• 제목/요약/키워드: static loading test

검색결과 602건 처리시간 0.026초

단조 반복하중 하의 탄소섬유시트 보강 RC보의 거동에 관한 연구 (Behavior of RC Beams Strengthened with Carbon Fiber SheetsUnder Repeated Loading)

  • 박정용;김성도;조백순;정진환
    • 한국구조물진단유지관리공학회 논문집
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    • 제10권4호
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    • pp.183-193
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    • 2006
  • 본 연구는 탄소섬유시트로 보강된 철근콘크리트 보에 정적하중과 반복하중이 작용할 때의 거동을 다루고 있다. 탄소섬유시트로 보강된 RC보의 정적실험 결과를 기준으로 반복하중 실험을 수행하였다. 반복하중 실험의 변수는 탄소섬유시트 겹수, 단부 U밴드 유무, 반복하중 재하속도 등이 있다. 실험결과를 통해 단조증가하중과 반복하중 하에서의 에너지 소산량과 휨 강성의 변화, 연성특성, 강도특성, 휨 거동 등을 고찰하며, 또한 탄소섬유시트의 파단변형률을 평가하였다. 본 연구에서는 반복하중 실험 결과를 바탕으로 탄소섬유시트로 보강된 RC보의 정적 및 동적 휨 보강 해석 및 설계에 필요한 기초자료를 제시하고자 한다.

Axial impact behavior of confined concrete filled square steel tubes using fiber reinforced polymer

  • Zhang, Yitian;Shan, Bo;Kang, Thomas H.K.;Xiao, Yan
    • Steel and Composite Structures
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    • 제38권2호
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    • pp.165-176
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    • 2021
  • Existing research on confined concrete filled steel tubular (CCFT) columns has been mainly focused on static or cyclic loading. In this paper, square section CCFT and CFT columns were tested under both static and impact loading, using a 10,000 kN capacity compression test machine and a drop weight testing equipment. Research parameters included bonded and unbonded fiber reinforced polymer (FRP) wraps, with carbon, basalt and glass FRPs (or CFRP, BFRP, and GFRP), respectively. Time history curves for impact force and steel strain observed are discussed in detail. Experimental results show that the failure modes of specimens under impact testing were characterized by local buckling of the steel tube and cracking at the corners, for both CCFT and CFT columns, similar to those under static loading. For both static and impact loading, the FRP wraps could improve the behavior and increase the loading capacity. To analyze the dynamic behavior of the composite columns, a finite element, FE, model was established in LS-DYNA. A simplified method that is compared favorably with test results is also proposed to predict the impact load capacity of square CCFT columns.

KC-100 전기체 정적 구조시험 장치 (KC-100 Full-scale Static Test System)

  • 심재열;이상근;안석민
    • 항공우주기술
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    • 제11권1호
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    • pp.7-18
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    • 2012
  • 국내 최초의 인증용 민수 항공기(KC-100) 개발을 위하여 수행한 전기체 정적구조시험에 대하여 소개하였다. 구체적인 내용으로는 시험요구도, 시험프레임, 주요 시험장치들인 하중 부가장치, 중량보상장치, 시험체 자세구속장치 및 잭킹 장치에 대하여 자세하게 설명하였고 특히 하중작용을 정확하게 부가하기 위하여 시험체의 설치와 하중부가치구의 설치에 대한 합치성을 보이는 과정을 자세하게 소개하였다. 전기체 하중시험 15가지와 국부하중시험 7가지 총 22가지 시험조건에 대하여 성공적으로 시험 수행하였고 시험 데이타들을 확보하였다.

굴착 후 타입된 PHC 말뚝의 재하시험 결과 비교분석 사례 연구 (Case Study of Comparative Analysis between Static and Dynamic Loading Test of PHC Pile)

