• 제목/요약/키워드: Deep Deck

검색결과 42건 처리시간 0.027초

서해대교 시공 공법 소개 (Construction Method of Seohae Grand Bridge)

  • 윤태섭
    • 한국건설관리학회:학술대회논문집
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    • 한국건설관리학회 2000년도 학술대회지
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    • pp.255-266
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    • 2000
  • Since 1993, Seohae grand bridge has been continued construction for 7 years and will be completed late this year. The bridge is a part of west sea castal highway and consists of 3 types of bridge including precast segmental method, free cantilever method and cable stayed bridge. A cable stayed bridge is the core of this bridge and it consists of 5 span, symetrical cable-stayed bridge with a total length of 990 m. The main span between two H-shaped pylons extending approximately 180 M above massive foundation of a cable stayed bridge is 470 m long and an approach span of that is 260 m long respectively. The circular cofferdam with 16 ea of 25 m diameter flat type sheet pile had been applied to construct foundation. The slipform method had been applied for forming of con'c of two H-shaped pylons with 3 cross beams respectively which is varied horizontally and vertically. The deck has been erected with balanced cantilever method using movable derrick crane. The stay cables is a bundle of parallel individually protected, 7 wire high tensile strands. The strands is hot deep galvanized and sheathed with a tight high density polyethylene coating. A petroleum wax fills all the inter-wire voids. The bundle of strands to prevent from deterioration due to the ambient problem covered with high density polyethylene pipe. The Isotension method has been applied for the stressing of cable strands to ensure uniformity of force in all the strands of a syay and such works has been performed on the stay specially provided in the pylon.

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대심도 복층터널 초기화재 진압을 위한 자동모니터 소화설비의 적용성 연구 (The study on application of automatic monitor system for initial fire suppression in double-deck tunnel)

  • 유용호;박상헌;한상주;박진욱
    • 한국터널지하공간학회 논문집
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    • 제18권5호
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    • pp.419-429
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    • 2016
  • 국내 도심지 지상교통의 대규모 혼잡으로 발생되는 경제적인 손실을 해소하기 위해 지하 40 m 이상의 대심도 지하도로가 계획되고 있으며, 안전한 장대 지하도로 구축을 위해 국내 지침에 의거하여 1등급 방재시설이 적용되어야 한다. 이러한 방재시설의 일환으로 화재발생시 터널내의 화재확산 방지 및 구조물 붕괴 방지 역할을 하는 물분무 설비가 있으나, 현실적으로 많은 기능적, 기술적인 측면에서 문제점이 발생되어 개선방안이 필요한 실정이다. 국내외적으로 화재초기진압을 위한 자동모니터 소화설비가 다양한 분야에 적용되고 있으며, 최근에는 도로/철도터널분야에 적용을 위한 이론적/실험적인 연구를 통한 개발 및 상용화가 추진되고 있다. 이러한 자동화 소화설비의 우수한 화재진압성능을 바탕으로 현재 적용되고 있는 물분무 시스템에 대한 기술적/경제적 비교분석을 실시하였으며, 화재진압성능 뿐만 아니라 경제적인 측면에서도 우수하다는 분석이 도출되었다. 하지만 본 시스템의 상용화, 제품화를 위해서는 국내 터널의 특성을 반영한 다양한 연구개발이 필요하며, 본 시스템에 따른 제도적인 개선을 통하여 활성화 된다면 독자적인 원천기술개발을 통한 선진화 방재기술 강국으로 도약하기를 기대한다.

매립형 불완전 합성보의 휨 거동 예측 (Flexural Behavior of Encased Composite Beams with Partial Shear Interaction)

  • 허병욱;배규웅;문태섭
    • 한국강구조학회 논문집
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    • 제16권6호통권73호
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    • pp.747-757
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    • 2004
  • 강-콘크리트 합성보에서 강과 콘크리트 사이의 불완전 합성거동은 완전 합성보에 비해서 처짐이 매우 증가하게 된다. 특히, 춤이 깊은 데크 및 속 빈 PC슬래브 등을 사용한 매립형 합성보의 경우, 자체의 형상에 기인하여 처짐에 매우 취약하다. 본 연구에서는 기존 연구에서 유도한 슬립효과를 고려한 처짐 계산법 및 실험으로부터 구한 하중-슬립 관계로부터 매립형 합성보의 전단부착응력 및 슬립에 의한 추가 처짐 값을 제시하였다. 매립형 합성보의 처짐에 미치는 슬립의 영향은 완전 합성보의 강성 값에 비해 약 30%정도 감소함을 알 수 있었다. 또한, 실험 및 예측 값의 비교결과, 6%내외의 오차로 비교적 좋은 결과를 나타내었다.

