• 제목/요약/키워드: Nonlinear interaction

검색결과 799건 처리시간 0.022초

세 파동의 상호작용에 의한 패턴 형성 및 솔리톤의 전산모사 (Simulation of Pattern Formation and Solitions in Three-Wave Interactions)

  • Lee Hae Jun;Kim Jin Cheol;Kim Gwang Hun;Kim Jong Uk;Kim Chang Beom;Seok Hui Yong
    • 한국광학회:학술대회논문집
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    • 한국광학회 2003년도 제14회 정기총회 및 03년 동계학술발표회
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    • pp.42-43
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    • 2003
  • The nonlinear three-wave interaction is an interesting topic having various applications in nonlinear optics, hydrodynamics, acoustic waves, and plasma physics. The resonant interaction between two laser pulses and a plasma wave plays important roles in plasma heating, laser reflection in the inertial confinement fusion (ICF), plasma wakefield generation, and ultra-intense laser pulse amplification and pulse compression using stimulated Raman backscattering (RBS). (omitted)

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비선형 교대운동이 교량구조물의 지진응답에 미치는 영향분석 (Effects of Nonlinear Motions due to Abutment-Soil Interaction upon Seismic Responses of Multi-Span Simply Supported Bridges)

  • 김상효;마호성;이상우;경규혁
    • 한국지진공학회논문집
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    • 제6권6호
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    • pp.17-24
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    • 2002
  • 교대-인접토체사이의 상호작용으로 인한 비선형 교대거동이 교량구조물의 전체지진응답에 미치는 영향을 다양한 인자들을 고려할 수 있도록 개발된 이상화된 교량 해석모형을 이용하여 분석하였다. 교대의 비선형 운동은 교대의 강성저하를 반영하는 비선형 스프링으로 모형화하였으며, 비선형효과를 분석하기 위하여 현행 도로교 설계기준에서 제시하고 있는 일정강성을 적용한 선형스프링을 이용한 상대적인 선형모형과 결과를 비교하였다. 분석결과로부터 전체적인 교량구조물의 지진응답은 교대진동계의 모형화 방법 밑 인접한 토체의 조건에 따라 다양하게 나타나며, 교대진동계는 교량구조물의 지진응답에 중요한 영향을 미치는 것으로 분석되었다. 인접진동계간 최대상대거리는 비선형 모델을 적용한 경우가 상당히 증가하는 것으로 나타났으며, 특히 전체 교량구조물에서 낙교의 발생가능성이 가장 큰 위치에서 최대 30%, 정도까지도 증가하는 것으로 분석되었다. 또한 촘촘한 모래를 갖는 토체조건 하에서는 경간수가 증가할수록 교대의 비선형 거동에 따른 영향은 증가하는 것으로 평가되었다. 따라서 교량구조물의 지진거동 분석시 교대의 거동특성을 보다 실제적으로 반영하기 위해서는 교대의 비선형거동이 합리적으로 고려되어야 할 것으로 판단된다.

Plastic hinge length of RC columns considering soil-structure interaction

  • Mortezaei, Alireza
    • Earthquakes and Structures
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    • 제5권6호
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    • pp.679-702
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    • 2013
  • During an earthquake, soils filter and send out the shaking to the building and simultaneously it has the role of bearing the building vibrations and transmitting them back to the ground. In other words, the ground and the building interact with each other. Hence, soil-structure interaction (SSI) is a key parameter that affects the performance of buildings during the earthquakes and is worth to be taken into consideration. Columns are one of the most crucial elements in RC buildings that play an important role in stability of the building and must be able to dissipate energy under seismic loads. Recent earthquakes showed that formation of plastic hinges in columns is still possible as a result of strong ground motion, despite the application of strong column-weak beam concept, as recommended by various design codes. Energy is dissipated through the plastic deformation of specific zones at the end of a member without affecting the rest of the structure. The formation of a plastic hinge in an RC column in regions that experience inelastic actions depends on the column details as well as soil-structure interaction (SSI). In this paper, 854 different scenarios have been analyzed by inelastic time-history analyses to predict the nonlinear behavior of RC columns considering soil-structure interaction (SSI). The effects of axial load, height over depth ratio, main period of soil and structure as well as different characteristics of earthquakes, are evaluated analytically by finite element methods and the results are compared with corresponding experimental data. Findings from this study provide a simple expression to estimate plastic hinge length of RC columns including soil-structure interaction.

