http://chineseinput.net/에서 pinyin(병음)방식으로 중국어를 변환할 수 있습니다.
변환된 중국어를 복사하여 사용하시면 됩니다.
Numerical Evaluation of Fundamental Finite Element Models in Bar and Beam Structures
류용희,주부석,정우영,Ryu, Yong-Hee,Ju, Bu-Seog,Jung, Woo-Young,Limkatanyu, Suchart Korean Society for Advanced Composite Structures 2013 복합신소재학회논문집 Vol.4 No.1
The finite element analysis (FEA) is a numerical technique to find solutions of field problems. A field problem is approximated by differential equations or integral expressions. In a finite element, the field quantity is allowed to have a simple spatial variation in terms of linear or polynomial functions. This paper represents a review and an accuracy-study of the finite element method comparing the FEA results with the exact solution. The exact solutions were calculated by solid mechanics and FEA using matrix stiffness method. For this study, simple bar and cantilever models were considered to evaluate four types of basic elements - constant strain triangle (CST), linear strain triangle (LST), bi-linear-rectangle(Q4),and quadratic-rectangle(Q8). The bar model was subjected to uniaxial loading whereas in case of the cantilever model moment loading was used. In the uniaxial loading case, all basic element results of the displacement and stress in x-direction agreed well with the exact solutions. In the moment loading case, the displacement in y-direction using LST and Q8 elements were acceptable compared to the exact solution, but CST and Q4 elements had to be improved by the mesh refinement.
전준태,주부석,손호영,Jeon, Juntai,Ju, Bu-Seog,Son, Hoyoung 한국재난정보학회 2020 한국재난정보학회 논문집 Vol.16 No.4
연구목적: I-Shape 거더를 갖는 곡선교량의 지진 안전성에 미치는 고주파 지진의 영향성을 분석하기 위해 지진 취약도 평가를 수행하였다. 연구방법: I-Shape 단면을 갖는 곡선교량의 선형탄성 유한요소 모델을 구축하고 고주파 영역의 인공지진파를 12개 생성하여 시간이력해석 및 지진 취약도 평가를 수행하였다. 연구결과:변위응답(LS1, LS2)에 대한 한계상태는 0.1g를 넘어서면서 파괴가 발생하였으며 거더의 응력응답 한계상태의 경우 0.2g를 넘어서면서 정해진 한계상태를 초과하는 것으로 나타났다. 결론: 현재 구축된 곡선교량 모델의 경우 고주파 지진에 민감하게 반응하는 것으로 판단된다. Purpose: This is aimed to evaluate the seismic fragility of curved bridge structure with I-shape girder subjected to 12 high frequency ground motions based on Gyeongju earthquake. Method: The linear elastic finite element model of curved bridge with I-Shape cross section was constructed and them linear elastic time history analyses were performed using the 12 artificial ground motions. Result: It was found that displacement response(LS1, LS2) was failed after PGA 0.1g and the stress response also showed failure after PGA 0.2g. Conclusion: The curved bridge with I-shape girder was sensitive to high frequency earthquakes.
Bar와 Beam 구조물의 기본적인 유한요소 모델의 수치해석
류용희 ( Yong Hee Ryu ),주부석 ( Bu Seog Ju ),정우영 ( Woo Young Jung ),( Suchart Limkatanyu ) 한국복합신소재구조학회 2013 복합신소재구조학회논문집 Vol.4 No.1
The finite element analysis (FEA) is a numerical technique to find solutions of field problems. A field problem is approximated by differential equations or integral expressions. In a finite element, the field quantity is allowed to have a simple spatial variation in terms of linear or polynomial functions. This paper represents a review and an accuracy-study of the finite element method comparing the FEA results with the exact solution. The exact solutions were calculated by solid mechanics and FEA using matrix stiffness method. For this study, simple bar and cantilever models were considered to evaluate four types of basic elements - constant strain triangle (CST), linear strain triangle (LST), bi-linear-rectangle(Q4),and quadratic-rectangle(Q8). The bar model was subjected to uniaxial loading whereas in case of the cantilever model moment loading was used. In the uniaxial loading case, all basic element results of the displacement and stress in x-direction agreed well with the exact solutions. In the moment loading case, the displacement in y-direction using LST and Q8 elements were acceptable compared to the exact solution, but CST and Q4 elements had to be improved by the mesh refinement.