• 제목/요약/키워드: Shear Behavior

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링전단시험을 이용한 말뚝 기초-사질지반 간 인터페이스 거동 분석 (Nonlinear Analysis of Shear Behavior on Pile-Sand Interface Using Ring Shear Tests)

  • 정상섬;정형서;;김도현
    • 한국지반공학회논문집
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    • 제37권5호
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    • pp.5-17
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    • 2021
  • 본 연구에서는 링전단시험 결과를 이용하여 말뚝-사질지반 사이의 전단거동을 정량화하였다. 링전단시험은 가장 일반적인 말뚝재료 - 콘크리트와 강 - 와 대표적인 사질토인 주문진표준사를 대상으로 수행하였으며, 두 재료 사이의 전단거동을 항복 이전과 잔류전단거동을 중심으로 확인하고 분석하였다. 시험결과를 통하여 다양한 상재압과 상대밀도의 영향 또한 분석하여, 그에 따른 전단거동을 각 재료 별 대표적인 마찰각으로 정량화하였다. 더 나아가, 추가적인 대변형 수치해석을 통하여 시험결과를 검증하였다. 링전단시험 및 수치해석을 수행한 결과, 사질토의 전단 중 발생하는 팽창과 수축특성에 의하여 전단거동을 크게 두 가지로 구분할 수 있었다. 1) 상대밀도가 높은 시료일수록 두 재료 간 전단응력곡선은 첨두전단응력이 관찰된 후 잔류전단응력이 발현되는 개형을 나타내었고, 반면에 2) 상대밀도가 낮은 시료일수록 두 재료 간 전단응력곡선은 첨두전단응력의 발현 없이 바로 잔류전단응력이 발현되는 이중곡선 형태를 보였다. 상재압은 소변형 범위에서는 전단거동 형태와 마찰각에 영향을 주지만, 상대밀도와 마찬가지로 대변형 하에서는 유의미한 영향을 주지 않는 것으로 확인되었다. 본 연구는 리메싱을 통한 대변형 수치해석 기법을 정립하여 링전단시험과 같은 대변형 전단거동을 모사하고 예측할 수 있도록 하였을 뿐 만 아니라, 링전단시험을 통하여 도출되고 대변형 수치해석으로 검증된 말뚝 재료와 사질토 사이의 마찰각은 실제 기초 말뚝의 수치해석과 설계에 적용할 수 있도록 하였다.

사질토의 전단거동에 실트 함량이 미치는 영향 (Effect of Silty Soil Content on Shear Behavior of Sandy Soil)

  • 유정석;안광국;강홍식
    • 한국지반환경공학회 논문집
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    • 제21권11호
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    • pp.21-26
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    • 2020
  • 자연상태의 흙은 다양한 크기의 입자로 구성되어 있으며, 이 흙의 역학적 거동 중 전단거동은 입도 분포에 크게 영향을 받는다. 그리고 자연상태의 흙은 조립토와 세립토가 다양하게 혼합되어 존재하기 때문에 그 역학적 성질인 전단특성을 명확히 파악하기 어렵다. 이에 본 연구에서는 흙의 입도 분포가 흙의 전단특성에 미치는 영향을 확인하기 위한 목적으로 조립토는 모래를 세립토는 실트를 이용해 모래에 대한 실트의 함유량을 변화시켜 입도 분포가 다른 사질토를 조성한 후 링 전단시험을 수행하였다. 그리고 물 공급 시 입도 분포가 다른 사질토의 전단특성 변화를 확인하기 위해 링 전단시험 중 물을 공급하여 실험을 수행하였다. 그 결과 실트 함유량이 증가할수록 전단강도는 점차 증가하다 실트 함유량이 모래보다 많아지면 전단강도는 감소하는 것으로 나타났다. 그리고 수분 공급 시 실트 함유량에 따라 잔류전단강도는 완만한 경사를 나타내며 감소하는 것으로 나타났다.

