• 제목/요약/키워드: Eccentric Load

검색결과 225건 처리시간 0.028초

50,000 DWT 유조선의 밸러스트 흘수에서 우현 전타시 과도상태가 프로펠러축 거동에 미치는 영향 연구 (Effect of Transient Condition on Propeller Shaft Movement during Starboard Turning under Ballast Draught Condition for the 50,000 DWT Oil Tanker)

  • 이재웅
    • 해양환경안전학회지
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    • 제26권4호
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    • pp.412-418
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    • 2020
  • 선박 축계를 구성하는 프로펠러축은 엔진출력, 프로펠러 하중 및 편심추력의 영향으로 인해 거동의 양상이 달라져 선미관 후부베어링의 국부하중 변화를 일으킴으로써 선미관 베어링 손상의 위험을 증가시킨다. 이를 방지하기 위해 수행된 추진축계 정렬연구는 선급강선규칙을 중심으로 주로 축과 지지베어링간의 상대적 경사각과 유막유지를 최적화 하는데 중점을 두어 진행 되어왔다. 그러나 보다 상세한 평가를 통한 추진축계의 안정성 확보를 위해서는 전타와 같은 급격한 선미유동장 변화에 기인한 과도상태를 포함한 동적상태의 고려가 필요하다. 이러한 관점에서, 본 연구는 50,000 DWT 선박을 대상으로 스트레인 게이지법을 이용하여 밸러스트 흘수 상태에서 정격회전수로 운전 중 대표적 동적 과도상태인 우현 전타상태에서의 프로펠러 축 거동이 추진축계에 미치는 영향을 분석하였다. 그 결과 변동된 프로펠러 편심추력은 프로펠러축을 일시적으로 강하게 내려 누르는 힘으로 작용하여 선미관 베어링의 국부하중을 증가시켜 축계 안정성에 부정적 영향을 미침을 증명하였다.

엑츄에이터를 이용한 송전철탑의 1/2 축소부분실험 (Half-Scaled Substructure Test of a Transmission Tower Using Actuators)

  • 문병욱;박지훈;이성경;민경원
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2007년도 추계학술대회논문집
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    • pp.178-188
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    • 2007
  • In this paper, a half-scaled substructure test was performed to evaluate the buckling and structural safety of an existing transmission tower subjected to wind load. A loading scheme was devised to reproduce the dead and wind loads of a prototype transmission tower, which uses a triangular jig that is mounted on the reduced model to which the similarity law of a half length was applied. As a result of the preliminary numerical analysis carried out to evaluate the stability of a specimen for the design load, it was confirmed that the calculated axial forces of tower leg members were distributed to $80{\sim}90%$ of an admissible buckling load. When the substructured transmission tower was loaded by 270% of its maximum admissible buckling load, it was failed due to the local buckling that is occurred in joints with weak constraints for out-of-plane behavior of leg members. By inspection of load-displacement curves, displacements and strains of members, it is considered that this local buckling was due to additional eccentric force by unbalanced deformation because the time that is reached to yielding stress due to the bending moment is different at each point of a same section.

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활하중 분배계수식 개발을 위한 I형 프리스트레스트 콘크리트 거더 교량의 구조해석 모델 (Structural Analysis Models to Develop Live Load Distribution Factors of Simply Supported Prestressed Concrete I-Girder Bridge)

