• 제목/요약/키워드: Initial prestressing force

검색결과 26건 처리시간 0.027초

프리스트레스트 콘크리트 박스 거더 교량의 프리스트레스 손실 추정에 관한 연구 (A Study on the Estimation of Prestress Losses in Prestressed Concrete Box Girder Bridges)

  • 오병환;양인환;김지상
    • 한국구조물진단유지관리공학회 논문집
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    • 제5권2호
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    • pp.111-120
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    • 2001
  • This paper aims at estimating instantaneous prestress losses by measuring the actual prestress forces in prestressed concrete (PSC) box girder bridges. Measurement were taken to study initial prestress losses such as friction losses and slip losses. A new strain gauge system was developed to measure strains in internal tendons. The system was installed on a total of 20 tendons in a PSC box girder bridges. The variation of prestress forces were monitored during prestressing tendon and after prestress transfer. The prestress losses are also calculated including friction losses and slip losses. The measured data were compared with the theoretical values. The result shows that the measured prestress forces agree well with the theoretical values. It is shown that prestress force of each strand in the same tendon is a bit different. This study also shows that prestress losses of continuity tendons during prestress transfer are significantly different each other, which results from the variety of buttress location and tendon profile. The present study provides realistic information on the estimation of actual prestress forces and losses in PSC box girder bridges.

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A Modified Shooting Method Technique for the Analysis of the Limited Slip Capacity of UHPFRC-NC Composite Structure

  • Han, Sang-Mook;Wu, Xiangguo;Kim, Sung-Wook;Kang, Su-Tae
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.1061-1064
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    • 2008
  • Shear connectors have a finite slip capacity because of the mechanism by which they transfer the shear between UHPFRC and NC elements. At high degree of shear connection, non-linear analysis techniques are required to allow for compressive plasticity and tensile cracking behaviour of the elements. As with all non-linear problems, a closed form solution is difficult to find. A Modified Shooting Method Technique is developed here for non-linear analysis of UHPFRC/concrete composite. The initial effective moment is derived according to the prestressing force. The composite structure is divided into small segments which length is much less than the length of the structure and it can be assumed that the forces and displacements within each segment are constant. An equivalent analysis in composite girders would be to fix the slip strain in each segment and develop a moment curvature relationship for this slip strain in each segment. Additive forces and moment analysis on each section of the segments are analyzed by MSMT. Finally the ultimate slippage of the interface can be evaluated by the MSMT model. This paper presents a nonlinear analysis method for limited slip capacity of UHPFRC-NC interface.

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In-plane seismic performance of masonry wall retrofitted with prestressed steel-bar truss

  • Hwang, Seung-Hyeon;Kim, Sanghee;Yang, Keun-Hyeok
    • Earthquakes and Structures
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    • 제19권6호
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    • pp.459-469
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    • 2020
  • An external prestressed steel-bar truss unit was developed as a new strengthening technology to enhance the seismic performance of an in-plane masonry wall structure while taking advantage of the benefits of a prestressed system. The presented method consists of six steel bars: two prestressed vertical bars to introduce a prestressing force on the masonry wall, two diagonal bars to resist shear deformation, and two horizontal bars to maintain the configuration. To evaluate the effects of this new technique, four full-scale specimens, including a control specimen, were tested under combined loadings that included constant-gravity axial loads and cyclic lateral loads. The experimental results were analyzed in terms of the shear strength, initial stiffness, dissipated energy, and strain history. The efficiency of the external prestressed steel-bar truss unit was validated. In particular, a retrofitted specimen with an axial load level of 0.024 exhibited a more stable post behavior and higher energy dissipation than a control specimen with an observed complete sliding failure. The four vertical bars of the adjacent retrofitting units created a virtual column, and their strain values did not change until they reached the peak shear strength. The shear capacity of the masonry wall structure with external prestressed steel-bar truss units could be predicted using the model suggested by Yang et al.