Higher-order Spectral Method for Regular and Irregular Wave Simulations

  • Oh, Seunghoon;Jung, Jae-Hwan;Cho, Seok-Kyu
    • 한국해양공학회지
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    • 제34권6호
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    • pp.406-418
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    • 2020
  • In this study, a nonlinear wave simulation code is developed using a higher-order spectral (HOS) method. The HOS method is very efficient because it can determine the solution of the boundary value problem using fast Fourier transform (FFT) without matrix operation. Based on the HOS order, the vertical velocity of the free surface boundary was estimated and applied to the nonlinear free surface boundary condition. Time integration was carried out using the fourth order Runge-Kutta method, which is known to be stable for nonlinear free-surface problems. Numerical stability against the aliasing effect was guaranteed by using the zero-padding method. In addition to simulating the initial wave field distribution, a nonlinear adjusted region for wave generation and a damping region for wave absorption were introduced for wave generation simulation. To validate the developed simulation code, the adjusted simulation was carried out and its results were compared to the eighth order Stokes theory. Long-time simulations were carried out on the irregular wave field distribution, and nonlinear wave propagation characteristics were observed from the results of the simulations. Nonlinear adjusted and damping regions were introduced to implement a numerical wave tank that successfully generated nonlinear regular waves. According to the variation in the mean wave steepness, irregular wave simulations were carried out in the numerical wave tank. The simulation results indicated an increase in the nonlinear interaction between the wave components, which was numerically verified as the mean wave steepness. The results of this study demonstrate that the HOS method is an accurate and efficient method for predicting the nonlinear interaction between waves, which increases with wave steepness.

Nonlinear analysis of composite beams with partial shear interaction by means of the direct stiffness method

  • Ranzi, G.;Bradford, M.A.
    • Steel and Composite Structures
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    • 제9권2호
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    • pp.131-158
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    • 2009
  • This paper presents a modelling technique for the nonlinear analysis of composite steel-concrete beams with partial shear interaction. It extends the applicability of two stiffness elements previously derived by the authors using the direct stiffness method, i.e. the 6DOF and the 8DOF elements, to account for material nonlinearities. The freedoms are the vertical displacement, the rotation and the slip at both ends for the 6DOF stiffness element, as well as the axial displacement at the level of the reference axis for the 8DOF stiffness element. The solution iterative scheme is based on the secant method, with the convergence criteria relying on the ratios of the Euclidean norms of both forces and displacements. The advantage of the approach is that the displacement and force fields of the stiffness elements are extremely rich as they correspond to those required by the analytical solution of the elastic partial interaction problem, thereby producing a robust numerical technique. Experimental results available in the literature are used to validate the finite element proposed in the paper. For this purpose, those reported by Chapman and Balakrishnan (1964), Fabbrocino et al. (1998, 1999) and Ansourian (1981) are utilised; these consist of six simply supported beams with a point load applied at mid-span inducing positive bending moment in the beams, three simply supported beams with a point load applied at mid-span inducing negative bending moment in the beams, and six two-span continuous composite beams respectively. Based on these comparisons, a preferred degree of discretisation suitable for the proposed modelling technique expressed as a function of the ratio between the element length and depth is proposed, as is the number of Gauss stations needed. This allows for accurate prediction of the nonlinear response of composite beams.

안정된 햅틱 인터페이스를 위한 비선형가상커플링 (Nonlinear Virtual Coupling for Stable Haptic Interaction)

  • 이문환;이두용
    • 제어로봇시스템학회논문지
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    • 제9권8호
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    • pp.610-615
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    • 2003
  • This paper proposes a nonlinear virtual coupling fur haptic interface, which offers better performance while maintaining stability of the system. The nonlinear virtual coupling is designed based on a human response model. This human response model exploits delay between the human Intention and the actual change of arm impedance. The proposed approach provides with less conservative constraints for the design of stable haptic interface, compared with the traditional passivity condition. This allows increased performance that is verified through experiments.

용접 철골모멘트골조의 비선형 동적 연쇄붕괴해석을 위한 병렬 소성힌지 모델의 개발 (A Parallel Axial-Flexural Hinge Model for Nonlinear Dynamic Progressive Collapse Analysis of Welded Steel Moment Frames)

  • 이철호;김선웅;이경구
    • 한국강구조학회 논문집
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    • 제21권2호
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    • pp.155-164
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    • 2009
  • 본 논문에서는 용접철골모멘트골조의 비선형 동적 연쇄붕괴 해석을 위해 인장-휨 거동을 반영한 효율적인 병렬 소성힌지를 제안하였다. 본 목적을 위해 재료적/기하학적 비선형 유한요소해석을 이용한 변수연구를 통해 기둥이 손실된 2경간 보의 항복후 휨거동과 모멘트-축인장력 상호작용을 살펴보았다. 유한요소해석결과를 토대로 보의 모멘트-축인장력 상호작용 관계를 일련의 선형으로 근사화한 소성힌지모델을 제안하고, 이를 OpenSees 프로그램에 적용하여 용접철골모멘트골조의 비선형 동적 연쇄붕괴해석을 수행하였다. 비선형 동적 유한요소해석을 통하여 본 연구에서 제안한 힌지모델의 효율성과 정확도를 검증하였다. 또한 본 연구 결과는 연쇄붕괴 해석 및 설계에 적절한 현수작용효과의 포함여부가 중요함을 보여준다.

