• 제목/요약/키워드: Bending-under-tension

검색결과 143건 처리시간 0.034초

선각거더의 최종강도 간이계산식 (A Simple Formula for Ultimate Strength Prediction of Hull Girders)

  • 백점기
    • 대한조선학회논문집
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    • 제32권3호
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    • pp.83-97
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    • 1995
  • 본 논문의 목적은 종굽힘모멘트를 받는 선각거더의 최종강도를 계산하는 간이식을 도출하는 것이다. 먼저 기 제안된바 있는 계산식들을 조사 분석하였으며, 지금까지의 계산식 도출방법을 크게 해석적 방법, 경험적 방법 및 선형근사법의 3종류로 분류하였다. 선각거더는 종굽힘모멘트의 증가와 함께 압축플랜지의 붕괴와 인장플랜지의 항복에 의해 전체적으로 최종강도에 도달한다고 알려져 있다. 이때 선측부도 압축플랜지 부근에서는 붕괴하며, 인장플랜지 부근에서는 항복상태에 도달해 있는 경우가 많다. 그러나, 중립축부근에서는 여전히 탄성상태에 남아있는 것이 보통이다. 이같은 사실을 근거로 선각 횡단면에 걸쳐 적절한 응력분포를 가정하였으며, 이것으로부터 최종강도 계산식을 해석적인 방법으로 도출하였다. 본 계산식의 정도는 기존의 모형실험 및 수치해석결과와 비교하여 검증하였다.

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파랑 및 부유체 운동을 고려한 세장해양구조물의 동적 거동 해석 (Dynamic Response Analysis of Slender Marine Structures under Vessel Motion and Regular Waves)

  • Chung Son Ryu;Michael Isaacson
    • 한국해안해양공학회지
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    • 제10권2호
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    • pp.64-72
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    • 1998
  • 해저자원개발에 사용되는 riser나 TLP의 인장각과 같은 세장해양구조물의 파랑 및 상단부유체의 운동에 대한 동적거동해석을 수행하였다. 구조부재의 유한요소모델을 사용한 수치해석기법을 개발하고 규칙파에 대한 시간영역해석을 수행하였다. 본 연구는 상단부유체의 수평 및 수직운동이 구조물의 횡방향거동에 미치는 영향을 분석하였으며, 특히 부유체 수직운동의 영향을 주로하여 패러미터연구를 수행하였다. 수심, 파랑조건 그리고 부유체운동 등 여러경우에 대한 구조물의 변의, 휨응력을 비교검토하였고, 이 해석을 통하여 부유체의 수직운동에 의한 시간변화 인장력으로 야기되는 불안정조건을 검토하였다. 예제해석결과, 부유체의 수평 및 수직운동의 상호작용으로 riser의 동적응답이 증폭되었다. TLP 인장각의 경우 부유체의 수직운동효과가 구조물의 거동에 상당히 크게 작용하는 것으로 나타났다.

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KSLV-1 킥모터지지부 콘 구조물 구조 해석 (Structural analysis of Kick Motor support cone structure)

  • 안재모;김광수;장영순;이영무
    • 항공우주기술
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    • 제5권2호
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    • pp.159-165
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    • 2006
  • 본 연구에서는 KSLV-1 2단 킥모터를 지지하는 구조물인 킥모터지지부의 콘 구조물에 대한 구조 해석을 수행하였다. 킥모터지지부는 큰 구조물외에 트러스 구조물로 구성되어있으며, 킥모터로부터 발생하는 하중은 콘 구조물이 지지하게 된다. 킥모터로부터 발생하는 하중은 1단 추력 시 관성으로 인해 발생하는 인장 하중과 2단 킥모터 추력 시 발생하는 압축 하중이며 비행 자세에 따른 전단 하중과 굽힘 하중이 있다. 본 연구에서는 콘구조물에 부가될 수 있는 여러 가지 하중 조건에 대하여 해석을 수행하였으며, 압력 배출에 유무에 따른 구조 해석도 수행하였다. 등가 하중 기준으로 킥모터 추력으로 발생되는 등가 압축 하중보다 관성으로 인해 발생하는 등가 인장 하중이 더욱 크고 구조 해석 결과 역시 안전 여유 계수가 작게 나왔다.

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Mechanical properties of pervious concrete with recycled aggregate

