• 제목/요약/키워드: perimeter column

검색결과 30건 처리시간 0.024초

고층 건물의 아웃리거 벽체에 의한 외부 기둥의 전단력 해석 (Analysis of Shear Force in Perimeter Column due to Outrigger Wall in a Tall Building)

  • 황일도;김한수
    • 한국전산구조공학회논문집
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    • 제31권6호
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    • pp.293-299
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    • 2018
  • 초고층 건물의 횡변위 제어를 위하여 사용되는 아웃리거를 기존의 철골 트러스 대신에 철근콘크리트 벽체로 대체할 수 있다. 철근콘크리트 아웃리거 벽체를 외부 기둥에 연결할 경우에는 축력뿐만 아니라 전단력과 모멘트가 외부 기둥에 유발될 수 있다. 본 연구에서는 아웃리거 벽체 외단부의 회전으로 인한 외부 기둥의 전단력을 수식으로 유도하고 그 값을 유한요소 해석 결과와 비교하였다. 유한요소해석에서는 층별 연결보의 효과와 전단벽과 아웃리거를 보와 평면응력요소로 모델링한 효과를 분석하였다. 층별 연결보의 효과는 거의 없었으며 평면응력요소는 보요소보다 더 큰 강성을 가진 것으로 해석되었다. 아웃리거 벽체의 외단부 회전으로 인한 외부기둥의 층간 회전각과 전단력은 허용값에 비하여 상당히 작은 값이 발생하였다. 따라서 초고층 건물에 철근콘크리트로 된 아웃리거 벽체를 적용할 경우에도 외부 기둥에 유발되는 전단력과 모멘트에 대하여 별도의 검토를 할 필요는 없을 것으로 판단된다.

Behavior of multi-story steel buildings under dynamic column loss scenarios

  • Hoffman, Seth T.;Fahnestock, Larry A.
    • Steel and Composite Structures
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    • 제11권2호
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    • pp.149-168
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    • 2011
  • This paper presents a computational study of column loss scenarios for typical multi-story steel buildings with perimeter moment frames and composite steel-concrete floors. Two prototype buildings (three-story and ten-story) were represented using three-dimensional nonlinear finite element models and explicit dynamic analysis was used to simulate instantaneous loss of a first-story column. Twelve individual column loss scenarios were investigated in the three-story building and four in the ten-story building. This study provides insight into: three-dimensional load redistribution patterns; demands on the steel deck, concrete slab, connections and members; and the impact of framing configuration, building height and column loss location. In the dynamic simulations, demands were least severe for perimeter columns within a moment frame, but the structures also exhibited significant load redistribution for interior column loss scenarios that had no moment connectivity. Composite action was observed to be an important load redistribution mechanism following column loss and the concrete slab and steel deck were subjected to high localized stresses as a result of the composite action. In general, the steel buildings that were evaluated in this study demonstrated appreciable robustness.

19세기 창경궁(昌慶宮) 내전(內殿) 전각(殿閣)의 지붕가구(架構) 계획기법(計劃技法)에 관한 연구(硏究) (Planning Method of Roof Framing through Inner Building of Changgyeonggung in 19th Century)

