• 제목/요약/키워드: Roof span

검색결과 132건 처리시간 0.023초

천창을 설치한 토마토 재배 단동 온실의 환기성능 분석 (Analysis on the Ventilation Performance of Single-span Tomato Greenhouse with Roof Windows)

  • 남상운;김영식
    • 생물환경조절학회지
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    • 제20권2호
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    • pp.78-82
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    • 2011
  • 온실의 환기설계 기준 설정 및 단동 플라스틱 온실의 원형 천창 설치 가이드라인 제정을 위한 기초자료를 제공할 목적으로 천창이 설치된 토마토 재배 단동 온실에서 환기실험을 통하여 자연환기 성능을 분석하고, 열평형 모델을 이용하여 온실 재배 토마토의 증발 추정하였다. 직경 60cm의 원형 천창을 지붕의 중앙에 8m 간격으로 설치한 단동온실의 자연환기 성능을 실험한 결과 환기회수는 분당 0.02~0.32회(평균 0.17회 $min^{-1}$)의 범위를 보여 상당히 낮은 것으로 나타났다. 그러나 상업용 온실의 권장환기율과 비교하면 6m 간격으로 설치할 경우에는 봄이나 가을철에 필요한 환기량을 충족할 수 있을 것으로 판단되며, 여름철 권장환기를 위해서는 2m 정도의 간격으로 설치한 해야만 가능할 것으로 판단되므로 광투과를 저해하지 않으면서 지붕의 개구면적을 확대할 수 있는 방안을 찾아야 할 것으로 생각된다. 실험에 사용한 단동 온실은 인접 동 간격이 1.2m에 불과한 밀집된 단지 내에 위치하고 있어서 측창 주변의 외부 풍속이 최대 $0.9m{\cdot}s^{-1}$(평균 $0.4m{\cdot}s^{-1}$에 불과하고 풍력에 의한 환기효과를 기대하기가 어려웠다. 환기량과 풍속 및 실내외 온도차와의 관계를 비교 분석해 본 결과 중력환기가 우세함을 확인 할 수 있었다. 본 환기실험 자료를 온실의 환기설계를 위한 열평형모델에 적용하여 증발산계수를 추정해 본 결과 0.39~0.85의 범위(평균 0.62)를 보였고, 다른 연구자들이 제시하는 일반적인 온실의 설계 권장 값과 유사한 경향을 나타냈다. 따라서 토마토 재배 단동 플라스틱 온실의 환기설계에서 증발산계수는 0.6 정도를 사용하면 적당할 것으로 판단된다.

새그 비를 고려한 케이블 네트 구조물의 역학적 거동 (Mechanical Behavior of Cable Net Structures Considering Sag Ratio)

  • 박강근;이동우
    • 한국공간구조학회논문집
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    • 제16권3호
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    • pp.47-58
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    • 2016
  • Cable network system is a flexible lightweight structure which curved cables can transmit only tensile forces. The weight of cable roof dramatically can reduce when the length becomes large. The cable network system is too flexible, most cable systems are stabilized by pretension forces. The tensile force of cable system is greatly influenced by the sag ratio and pretension forces. Determining initial sag ratio of cable roof system is essential in a design process of cable structures. Final sag ratio and pretension depends on initial installed sag and on proper handling during installation. The design shape of cable system has an affect on the sag and pretension, and must be determined using well-defined design philosophy. This paper is carried out the comparative data of the deflection and tensile forces on the geometric non-linear analysis of cable network systems according to sag ratio. The study of cable network system is provided to technical informations for the design of a large span cable roof, analytical results are compared with the results of other researchers. Structural nonlinear analysis of systems having cable elements is relatively complex than other rigid structural systems because displacements are large as a reason of flexibility, initial prestress is applied to cables in order to increase the rigidity, and then divergence of nonlinear analysis occurs rather frequently. Therefore, cable network systems do not exhibit a typical nonlinear behavior, iterative method that can handle geometric nonlinearities are necessary.

Investigation on the flexural behaviour of ferrocement pipes and roof panels subjected to bending moment

  • Alnuaimi, A.S.;Hago, A.W.;Al-Jabri, K.S.;Al-Saidy, A.H.
    • Structural Engineering and Mechanics
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    • 제33권4호
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    • pp.503-527
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    • 2009
  • This paper presents experimental results on the behaviour and ultimate load of fifteen pipes and six roof panels made of ferrocement. Additional results from three roof panels, carried out by others, are also compared with this research results. OPC cement, natural sand and galvanised iron wire mesh were used for the construction of 20 mm thick specimens. The pipe length was 2 m and roof panel length was 2.1 m. The main variables studied were the number of wire mesh layers which were 1, 2, 3, 4 and 6 layers, the inner pipe diameter which were 105, 210 and 315 mm, cross sectional shape of the panel which were channel and box sections and the depth of the edge beam which were 95 mm and 50 mm. All specimens were simply supported and tested for pure bending with test span of 600 mm at mid-span. Tests revealed that increasing the number of wire mesh layers increases the flexural strength and stiffness. Increasing the pipe diameter or depth of edge beam of the panel increases the cracking and ultimate moments. The change in the pipe diameter led to larger effect on ultimate moment than the effect of change in the number of wire mesh layers. The box section showed behaviour and strength similar to that of the channel with same depth and number of wire mesh layers.