  • 김재홍;여규권
    • 한국지반환경공학회 논문집
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    • 제14권11호
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    • pp.13-23
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    • 2013
  • 서해안 연약지반에서 굴착 후 시멘트밀크의 주입없이 경타로 시공된 PHC 말뚝에 대하여 동재하시험과 정재하시험을 병행하여 그 상관성을 분석하였다. 초기 동재하시험은 Hydraulic Hammer(Ram Weight 7.0tf)를 사용하여 낙하고 0.8m에서 최종 평균 관입량은 3.0~8.0mm로 측정되었다. 이때 CAPWAP 분석결과에 의한 최종 허용지지력은 776.4~1,053.6kN/본으로 확인되었다. 정재하시험은 동재하시험을 한 동일 말뚝에 실시하는 것이 가장 이상적이나, 현장 여건상 인접의 말뚝에 설계지지력(120.0tf)의 200%인 총 시험하중(2,400.0kN)을 8단계로 나누어 재하시험한 결과, 총침하량은 15.97~16.38mm, 잔류침하량은 4.48~5.38mm로 측정되었으며, 모든 분석법을 적용하여도 항복하중과 극한하중은 확인되지 않았다. 따라서 최대시험하중(240.0tf)을 항복하중으로 간주하여 안전율 2.0으로 나누어 허용지지력을 산정한 결과 허용지지력은 1,200kN/본 이상 되는 것으로 나타났다. 그 결과 정재하시험보다 동재하시험이 1.54~1.1.4배 큰 것으로 나타났다.

H형 복공판과 Channel형 복공판의 구조거동에 관한 연구 (An Experimental Study on the Structure Behavior of H & Channel-Type Lining Board)

  • 이승수;김두환
    • 한국구조물진단유지관리공학회 논문집
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    • 제9권1호
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    • pp.119-126
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    • 2005
  • 본 연구는 H형 및 Channel형 복공판의 정적 하중에 대한 성능을 규명하는데 그 목적이 있다. 보다 향상된 복공판의 성능이 요구되어짐에 따라 보강의 가능성 및 효율성을 파악하였고, 정적재하시험 및 구조해석을 통해 시험체의 개선효과를 비교 검토하였다. 정적재하시험을 통하여 응력과 처짐을 측정하였고, 이를 FEM 해석결과와 비교하였을 때 극한 하중 및 변위, 지간 중앙부와 상 하 플랜지의 휨응력 등에서 H형 복공판은 Channel형 복공판에 비해 약 3배 이상의 높은 강성을 보유하고 있는 것으로 나타났다.

대구경 소켓경사반력말뚝의 인발거동에 관한 연구

  • 최용규;김상옥;정창규;정성기;김상일
    • 한국지반공학회:학술대회논문집
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    • 한국지반공학회 2000년도 가을 학술발표회 논문집
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    • pp.277-284
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    • 2000
  • Using the large diameter (D = 2,500mm, L = 40m) batter steel pipe piles, designed as compression piles but used as reaction piles during the static compression load test of socketed test piles (D = 1,000mm, L = 40m), static pile load tests for large diameter instrumented rock-socketed piles were performed. The reaction steel pipe piles were driven 20m into the marine deposit and weathered rock layer and then l0m socketed with reinforced concrete through the weathered rock layer and into hard rock layer. Steel pipe and concrete in the steel pile part, and concrete and rebars in the socketed parts were instrumented to measure strains in each part. The pullout amounts of reaction pile heads were also measured with LVDT. During the static pile load test, total compressional load of about 20MN was loaded on the head of test piles, but load above 20MN was not loaded due to lack of loading capacity of loading system. Over the course of the study, maximum pullout amount up to 7mm was measured in the heads of reaction piles when loaded op to 10MN and 1mm of pullout amount was measured. More than 85% of pullout load was transfered in the residual weathered rock layer and about 10% in the soft rock layer, which was somewhat different transfer mechanism in the static compressional load tests.

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Material Characteristics of Dental Implant System with In-Vitro Mastication Loading

  • 정태곤;정용훈;이수원;양재웅;정재영;박광민;강관수
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 2018년도 춘계학술대회 논문집
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    • pp.72-72
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    • 2018
  • A dynamic fatigue characteristic of dental implant system has been evaluated with applying single axial compressive shear loading based on the ISO 14801 standard. For the advanced dynamic fatigue test, multi-directional force and motion needed to be accompanied for more information of mechanical properties as based on mastication in oral environment. In this study, we have prepared loading and motion protocol for the multi-directional fatigue test of dental implant system with single (Apical/Occlusal; AO), and additional mastication motion (Lingual/Facial; LF, Mesial/Distal; MD). As following the prepared protocol (with modification of ISO 14801), fatigue test was conducted to verify the worst case results for the development of highly stabilized dental implant system. Mechanical testing was performed using an universal testing machine (MTS Bionix 858, MN, USA) for static compression and single directional loading fatigue, while the multi-directional loading was performed with joint simulator (ADL-Force 5, MA, USA) under load control. Basically, all mechanical test was performed according to the ISO 14801:2016 standard. Static compression test was performed to identify the maximum fracture force with loading speed of 1.0 mm/min. A dynamic fatigue test was performed with 40 % value of maximum fracture force and 5 Hz loading frequency. A single directional fatigue test was performed with only apical/occlusal (AO) force application, while multi directional fatigue tests were applied $2^{\circ}$ of facial/lingual (FL) or mesial/distal (MD) movement. Fatigue failure cycles were entirely different between applying single-directional loading and multi-directional loading. As a comparison of these loading factor, the failure cycle was around 5 times lower than single-directional loading while applied multi-directional loading. Also, the displacement change with accumulated multi-directional fatigue cycles was higher than that of single directional cycles.

