• Title/Summary/Keyword: 구조계산

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A Study on the FDTD method using Periodic Boundary Condition for PBG Performance Analysis (PBG 구조 성능 해석을 위한 주기경계조건의 FDTD 적용연구)

  • Lim, Gye-jae
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.3 no.2
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    • pp.31-38
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    • 2010
  • It is difficult to design accurately the bandgap of metamaterial depending on metamaterial pattern and array configuration. In this paper, we propose a design method for the wanted bandgap frequency using any metamaterial pattern in 2 dimensional array. Metamaterial structure is consisted of periodic array. Therefore the calculation area in FDTD(finite difference time domain) method can be reduced by applying the periodic boundary condition to 2-D metamaterial array. The method for design and calculation the L and C values by using 2-D is also considered. So it can be designed more accurately and rapidly. For example, we designed metamaterial square pattern array in 5 GHz, and compared with the 1-D metamaterial pattern using analysis method in microstrip line. As a result, we found that the accuracy of this proposed method can be incresed to 14.7%.

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An Integrated System for Aerodynamic, Structural, and RF Stealth Analysis of Flying Vehicles (비행체 공력-구조-RF 스텔스 통합해석 시스템에 관한 연구)

  • Park, Min-Ju;Lee, Dong-Ho;Myong, Rho-Shin;Cho, Tae-Hwan
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.36 no.1
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    • pp.86-91
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    • 2008
  • An integrated multidisciplinary analysis and design system plays a critical role in the preliminary design of an aircraft. In this work a system based on the CATIA is developed for multidisciplinary computational design; aerodynamics, elasticity, and radar frequency stealth. Common data base of geometry and rectangular grids is generated and used for aerodynamic and structural analysis, while derivative triangular grids are generated for the RCS calculation. The panel method (PANAIR), FEM (NASTRAN), and PO technique are used for aerodynamic, structural, and RF stealth computations, respectively, and several additional algorithms are developed for the effective communication of the common data.

Prediction of Non-linear Behavior of Flexible Matrix Composites (유연수지를 기지재료로 하는 복합재료의 비선형거동 예측)

  • 서영욱;우경식
    • Journal of the Korean Society for Aeronautical & Space Sciences
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    • v.34 no.10
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    • pp.24-31
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    • 2006
  • In this paper, mechanical behavior of unidirectional composites with flexible matrix was predicted by geometrical non-linear finite element analysis. Two typical idealized unit cells of square and hexagonal fiber arrays were modeled and these were subjected to different loadings. The stress-strain behavior of composites was predicted from which the effective properties were calculated. The hyperelasticity of polyurethane matrix was considered using Mooney-Rivlin model. In result, the stress-strain behavior of flexible composites shows non-linearity, especially it is remarkable under transverse normal and shear loading conditions. In this cases, there are great difference between square and hexagonal fiber array models.

Structural Dynamic Analysis by Ritz Vector Method Modified with Lanczos Algorithm (Lanczos 알고리즘을 도입한 Ritz Vector법에 의한 구조물의 동적해석)

  • 심재수;황의승;박주경
    • Computational Structural Engineering
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    • v.8 no.4
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    • pp.181-187
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    • 1995
  • Recent researches in dynamics are focused on finding effective methods to analyze the dynamic behavior of structures by fewer mode shapes their number of dgrees of freedom. Ritz algorithm and mode acceleration method were developed to improved the mode superposition. Ritz algorithm can include distribution of external loads but be apt to lose the orthogonality condition, which is useful properties in the analysis. Also mode acceleration method should consider a large number of mode shapes to get a satisfactory results. Another method, combining previous two method, was developed but too much computational efforts and times were required. The purpose of this study is to develop and evaluate the Ritz algorithm modified with the lanczos algorithm to improve the efficiency and accuracy. As a result of !this study, dynamic analysis using modified Ritz algorithm was proved to be the rational analysis method.

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A Dynamic Response Analysis of Very Large Offshore Structures in Multi-Directional Irregular Waves (다방향 불규칙파중의 초대형 해양구조물의 동적응답해석)

  • Goo, J.S.;Jo, H.J.;Kim, K.T.
    • Journal of the Society of Naval Architects of Korea
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    • v.34 no.2
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    • pp.90-103
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    • 1997
  • A numerical procedure is described for predicting the motion and structural responses of the very large floating offshore structures supported by multiple 3-D floating bodies of arbitrary shape in multi-directional irregular waves. The developed numerical approach taking into account of the hydrodynamic interactions among the multiple floating bodies is based on a combination of the 3-D source distribution method, the wave interaction theory, the finite element method and the spectral analysis method to get the significant values of the dynamic responses in the multi-directional irregular waves. The effects of wave interactions and directionality on the dynamic responses of a very large offshore structure, which is semisubmersible ring type, are numerically examined.

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Stiffness and Natural Frequency of Stone Masonry pagoda (석탑문화재의 강성과 고유진동수에 관한 연구)

  • Lee, Sung-Min;Son, Ho-Woong;Lee, Soo-Gon
    • Journal of the Korea institute for structural maintenance and inspection
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    • v.8 no.3
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    • pp.263-270
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    • 2004
  • The dynamic behavior of multi-layered stone masonry monuments, such as stone pagoda, are mainly influenced by contour condition of contacting surface of stones. These structures can be modeled as a multi-degrees of freedom system. In this case the mass of the system can be easily estimated, mean while the estimation of stiffness at junction is not simple. In this paper a method for estimating the spring constant at the contacting surface of stone is proposed. The proposed method utilizes the natural frequency of the system which can be obtained by eigenvalue analysis.