와이어로프로 외부 보강된 철근콘크리트 연속 T형 보의 전단내력 (Shear Capacity of Reinforced Concrete Continuous T-Beams Externally Strengthened with Wire Rope Units)

  • 양근혁;심재일;변항용
    • 콘크리트학회논문집
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    • 제19권6호
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    • pp.773-783
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    • 2007
  • 와이어로프 단위를 이용한 단순한 비 부착형 전단보강 기술이 개발되었다. 제안된 보강 기술에 의해 보강된 연속 T형 보 6개와 동일한 무 보강 시험체가 실험되었다. 고려된 주요 변수는 와이어로프의 양과 프리스트레스이다. 모든 시험체의 기하학적 특성 및 철근 배근을 동일하다. 와이어로프의 프리스트레스로 인한 콘크리트 복부에서의 수직응력 분포가 보의 경사균열 전단내력 및 최대 전단내력에 미치는 영향이 또한 제시되었다. 본 연구의 실험 결과로부터 제안된 보강 기술을 이용하여 철근콘크리트 보의 전단내력 향상 및 연성을 확보하기 위해서는 와이어로프 비는 ACI 기준에서 제시하는 최소 전단철근비의 2.5배 이상, 그리고 프리스트레스는 와이어로프 인장강도의 0.6배 이하로 있어야 함이 제안될 수 있었다. 와이어로프 단위로 보강된 연속 T형 보의 전단내력을 평가하기 위하여 상계치 이론을 이용한 수치해석 모델이 제시되었다. 제시된 수치해석 모델은 ACI 318-05의 전단내력 식에 비해 실험 결과와 잘 일치하였다.

확률유한요소해석에 의한 사장교의 민감도 분석 및 안전성 평가 (The Sensitivity Analysis and Safety Evaluations of Cable Stayed Bridges Based on Probabilistic Finite Element Method)

  • 한성호;조태준;방명석
    • 한국구조물진단유지관리공학회 논문집
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    • 제11권1호
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    • pp.141-152
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    • 2007
  • 극한하중을 견딜 수 있도록 설계된 구조물이라도 내재된 확률변수의 불확실성 때문에 구조물의 응답특성을 평가하는데 있어서 기존의 결정론적 방법에 비해 확률유한요소법을 이용하는 것이 보다 합리적일 것이다. 따라서 본 연구에서는 실제 시공된 사장교를 대상으로 확률변수가 교량의 안전성에 미치는 영향을 정량적으로 평가하기 위해 민감도 분석을 수행하였다. 초기형상해석을 수행한 후, 확률유한요소해석 및 민감도 분석과정의 효율성을 위해 섭동법을 이용하여 해석프로그램을 개발하였다. 개발된 해석프로그램의 정확성은 몬테카르로 시뮬레이션 방법에 의한 해석프로그램을 개발하여 검증하였다. 각각의 확률변수의 변동계수에 따른 대상 사장교의 응답에 대한 민감도 분석을 수행한 결과, 외부하중에 의한 영향이 지배적인 것을 확인할 수 있었다. 부재강성 및 케이블의 긴장력 등도 부재에 따라 큰 영향을 나타내므로, 구조물 설계 시 개발된 프로그램이 안전성 확보에 기여할 것으로 판단된다.

Prediction of load transfer depth for cost-effective design of ground anchors using FBG sensors embedded tendon and numerical analysis

  • Do, Tan Manh;Kim, Young-Sang
    • Geomechanics and Engineering
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    • 제10권6호
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    • pp.737-755
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    • 2016
  • The load transfer depth of a ground anchor is the minimum length required to transfer the initial prestressing to the grout column through the bonded part. A thorough understanding of the mechanism of load transfer as well as accurate prediction of the load transfer depth are essential for designing an anchorage that has an adequate factor of safety and satisfies implicit economic criteria. In the current research, experimental and numerical studies were conducted to investigate the load transfer mechanism of ground anchors based on a series of laboratory and field load tests. Optical FBG sensors embedded in the central king cable of a seven-wire strand were successfully employed to monitor the changes in tensile force and its distribution along the tendons. Moreover, results from laboratory and in-situ pullout tests were compared with those from equivalent case studies simulated using the finite difference method in the FLAC 3D program. All the results obtained from the two proposed methods were remarkably consistent with respect to the load increments. They were similar not only in trend but also in magnitude and showed more consistency at higher pullout loading stages, especially the final loading stage. Furthermore, the estimated load transfer depth demonstrated a pronounced dependency on the surrounding ground condition, being shorter in hard ground conditions and longer in weaker ones. Finally, considering the safety factor and cost-effective design, the required bonded length of a ground anchor was formulated in terms of the load transfer depth.