• 제목/요약/키워드: Shear Wall

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철근콘크리트 프레임 및 전단벽체의 경계기둥 띠철근비 변화에 따른 구조성능 평가 (Structural Performance Evaluation of Reinforced Concrete Frame and Shear Wall with Various Hoop Ratios of Boundary Column)

  • 신종학;하기주;전찬목
    • 콘크리트학회지
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    • 제10권6호
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    • pp.303-311
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    • 1998
  • 본 연구는 수직하중과 정.부 수평하중이 동시에 작용하는 순수강접 프레임과 완전강접 바벨형 철근콘크리트 전단벽 시험체의 경계기둥 띠철근비를 주요변수로 하여 총 10개의시험체를 실물 크기의 약 1/3로 축소 모델화하여 제작한 후, 구조성능 평가를 위한 실험을 실시하여 이력거동 특성, 수평강성 및 최대내력,파괴형태, 연성능력등을 비교 고찰하여 다음과 같은 결론을 얻었다. 순수강접 프레임 및 완전강접 바벨형 전단벽 시헴체의 경우, 각 시험체의 실험을 통하여 구한 이력거동곡선을 비교 고찰한 결과 기둥의 띠철근비가 클수록 최대하중에 도달한 후 강도저하 현상이 서서히 진행되었고, 연성적인 파괴형태를 나타내었다. 완전강접 바벨형 전단벽 시험체의 경우, 좌우기둥의 띠철근비가 적은 시험체는 비교적 띠철근비가 큰 시험체에 비하여 최종 파괴시의 파괴형태는 사인장 균열에 의해 지배됨을 규명할 수 있었다. 완전강접 바벨형 전단벽 시험체의 초대수평내력은 순수강접 프레임 시험체의최대수평내력보다 약 5.47~7.95배 증가하였다.

고층 벽식 아파트의 지진해석을 위한 등가모델 (An equivalent model for the seismic analysis of high-rise shear wall apartments)

  • 김태완;박용구;김현정;이동근
    • 한국지진공학회논문집
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    • 제11권5호
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    • pp.11-21
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    • 2007
  • 현재 국내에서도 내진설계에 대한 요구 및 관심이 증가하여 지진해석의 필요성이 증대되고 있다. 특히 벽식 아파트는 주거용으로 가장 많이 건설되고 있어 내진설계를 위한 지진해석이 활발히 수행되고 있다. 지진해석을 위해 벽식 아파트 전체를 유한요소로 세분화하여 모형화하는 것은 시간 및 노력에 있어 효율적이지 못하다. 따라서 자유도를 감소시키면서 실제 구조물의 동적 거동을 정확히 표현할 수 있는 등가모델이 필요하다. 본 연구에서는 구조물의 변형형상과 밀접한 관계가 있는 유효질량계수를 이용하여 간편하게 사용할 수 있는 등가모델 구성방법을 제안하였다. 이 등가모델은 기둥과 보로 구성된 골조구조물을 사용하여 벽식 구조물을 등가의 모델로 치환하였다. 등가모델은 어떤 상용프로그램에서도 쉽게 적용할 수 있으며, 해석시간단축이 가능하여 단시간 다양한 지진에 대한 해석이 필요한 경우 매우 유용하게 사용될 수 있다. 또한 등가모델은 바닥슬래브를 모형화 할 수 있어 실제 벽식 아파트의 거동을 잘 표현할 수 있다. 더욱이 등가모델은 구조물의 비대칭성을 표현할 수 있어 매우 우수하다.

조적벽의 전단강도를 고려한 철근콘크리트골조의 비탄성 거동 (Inelastic Behavior of Reinforced Concrete Frame Structure with Shear Strength of Masonry Wall)

