• 제목/요약/키워드: Abaqus

검색결과 1,407건 처리시간 0.026초

다양한 두께비와 세장비를 고려한 복합재 원통 구조의 좌굴 Knockdown factor의 도출 (Derivations of Buckling Knockdown Factors for Composite Cylinders Considering Various Shell Thickness Ratios and Slenderness Ratios)

  • 김도영;심창훈;김한일;박재상;유준태;윤영하;이기주
    • 한국항공우주학회지
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    • 제49권4호
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    • pp.321-328
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    • 2021
  • 본 연구에서는 우주 발사체의 복합재 추진제 탱크 구조의 경량 설계를 위하여 좌굴 Knockdown factor를 ABAQUS를 이용한 수치해석 기반으로 새롭게 도출하였다. 복합재 원통 구조의 다양한 두께비(R/t)와 세장비(L/R)를 적절히 고려하였으며, 기하학적 초기 결함을 Single Perturbation Load Approach를 이용하여 구현하였다. 두께비 = 500 및 세장비 = 2.04를 갖는 복합재 원통 구조의 모델의 경우, NASA의 기존 좌굴 설계 기준보다 약 84.38%만큼 좌굴 Knockdown factor가 높게 도출되어 본 연구의 좌굴 설계 기준을 이용할 경우 복합재 추진제 탱크의 경량 구조 설계가 가능함을 확인하였다. 더불어, 복합재 원통 구조의 두께비와 세장비가 각각 증가함에 따라 전역 좌굴 하중과 좌굴 Knockdown factor가 모두 감소하는 경향을 알 수 있었다.

말뚝식 계류시설의 표준설계응답스펙트럼 해석법 적용성 연구 (Study on the Applicability of Standard Design Response Spectrum Analysis Method for Pile-type Mooring Facilities)

  • 오정근;정영석;권민호
    • 한국구조물진단유지관리공학회 논문집
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    • 제24권5호
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    • pp.27-36
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    • 2020
  • 이 논문의 목적은 말뚝식 계류시설에 대해 현행 실무에서 주로 적용하고 있는 응답스펙트럼 해석법에서 표준설계응답스펙럼의 적용성에 대해 연구하는 것이다. 이를 위하여 다양한 지층조건을 고려한 Proshake 1차원 부지응답을 수행하여 현행 표준설계응답스펙트럼과 비교하고, Abaqus를 활용한 지반-말뚝 모델링으로 시간이력해석을 수행하여 지반-말뚝 동적거동 특성을 분석하였으며, 잔교시설이 설치되는 경사지반에 대해 Abaqus를 활용한 2차원 부지응답해석을 수행하여 응답스펙트럼의 기준면 선정방안을 검토하였다. 연구 결과 말뚝식 계류시설의 지반-말뚝 동적거동 특성과 경사지반의 특성을 고려할 경우 현행 표준설계응답스펙트럼의 적용성에 문제가 있으며 개선이 필요하다는 것을 확인하였다.

고성능 수치해석 라이브러리를 적용한 진동해석 프로그램 개발 (Development of the Vibration Analysis Program Applying the High-Performance Numerical Analysis Library)

  • 고도현;부승환
    • 해양환경안전학회지
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    • 제27권1호
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    • pp.201-209
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    • 2021
  • 선박 및 해양구조물과 같은 대형 유한요소모델의 진동 특성을 평가하기 위해 고유치 해석 및 가진 주파수에 따른 응답 계산을 필수적으로 수행해야 한다. 하지만 이러한 해석들은 과도한 전산 장비와 계산 시간이 요구되어 고성능 해석 프로그램의 개발이 필요하다. 특히 선형연립방정식에서 발생하는 역행렬 계산 및 고유치 해석 시에는 상당한 전산 해석 시간이 발생하기 때문에 최신 고성능 라이브러리를 적용함으로써 이를 개선할 수 있다. 본 연구에서는 병렬식 선형연립방정식 계산 라이브러리인 PARDISO와 고성능 고유치 해석 라이브러리인 ARPACK을 적용하여 빠르고 정확한 해석이 가능한 진동해석 프로그램을 개발하였다. 끝으로 개발된 해석 프로그램의 정확도와 효율성을 검증하기 위해 여러 선박해양공학 수치 예제를 사용하였고, 상용 유한요소 프로그램인 ABAQUS와의 결과 비교 검토를 통해 개발된 진동해석 프로그램의 신뢰성을 검증, 제시하였다.

