• 제목/요약/키워드: Ultimate strength analysis

검색결과 723건 처리시간 0.025초

선박해양구조물의 최종강도 해석용 프로그램 ALPS 적용사례 (ALPS Ultimate limit state assessment of ships and offshore structure)

  • 서정관;백점기
    • 한국전산구조공학회:학술대회논문집
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    • 한국전산구조공학회 2005년도 춘계 학술발표회 논문집
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    • pp.28-35
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    • 2005
  • It is now well recognized that the ultimate limit state approach is a much better basis for design and strength assessment of ships and offshore structures since it is difficult to determine the realistic margin of safety using the traditional allowable working stress approach on the basis of linear elastic method solutions together with buckling strengthchecks adjusted by a simple plasticity correction. This paper outlines ALPS theory for ultimate limit state assessment of ship structures. ALPS is a computer software which stands for nonlinear Analysis of Large Plated Structures. Application examples of ALPS program to ultimate limit state assessment of plates, stiffened panels and ship hull girders are presented. A benchmark study is made by a comparison with the ALPS solutions with other methods including class rule formulae, nonlinear finite element methods and experimental results. Future trends on ultimate limit state assessment of ship structures are addresse[1]

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기둥-슬래브 접합부의 구조거동에 관한 수치해석 (Numerical Analysis on Structural Behavior of Column-Slab Connection)

  • 이주하;임광모;이병수
    • 콘크리트학회논문집
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    • 제29권1호
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    • pp.77-84
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    • 2017
  • 본 연구에서는 고강도 콘크리트 기둥-일반강도 콘크리트 슬래브 접합부의 구속도, 형상비 (h/c), 강도비 ($f^{\prime}_{cc}/f_{cs}$)에 따른 구조거동 분석하였다. 유한요소해석 프로그램을 통해 해석적 연구가 수행되었으며, 해석 방법의 검증을 위하여 기존의 구조 실험과 동일한 조건의 해석 부재를 제작하여 결과를 비교하였다. 부재의 종류는 내부기둥, 외부기둥, 모서리기둥, 독립기둥으로 분류하였으며 내부기둥에서 가장 높은 극한강도를 보였다. 또한 형상비가 증가할수록 접합부에 작용하는 축방향 응력이 작게 나타났으며 강도비가 증가할수록 부재의 극한강도가 상승하였으나 1.83이후로는 뚜렷한 강도 증진을 나타내지 않았다.

탄소성 모델에 의한 포물선 아치의 극한 내하력 평가 (The Ultimate Load Capacity of the Parabolic Arches by Elasto-Plastic Model)

  • 조진구;박근수
    • 한국농공학회지
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    • 제44권3호
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    • pp.92-100
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    • 2002
  • The advent or high-strength steel has enabled the arch structures to be relatively light, durable and long-spanned by reducing the cross sectional area. On the other hand, the possibility of collapse may be increased due to the slender members which may cause the stability problems. The limit analysis to estimate the ultimate load is based on the concept of collapse mechanism that forms the plastic zone through the full transverse sections. So, it is not appropriate to apply it directly to the instability analysis of arch structures that are composed with compressive members. The objective of this study is to evaluate the ultimate load carrying capacity of the parabolic arch by using the elasto-plastic finite element model. As the rise to span ratio (h/L) varies from 0.0 to 0.5 with the increment of 0.05, the ultimate load has been calculated fur arch structures subjected to uniformly distributed vertical loads. Also, the disco-elasto-plastic analysis has been carried out to find the duration time until the behavior of arch begins to show the stable state when the estimated ultimate load is applied. It may be noted that the maximum ultimate lead of the parabolic arch occurs at h/L=0.2, and the appropriate ratio can be recommended between 0.2 and 0.3. Moreover, it is shown that the circular arch may be more suitable when the h/L ratio is less than 0.2, however, the parabolic arch can be suggested when the h/L ratio is greater than 0.3. The ultimate load carrying capacity of parabolic arch can be estimated by the well-known formula of kEI/L$^3$where the values of k have been reported in this study. In addition, there is no general tendency to obtain the duration time of arch structures subjected to the ultimate load in order to reach the steady state. Merely, it is observed that the duration time is the shortest when the h/L ratio is 0.1, and the longest when the h/L ratio is 0.2.