Numerical prediction of the proximity effects on wind loads of low-rise buildings with cylindrical roofs

  • Deepak Sharma;Shilpa Pal;Ritu Raj
    • Wind and Structures
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    • 제36권4호
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    • pp.277-292
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    • 2023
  • Low-rise structures are generally immersed within the roughness layer of the atmospheric boundary layer flows and represent the largest class of the structures for which wind loads for design are being obtained from the wind standards codes of distinct nations. For low-rise buildings, wind loads are one of the decisive loads when designing a roof. For the case of cylindrical roof structures, the information related to wind pressure coefficient is limited to a single span only. In contrast, for multi-span roofs, the information is not available. In this research, the numerical simulation has been done using ANSYS CFX to determine wind pressure distribution on the roof of low-rise cylindrical structures arranged in rectangular plan with variable spacing in accordance with building width (B=0.2 m) i.e., zero, 0.5B, B, 1.5B and 2B subjected to different wind incidence angles varying from 0° to 90° having the interval of 15°. The wind pressure (P) and pressure coefficients (Cpe) are varying with respect to wind incidence angle and variable spacing. The results of present numerical investigation or wind induced pressure are presented in the form of pressure contours generated by Ansys CFD Post for isolated as well as variable spacing model of cylindrical roofs. It was noted that the effect of wind shielding was reducing on the roofs by increasing spacing between the buildings. The variation pf Coefficient of wind pressure (Cpe) for all the roofs have been presented individually in the form of graphs with respect to angle of attacks of wind (AoA) and variable spacing. The critical outcomes of the present study will be so much beneficial to structural design engineers during the analysis and designing of low-rise buildings with cylindrical roofs in an isolated as well as group formation.

Wind resistance performance of a continuous welding stainless steel roof under static ultimate wind loading with testing and simulation methods

  • Wang, Dayang;Zhao, Zhendong;Ou, Tong;Xin, Zhiyong;Wang, Mingming;Zhang, Yongshan
    • Wind and Structures
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    • 제32권1호
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    • pp.55-69
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    • 2021
  • Ultrapure ferritic stainless steel provides a new generation of long-span metal roof systems with continuous welding technology, which exhibits many unknown behaviors during wind excitation. This study focuses on the wind-resistant capacity of a new continuous welding stainless steel roof (CWSSR) system. Full-scale testing on the welding joints and the CWSSR system is performed under uniaxial tension and static ultimate wind uplift loadings, respectively. A finite element model is developed with mesh refinement optimization and is further validated with the testing results, which provides a reliable way of investigating the parameter effect on the wind-induced structural responses, namely, the width and thickness of the roof sheeting and welding height. Research results show that the CWSSR system has predominant wind-resistant performance and can bear an ultimate wind uplift loading of 10.4 kPa without observable failures. The welding joints achieve equivalent mechanical behaviors as those of base material is produced with the current of 65 A. Independent structural responses can be found for the roof sheeting of the CWSSR system, and the maximum displacement appears at the middle of the roof sheeting, while the maximum stress appears at the connection supports between the roof sheeting with a significant stress concentration effect. The responses of the CWSSR system are greatly influenced by the width and thickness of the roof sheeting but are less influenced by the welding height.

다연동 플라스틱 온실의 자연환기성능 평가 (Evaluation of Natural Ventilation Performance for Multi-span Plastic Greenhouses)

  • 남상운;김영식;서동욱
    • 생물환경조절학회지
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    • 제22권1호
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    • pp.7-12
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    • 2013
  • 측고, 연동수, 측창의 유무 및 천창의 위치에 따른 다연동 온실의 환기성능을 평가하기 위하여 다양한 유형의 연동 플라스틱 온실을 대상으로 실제 농가의 재배현장에서 환경계측 실험을 수행하였다. 실험 대상 온실은 모두 토마토를 수경재배하고 있는 농가였으며, 열수지 방법으로 환기율을 비교 분석하였다. 측고가 4m인 온실은 측고가 2m인 온실에 비하여 22% 정도의 환기율이 증가하는 것으로 나타났다. 9연동 온실은 5연동 온실에 비하여 17% 정도의 환기율이 감소하는 것으로 나타났다. 9연동 온실에서 측창이 없는 경우에는 측창을 설치한 경우 보다 환기율이 1/3 정도로 낮게 나타났다. 전체적으로 다연동 온실의 환기성능은 측고가 높을수록 좋고, 연동수가 많을수록 떨어지며, 측창이 없으면 현저하게 저하하는 것으로 나타났다. 또한, 측고가 높고 천창을 용마루에 설치한 경우의 환기성능이 가장 우수한 것으로 나타났다. 따라서 다연동 온실의 자연환기 성능을 극대화하기 위해서는 온실의 측고는 높이고, 지붕 환기창의 위치는 곡부가 아니라 용마루에 설치하며, 측창을 반드시 설치하고, 연동수는 10연동 내외로 제한하는 등의 구조개선이 필요하다.