Axial behavior of steel reinforced lightweight aggregate concrete columns: Analytical studies

  • Mostafa, Mostafa M.A.;Wu, Tao;Fu, Bo
    • Steel and Composite Structures
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    • 제38권2호
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    • pp.223-239
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    • 2021
  • This paper presents the analytical modeling and finite element (FE) analysis, using ABAQUS software, of the new types of steel reinforced lightweight aggregate concrete (SRLAC) columns with cross-shaped (+shaped and X-shaped) steel section, using proposed three analytical and two FE models in total. The stress-strain material models for different components in the columns, including the confined zones of the lightweight aggregate concrete (LWAC) using three and four concrete zones divisions approaches and with and without taking into account the stirrups reaction effect, are established first. The analytical models for determining the axial load-deformation behavior of the SRLAC columns are drawn based on the materials models. The analytical and FE models' results are compared with previously reported test results of the axially loaded SRLAC columns. The proposed analytical and FE models accurately predict the axial behavior and capacities of the new types of SRLAC columns with acceptable agreements for the load-displacement curves. The LWAC strength, steel section ratio, and steel section configuration affect the contact stress between the concrete and steel sections. The average ratios of the ultimate test load to the three analytical models and FEA model loads, Put /Pa1, Put /Pa2, Put /Pa3, and Put /PFE1, for the tested specimens are 0.96, 1.004, 1.016, and 1.019, respectively. Finally, the analytical parametric studies are also studied, in terms of the effects of confinement, LWAC strength, steel section ratio, and the reinforcement ratio on the axial capacity of the SRLAC column. When concrete strength, confinements, area of steel sections, or reinforcement bars ratio increased, the axial capacities increased.

Seismic analysis of high-rise steel frame building considering irregularities in plan and elevation

  • Mohammadzadeh, Behzad;Kang, Junsuk
    • Steel and Composite Structures
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    • 제39권1호
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    • pp.65-80
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    • 2021
  • Irregularities of a building in plan and elevation, which results in the change in stiffness on different floors highly affect the seismic performance and resistance of a structure. This study motivated to investigate the seismic responses of high-rise steel-frame buildings of twelve stories with various stiffness irregularities. The building has five spans of 3200 mm distance in both X- and Z-directions in the plan. The design package SAP2000 was adopted for the design of beams and columns and resulted in the profile IPE500 for the beams of all floors and box sections for columns. The column cross-section dimensions vary concerning the number of the story; one to three: 0.50×0.50×0.05m, four to seven: 0.45×0.45×0.05 m, and eight to twelve: 0.40×0.40×0.05 m. Real recorded ground accelerations obtained from the Vrancea earthquake in Romania together with dead and live loads corresponding to each story were considered for the applied load. The model was validated by comparing the results of the current method and literature considering a three-bay steel moment-resisting frame of eight-story height subject to seismic load. To investigate the seismic performance of the buildings, the time-history analysis was performed using ABAQUS. Deformed shapes corresponding to negative and positive peaks were provided followed by the story drifts and fragility curves which were used to examine the probability of collapse of the building. From the results, it was concluded that regular buildings provided a seismic performance much better than irregular buildings. Furthermore, it was observed that building with torsional irregularity was more vulnerable to seismic failure.

Research on the anti-seismic performance of composite precast utility tunnels based on the shaking table test and simulation analysis

  • Yang, Yanmin;Li, Zigen;Li, Yongqing;Xu, Ran;Wang, Yunke
    • Computers and Concrete
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    • 제27권2호
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    • pp.163-173
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    • 2021
  • In this paper, the parameters of haunch height, reinforcement ratio and site condition were evaluated for the influence on the seismic performance of a composite precast fabricated utility tunnel by shaking table test and numerical simulation. The dynamic response laws of acceleration, interlayer displacement and steel strain under unidirectional horizontal seismic excitation were analyzed through four specimens with a similarity ratio of 1:6 in the test. And a numerical model was established and analyzed by the finite element software ABAQUS based on the structure of utility tunnel. The results indicated that composite precast fabricated utility tunnel with the good anti-seismic performance. In a certain range, increasing the height of haunch or the ratio of reinforcement could reduce the influence of seismic wave on the utility tunnel structure, which was beneficial to the structure earthquake resistance. The clay field containing the interlayer of liquefied sandy soil has a certain damping effect on the structure of the utility tunnel, and the displacement response could be reduced by 14.1%. Under the excitation of strong earthquake, the reinforcement strain at the side wall upper end and haunches of the utility tunnel was the biggest, which is the key part of the structure. The experimental results were in good agreement with the fitting results, and the results could provide a reference value for the anti-seismic design and application of composite precast fabricated utility tunnel.

원자로건물의 철근콘크리트 전단벽 비선형 지진응답 평가 (Evaluation of Nonlinear Seismic Response of RC Shear Wall in Nuclear Reactor Containment Building)

  • 김대희;이경구;구지모
    • 한국전산구조공학회논문집
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    • 제34권6호
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    • pp.385-392
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    • 2021
  • 강진 시 원자력발전시설의 비선형 응답이 중요하기 때문에 이 시설의 내진성능에 대한 관심이 증가하였다. 이 연구에서는 원자력 발전소 철근콘크리트 전단벽의 유한요소해석을 위한 재료모델의 적절한 변수를 제시하였다: 최대인장강도, 팽창각, 손상계수. 이를 위해 상용 유한요소 해석프로그램인 ABAQUS를 사용하여 낮은 형상비를 가진 철근콘크리트 전단벽의 비선형 거동과 전단 파괴모드에 대한 이 주요 변수의 효과에 대한 연구를 수행하였다. 연구결과에 기반하여 비선형 시간이력해석을 통해 강진 하의 원자로건물의 비선형 응답을 평가하였다.

