated Temperature)

  • 윤민호;김규용;남정수;윤종일;배창오;최경철
    • 한국건축시공학회:학술대회논문집
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    • 한국건축시공학회 2012년도 추계 학술논문 발표대회
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    • pp.263-264
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    • 2012
  • In this study, the ultra high strength concrete which have 100, 150, 200MPa took the heat from 20℃ to 70 0℃ and the 0, 20% stress in normal condition's to evaluate stress-strain, residual compressive strength and thermal expansion deformation were evaluated. The heating speed of specimen was 0.77℃/min 20~50℃, 50℃ before the target temperature, and the other interval's heating speed was 1℃/min. As a result, the stress-strain curve of non-load specimen showed the liner behavior at high temperature when the specimen's strength increased more. If ultra high strength concrete got loads, its compressive strength tended to decrease different from the normal strength concrete. The thermal expansion deformation was expanded from a vitrification of quartz over 500℃. however, over the 600℃, it was shrinked because of the dehydration of the combined water.

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각종 매설관의 강제진동거동에 관한 연구 (A Study on the Forced Vibration Responses of Various Buried Pipelines)

  • 정진호
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2006년도 춘계 학술발표회 논문집
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    • pp.1334-1339
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    • 2006
  • Dynamic response of buried pipelines both in the axial and the transverse directions on concrete pipe and steel pipe, FRP pipe were investigated through a forced vibration analysis. The dynamic behavior of the buried pipelines for the forced vibration is found to exhibit two different forms, a transient response and a steady state response, depending on the time before and after the transfer of a seismic wave on the end of the buried pipeline. The former is identified by a slight change in its behavior before the sinusoidal-shaped seismic wave travels along the whole length of the pipeline whereas the latter by the complete form of a sinusoidal wave when the wave travels throughout the pipeline. The transient response becomes insignificant as the wave speed increases. From the results of the dynamic responses at the many points of the pipeline, we have found that the responses appeared to be dependent critically on the boundary end conditions. Such effects are found to be most prominent especially for the maximum values of the displacement and the strain and its position.

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Dynamic Analysis of Asphalt Concrete Pavement Structure

  • 윤경구;박제선
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1996년도 봄 학술발표회 논문집
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    • pp.241-246
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    • 1996
  • A new solution for the dynamic analysis of as asphalt concrete pavements under moving loads has been developed. The asphalt concrete pavement can be modeled in elastic or viscoelastic medium of multi-layered structure. The subgrade can be modeled as either a rigid base or a semi-infinite halfspace. The loads may be constant or arbitrary circular loads into one direction. The method utilizes the Complex Response Method of transient analysis with a continuum solution in the horizontal direction and a finite-element solution in the vertical direction. This proposed method incorporates such important factors as wave propagation, inertia and damping effects of the medium as well as frequency-dependent asphalt concrete properties. The proposed method has been validted with the full-scale field truck test, which was conducted on instrumented asphalt concrete section on a test track at PACCAR Technical Center in Mount Vernon, Washington. Comparison with field strain data from full-scale pavement tests has shown excellent agreement. Theoretical results have shown that the effect of vehicle speed is significant and that it is in part due to the frequency-dependent

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강우에 따른 콘크리트 덧씌우기 보수체의 손상에 관한 연구 (Damage of Overlaid Concrete Structures Subjected In Thermally Transient Condition by Rainfall)

  • 윤우현
    • 콘크리트학회논문집
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    • 제13권5호
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    • pp.491-498
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    • 2001
  • 본 연구에서는 강우와 같은 열 충격으로 보수체의 손상(표면 균열, 경계면 파괴)을 유발하는 표면 인장 응력과 기층과 보수층 경계면의 연직 인장 응력 및 진단 응력이 해석적으로 조사되었다. 응력 계산 시에는 사용 재료의 비선형 응력-변형률 곡선이 사용되었고, 특히 변형률 경화, 변형률 연화 특성이 고려되었다. 응력 계산은 보수층의 두께와 보수 재료를 변수로 하여 강우 강도별로 조사되었다. 강우 초기의 보수체의 온도는 하절기에 55$^{\circ}C$까지 가열됐다고 가정하였고, 강우 온도는 1$0^{\circ}C$로 결정하였다. 강우 빈도 1년 1회, 강우 지속 시간 10분, 60분의 강우 하중으로 응력을 계산한 결과, 보수체 표면에서는 실제 균열은 발생치 않고, 단지 변형률 연화 단계의 가상 균열만 형성되었다. 한편 경계면에서는 부착 전단 파괴는 발생치 않았으며, 연직 인장 파괴를 유발하는 음력이 일정한 강우 강도 및 보수 재료에서 보수층의 두께(do)가 클수록 증가하는 것으로 나타나, 경계면의 연직 인장 응력이 보수체의 안전성에 주요한 변수임을 알 수 있었다. 따라서 강우시 경계면의 파괴 예방을 위해 보수 재료의 성질 및 보수층의 두께를 결정할 수 있는 연직 인장 음력의 예측식을 제안하였다.