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원심모형 실험을 이용한 지반-말뚝 상호작용의 정적 및 동적 거동 평가 (Comparison of Lateral Pile Behavior under Static and Dynamic Loading by Centrifuge Tests)

  • 유민택;권선용
    • 한국지반공학회논문집
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    • 제34권7호
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    • pp.51-58
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    • 2018
  • 본 연구에서는 하중 조건에 따른 지반-말뚝 상호작용 시스템의 거동 차이를 분석하기 위해 일련의 원심모형 실험을 수행하였다. 정적 하중 조건의 경우, 말뚝 직경의 50% 수준까지 변위제어를 통해 하중을 재하하였으며, 지진 하중 조건의 경우 0.1g~0.4g 수준으로 1Hz 정현파를 가진하였다. 실험 결과로부터 얻은 정적 및 동적 p-y 곡선을 API p-y 곡선과 비교한 결과, API p-y 곡선과 정적 하중조건에서의 실험 p-y 곡선은 최대 지반반력 값이 20% 이내의 오차를 보인 반면, 동적 하중 조건에서의 실험 p-y 곡선과는 최대 지반반력 값이 5배 이상 차이가 발생하였다. 이는 등가정적 해석에서 기존 API p-y 곡선을 적용할 경우 비선형 영역에서 지반 반력을 크게 과소평가하며 보수적 설계를 야기할 수 있음을 의미한다.

A large-scale test of reinforced soil railway embankment with soilbag facing under dynamic loading

  • Liu, Huabei;Yang, Guangqing;Wang, He;Xiong, Baolin
    • Geomechanics and Engineering
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    • 제12권4호
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    • pp.579-593
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    • 2017
  • Geosynthetic reinforced soil retaining walls can be employed as railway embankments to carry large static and dynamic train loads, but very few studies can be found in the literature that investigate their dynamic behavior under simulated wheel loading. A large-scale dynamic test on a reinforced soil railway embankment was therefore carried out. The model embankment was 1.65 meter high and designed to have a soilbag facing. It was reinforced with HDPE geogrid layers at a vertical spacing of 0.3 m and a length of 2 m. The dynamic test consisted of 1.2 million cycles of harmonic dynamic loading with three different load levels and four different exciting frequencies. Before the dynamic loading test, a static test was also carried out to understand the general behavior of the embankment behavior. The study indicated the importance of loading frequency on the dynamic response of reinforced soil railway embankment. It also showed that toe resistance played a significant role in the dynamic behavior of the embankment. Some limitations of the test were also discussed.

Numerical investigation of RC structural walls subjected to cyclic loading

  • Cotsovos, D.M.;Pavlovic, M.N.
    • Computers and Concrete
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    • 제2권3호
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    • pp.215-238
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    • 2005
  • This work is based on a nonlinear finite-element model with proven capacity for yielding realistic predictions of the response of reinforced-concrete structures under static monotonically-increasing loading. In it, the material description relies essentially on the two key properties of triaxiality and brittleness and, thus, is simpler than those of most other material models in use. In this article, the finite-element program is successfully used in investigating the behaviour of a series of RC walls under static cyclic loading. This type of loading offers a more strenuous test of the validity of the proposed program since cracks continuously form and close during each load cycle. Such a test is considered to be essential before attempting to use the program for the analysis of concrete structures under seismic excitation in order to ensure that the solution procedure adopted is numerically stable and can accurately predict the behaviour of RC structures under such earthquake-loading conditions. This is achieved through a comparative study between the numerical predictions obtained presently from the program and available experimental data.