• 제목/요약/키워드: multi-span beam

검색결과 58건 처리시간 0.023초

균일모멘트가 작용하는 일축대칭 I형 양단 스텝보의 비탄성 횡-비틀림 좌굴에 관한 해석적 연구 (A Numerical Study on Inelastic lateral Torsional Buckling Strength of Doubly Stepped and Singly Symmetric I-Beam Subjected to Uniform Moment)

  • 박이슬;박종섭
    • 한국산학기술학회논문지
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    • 제14권7호
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    • pp.3495-3501
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    • 2013
  • 연속경간을 가지는 I형강 교량은 내부 지점 부근에 상대적으로 큰 부모멘트가 발생하게 된다. 따라서 경제적인 단면 활용을 위하여 내부지점부위의 상부 및 하부 플랜지에 플레이트를 보강한 변단면을 사용하고 있다. 본 논문에서는 기존 탄성 횡-비틀림 좌굴식에 관한 연구를 토대로 하여 비탄성 구간에 있는 일축대칭 I형 양단 스텝보의 횡-비틀림 좌굴강도 해석을 실시하였다. 유한요소해석 프로그램인 ABAQUS가 사용되었으며, 회귀분석프로그램을 활용하여 간편 설계식을 제안하였다. 양단 스텝보에 순수휨이 작용할 때를 고려하였으며, 비선형 해석을 위해 잔류응력 및 초기변형을 고려하였다. 본 연구를 통하여 개발 제안된 식은 일축대칭 스텝보의 비탄성 횡-비틀림 좌굴 강도에 널리 사용될 수 있으며 유사연구에 크게 기여할 것이다.

토마토 재배용 연동 플라스틱 온실 개발 (Development of Multi-span Plastic Greenhouse for Tomato Cultivation)

  • 유인호;이응호;조명환;류희룡;김영철
    • 생물환경조절학회지
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    • 제21권4호
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    • pp.428-436
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    • 2012
  • 본 연구에서는 토마토 재배에 적합한 규격을 가지면서 기상재해에 안전한 토마토 재배용 연동 비닐하우스를 설계하였다. 토마토 하우스의 규격은 폭 7m, 측고 4.5m, 동고 6.5m이다. 1995년에 농촌진흥청에서 개발한 1-2W형 하우스와 비교해서 폭은 같지만 측고는 1.8m, 동고는 2m 더 높다. 중방은 작물하중과 장치하중을 견딜 수 있도록 트러스 구조로 설계하였다. 토마토 하우스는 높으면서도 내재해 설계 기준(MIFFAF, 2010)에 맞게 만들어졌다. 즉, 최고 설계 기준인 풍속 $40m{\cdot}s^{-1}$, 적설 40cm 이상에 안전하도록 구조안전성 분석을 통해 하우스 기둥, 서까래 등의 부재 규격과 설치 간격을 설정하였다. 1-2W형 하우스와 달리 토마토 하우스에는 랙-피니언 타입의 천창을 용마루 부분에 설치하여 외부 공기 유입과 자연 환기를 극대화할 수 있도록 하였다. 하우스 높이가 증가하면 난방비는 증가하므로 토마토 하우스에는 보온력이 우수한 다겹 보온커튼을 설치하여 하우스 바깥으로 빠져나가는 열을 최소화하였다.

A direct damage detection method using Multiple Damage Localization Index Based on Mode Shapes criterion

  • Homaei, F.;Shojaee, S.;Amiri, G. Ghodrati
    • Structural Engineering and Mechanics
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    • 제49권2호
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    • pp.183-202
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    • 2014
  • A new method of multiple damage detection in beam like structures is introduced. The mode shapes of both healthy and damaged structures are used in damage detection process (DDP). Multiple Damage Localization Index Based on Mode Shapes (MDLIBMS) is presented as a criterion in detecting damaged elements. A finite element modeling of structures is used to calculate the mode shapes parameters. The main advantages of the proposed method are its simplicity, flexibility on the number of elements and so the accuracy of the damage(s) position(s), sensitivity to small damage extend, capability in prediction of required number of mode shapes and low sensitivity to noisy data. In fact, because of differential and comparative form of MDLIBMS, using noise polluted data doesn't have major effect on the results. This makes the proposed method a powerful one in damage detection according to measured mode shape data. Because of its flexibility, damage detection process in multi span bridge girders with non-prismatic sections can be done by this method. Numerical simulations used to demonstrate these advantages.

Wing Design Optimization of a Solar-HALE Aircraft

  • Lim, JaeHoon;Choi, Sun;Shin, SangJoon;Lee, Dong-Ho
    • International Journal of Aeronautical and Space Sciences
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    • 제15권3호
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    • pp.219-231
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    • 2014
  • We develop a preliminary design optimization procedure in this paper regarding the wing planform in a solar-powered high-altitude long-endurance unmanned aerial vehicle. A high-aspect-ratio wing has been widely adopted in this type of a vehicle, due to both the high lift-to-drag ratio and lightweight design. In the preliminary design, its characteristics need to be addressed correctly, and analyzed in an appropriate manner. In this paper, we use the three-dimensional Euler equation to analyze the wing aerodynamics. We also use an advanced structural modeling approach based on a geometrically exact one-dimensional beam analysis. Regarding the structural integrity of the wing, we determine detailed configuration parameters, specifically the taper ratio and the span length. Next, we conduct a multi-objective optimization scheme based on the response surface method, using the present baseline configuration. We consider the structural integrity as one of the constraints. We reduce the wing weight by approximately 25.3 % from that in the baseline configuration, and also decrease the power required approximately 3.4 %. We confirm that the optimized wing has sufficient flutter margin and improved static longitudinal/directional stability characteristics, as compared to those of the baseline configuration.