Numerical model of a tensioner system and riser guide

  • Huang, Han;Zhang, Jun;Zhu, Liyun
    • Ocean Systems Engineering
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    • 제3권4호
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    • pp.257-273
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    • 2013
  • Top tensioned riser (TTR) is often used in a floating oil/gas production system deployed in deep water for oil/gas transport. This study focuses on the extension of the existing numerical code, known as CABLE3D, to allow for static and dynamic simulation of a TTR connected to a floating structure through a tensioner system or buoyancy can, and restrained by riser guides at different elevations. A tensioner system usually consists of three to six cylindrical tensioners. Although the stiffness of individual tensioner is assumed to be linear, the resultant stiffness of a tensioner system may be nonlinear. The vertical friction between a TTR and the hull at its riser guide is neglected assuming rollers are installed there. Near the water surface, a TTR is forced to move horizontally due to the motion of the upper deck of a floating structure as well as related riser guides. The extended CABLE3D is then integrated into a numerical code, known as COUPLE, for the simulation of the dynamic interaction among the hull of a floating structure, such as spar or TLP, its mooring system and riser system under the impact of wind, current and waves. To demonstrate the application of the extended CABLE3D and its integration with COUPLE, the numerical simulation is made for a truss spar under the impact of Hurricane "Ike". The mooring system of the spar consists of nine mooring lines and the riser system consists of six TTRs and two steel catenary risers (SCRs).

신안해저 인양 침몰선의 복원 연구 (A Study on the Restoration of Shinan Shipwreck)

  • 김용한
    • 보존과학회지
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    • 제4권1호
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    • pp.3-10
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    • 1995
  • This study focused on the reconstructional point of Shinan ship-wreck that was excavated between $1976\~1984$. The wreck, which might be sunk in the beginning of the 14th century, is regarded as a vessel of Yuan dynasty, China. This paper tried to find out some structural characteristics and principal dimensions for restoration. The Shinan shipwreck's structural characteristics are summarized as follow, 1) The Shinan shipwreck is formed V-shaped cross section with bar keel, 2) The vessel is divided 8 holds by 7 bulkheads. 3) The ship has flat type stem and transome stern. 4) A rabbeted clinker -built is basically adopted on planking joint. 5) A wooden sheathing, which means a sort of protecting board against marine insects, is covered outside of the main hull, 6) For making an watertight structure, oakum and lime mixtured t'ung-oil are used along the seam of planking and bulkhead. 7) A V-shaped deep water-way exists at both deck side. 8) The shipwreck is believed to have 2 masts at least. 9) The shiptimbers are classified as Chinese Red Pine(Pinus Massonina) which is mainly grown in the southern part of China. Considering as mentioned above the structural characteristics, Shinan ship-wreck could be classified as Chinese Fu-chuan type(복선형) of sea-going ship. The Shinan ship's principal dimensions which are calculated on the basis of Chinese traditional shipbuilding custom, are as follow, Length overall(L.O.A). : 34.80m Length water line(L.W.L) : 24.90m Breadth(B.max.) : 11m Breadth(B) : 10m Depth at keel line(H) : 3.75m Draft(D). : 3.15m Freeboard(F) : 0.65m Ratio, length/breadth(L/B). : 2.26 Ration, breadth/depth(B/D) : 3.5 Height of stem : 7m Height of stern : 10m Displacement : ab.340ton.

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어선의 갑판실의 진동 해석법에 관한 연구 (A Study on the Vibration Analysis of a Deckhouse of Fishing Vessel)