Design of Montgomery Algorithm and Hardware Architecture over Finite Fields (유한 체상의 몽고메리 알고리즘 및 하드웨어 구조 설계)

  • Kim, Kee-Won;Jeon, Jun-Cheol
    • Journal of Korea Society of Industrial Information Systems
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    • v.18 no.2
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    • pp.41-46
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    • 2013
  • Finite field multipliers are the basic building blocks in many applications such as error-control coding, cryptography and digital signal processing. Recently, many semi-systolic architectures have been proposed for multiplications over finite fields. Also, Montgomery multiplication algorithm is well known as an efficient arithmetic algorithm. In this paper, we induce an efficient multiplication algorithm and propose an efficient semi-systolic Montgomery multiplier based on polynomial basis. We select an ideal Montgomery factor which is suitable for parallel computation, so our architecture is divided into two parts which can be computed simultaneously. In analysis, our architecture reduces 30%~50% of time complexity compared to typical architectures.

Numerical Requirements for the Simulation of Detonation Cell Structures (데토네이션 셀 구조 모사를 위한 수치적 요구 조건)

  • Choi Jeong-Yeol;Cho Deok-Rae
    • Journal of the Korean Society of Propulsion Engineers
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    • v.10 no.2
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    • pp.1-14
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    • 2006
  • Present study examines the numerical issues of cell structure simulation for various regimes of detonation phenomena ranging from weakly unstable to highly unstable detonations. Inviscid fluid dynamics equations with $variable-{\gamma} $ formulation and one-step Arrhenius reaction model are solved by a MUSCL-type TVD scheme and 4th order accurate Runge-Kutta time integration scheme. A series of numerical studies are carried out for the different regimes of the detonation phenomena to investigate the computational requirements for the simulation of the detonation wave cell structure by varying the reaction constants and grid resolutions. The computational results are investigated by comparing the solution of steady ZND structure to draw out the minimum grid resolutions and the size of the computational domain for the capturing cell structures of the different regimes of the detonation phenomena.

A Study on the Measurement of Natural Frequency for Seismic Design of High Rise Buildings (고층건물의 내진설계를 위한 고유진동수 측정에 관한 연구)

  • Kim, Dong-Baek;Lee, Byeong-Hoon;Lee, In-Duk;Lee, Kwang-Jae
    • Proceedings of the Korean Society of Disaster Information Conference
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    • 2015.11a
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    • pp.127-129
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    • 2015
  • 최근 도심의 건물들은 수요자의 요구에 따라 평면이 다양화 되어가고 토지의 효율을 높이기 위하여 초고층화 되어가는 경향이 있다. 심지어 전통적인 공동주택의 개념으로 지어지는 아파트도 그 높이가 100m를 상회하는 경우가 대부분이다. 현재 국내의 구조설계 시 구조물의 동적특성 요소를 반영하는 고유 진동수는 주로 미국의 지진자료를 바탕으로 계산되게 되어있으며, 기존 연구결과 실측결과가 상당한 차이를 보이고 있어 이에 대한 검토가 요구되고 있다. 이에 본 연구에서는 내진설계의 기본이 되는 건물의 고유주기를 측정하고 내진성능을 평가하여, 보다 경제적인 내진설계 방안에 대한 제시하고자 한다. 또한, 벽식구조건물의 경우 구조설계 기준에서 제시하는 지진하중을 산정할 때, 실무자들이 구조형식을 선택하기가 곤란하여 어떤 주기산정 식을 사용해야 할지 혼란스러워 하는 경우가 많으므로, 기타 골조 식과 전단벽 식을 고려하는 경우를 구조물의 상시 미진동을 측정하여 고유 진동수 및 고유 주기를 비교하여 제시하였다. 연구결과 기타 골조 식에 의해 계산된 값은 매우 보수적으로 나타나서 이에 대한 검토도 필요하다고 사료된다.

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BIM Geometry Cache Structure for Data Streaming with Large Volume (대용량 BIM 형상 데이터 스트리밍을 위한 캐쉬 구조)

  • Kang, Tae-Wook
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.18 no.9
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    • pp.1-8
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    • 2017
  • The purpose of this study is to propose a cache structure for processing large-volume building information modeling (BIM) geometry data,whereit is difficult to allocate physical memory. As the number of BIM orders has increased in the public sector, it is becoming more common to visualize and calculate large-volume BIM geometry data. Design and review collaboration can require a lot of time to download large-volume BIM data through the network. If the BIM data exceeds the physical free-memory limit, visualization and geometry computation cannot be possible. In order to utilize large amounts of BIM data on insufficient physical memory or a low-bandwidth network, it is advantageous to cache only the data necessary for BIM geometry rendering and calculation time. Thisstudy proposes acache structure for efficiently rendering and calculating large-volume BIM geometry data where it is difficult to allocate enough physical memory.