사출 성형공정 압력에 따른 PA6/GF 복합재료의 물리적 특성 및 성능 예측 시뮬레이션에 관한 연구 (A Study on the Mechanical Properties and Performance Prediction Simulation of PA6/GF Composite Materials with Injection Molding Pressure)

  • 유성훈;김민성;윤현성;박종수;전성민;심지현
    • 한국염색가공학회지
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    • 제34권1호
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    • pp.46-57
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    • 2022
  • In this study, the relationship between fiber orientation and mechanical properties with the injection pressure of polyamide-6/glass fiber composite materials manufactured by the injection molding process was investigated. Also, an actual experimental data and finite element model-based simulation data were analyzed. Specimens were manufactured through the injection molding process setting the injection pressure differently to 700, 800, 900, and 1000 bar, respectively. A morphological analysis and orientation of the PA6/GF composite material were observed using Optical microscope. Through tensile and flexural strength tests, the mechanical properties of the PA6/GF composite materials with the injection pressure were studied. As a result, it was confirmed that the mechanical properties were the superior under the injection pressure of 900 bar molding conditions. In addition, the mechanical properties of the actually manufactured specimen (PA6/GF) and virtual engineering S/W((Digimat, Abaqus) were used to compare and analyze the analysis results for the mechanical properties, and based on the reliable DB, the physical properties of the PA6/GF composite characteristics were studied.

티타늄 및 PEEK 지대주 소재가 임플란트 유지 수복물 및 주위 지지골 응력 분포에 미치는 영향: 3차원 유한요소해석 (Effects of titanium and PEEK abutments on implant-supported dental prosthesis and stress distribution of surrounding bones: three-dimensional finite element analysis)

  • 홍민호
    • 대한치과기공학회지
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    • 제44권3호
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    • pp.67-75
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    • 2022
  • Purpose: This study aimed to comparatively evaluate the stress distribution of bones surrounding the implant system to which both titanium and polyetheretherketone (PEEK) abutments are applied using a three-dimensional finite element analysis. Methods: The three-dimensional implant system was designed by the computer-aided design program (CATIA; Dassault Systemes). The discretization process for setting nodes and elements was conducted using the HyperMesh program (Altair), after finishing the design of each structure for the customized abutment implant system. The results of the stress analysis were drawn from the Abaqus program (Dassault Systèmes). This study applied 200 N of vertical load and 100 N of oblique load to the occlusal surface of a mandibular first molar. Results: Under external load application, the PEEK-modeled dental implant showed the highest von Mises stress (VMS). The lowest VMS was observed in the Ti-modeled abutment screws. In all groups, the VMS was observed in the crestal regions or necks of implants. Conclusion: The bones surrounding the implant system to which the PEEK abutment was applied, such as the cortical and trabecular bones, showed stress distribution similar to that of the titanium implant system. This finding suggests that the difference in the abutment materials had no effect on the stress distribution of the bones surrounding implants. However, the PEEK abutments require mechanical and physical properties improved for clinical application, and the clinical application is thought to be limited.

Dynamic characteristics of single door electrical cabinet under rocking: Source reconciliation of experimental and numerical findings

  • Jeon, Bub-Gyu;Son, Ho-Young;Eem, Seung-Hyun;Choi, In-Kil;Ju, Bu-Seog
    • Nuclear Engineering and Technology
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    • 제53권7호
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    • pp.2387-2395
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    • 2021
  • Seismic qualifications of electrical equipment, such as cabinet systems, have been emerging as the key area of nuclear power plants in Korea since the 2016 Gyeongju earthquake, including the high-frequency domain. In addition, electrical equipment was sensitive to the high-frequency ground motions during the past earthquake. Therefore, this paper presents the rocking behavior of the electrical cabinet system subjected to Reg. 1.60 and UHS. The high fidelity finite element (FE) model of the cabinet related to the shaking table test data was developed. In particular, the first two global modes of the cabinet from the experimental test were 16 Hz and 24 Hz, respectively. In addition, 30.05 Hz and 37.5 Hz were determined to be the first two local modes in the cabinet. The high fidelity FE model of the cabinet using the ABAQUS platform was extremely reconciled with shaking table tests. As a result, the dynamic properties of the cabinet were sensitive to electrical instruments, such as relays and switchboards, during the shaking table test. In addition, the amplification with respect to the vibration transfer function of the cabinet was observed on the third floor in the cabinet due to localized impact corresponding to the rocking phenomenon of the cabinet under Reg.1.60 and UHS. Overall, the rocking of the cabinet system can be caused by the low-frequency oscillations and higher peak horizontal acceleration.