  • 김기덕;한욱;김덕문
    • 헤리티지:역사와 과학
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    • 제42권2호
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    • pp.134-153
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    • 2009
  • 본 연구는 19세기에 중건된 조선시대 창경궁의 내전 전각을 대상으로, 지붕가구를 구성하는 주요 부재들의 치수계획을 고찰하고 서까래의 물매를 결정하는 요소를 분석하여 궁궐건축 내전 전각에 있어서 지붕가구계획의 기법을 밝히고자 하였다. 창경궁 내전 전각의 지붕가구를 형성하는 주요 부재의 치수계획은 다음과 같다. 먼저 평주의 길이는 궁궐지의 기록과 일치하였으며 고주의 계획치수는 촌(寸)단위까지 사용하였다. 영춘헌과 같이 평주의 길이가 촌단위까지 치목되어질 때 고주의 길이는 완척으로 계획되어 평주와 고주 사이에 형성되는 장연의 물매는 일정한 값을 갖는 것으로 판단된다. 한편 초익공 부재는 대체로 1.2척(尺)의 높이를 가지며 이익공의 경우에는 0.8척으로 초익공보다 0.4척 정도 작게 나타났다. 한편 장혀의 단면 폭은 0.3척으로 규모에 관계없이 일정하며, 다만 단면 높이의 경우 0.6~0.7척으로 대별된다. 도리의 직경은 1척을 기준으로 0.1척을 가감(加減)하였으며, 장연의 직경은 전각의 규모에 따라 0.5~0.6尺의 사이에 있는 것으로 나타났다. 한국 전통목조건축 지붕가구의 형성에서 서까래의 물매결정은 먼저 장연의 물매를 정한 후, 건물의 전체 높이를 결정하는 종도리의 높이를 정하고, 중연을 걸기 위해 동자주의 위치와 높이를 조정하는 방식으로 지붕가구를 계획하는 것으로 파악되었다. 특히 장연 물매는 건물 규모에 따라 특별히 정해진 값이 있는 것이 아니라 전면 평주높이와 포작의 구성 등에 따라 자연스럽게 결정된 것으로 추정된다. 그리고 중연을 사용하는 경우 중연물매의 결정방식은 양통 어칸을 등간격으로 분할한 후, 동자주의 위치 또는 길이를 조정하는 방법을 사용하였던 것으로 추정할 수 있다.

철골 모멘트골조로 보강된 철근콘크리트 건물의 내진성능 평가 (Seismic Performance Evaluation of Non-Seismic Reinforced Concrete Buildings Strengthened by Perimeter Steel Moment Frame)

  • 김선웅
    • 한국지진공학회논문집
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    • 제24권5호
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    • pp.233-241
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    • 2020
  • This paper is to investigate the retrofitting effect for a non-seismic reinforced concrete frame strengthened by perimeter steel moment frames with indirect integrity, which ameliorates the problems of the direct integrity method. To achieve this, first, full-scale tests were conducted to address the structural behavior of a two-story non-seismic reinforced concrete frame and a strengthened frame. The non-seismic frame showed a maximum strength of 185 kN because the flexural-shear failure at the bottom end of columns on the first floor was governed, and shear cracks were concentrated at the beam-column joints on the second floor. The strengthened frame possessed a maximum strength of 338 kN, which is more than 1.8 times that of the non-seismic specimen. A considerable decrease in the quantity of cracks for the strengthened frame was observed compared with the non-seismic frame, while there was the obvious appearance of the failure pattern due to the shear crack. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The lateral-resisting capacity for the non-seismic bare frame and the strengthened frame may be reasonably determined per the specified shear strength of the reinforced columns in accordance with the distance to a critical section. The effective depth of the column may be referred to as the longitudinal length from the border between the column and the foundation. The proposed method had an error of about 2.2% for the non-seismic details and about 4.4% for the strengthened frame based on the closed results versus the experimental results.

The Structural Design of "China Zun" Tower, Beijing

  • Liu, Peng;Cheng, Yu;Zhu, Yan-Song
    • 국제초고층학회논문집
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    • 제5권3호
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    • pp.213-220
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    • 2016
  • The "China Zun" tower in Beijing will rise to 528 meters in height and will be the tallest building in Beijing once built. Inspired by an ancient Chinese vessel, the "Zun", the plan dimensions reduce gradually from the bottom of the tower to the waist and then expand again as it rises to form an aesthetically beautiful and unique geometry. To satisfy the structural requirement for seismic and wind resistance, the structure is a dual system composed of a perimeter mega structure made of composite mega columns, mega braces, and belt trusses, and a reinforced-concrete core with steel plate-embedded walls. Advanced parametric design technology is applied to find the most efficient outer-perimeter structure system. The seismic design basically follows a mixed empirical and performance-based methodology that was verified by a shaking table test and other specimen lab tests. The tower is now half-way through its construction.