Experimental and numerical study on shear studs connecting steel girder and precast concrete deck

  • Xia, Ye;Chen, Limu;Ma, Haiying;Su, Dan
    • Structural Engineering and Mechanics
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    • 제71권4호
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    • pp.433-444
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    • 2019
  • Shear studs are often used to connect steel girders and concrete deck to form a composite bridge system. The application of precast concrete deck to steel-concrete composite bridges can improve the strength of decks and reduce the shrinkage and creep effect on the long-term behavior of structures. How to ensure the connection between steel girders and concrete deck directly influences the composite behavior between steel girder and precast concrete deck as well as the behavior of the structure system. Compared with traditional multi-I girder systems, a twin-I girder composite bridge system is more simplified but may lead to additional requirements on the shear studs connecting steel girders and decks due to the larger girder spacing. Up to date, only very limited quantity of researches has been conducted regarding the behavior of shear studs on twin-I girder bridge systems. One convenient way for steel composite bridge system is to cast concrete deck in place with shear studs uniformly-distributed along the span direction. For steel composite bridge system using precast concrete deck, voids are included in the precast concrete deck segments, and they are casted with cast-in-place concrete after the concrete segments are erected. In this paper, several sets of push-out tests are conducted, which are used to investigate the heavier of shear studs within the voids in the precast concrete deck. The test data are analyzed and compared with those from finite element models. A simplified shear stud model is proposed using a beam element instead of solid elements. It is used in the finite element model analyses of the twin-I girder composite bridge system to relieve the computational efforts of the shear studs. Additionally, a parametric study is developed to find the effects of void size, void spacing, and shear stud diameter and spacing. Finally, the recommendations are given for the design of precast deck using void for twin I-girder bridge systems.

Behavior of optimized prestressed concrete composite box-girders with corrugated steel webs

  • Lu, Yanqiu;Ji, Lun
    • Steel and Composite Structures
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    • 제26권2호
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    • pp.183-196
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    • 2018
  • The traditional prestressed concrete composite box-girders with corrugated steel webs have several drawbacks such as large deflection and potential local buckling. In this study, two methods were investigated to optimize and improve the prestressed concrete composite box-girders with corrugated steel webs. The first method was to replace the concrete bottom slab with a steel plate and the second method was to support the concrete bottom slab on the steel flanges. The behavior of the prestressed concrete composite box-girders with corrugated steel webs with either method was studied by experiments on three specimens. The test results showed that behavior of the optimized and upgraded prestressed concrete composite box-girders with corrugated steel webs, including ultimate bearing capacity, flexural stiffness, and crack resistance, is greatly improved. In addition, the influence of different shear connectors, including perfobond leisten (PBL) and stud shear connectors, on the behavior of prestressed concrete composite box-girders with corrugated steel webs was studied. The results showed that PBL shear connectors can greatly improve the ultimate bearing capacity, flexural stiffness and crack resistance property of the prestressed concrete composite box-girders with corrugated steel webs. However, for the efficiency of prestressing introduced into the girder, the PBL shear connectors do not perform as well as the stud shear connectors.

Behavior and resistance of truss-type shear connector for composite steel-concrete beams

  • Lima, Jerfson M.;Bezerra, Luciano M.;Bonilla, Jorge;Silva, Ramon S.Y.R.C.;Barbosa, Wallison C.S.
    • Steel and Composite Structures
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    • 제36권5호
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    • pp.569-586
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    • 2020
  • The behavior of composite steel-concrete beams depends on the transmission of forces between two parts: the concrete slab and the steel I-beam. The shear connector is responsible for the interaction between these two parts. Recently, an alternative shear connector, called Truss Type connector, has been developed; it aligns efficient structural behavior, fast construction and implementation, and low cost when compared to conventional connectors applied in composite structures. However, there is still a lack of full understanding of the mechanical behavior of the Truss Type connector, due to its novelty. Thus, this study aims to analyze the influence of variation of geometric and physical parameters on the shear resistance of the Truss Type connector. In order to investigate those parameters, a non-linear finite element model, able to simulate push-out tests of Truss Type connectors, was specifically developed and validated with experimental results. A thorough parametric study, varying the height, the angle between rods, the diameter, and the concrete strength, was conducted to evaluate the shear resistance of the Truss Type connector. In addition, an equation to predict the resistance of the original Truss Type shear connector was proposed.

DEM을 이용한 조립재료의 전단거동 특성에 관한 연구 (Study on Shear Behavior Characteristics of Granular Material using DEM)

  • 조선아;정선아;이석원;조계춘;천윤철
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2009년도 춘계 학술발표회
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    • pp.136-145
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    • 2009
  • Factors influencing shear behavior of granular material include particle size, shape, distribution, relative density, particle crushing, etc. In this study, these factors are characterized by viewpoint of shear behavior using numerical analysis based on DEM. Geometrical particle shape is represented by a combination of small circular particles and influence of particle shape on crushing is studied through relative comparisons between clump (uncrushable) and cluster (crushable) models which are modeled using DEM. Also, particle shape is quantified by the dimensionless parameters such as circularity and convexity. The results indicate that particle shape indexes have a negative association with internal friction angle. Also, internal friction angle becomes reduced and failure envelop curve becomes nonlinear due to the particle crushing. It is also found that numerical results are quite good agreement with the experimental test conducted in this study.