  • 윤태호;강경수
    • 한국산학기술학회논문지
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    • 제12권9호
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    • pp.4216-4222
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    • 2011
  • 본 연구는 조적 끼움벽을 고려하지 않은 기존 학교건물의 비탄성 거동과 조적 끼움벽을 고려한 기존 학교 건물의 거동특성을 비교 검토하였다. 해석 결과와 실험 결과를 비교했을 때 하중-변위 곡선과 소성힌지 분포상태에서 유사함을 확인할 수 있었다. 따라서 조적 끼움벽을 고려한 비선형 정적해석의 유효성을 검증하였다. 골조내부가 전부 조적벽으로 채워진 경우 조적벽체의 영향에 의하여 초기 강성과 강도가 증가하고 항복 전까지는 근사한 거동을 보여주며 항복이후에는 변형이 커질수록 오차가 증가하며, 골조높이의 2/3 높이가 조적벽으로 채워진 경우 초기 강성과 항복강도가 단순골조에 비하여 약간 크게 나타나고 있으며, 조적벽체의 균열이 발생한 이후에는 급격히 강도가 저하되고 있다. 골조높이의 1/3 높이가 조적벽으로 채워진 경우 초기 강성과 항복강도가 단순골조와 비슷하며 항복점은 오히려 단순 골조의 항복점보다 저하되나, 최대강도는 단순 골조와 유사하다. Pushover 해석에 의한 하중-변위 관계곡선과 실제 실험에 의한 하중-변위 관계곡선을 비교해 보면 항복 전까지는 근사한 거동을 보여주며 항복이후에는 변형이 커질수록 오차가 증가하나 실제 구조물에서는 변형의 한계가 존재하므로 해석모델로서 유용하게 사용할 수 있다.

Flexural performance of composite sandwich wall panels with foamed concrete

  • Lei Li;Wei Huang;Zhengyi Kong;Li Zhang;Youde Wang;Quang-Viet Vu
    • Steel and Composite Structures
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    • 제52권4호
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    • pp.391-403
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    • 2024
  • The flexural behavior of composite sandwich wall panels with different thicknesses, numbers of holes, and hole forms, and arrangement form of longitudinal steel bar (uniform type and concealed-beam type) are investigated. A total of twelve composite sandwich wall panels are prepared, utilizing modified polystyrene particles mixed with foam concrete for the flexural performance test. The failure pattern of the composite sandwich wall panels is influenced by the extruded polystyrene panel (XPS) panel thickness and the reinforcement ratio in combination, resulting in both flexural and shear failure modes. Increasing the XPS panel thickness causes the specimens to transition from flexural failure to shear failure. An increase in the reinforcement ratio leads to the transition from flexural failure to shear failure. The hole form on the XPS panel and the steel bar arrangement form affect the loading behavior of the specimens. Plum-arrangement hole form specimens exhibit lower steel bar strain and deflection compared to linear-arrangement hole form specimens. Additionally, specimens with concealed beam-type steel bar display lower steel bar strain and deflection than uniform-type steel bar specimens. However, the hole form and steel bar arrangement form have a limited impact on the ultimate load. Theoretical formulas for cracking load are provided for both fully composite and non-composite states. When compared to the experimental values, it is observed that the cracking load of the specimens with XPS panels closely matches the calculations for the non-composite state. An accurate prediction model for the ultimate load of fully composite wall panels is developed. These findings offer valuable insights into the behavior of composite sandwich wall panels and provide a basis for predicting their performance under various design factors and conditions.

Slippage on which interface in nanopore filtration?

  • Xiaoxu Huang;Wei Li;Yongbin Zhang
    • Membrane and Water Treatment
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    • 제15권1호
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    • pp.31-39
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    • 2024
  • The flow in a nanopore of filtration membrane is often multiscale and consists of both the adsorbed layer flow and the intermediate continuum fluid flow. There is a controversy on which interface the slippage should occur in the nanopore filtration: On the adsorbed layer-pore wall interface or on the adsorbed layer-continuum fluid interface? What is the difference between these two slippage effects? We address these subjects in the present study by using the multiscale flow equations incorporating the slippage on different interfaces. Based on the limiting shear strength model for the slippage, it was found from the calculation results that for the hydrophobic pore wall the slippage surely occurs on the adsorbed layer-pore wall interface, however for the hydrophilic pore wall, the slippage can occur on either of the two interfaces, dependent on the competition between the interfacial shear strength on the adsorbed layer-pore wall interface and that on the adsorbed layer-continuum fluid interface. Since the slippage on the adsorbed layer-pore wall interface can be designed while that on the adsorbed layer-continuum fluid interface can not, the former slippage can result in the flux through the nanopore much higher than the latter slippage by designing a highly hydrophobic pore wall surface. The obtained results are of significant interest to the design and application of the interfacial slippage in nanoporous filtration membranes for both improving the flux and conserving the energy cost.

PC 전단벽 건식접합부에 관한 실험연구 (An Experimental Study on Dry-Connection for Precast Concrete Shear Walls)

  • 홍성걸;임우영
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2005년도 추계 학술발표회 제17권2호
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    • pp.21-24
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    • 2005
  • In this study, new methods of PC panel connection using 'ㄷ'type steel connection is proposed for highly seismic zone. A study was carry out to investigate the connection behavior subjected to cyclic inelastic loading. Three planar type and two T type PC wall will be tested. The variables will be examined were the shear reinforcement existence of top and bottom walls. The specimens will be tested only reverse cyclic loading in accordance with a prescribed displacement history. To transfer the shear strength shear key set up between top and bottom wall. Failure mode, behavior, ductility and energy dissipation capacity of the specimens constructed by new connections wll be compared with those of monolithic walls and Han's(Han, Jun Hee, Seoul National University) model.