Optimal sustainable design of steel-concrete composite footbridges considering different pedestrian comfort levels

  • Fernando L. Tres Junior;Guilherme F. Medeiros;Moacir Kripka
    • Steel and Composite Structures
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    • 제51권6호
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    • pp.647-659
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    • 2024
  • Given the increased interest in enhancing structural sustainability, the current study sought to apply multiobjective optimization to a footbridge with a steel-concrete composite I-girder structure. It was considered as objectives minimizing the cost for building the structure, the environmental impact assessed by CO2 emissions, and the vertical accelerations created by human-induced vibrations, with the goal of ensuring pedestrian comfort. Spans ranging from 15 to 25 meters were investigated. The resistance of the slab's concrete, the thickness of the slab, the dimensions of the welded steel I-profile, and the composite beam interaction degree were all evaluated as design variables. The optimization problem was handled using the Multiobjective Harmony Search (MOHS) metaheuristic algorithm. The optimization results were used to generate a Pareto front for each span, allowing us to assess the correlations between different objectives. By evaluating the values of design variables in relation to different levels of pedestrian comfort, it was identified optimal values that can be employed as a starting point in predimensioning of the type of structure analyzed. Based on the findings analysis, it is possible to highlight the relationship between the structure's cost and CO2 emission objectives, indicating that cost-effective solutions are also environmentally efficient. Pedestrian comfort improvement is especially feasible in smaller spans and from a medium to a maximum level of comfort, but it becomes expensive for larger spans or for increasing comfort from minimum to medium level.

Direct Method에 의한 鐵筋콘크리트 二方向슬라브의 最適設計에 관한 硏究 (A Study on the Optimal Design Method of Reinforced Concrete Two Way Slabs)

  • 김용희;류홍열;박문호
    • 한국농공학회지
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    • 제26권2호
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    • pp.97-105
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    • 1984
  • We have, at present, found some studies on the optimum design of reinforced concrete about the simple slab but very few about the multi-story and multi-span slab. The aim of this study is to make a optimum design of coalesced beam and column slab constructure. Some results of the evaluation by using the optimalized algorithm that was developed in this study are as follows. 1. Slab was mainly restricted by the constraint of effective depth, bending moment, and minimum steel ratio; especially the effective depth was the preceding crifical constraint. In the optimum design of slab, therefore, the constraint about the minimum thickness should be surely considered. 2. This optimum design is good economy as much as some 3.4&~6.2% compared with the conventional design method. 3. In most case, it was converged by 3 to 6 iteratin regardless of the highest or lowest value and only in case of N=1 and case 1, there is a little oscillation after the 3rd iteration but it makes no difference in taking either the highest or lowest value because the range of oscillation is low as much as about 1.2% of the total construction cost. 4. In this study the result seeking for constraints that make no difference in the least cost design shows that shear stress and maximum steel ration may not be considered in it. 5. Bending moment was converged by one time iteration regardless of the initial value, while steel ratio, in most case, by two times because both bending moment and steel ratio are the fuction of effective depth.

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저가의 머신 비전 카메라를 이용한 2차원 진동의 측정 및 교정 (Measurement of two-dimensional vibration and calibration using the low-cost machine vision camera)

  • 김서우;이정권
    • 한국음향학회지
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    • 제37권2호
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    • pp.99-109
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    • 2018
  • 현존하는 진동 측정 센서는 정밀도 면에서는 대부분의 진동을 측정하기에 충분하나, 센서 한 개로 하나의 지점이나 방향에 한정하여 측정할 수밖에 없다는 단점을 갖고 있다. 반면 카메라의 경우, 정밀도나 측정 가능한 주파수 영역의 면에서는 다소 불리하지만, 한 번에 광범위한 영역의 진동을 측정할 수 있고 가격 면에서 유리하며 다자유도의 진동을 동시에 측정할 수 있다는 큰 장점을 갖고 있다. 본 연구에서는 저가의 머신 비전 카메라가 진동 측정 센서로서 어느 정도의 오차 범위 내에서 진동을 측정할 수 있는지 알아본 후, 실제 외팔보의 진동을 측정하였다. 카메라의 2차원 평면 이미지는 두 방향의 직선 운동과 한 방향의 회전 운동을 나타낼 수 있다. 먼저 단일 점의 진동을 카메라로 측정하고, LDV(Laser Doppler Vibrometer) 측정을 기준으로 한 카메라 측정의 오차를 실험적으로 교정하였다. 다음으로 다중점의 진동을 한 번에 측정하여 회전 진동과 외팔보 전체 형상의 진동을 측정하였다. 외팔보 전체 형상 진동은 주파수와 시간 영역 모두에 대하여 분석하였다.

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.