비대칭 적설하중 적용을 통한 단층 래티스 지붕 구조물의 좌굴하중 특성 (Buckling Load of Single-layered Lattice Roof Structure Considering Asymmetric Snow Load)

  • 황경주;이승재;손수덕
    • 한국공간구조학회논문집
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    • 제15권3호
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    • pp.43-49
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    • 2015
  • A single-layerd steel lattice roof, which has 50m span, was constructed. In order to figure out the realistic buckling load level, the structural analysis of this roof structure was performed especially by local snow load. Due to the characteristics of application of snow load, the load combinations of snow should be considered not only global area but also local part so that the critical buckling load could be observed as easy as possible. Geometrical imperfection was simulated to consider inaccurate shape of structure. And then nonlinear analysis were performed. Finally, this paper could investigate that the local snow load with geometrical imperfection decreased the level of buckling load significantly.

접합부 강성과 비대칭 적설하중 적용을 통한 목조 래티스 지붕 구조물의 좌굴하중 특성 (Buckling Load of Lattice Timber Roof Structure considering Stiffness of Connection with Asymmetric Snow Load)

  • 황경주
    • 한국공간구조학회논문집
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    • 제23권1호
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    • pp.69-76
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    • 2023
  • A timber lattice roof, which has around 30m span, was constructed. In order to figure out the realistic buckling load level, the structural analysis of this roof structure was performed especially by stiffness of connection with various asymmetric snow load. Due to the characteristics of application of snow load, the load combinations of snow should be considered not only global area but also local part so that the critical buckling load could be observed as easy as possible. Geometrical imperfection was simulated to consider inaccurate shape of structure. And then nonlinear analysis were performed. Finally, this paper could investigate that the asymmetric snow load with the lower level stiffness of connection decreased the level of buckling load significantly.

Roof Truss Sliding 공법 적용사례 연구 인천국제공항 교통센터 - Great Hall (A Study on the application of Roof Truss Sliding Method in the Incheon International Amort Transportation Center - Great Hall)

  • 이동렬
    • 한국건설관리학회:학술대회논문집
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    • 한국건설관리학회 2001년도 학술대회지
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    • pp.214-221
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    • 2001
  • 인천국제공항 교통센터의 Great Hall은 3차원의 입체적 곡면 Truss로 구성되어 있고, Great Hall Roof Truss는 최대 경간162m, 480Ton인 Truss을 포함한 13개의 Main Steel Truss로 구성되어 있다. Great Hall Roof Truss는 총 중량 6,300Ton, 9,600 Pieces로 1개의 절점당 최대 13개의 다른 부재가 접합하게 되어 있고, 12개의 Fabric 기초에 의해 지지된다. 경제적인 효과와 공기적 측면을 고려하여 기존 재래식(가설 Bent) 공법보다 Block화 공법 및 Sliding공법을 채택하였다. Roof 구조물은 3,550Ton과 2,700Ton 중량인 두 Block으로 나누고 구조물 외부에 설치 된 Giant Sleigh에 선 조립 후 Tandem Pulling Jack과 Strand를 이용하여 181m를 Sliding하여 본 구조물의 위치에 설치되었다.

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Dynamic analysis method for the progressive collapse of long-span spatial grid structures

  • Tian, Li-min;Wei, Jian-peng;Hao, Ji-ping;Wang, Xian-tie
    • Steel and Composite Structures
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    • 제23권4호
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    • pp.435-444
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    • 2017
  • In the past, the progressive collapse resulting from local failures during accidents has caused many tragedies and loss of life. Although long-span spatial grid structures are characterised by a high degree of static indeterminacy, the sudden failure of key members may lead to a catastrophic progressive collapse. For this reason, it is especially necessary to research the progressive collapse resistance capacity of long-span spatial grid structures. This paper presents an evaluation method of important members and a novel dynamic analysis method for simulating the progressive collapse of long-span spatial grid structures. Engineering cases were analysed to validate these proposed method. These proposed methods were eventually implemented in the progressive collapse analysis of the main stadium for the Universiade Sports Center. The roof of the structure was concluded to have good resistance against progressive collapse. The novel methods provide results close to practice and are especially suitable for the progressive collapse analysis of long-span spatial grid structures.