  • 이환우;김광양
    • 한국전산구조공학회논문집
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    • 제21권1호
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    • pp.91-101
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    • 2008
  • I형 프리스트레스트 콘크리트 거더 교량의 활하중 분배계수식을 개발하기 위한 구조해석 모델은 해석결과의 적정성과 함께 모델링의 용이성도 동시에 가지고 있어야 한다. 그 이유는 활하중 분배계수식의 개발 과정에서 무수히 많은 횟수의 구조해석이 필요하기 때문이다. 본 연구에서는 기존 연구와 설계실무에서 사용하고 있는 모델들을 비교하여 적정한 구조해석모델을 선정하였다. 또한 수치해석과 재하시험 결과와의 비교를 통하여 방호벽과 가로보의 휨 강성이 활하중분배에 미치는 영향을 분석하였다. 연구결과로서 I형 프리스트레스트 콘크리트 거더 교량의 구조해석에는 편심을 반영한 거더, 방호벽 및 가로보를 바닥판에 연결시킨 모델이 해석결과의 정확성과 모델링의 편이성을 동시에 만족시키는 측면에서 적합하였다. 그러나 방호벽은 강성변화에도 불구하고 활하중분배에 미치는 영향이 미소한 것으로 분석되었다. 편심을 고려한 가로보는 휨 강성 25% 이상에서는 강성변화에 따른 영향이 적었다. 따라서 거더는 바닥판과의 편심을 고려하여 강체요소로 연결하고, 방호벽은 무시하고, 가로보는 전 단면이 유효한 것으로 가정한 상태에서 편심을 주지 않는 모델을 I형 프리스트레스트 콘크리트 거더 교량의 활하중 분배계수식의 개발을 위한 최종 구조해석 모델로서 선정하였다.

인발성형 FRP 복합소재 기둥부재의 크리프거동에 대한 실험적 분석 (Experimental Investigation on the Creep Behavior of Pultruded FRP Composite Columns)

  • Kang, Jin Ook;Abdul Hamid Zureick
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2003년도 가을 학술발표회 논문집
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    • pp.299-306
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    • 2003
  • This paper presents the results of an experimental investigation pertaining to the creep behavior of fiber-reinforced polymeric (FRP) pultruded components subjected to sustained eccentric axial loading. Six different axial load/eccentricity combinations were investigated through the experiments. The test duration of these experiments was 2,000 hours (90 days), during which the mid-height lateral deflections of the components were recorded continually. Analytical formulations based on the Schapery's quasielastic method and a power law model were used for the prediction of the creep lateral deflection.

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Evaluation of cyclic behavior of lateral load resisting system with eccentric brace and steel plate

  • Reza Khalili Sarbangoli;Ahmad Maleki;Ramin K. Badri
    • Structural Engineering and Mechanics
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    • 제89권3호
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    • pp.239-252
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    • 2024
  • Steel plate shear walls (SPSWs) are classified as lateral load-resisting systems. The feasibility of openings in the steel plate is a characteristic of SPSWs. The use of openings in SPSWs can lower the load capacity, stiffness, and energy dissipation. This study proposes a novel form of SPSWs that provides convenient access through openings by combining steel plates and eccentrically braced frames (EBFs). The proposed system also avoids a substantial reduction in the strength and stiffness. Hence, various geometric forms were analyzed through two different structural approaches. Groups 1, 2, and 3 included a steel EBF with a steel plate between the column and EBF in order to improve system performance. In Group 4, the proposed system was evaluated within an SPSW with openings and an EBF on the opening edge. To evaluate the performance of the proposed systems, the nonlinear finite element method (NL-FEM) was employed under cyclic loading. The hysteresis (load-drift) curve, stress contour, stiffness, and damping were evaluated as the structural outputs. The numerical models indicated that local buckling within the middle plate-EBF connection prevented a diagonal tension field. Moreover, in group 4, the EBF and stiffeners on the opening edge enhanced the structural response by approximately 7.5% in comparison with the base SPSW system.

800MPa 강재 및 100MPa 콘크리트를 적용한 ㄱ형 강재 매입형 합성기둥의 편심압축실험 (Eccentric Axial Loading Test for Concrete-Encased L-section Columns using 800MPa Steel and 100MPa Concrete)

  • 김창수;박홍근;이호준;최인락
    • 한국강구조학회 논문집
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    • 제25권2호
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    • pp.209-222
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    • 2013
  • 800MPa급 강재와 100MPa급 콘크리트를 적용한 매입형 합성기둥에 대하여 편심압축실험을 수행하였다. 강재단면의 모멘트팔길이와 변형(응력)을 증가시켜 고강도강재의 성능활용을 극대화할 수 있도록, ㄱ형 강재단면을 네 모서리에 집중 배치한 후, 래티스철근, 링크철근, 띠판을 이용하여 일체화하였다. 이 경우 강재단면의 강력한 횡구속효과로 인해 심부콘크리트의 성능도 개선된다. 실험결과 ㄱ형 강재 매입형 기둥은 H형 강재 매입형 기둥에 비하여 최대강도와 유효휨강성이 1.4배 이상 증가하였다.