A nonlinear model for ultimate analysis and design of reinforced concrete structures

  • Morfidis, Konstantinos;Kiousis, Panos D.;Xenidis, Hariton
    • Computers and Concrete
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    • 제14권6호
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    • pp.695-710
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    • 2014
  • This paper presents a theoretical and computational approach to solve inelastic structures subjected to overloads. Current practice in structural design is based on elastic analysis followed by limit strength design. Whereas this approach typically results in safe strength design, it does not always guarantee satisfactory performance at the service level because the internal stiffness distribution of the structure changes from the service to the ultimate strength state. A significant variation of relative stiffnesses between the two states may result in unwanted cracking at the service level with expensive repairs, while, under certain circumstances, early failure may occur due to unexpected internal moment reversals. To address these concerns, a new inelastic model is presented here that is based on the nonlinear material response and the interaction relation between axial forces and bending moments of a beam-column element. The model is simple, reasonably accurate, and computationally efficient. It is easy to implement in standard structural analysis codes, and avoids the complexities of expensive alternative analyses based on 2D and 3D finite-element computations using solid elements.

조합하중을 받는 선체판부재의 최종강도거동 해석 (Ultimate Strength Behavior Analysis on the Ship's Plate under Combined Load(Lateral Pressure Load and Axial Compressive Load))

  • 박주신;고재용;이준교;배동균
    • 해양환경안전학회:학술대회논문집
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    • 해양환경안전학회 2005년도 춘계학술발표회
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    • pp.147-154
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    • 2005
  • 선체를 구성하는 판부재는 일반적으로 면내하중과 횡하중의 조합하중이 작용하게 된다 면내하중으로서는 주로 전체적인 선체거더의 휨과 비틀림에 의한 압축하중 및 전단하중이 있다. 횡하중은 수압과 화물압력에 의해서 작용하게 된다. 이러한 하중의 요소들은 항상 동시에 작용하는 것이 아니지만 한 개 이상의 하중이 존재하고 상호작용하게 된다. 그러므로, 좀더 합리적이고 안정적인 선박구조의 설계를 위해서는 이러한 조합하중이 선체판에 작용할 경우에 발생하게 되는 좌굴 및 최종강도거동의 상호관계를 좀더 자세히 분석할 필요가 있다. 실제로 선체판은 슬래밍과 팬팅과 같은 충격하중을 제외하고는 상대적으로 적은 수압이 작용하게 된다. 본 연구논문에서는 조합하중을 받는 선체판부재의 거동에 있어서 최종한계상태설계법에 기반을 둔 탄소성대변형 유한요소해석을 수행하였다. 본 연구에서는 압축하중과 횡하중이 판부재에 작용하였을 경우 횡하중의 크기에 따른 영향을 탄소성대변형 유한요소해석(ANSYS)을 수행하여 분석하였다.

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Behavior of hybrid concrete beams with waste rubber

  • Al-Azzawi, Adel A.;Saad, Noora;Shakir, Dalia
    • Computers and Concrete
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    • 제23권4호
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    • pp.245-253
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    • 2019
  • The studies on the applications of waste materials in concrete have been increased in Iraq since 2003. In this research, rubber wastes that resulting from scrapped tires was added to concrete mix with presence of superplasticizer. The mechanical properties of concrete and workability of concrete mixes were studied. The used rubber were ranging in size from (2-4) mm with addition percentages of (0.1% and 0.2%) by volume of concrete. The results of mechanical properties of concrete show that rubber enhance the ductility, and compressive and tensile strength compared to concrete without it. Also, the flexural behavior of hybrid strength concrete beams (due to using rubber at the bottom or top layer of section) was investigated. The rubber concrete located at bottom layer gives higher values of ultimate loads and deflections compared to the beam with top layer. A similar response to fiber concrete beam (all section contains 0.1% rubber) was recognized. Finite element modeling in three dimensions was carried for the tested beams using ABAQUS software. The ultimate loads and deflection obtained from experimental and finite elements are in good agreements with average difference of 8% in ultimate load and 20% in ultimate deflection.

Cost-based optimization of shear capacity in fiber reinforced concrete beams using machine learning

  • Nassif, Nadia;Al-Sadoon, Zaid A.;Hamad, Khaled;Altoubat, Salah
    • Structural Engineering and Mechanics
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    • 제83권5호
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    • pp.671-680
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    • 2022
  • The shear capacity of beams is an essential parameter in designing beams carrying shear loads. Precise estimation of the ultimate shear capacity typically requires comprehensive calculation methods. For steel fiber reinforced concrete (SFRC) beams, traditional design methods may not accurately predict the interaction between different parameters affecting ultimate shear capacity. In this study, artificial neural network (ANN) modeling was utilized to predict the ultimate shear capacity of SFRC beams using ten input parameters. The results demonstrated that the ANN with 30 neurons had the best performance based on the values of root mean square error (RMSE) and coefficient of determination (R2) compared to other ANN models with different neurons. Analysis of the ANN model has shown that the clear shear span to depth ratio significantly affects the predicted ultimate shear capacity, followed by the reinforcement steel tensile strength and steel fiber tensile strength. Moreover, a Genetic Algorithm (GA) was used to optimize the ANN model's input parameters, resulting in the least cost for the SFRC beams. Results have shown that SFRC beams' cost increased with the clear span to depth ratio. Increasing the clear span to depth ratio has increased the depth, height, steel, and fiber ratio needed to support the SFRC beams against shear failures. This study approach is considered among the earliest in the field of SFRC.