  • 배동명
    • 수산해양기술연구
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    • 제27권3호
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    • pp.193-210
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    • 1991
  • For the deckhouse or superstructure, attention is directed to the reduction of vibration from a human susceptibility point of view. The two basic requirements for obtaining a low vibration level in the accommodation are to ensure that excitation forces from propeller and/or main engine are small and to avoid resonance excitation of the hull and superstructure. In recent years increased attention has been directed towards the problems of vibration and noise in deckhouse, which have caused major problems with regard to the environmental quality in the living quarters for crews. Accordingly, in this paper, the characteristic of the vibration of deckhouse of fishing boat, of which the length/height ratio is also relatively high, are studied systematically with regard to the shape and modelling of deckhouse based on finite element method of 1-dimensional, 2-dimensional and 3-dimensional model. This study is divided into 4-part. 1st part is the global deckhouse vibration, 2nd part is the local deckhouse vibration, 3rd part consists of the estimation for stiffness of foundational support and 4th part is the application to TUNA LONG LINER of 416 ton class. For the global vibration analysis, the severity of the vibration depends on the longitudinal shear and bending stiffness of the deckhouse, on the vertical deckhouse support(fore, aft and sides). However, even if the design is technically sound, vibration problems may arise due to vertical or longitudinal hull girder or afterbody resonances. Author applied the method of this study to the analysis of, deep-sea fishing vessel of G.T. 416 ton class with relatively low height and long deckhouse, and investigated the vibrational characteristic of the fishing vessel with earlier structural feature. According to this investigation, the vibration, response of above vessel was confirmed of which main hull and deckhouse behave as one body. It is at the bottom of vibrational trouble which a accommodation part of the fishing vessel is raised, that is the local vibration for side wall, fore-aft wall and deck plate of deckhouse rather than thief fect of fore-aft vibration of deckhouse for above fishing vessel. and the resonance of main hull, deckhouse and driving system such as the main engine, propeller in exciting source is mainly brought up as the trouble.

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Semi-submersible 석유시추선(石油試錐船)(부체해양구조물(浮體海洋構造物))의 운동(運動) -계산방법(計算方法), 해석(解析) 및 응용(應用) (Motions of Semi-submersible Drilling Rigs in Deep Water)

  • 정진수
    • 대한조선학회지
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    • 제11권2호
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    • pp.23-40
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    • 1974
  • Semisubmersible 해양석유시추선의 기본설계에 필요한 파랑중(波浪中)에서 운동(運動)을 계산(計算)하는 이론적방법(理論的方法)을 제시하고 "MOHOLE"과 "SEDCO 1350-F" 석유시추선들의 운동(運動)을 해석하였다. 이 규칙파에서 운동계산을 불규칙해양파(波)에 적용하는 응용해석을 보여주었다. 현재 이론적 방법으로는 6자유도(自由度)의 운동을 해양파의 어떤 방향에 대해서도 정확히 계산할 수 있으며 계산의 정확성은 수조(水槽)에서의 모형선의 운동측정치와 실선(實船)의 운동측정치와 비교하여 증명되었다. 또 현재의 방법은 종전에 개발된 방법보다 더 일반적(一般的)인 경우를 다룰 수 있으며 결과치도 더 정확하다. 극소운동특성을 갖는 해양석유시추선과 부체(浮體)해양구조물의 설계는 경비가 비싸고 시간이 많이 드는 모형실험보다는 유체역학적(流體力學的) Parameters를 신속 정확히 자주 변경 검토해야 하는 기본설계단계에서는 정확한 이론적인 전자계산기에 의한 계산방법이 절실히 필요하다. 예상(豫想)과 같은 부가질량(附加質量)과 감쇠력(減衰力)은 Resonance 운동주기에서만 운동에 영향을 준다. 해양구조물에 작용하는 파력(波力)은 Froude-Krilov force, 부가질량(附加質量) 및 감쇠력(減衰力)과 Restoring force로 구성했으며 규칙파(規則波)에서의 6자유도(自由度) 운동방정식은 본 논문에 제시된 실험측정치(値)와 실험으로 정확도가 증명된 이론치(値)의 부가질량과 감쇠력 계수(係數)를 써서 풀었다. 규칙파(規則波)에서의 계산된 운동을 Pierson Moskowitz 해양파(海洋波) 스펙트럼과 linear superposition principle에 의해 불규칙해양파(不規則海洋波)에서의 운동을 계산하는데 사용했다. 불규칙파(不規則波)에서의 운동은 운동스펙트럼과 통계적 운동치로 나타냈다. 현재의 계산방법은 실제 기본설게에 사용되어 왔으며, 다른 응용분야는 파랑중(波浪中)에서의 파면(波面)과 Deck간(間)의 Clearance, 계류선(係留線)의 동장력(動張力)계산의 기본 Data 및 기본설계의 Draft 등 Parameters를 통(通)한 Optimum Design 등(等)이다. 파(波)의 한 방향(方向)에 대(對)한 전자계산기(電子計算機)(IBM 370 또는 CDC 6400)에 의한 운동계산은 10초(秒)미만밖에 안걸린다. 또 현재의 계산방법은 해양석유시추선뿐 아니라 이와 비슷한 부체(浮體)해양구조물과 Pipe-laying선(船) 또 Supply Boat설계(設計)에도 쓰여지고 있다.