Post-fire test of precast steel reinforced concrete stub columns under eccentric compression

  • Yang, Yong;Xue, Yicong;Yu, Yunlong;Gong, Zhichao
    • Steel and Composite Structures
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    • 제33권1호
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    • pp.111-122
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    • 2019
  • This paper presents an experimental work on the post-fire behavior of two kinds of innovative composite stub columns under eccentric compression. The partially precast steel reinforced concrete (PPSRC) column is composed of a precast outer-part cast using steel fiber reinforced reactive powder concrete (RPC) and a cast-in-place inner-part cast using conventional concrete. Based on the PPSRC column, the hollow precast steel reinforced concrete (HPSRC) column has a hollow column core. With the aim to investigate the post-fire performance of these composite columns, six stub column specimens, including three HPSRC stub columns and three PPSRC stub columns, were exposed to the ISO834 standard fire. Then, the cooling specimens and a control specimen unexposed to fire were eccentrically loaded to explore the residual capacity. The test parameters include the section shape, concrete strength of inner-part, eccentricity ratio and heating time. The test results indicated that the precast RPC shell could effectively confine the steel shape and longitudinal reinforcements after fire, and the PPSRC stub columns experienced lower core temperature in fire and exhibited higher post-fire residual strength as compared with the HPSRC stub columns due to the insulating effect of core concrete. The residual capacity increased with the increasing of inner concrete strength and with the decreasing of heating time and load eccentricity. Based on the test results, a FEA model was established to simulate the temperature field of test specimens, and the predicted results agreed well with the test results.

Maximum concrete stress developed in unconfined flexural RC members

  • Ho, J.C.M.;Pam, H.J.;Peng, J.;Wong, Y.L.
    • Computers and Concrete
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    • 제8권2호
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    • pp.207-227
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    • 2011
  • In flexural strength design of unconfined reinforced concrete (RC) members, the concrete compressive stress-strain curve is scaled down from the uni-axial stress-strain curve such that the maximum concrete stress adopted in design is less than the uni-axial strength to account for the strain gradient effect. It has been found that the use of this smaller maximum concrete stress will underestimate the flexural strength of unconfined RC members although the safety factors for materials are taken as unity. Herein, in order to investigate the effect of strain gradient on the maximum concrete stress that can be developed in unconfined flexural RC members, several pairs of plain concrete (PC) and RC inverted T-shaped specimens were fabricated and tested under concentric and eccentric loads. From the test results, the maximum concrete stress developed in the eccentric specimens under strain gradient is determined by the modified concrete stress-strain curve obtained from the counterpart concentric specimens based on axial load and moment equilibriums. Based on that, a pair of equivalent rectangular concrete stress block parameters for the purpose of flexural strength design of unconfined RC members is determined.

Behavior of L-shaped double-skin composite walls under compression and biaxial bending

  • Qin, Ying;Chen, Xin;Xi, Wang;Zhu, Xingyu;Chen, Yuanze
    • Steel and Composite Structures
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    • 제37권4호
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    • pp.405-418
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    • 2020
  • The application of double-skin composite wall should meet different layout plans. However, most available research focused on the rectangular section with uniform axial compression. In this research, the structural behavior of double-skin composite wall with L section was studied. Due to the unsymmetric geometric characteristics, the considered loading condition combined the axial compression and biaxial bending. Five specimens were designed and tested under eccentric compression. The variables in the test included the width of the web wall, the truss spacing, the thickness of the steel faceplate, and the thickness of the web wall. The test results were discussed in terms of the load-displacement responses, buckling behavior, stiffness, ductility, strength utilization, strain distribution. Two modern codes were employed to predict the interaction between the axial compression and the biaxial bending. The method to calculate the available bending moment along the two directions was proposed. It was found that CECS 159:2004 offers more suitable results than AISC 360.