각형강관 트러스의 N형 접합부의 거동 (Behavior of N-joints using Square Hollow Sections in Truss)

  • 이상호;이상섭;배규웅;문태섭
    • 한국강구조학회 논문집
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    • 제11권3호통권40호
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    • pp.251-258
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    • 1999
  • 본 연구는 각형강관을 이용한 프랫트러스의 N형 접합부의 거동을 연구하는 것으로 접합부를 보강하지 않고 접합형상만을 변화시켜 접합부의 구조적 특성을 향상시키는데 그 목적이 있다. 주요변수는 주관에 대한 지관의 폭비, 압축지관과 인장지관 사이의 갭 크기비와 편심비 등이며, 지관회전 여부에 따라 분류, 정방형(NSE계열)과 지관 $45^{\circ}$ 회전형(NPE계열)에 대한 각종 변수별 내력과 변형성상을 실험을 통해 규명하였으며, 지관을 $45^{\circ}$ 회전할 경우 최대내력 및 변형성상이 재선됨을 밝혀내었다. 또한, 실험결과로부터 각 계열별 평균극한강도식을 도출하였으며, NSE계열의 경우 현행 유럽의 규준식을 국내 실정에 맞도록 수정, 제안하였고, NPE계열은 편심비의 영향을 고려할 수 있는 실험식을 제안하였다.

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점진적 소성화를 고려한 공간 강뼈대구조의 극한강도해석 (Ultimate Strength Analysis of Space Steel Frames Considering Spread of Plasticity)

  • 김성보;한재영;박순철;김문영
    • 한국강구조학회 논문집
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    • 제15권3호
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    • pp.299-311
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    • 2003
  • 점진적 소성화를 고려한 공간뼈대구조의 극한강도를 평가하기 위한 비선형 유한요소 해석법을 제시한다. 유한한 회전각의 2차항 까지 고려된 개선된 변위장을 도입하여 결과적으로 축력뿐만 아니라 휨모멘트 그리고 비틂모멘트에 의한 비선형 효과를 모두 고려한다. 탄-소성 해석을 위하여 소성힌지 개념을 도입하고 비선형 해석방법으로 하중 및 변위증분법을 이용한다. 잔류응력 분포에 의거한 초기항복함수를 정의하고 축력뿐만 아니라 모멘트의 함수로 표현되는 소성영역함수를 사용하여 flow rule과 normality condition을 적용하여 탄-소성 강도매트릭스를 도출한다. 계산시간이 빠른 기존의 소성힌지 해석기법을 사용하는 동시에 소성영역의 진전효과를 효율적으로 나타내었다. 요소의 소성화 진행정도를 나타내는 파라미터를 도입하고 여러 가지 강도감소모델을 사용하여 극한해석을 수행하여 그 결과를 소성영역해석, 쉘요소를 이용한 정밀해석 그리고 실험결과와 비교하였다.

철근콘크리트 보의 휨압축강도 및 변형률에 대한 크기효과 (Size Effect on Flexural Stress-Strain Relationship of Reinforced-Concrete Beams)

  • 김민수;김진근;김장호
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2002년도 봄 학술발표회 논문집
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    • pp.911-916
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    • 2002
  • It is important to consider the effect of depth when estimating the ultimate strength of a concrete flexural member because the strength always decreases with an increase of member size. In this study, the size effect of reinforced concrete beam was experimentally investigated. For this purpose, a series of beam specimens subjected to 2-point bending load were tested. More specifically, three different depth (d=15, 30, and 60 cm) of reinforced concrete beams were tested to investigate the size effect. The shear-span to depth ratio (a/d=3) and thickness (20 cm) of the specimens were kept constant where the size effect in out-of-plan direction is not considered. The test results are fitted using least square method (LSM) to obtain parameters for modified size effect law (MSEL). The analysis results indicate that the flexural compression strength and ultimate strain decreases as the specimen size increases. Finally, more general parameters for MSEL are suggested.

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