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Seismic response simulations of bridges considering shear-flexural interaction of columns

  • Zhang, Jian;Xu, Shi-Yu
    • Structural Engineering and Mechanics
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    • 제31권5호
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    • pp.545-566
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    • 2009
  • Bridge columns are subjected to combined actions of axial force, shear force and bending moment during earthquakes, caused by spatially-complex earthquake motions, features of structural configurations and the interaction between input and response characteristics. Combined actions can have significant effects on the force and deformation capacity of RC columns, resulting in unexpected large deformations and extensive damage that in turn influences the performance of bridges as vital components of transportation systems. This paper evaluates the seismic response of three prototype reinforced concrete bridges using comprehensive numerical models that are capable of simulating the complex soil-structural interaction effects and nonlinear behavior of columns. An analytical approach that can capture the shear-flexural interacting behavior is developed to model the realistic nonlinear behavior of RC columns, including the pinching behavior, strength deterioration and stiffness softening due to combined actions of shear force, axial force and bending moment. Seismic response analyses were conducted on the prototype bridges under suites of ground motions. Response quantities of bridges (e.g., drift, acceleration, section force and section moment etc.) are compared and evaluated to identify the effects of vertical motion, structural characteristics and the shear-flexural interaction on seismic demand of bridges.

모드 II 하중을 받는 CTS 시험편의 피로균열 전파거동에 관한 실험적 연구 (An Experimental Study on the Fatigue Crack Propagation Behavior in CTS Specimen under Mode II Loading)

  • 송삼홍;이정무
    • 대한기계학회논문집A
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    • 제27권7호
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    • pp.1217-1226
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    • 2003
  • The purpose of this paper is to investigate fatigue crack behavior under shear(Mode II) loading. Various specimens and devices have been used in order to produce Mode II loading in fatigue experiments for shear crack propagation. But, there is not sufficient comparisons of experimental results between Mode II and others loading modes, because of characteristics of applied loads and specimens. So, compact tension shear(CTS) specimens were used in this paper to investigate the propagation behavior of Mode II by comparing the experimental results between loading modes. We firstly observed the characteristics which was showed in Mode II experiment using CTS specimens. The experimental results under Mode II loading were compared with fatigue crack behavior under Mode I and Mixed-mode I+II loading. The characteristics for initiation and propagation behavior under Mode II loading was investigated by such comparisons.

초소형 무연 단일 솔더볼 연결부의 전단강도 평가 (Evaluation of Shear Strength of a Miniature Lead-free Single Solder Ball Joint)

  • 주세민;김호경
    • 한국안전학회지
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    • 제25권6호
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    • pp.14-21
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    • 2010
  • A miniature single solder ball joint is designed to mimic the actual solder joints used in the micro-electric industries. Shear tests were conducted to evaluate the mechanical behavior of miniature single solder joints at intermediate strain rates from $0.019\;s^{-1}$ to $2.16\;s^{-1}$ at room temperature. The shear fracture strength of the present solder ball joints generally increased with increasing shear strain rate, ranging from 32 to 51MPa. This behavior is affected by the sensitivity of bulk solder strength to strain rate. Shear fracture mode changed from brittle to partial ductile (failure inside the bulk solder) with an increase of shear speed. The unloading shear fracture toughness is generally consistent with the measure of the amount of bulk solder on the fractured surface.

Seismic behavior of RC building by considering a model for shear wall-floor slab connections

  • Soleimani-Abiat, Mehdi;Banan, Mohammad-Reza
    • Computers and Concrete
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    • 제16권3호
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    • pp.381-397
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    • 2015
  • Connections are the most important regions in a structural system especially for buildings in seismic zones. In R.C. structures due to large dimensions of members and lack of cognition of the stress distribution in a connection, reaching a comprehensive understanding of the connection behaviors becomes more complicated. The shear wall-to-floor slab connections in lateral load resisting systems have a potential weakness in transferring loads from slabs to shear walls which might change the path of load transformation to shear walls. This paper tries to investigate the effects of seismic load combinations on the behavior of slabs at their connection zones with the shear walls. These connection zones naturally are the most critical regions of the slabs in RC buildings. The investigation carried on in a simulated environment by considering three different structures with different shear wall layout. The final results of our study reveal that layout of shear walls in a building significantly affects the magnification of forces developed at the shear wall-floor slab connections.