  • Zhu, Xiangyi;Chen, Xudong;Shen, Nan;Tian, Huaxuan;Fan, Xiangqian;Lu, Jun
    • Computers and Concrete
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    • 제21권6호
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    • pp.623-635
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    • 2018
  • In order to research the influence of different recycled aggregate contents on the mechanical properties of pervious concrete, the experimental study and numerical simulation analysis of the mechanical properties of pervious concrete with five kinds of recycled aggregates contents (0%, 25%, 50%, 75% and 100%) are carried out in this paper. The experimental test were first performed on concrete specimens of different sizes in order to determine the influence of recycled aggregate on the compressive strength and splitting tensile strength, direct tension strength and bending strength. Then, the development of the internal cracks of pervious concrete under different working conditions is studied more intuitively by $PFC^{3D}$. The experimental results show that the concrete compressive strength, tensile strength and bending strength decrease with the increase of the recycled aggregate contents. This trend of reduction is not only related to the brittleness of recycled aggregate concrete, but also to the weak viscosity of recycled aggregate and cement paste. It is found that the fracture surface of pervious concrete with recycled aggregate is smoother than that of natural aggregate pervious concrete by $PFC^{3D}$, which means that the bridging effect is weakened in the stress transfer between the left and right sides of the crack. Through the analysis of the development of the internal cracks, the recycled aggregate concrete generated more cracks than the natural aggregate concrete, which means that the recycled aggregate concrete is easier to form a coalescence fracture surface and eventually break.

A new method of predicting hotspot stresses for longitudinal attachments with reduced element sensitivities

  • Li, Chun Bao;Choung, Joonmo
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제13권1호
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    • pp.379-395
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    • 2021
  • For the complicated structural details in ships and offshore structures, the traditional hotspot stress approaches are known to be sensitive to the element variables of element topologies, sizes, and integration schemes. This motivated to develop a new approach for predicting reasonable hotspot stresses, which is less sensitive to the element variables and easy to be implemented the real marine structures. The three-point bending tests were conducted for the longitudinal attachments with the round and rectangular weld toes. The tests were reproduced in the numerical simulations using the solid and shell element models, and the simulation technique was validated by comparing the experimental stresses with the simulated ones. This paper considered three hotspot stress approaches: the ESM method based on surface stress extrapolation, the Dong's method based on nodal forces along a weld toe, and the proposed method based on nodal forces perpendicular to an imaginary vertical plane at a weld toe. In order to study the element sensitivities of each method, 16 solid element models and 8 shell element models were generated under the bending and tension loads, respectively. The element sensitivity was analyzed in terms of Stress Concentration Factors (SCFs) in viewpoints of two statistical quantities of mean and bias with respect to the reference SCFs. The average SCFs predicted by the proposed method were remarkably in good agreement with the reference SCFs based on the experiments and the ship rules. Negligibly small Coefficients of Variation (CVs) of the SCFs, which is measure of statistical bias, were drawn by the proposed method.

FRP 보강근을 사용한 콘크리트 휨부재의 정적 및 피로특성에 대한 실험적 연구 (An Experimental Study for Flexural Characteristic of Concrete Beam Reinforced with FRP Rebar under Static and Fatigue)

  • 심종성;박성재;강태성;권동욱;이기홍
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2008년도 춘계 학술발표회 제20권1호
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    • pp.313-316
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    • 2008
  • 철근 콘크리트 구조물의 철근 부식은 구조물의 성능 저하의 주요한 원인 중 하나이다. 철근 부식은 구조물의 수명을 단축시켜 막대한 유지 관리 비용을 요구하게 된다. 또한 이러한 철근의 부식은 주기적인 반복하중을 받는 교량이나 도로와 같은 구조물들의 구조적 성능저하를 가중시키는 요인이 되고 있다. 이러한 이유들로 인해 철근을 대체할 수 있는 FRP 보강근의 사용에 대한 관심이 증가하고 있다. 그러나 국내외적으로 FRP 보강근의 피로시험에 대한 연구는 전무한 실정이다. 이에 본 연구에서는 국내외로 상용화된 FRP(GFRP, CFRP) 보강근의 실제 구조물에 대한 적용가능성을 고찰하기위해 휨 보강시험체의 인장부 보강근으로 사용하여 정적 및 피로 성능을 검증하고자 한다. 본 연구에서 사용된 시험체는 ACI 440.1R-06으로 설계되었으며, CFRP 보강근으로 보강된 시험체(CR)와 GFRP 보강근으로 보강된 시험체(GR)는 과보강 단면으로 설계되었다. 정적 휨 실험을 수행한 결과, CR 시험체와 GR 시험체 모두 콘크리트 보의 상단 압축부가 파괴되는 것을 확인할 수 있었다. 피로 실험시 피로응력수준은 정적 휨 강도의 60%, 70%, 80%로 하여 실험을 수행하였다. 대부분의 시험체가 압축 파괴 양상을 보였지만 CR-60과 CR-70 시험체는 인장부 보강근의 파단으로 인한 파괴를 확인할 수 있었다. 피로 실험결과를 바탕으로 회귀분석을 통해 S-N 상관도를 적용하여 S-N 관계식을 얻을 수 있었다.