Effect of Outriggers on Differential Column Shortening in Tall Buildings

  • Kim, Han-Soo
    • 국제초고층학회논문집
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    • 제6권1호
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    • pp.91-99
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    • 2017
  • Special consideration should be given to differential column shortening during the design and construction of a tall building to mitigate the adverse effects caused by such shortening. The effects of the outrigger - which is conventionally used to increase the lateral stiffness of a tall building - on the differential shortening are investigated in this study. Three analysis models, a constant-section, constant-stress, and general model, are prepared, and the differential shortenings of these models with and without the outrigger are compared. The effects of connection time, sectional area, and location of the outrigger on the differential shortening are studied. The sectional area of the outrigger shows a non-linear relation in reducing the maximum differential shortening. The optimum locations of the single and dual outriggers are investigated by an exhaustive search method, and it is confirmed that a global optimum location exists. This study shows that the outrigger can be utilized to reduce the differential shortening between the interior core wall and the perimeter columns as well as to reduce the lateral displacements due to wind or earthquake loads.

고층 콘크리트 건물의 기둥축소량 계측연구 (Measured and Predicted Column Shortening of a Tall Reinforced Concrete Building)

  • 김원상;조한욱;오정근;염경수
    • 콘크리트학회논문집
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    • 제11권3호
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    • pp.161-170
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    • 1999
  • The KLCC Petronas Tower 2, one of the world tallest twin reinforced concrete towers constructed in Kuala Lumpur, Malysia, was instrumented during construction for the measurement of vertical time-dependent deformation of columns and corewall. Field measurements were made by means of vibrating wire strain gauges at the corewall, tower and bustle perimeter columns at selected floor levels of the building. Parallel to this observation, laboratory tests were performed on concrete cylinders made in the field in order to obtain the variations of concrete compressive strengths, elastic moduli, strains of creep and shrinkage with time. Monitored vertical deformations are in a good agreement with the prediction based on actual construction sequence and concrete properties from laboratory tests, as well as the analytical results reflected in actual column compensation of the building.

Modified models predicting punching capacity of edge column-slab joints considering different codes

  • Hamdy A. Elgohary;Mohamed A. El Zareef
    • Structural Engineering and Mechanics
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    • 제89권4호
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    • pp.363-374
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    • 2024
  • Significant changes have been made to estimate the punching shear capacity for edge column-slab joints in the latest editions of most current codes. The revised equations account for axial forces as well as moments conveyed to columns from slabs, which have a substantial impact on the punching resistance of such joints. Many key design parameters, such as reinforcement-ratio, concrete strength, size-effect, and critical-section perimeter, were treated differently or even ignored in various code provisions. Consequently, wide ranges of predicted punching shear strength were detected by applying different code formulas. Therefore, it is essential to assess the various current Codes' design-equations. Because of the similarity in estimated outcomes, only the ACI, EC, and SNiP are used in this study to cover a wide range of estimation ranges from highly conservative to unconservative. This paper is devoted to analyzing the techniques in these code provisions, comparing the estimated punching resistance with available experimental data, and finally developing efficient models predicting the punching capacity of edge column-slab connections. 63 samples from past investigations were chosen for validation. To appropriately predict the punching shear, newly updated equations for ACI and SNiP are provided based on nonlinear regression analysis. The proposed equations'results match the experimental data quite well.

플랫 플레이트 슬래브-외부기둥 접합부의 뚫림전단강도에 대한 기둥 형상비의 영향 (Influence of Column Aspect Ratio on the Punching Shear Strength of Flat Plate Slab-Column Edge Connections)

  • 신성우;최명신;김철
    • 한국구조물진단유지관리공학회 논문집
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    • 제11권1호
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    • pp.121-129
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    • 2007
  • 본 연구는 플랫 플레이트 구조에서 직사각형 외부기둥-슬래브 접합부의 뚫림전단강도에 관한 실험결과에 관하여 다룬다. 직사각형 기둥의 형상비 증가에 따른 뚫림전단거동을 평가하기 위해 위험단면의 길이를 일정한 값이 되도록 기둥 단면크기를 산정하고 총 8개의 실험체를 계획하였다. 두 수준의 콘크리트 압축강도($f^{\prime}_c=24$, 40MPa)에 대하여 기둥단면의 형상비(${\beta}_c=C_1$/$C_2=2.0{\sim}4.5$)와 슬래브 철근비가 변수에 포함된다. 실험결과 기둥의 형상비가 증가할수록 뚫림전단강도는 감소하였고 형상비 증가에 따른 뚫림전단강도 감소율은 점차로 작게 나타났다.