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트러스 데크를 사용한 강판성형 합성보의 휨성능 평가 (Flexural Capacity of the Profiled Steel Composite Beams with Truss Deck Plate)

  • 허병욱;곽명근;배규웅;정상민;강석규
    • 한국강구조학회 논문집
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    • 제19권4호
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    • pp.413-423
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    • 2007
  • 기존의 층고절감형 합성보 시스템은 철골보의 웨브면에 바닥판을 삽입하여 시공하기 때문에 상대적으로 기존 합성보 형식과 비교하여 층고를 대폭적으로 줄일 수 있지만, 적용되는 철골보 춤이 제한되기 때문에 적용 가능한 스팬이 한정되어 있어 여러 가지 다양한 건축구조의 수요에 능동적으로 대처하기가 어려운 단점이 있다. 따라서, 본 연구에서는 기존의 층고절감형 합성보의 단점을 해결하기 위하여 합성보의 춤을 자유로이 조절할 수 있는 층고절감형 매입형 합성보를 개발하였다. 본 연구는 콘크리트에 매입된 강팡성형 철골보를 가지는 불완전 합성보의 휨거동에 관한 것이다. 총 5개의 실대형 실험체를 전단연결재 및 보강근의 사용유무, 슬래브 형식을 주요변수로 하여 실험을 수행하였다. 실험결과, 별도의 전단연결재를 설치하지 않은 실험체는 자체가 가지고 있는 기계적 화학적 부착응력으로 인해 $0.20{\sim}0.76N/mm^2$의 부착응력을 나타내었다.

U-플랜지 트러스 보의 구조 내력에 관한 실험 연구 (Experimental Study on the Structural Capacity of the U-Flanged Truss Steel Beam)

  • 오명호;김영호;강재윤;김명한
    • 한국공간구조학회논문집
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    • 제18권4호
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    • pp.113-121
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    • 2018
  • U-flanged truss beam is composed of u-shaped upper steel flange, lower steel plate of 8mm or more thickness, and connecting lattice bars. Upper flange and lower plate are connected by the diagonal lattice bars welded on the upper and lower sides. In this study the structural experiments on the U-flanged truss beams with various shapes of upper flange were performed, and the flexural and shear capacities of U-flanged truss beam in the construction stage were evaluated. The principal test parameters were the shape of upper flange and the alignment space of diagonal lattice bars. In all the test specimens, the peak loads were determined by the buckling of lattice bar regardless of the upper flange shape. The test results have shown that the buckling of lattice bar is very important design factor and there is no need to reinforce the basic u-shaped upper flange. However, the early lattice buckling occurred in the truss beam with upper steel bars because of the insufficient strength and stiffness of upper chord, and the reinforcement in the upper chord is necessary. The formulae of Eurocode 3 (2005) have presented more exact evaluations of lattice buckling load than those of KBC 2016.

Validation of a 750 kW semi-submersible floating offshore wind turbine numerical model with model test data, part II: Model-II

  • Kim, Junbae;Shin, Hyunkyoung
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제12권1호
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    • pp.213-225
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    • 2020
  • Floating Offshore Wind Turbines (FOWT) installed in the deep sea regions where stable and strong wind flows are abundant would have significantly improved energy production capacity. When designing FOWT, it is essential to understand the stability and motion performance of the floater. Water tank model tests are required to evaluate these aspects of performance. This paper describes a model test and numerical simulation for a 750-kW semi-submersible platform wind turbine model-II. In the previous model test, the 750-kW FOWT model-I suffered slamming phenomena from extreme wave conditions. Because of that, the platform freeboard of model-II was increased to mitigate the slamming load on the platform deck structure in extreme conditions. Also, the model-I pitch Response Amplitude Operators (RAO) of simulation had strong responses to the natural frequency region. Thus, the hub height of model-II was decreased to reduce the pitch resonance responses from the low-frequency response of the system. Like the model-I, 750-kW FOWT model-II was built with a 1/40 scale ratio. Furthermore, the experiments to evaluate the performance characteristics of the model-II wind turbine were executed at the same location and in the same environment conditions as were those of model-I. These tests included a free decay test, and tests of regular and irregular wave conditions. Both the experimental and simulation conditions considered the blade rotating effect due to the wind. The results of the model tests were compared with the numerical simulations of the FOWT using FAST (Fatigue, Aerodynamics, Structures, and Turbulence) code from the National Renewable Energy Laboratory (NREL).