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직사각형 덕트에서 전단율에 의존적인 열전도율을 갖는 비뉴턴 유체의 열전달 향사아에 관한 수치적 연구 (Numerical heat transfer in a rectangular duct with a non-newtonian fluid with shear-rate dependent thermal conductivity)

  • 김병석;신세현;손창현
    • 대한기계학회논문집B
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    • 제21권6호
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    • pp.773-778
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    • 1997
  • The present study investigates the effect of the shear rate-dependent thermal conductivity of non-newtonian fluids on the heat transfer enhancement in a 2:1 rectangular duct flow. An axially-constant heat flux and a peripherally-constant temperature boundary conditions(H1) was adopted for a top-wall-heated configuration. The present numerical results of Nusselt numbers for SRDC(Separan) show heat transfer enhancement over those of SRIC. The Nusselt numbers increased linearly as Reynolds numbers increased. The heat transfer enhancement is due to an increased thermal conductivity near the wall, which is attributed to the shear rate-dependence.

Effect of loading rate on mechanical behavior of SRC shearwalls

  • Esaki, Fumiya;Ono, Masayuki
    • Steel and Composite Structures
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    • 제1권2호
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    • pp.201-212
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    • 2001
  • In order to investigate the effect of the loading rate on the mechanical behavior of SRC shearwalls, we conducted the lateral loading tests on the 1/3 scale model shearwalls whose edge columns were reinforced by H-shaped steel. The specimens were subjected to the reversed cyclic lateral load under a variable axial load. The two types of loading rate, 0.01 cm/sec for the static loading and 1 cm/sec for the dynamic loading were adopted. The failure mode in all specimens was the sliding shear of the in-filled wall panel. The edge columns did not fail in shear. The initial lateral stiffness and lateral load carrying capacity of the shearwalls subjected to the dynamic loading were about 10% larger than those subjected to the static loading. The effects of the arrangement of the H-shaped steel on the lateral load carrying capacity and the lateral load-displacement hysteresis response were not significant.

Behaviour of composite walls under monotonic and cyclic shear loading

  • Hossain, K.M. Anwar;Wright, H.D.
    • Structural Engineering and Mechanics
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    • 제17권1호
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    • pp.69-85
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    • 2004
  • The novel form of composite walling system consists of two skins of profiled steel sheeting with an in-fill of concrete. Such walling system can be used as shear elements in steel framed building subjected to lateral load. This paper presents the results of small-scale model tests on composite wall and its components manufactured from very thin sheeting and micro-concrete tested under monotonic and cyclic shear loading conditions. The heavily instrumented small-scale tests provided information on the load-deformation response, strength, stiffness, strain condition, sheet-concrete interaction and failure modes. Analytical models for shear strength and stiffness are derived with some modification factor to take into account the effect of quasi-static cycling loading. The performance of design equations is validated through experimental results.

Ensemble techniques and hybrid intelligence algorithms for shear strength prediction of squat reinforced concrete walls

  • Mohammad Sadegh Barkhordari;Leonardo M. Massone
    • Advances in Computational Design
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    • 제8권1호
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    • pp.37-59
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    • 2023
  • Squat reinforced concrete (SRC) shear walls are a critical part of the structure for both office/residential buildings and nuclear structures due to their significant role in withstanding seismic loads. Despite this, empirical formulae in current design standards and published studies demonstrate a considerable disparity in predicting SRC wall shear strength. The goal of this research is to develop and evaluate hybrid and ensemble artificial neural network (ANN) models. State-of-the-art population-based algorithms are used in this research for hybrid intelligence algorithms. Six models are developed, including Honey Badger Algorithm (HBA) with ANN (HBA-ANN), Hunger Games Search with ANN (HGS-ANN), fitness-distance balance coyote optimization algorithm (FDB-COA) with ANN (FDB-COA-ANN), Averaging Ensemble (AE) neural network, Snapshot Ensemble (SE) neural network, and Stacked Generalization (SG) ensemble neural network. A total of 434 test results of SRC walls is utilized to train and assess the models. The results reveal that the SG model not only minimizes prediction variance but also produces predictions (with R2= 0.99) that are superior to other models.