Integrated fire dynamic and thermomechanical modeling of a bridge under fire

  • Choi, Joonho;Haj-Ali, Rami;Kim, Hee Sun
    • Structural Engineering and Mechanics
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    • 제42권6호
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    • pp.815-829
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    • 2012
  • This paper proposes a nonlinear computational modeling approach for the behaviors of structural systems subjected to fire. The proposed modeling approach consists of fire dynamics analysis, nonlinear transient-heat transfer analysis for predicting thermal distributions, and thermomechanical analysis for structural behaviors. For concretes, transient heat formulations are written considering temperature dependent heat conduction and specific heat capacity and included within the thermomechanical analyses. Also, temperature dependent stress-strain behaviors including compression hardening and tension softening effects are implemented within the analyses. The proposed modeling technique for transient heat and thermomechanical analyses is first validated with experimental data of reinforced concrete (RC) beams subjected to high temperatures, and then applied to a bridge model. The bridge model is generated to simulate the fire incident occurred by a gas truck on April 29, 2007 in Oakland California, USA. From the simulation, not only temperature distributions and deformations of the bridge can be found, but critical locations and time frame where collapse occurs can be predicted. The analytical results from the simulation are qualitatively compared with the real incident and show good agreements.

Seismic behavior of concrete gravity dams

  • Varughese, Jiji Anna;Nikithan, Sreelakshmi
    • Advances in Computational Design
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    • 제1권2호
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    • pp.195-206
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    • 2016
  • Dams play a vital role in the development and sustainment in a country. Failure of dams leads to the catastrophic event with sudden release of water and is of great concern. Hence earthquake-resistant design of dams is of prime importance. The present study involves static, modal and transient analyses of dam-reservoir-foundation system using finite element software ANSYS 15. The dam and the foundation are modeled with 2D plane strain element "PLANE 42" and the reservoir by fluid acoustic element "FLUID 29" with proper consideration of fluid-structure interaction. An expression for the fundamental period of concrete dams is developed based on modal analysis. Seismic response of gravity dams subjected to earthquake acceleration is evaluated in terms of peak displacement and stress.

Application of a mesh-free method to modelling brittle fracture and fragmentation of a concrete column during projectile impact

  • Das, Raj;Cleary, Paul W.
    • Computers and Concrete
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    • 제16권6호
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    • pp.933-961
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    • 2015
  • Damage by high-speed impact fracture is a dominant mode of failure in several applications of concrete structures. Numerical modelling can play a crucial role in understanding and predicting complex fracture processes. The commonly used mesh-based Finite Element Method has difficulties in accurately modelling the high deformation and disintegration associated with fracture, as this often distorts the mesh. Even with careful re-meshing FEM often fails to handle extreme deformations and results in poor accuracy. Moreover, simulating the mechanism of fragmentation requires detachment of elements along their boundaries, and this needs a fine mesh to allow the natural propagation of damage/cracks. Smoothed Particle Hydrodynamics (SPH) is an alternative particle based (mesh-less) Lagrangian method that is particularly suitable for analysing fracture because of its capability to model large deformation and to track free surfaces generated due to fracturing. Here we demonstrate the capabilities of SPH for predicting brittle fracture by studying a slender concrete structure (column) under the impact of a high-speed projectile. To explore the effect of the projectile material behaviour on the fracture process, the projectile is assumed to be either perfectly-elastic or elastoplastic in two separate cases. The transient stress field and the resulting evolution of damage under impact are investigated. The nature of the collision and the constitutive behaviour are found to considerably affect the fracture process for the structure including the crack propagation rates, and the size and motion of the fragments. The progress of fracture is tracked by measuring the average damage level of the structure and the extent of energy dissipation, which depend strongly on the type of collision. The effect of fracture property (failure strain) of the concrete due to its various compositions is found to have a profound effect on the damage and fragmentation pattern of the structure.