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인장드로잉법에 의한 원통성형에 관한 실험적 연구 (A Experimental Study of Cup forming by Stretch-Drawing Process)

  • 김영수
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2000년도 춘계학술대회논문집
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    • pp.123-128
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    • 2000
  • Fundamental and informative data of axi-symmetric stretch-drawing of several sheetmetals with thicknesses of 0.7-1.0mm are presented both for single and double operations. Very small radius is applied to the die profile (or-shoulder) ion all operations. to induce wall-thinning by the effect of bending-under-tension from which the name 'stretch-drawing' comes. It is clearly demonstrated that deeper cups could be formed by single and double stretch-drawings from smaller circular blanks due to such wall-thinning action than in the usual deep-drawing of larger blanks, From this fact it is emphasized that the deep-drawability of a sheet metal is not evaluated simply by the conventional L.D.R (limiting drawing ratio) but the depth of the drawn cup should also be taken into account./ Many experimental data about various metals and thicknesses given in this paper offer a valuable information in this process for more general use which recommends to replace the conventional deep-drawing process by the stretch-drawing process both for single and double operations. In the single stretch-drawing it is also confirmed that a deeper cup can be produced by raising the blank-holding force at later stage of operation.

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Applications of fiber optic sensors for structural health monitoring

  • Kesavan, K.;Ravisankar, K.;Parivallal, S.;Sreeshylam, P.
    • Smart Structures and Systems
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    • 제1권4호
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    • pp.355-368
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    • 2005
  • Large and complex structures are being built now-a-days and, they are required to be functional even under extreme loading and environmental conditions. In order to meet the safety and maintenance demands, there is a need to build sensors integrated structural system, which can sense and provide necessary information about the structural response to complex loading and environment. Sophisticated tools have been developed for the design and construction of civil engineering structures. However, very little has been accomplished in the area of monitoring and rehabilitation. The employment of appropriate sensor is therefore crucial, and efforts must be directed towards non-destructive testing techniques that remain functional throughout the life of the structure. Fiber optic sensors are emerging as a superior non-destructive tool for evaluating the health of civil engineering structures. Flexibility, small in size and corrosion resistance of optical fibers allow them to be directly embedded in concrete structures. The inherent advantages of fiber optic sensors over conventional sensors include high resolution, ability to work in difficult environment, immunity from electromagnetic interference, large band width of signal, low noise and high sensitivity. This paper brings out the potential and current status of technology of fiber optic sensors for civil engineering applications. The importance of employing fiber optic sensors for health monitoring of civil engineering structures has been highlighted. Details of laboratory studies carried out on fiber optic strain sensors to assess their suitability for civil engineering applications are also covered.

Seismic performance of a 10-story RC box-type wall building structure

  • Hwang, Kyung Ran;Lee, Han Seon
    • Earthquakes and Structures
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    • 제9권6호
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    • pp.1193-1219
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    • 2015
  • The purpose of this study is to evaluate the seismic performance of high-rise reinforced concrete (RC) box-type wall structures commonly used for most residential buildings in Korea. For this purpose, an analytical model was calibrated with the results of the earthquake simulation tests on a 1:5 scale 10-story distorted model. This calibrated model was then transformed to a true model. The performance of the true model in terms of the stiffness, strength, and damage distribution through inelastic energy dissipation was observed with reference to the earthquake simulation test results. The model showed high overstrength factors ranging from 3 to 4. The existence of slab in this box-type wall system changed the main resistance mode in the wall from bending moment to tension/compression coupled moment through membrane actions, and increased the overall resistance capacity by about 25~35%, in comparison with the common design practice of neglecting the slab's existence. The flexibility of foundation, which is also commonly neglected in the engineering design, contributes to 30~50% of the roof drift in the stiff direction containing many walls. The possibility of concrete spalling and reinforcement buckling and fracture under the maximum considered earthquake (MCE) in Korea appears to be very low when compared with the case of the 2010 Concepcion, Chile earthquake.

304 스테인리스 박강판 IB형 점용접이음재의 피로강도 평가 Part 1 : 최대 주응력에 의한 평가 (Fatigue Strength Evaluation on the IB-Type Spot-welded Lap Joint of 304 Stainless Steel Part 1 : Maximum Principal Stress)

  • 손일선;오세빈;배동호
    • Journal of Welding and Joining
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    • 제17권6호
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    • pp.25-31
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    • 1999
  • Stainless steel sheets are commonly used for vehicles such as the bus and the train. These are mainly fabricated by spot-welding. By the way, its fatigue strength is lower than base metal due to high stress concentration at the nugget. edge of the spot-welding. By the way, its fatigue strength is lower than base metal due to high stress concentration at the nugget edge of the spot-welding point. Especially, it is influenced by welding conditions as well as geometrical factors of spot welded joint. Therefore, it is not too much to say that structural rigidity and strength of spot-welded structures is decided by fatigue strength of spot welded lap joint. Thus, it is necessary to establish a reasonable and systematic long life design criterion for the spot-welded structure. In this study, numerical stress analysis was performed by using 3-dimensional finite element model on IB-type spot-welded lap joint of 304 stainless steel sheet under tension-shear load. Fatigue tests were also conducted on them having various thickness, joint angle, lapped length, and width of the plate. From the results, it was found that fatigue strength of IB-type spot-welded lap joints was influenced by its geometrical factors, however, could be systematically rearranged by maximum principal stress ({TEX}$σ_{1max}${/TEX}) at the nugget edge of the spot-welding point.

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