비선형 구조 해석과 공력 해석의 효율적인 연계 알고리즘에 대한 연구 (An efficient method for fluid/structure interaction analysis considering nonlinear structural behavior)

  • 김의영;장성민;이동호;조맹효
    • 한국항공우주학회지
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    • 제40권11호
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    • pp.957-962
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    • 2012
  • 비행체 구조는 공기력에 의해 변형이 발생하고 이 구조의 변형은 다시 공기력의 변화를 유발하므로 비행체 구조 시스템의 고정밀 설계를 위해서는 공력/구조 연계 해석이 필요하다. 그러나 발생하는 변형이 비선형 구조 해석을 요구할 정도로 큰 경우, 선형 시스템에서와 같이 공력 해석과 구조 해석을 순차적으로 반복하는 연계 해석 기법은 바람직하지 않다. 구조적 변형에 따라 변하는 공기력을 충분히 고려하지 못하며, 소요 시간 또한 크기 때문이다. 본 연구는 공력장 내부의 비선형 구조의 거동을 보다 효율적으로 예측할 수 있는 공력/구조 연계 해석 기법을 다룬다. 즉, 비선형 구조 해석 단계 도중에 주기적으로 공력 해석을 통한 외력 업데이트를 수행하는 알고리즘을 제안한다. 또한 고세장비의 유연날개를 가지는 글로벌 호크 모델을 사용하여 여러 가지 기법의 비선형 공력/구조 연계 해석의 결과를 비교하였다.

The Evaluation of Axial Stress in Continuous Welded Rails via Three-Dimensional Bridge-Track Interaction

  • Manovachirasan, Anaphat;Suthasupradit, Songsak;Choi, Jun-Hyeok;Kim, Bum-Joon;Kim, Ki-Du
    • 국제강구조저널
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    • 제18권5호
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    • pp.1617-1630
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    • 2018
  • The crucial differences between conventional rail with split-type connectors and continuous welded rails are axial stress in the longitudinal direction and stability, as well as other issues generated under the influence of loading effects. Longitudinal stresses generated in continuously welded rails on railway bridges are strongly influenced by the nonlinear behavior of the supporting system comprising sleepers and ballasts. Thus, the track structure interaction cannot be neglected. The rail-support system mentioned above has properties of non-uniform material distribution and uncertainty of construction quality. The linear elastic hypothesis therefore cannot correctly evaluate the stress distribution within the rails. The aim of this study is to apply the nonlinear finite element method using the nonlinear coupling interface between the track and structural model and to illustrate the welded rail behavior under the loading effect and uncertain factors of the ballast. Numerical results of nonlinear finite analysis with a three-dimensional solid and frame element model are presented for a typical track-bridge system. A composite plate girder, modeled by solid and shell elements, is also analyzed to consider the behavior of the welded rail. The analysis result showed buckling under the independent calculations of load cases, including 'temperature change', 'bending of the supporting structure', and 'braking' of the railway vehicle. A parametric study of the load combination method and the loading sequence is also included in this analysis.

비선형 지반특성이 수평 방향운동을 받는 기초지반체계의 동적강성에 미치는 영향 (Effects of Nonlinear Soil Characteristics on the Dynamic Stiffnesses of a Foundation-Soil System Excited with the Horizontal Motion)

  • 김용석
    • 한국지진공학회:학술대회논문집
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    • 한국지진공학회 2000년도 춘계 학술발표회 논문집 Proceedings of EESK Conference-Spring
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    • pp.120-129
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    • 2000
  • As structure-soil interaction analysis for the seismic analysis of structures requires a nonlinear analysis of a structure-soil system considering the inelastic characteristics of soil layers nonlinear analyses of the foundation-soil system with the horizontal excitation were performed considering the nonlinear soil conditions for the nonlinear seismic analysis of structures. Stiff soil profile of SD and soft soil profile of SE specified in UBC were considered for the soil layers of a foundation and Ramberg-Osgood model was assumed for the nonlinear characteristics of soil layers. Studies on the changes of dynamci stiffnesses and damping rations of surface and embedded foundations depending on foundation size soil layer depth and piles were performed to investigate the effects of the nonlinear soil layer on the horizontal and rotational dynamic stiffnesses and damping ratios of the foundation-soil system According to the study results nonlinear prperties of a soil laryer decreeased horizontal and rotational linear stiffnesses and increased damping ratios largely Effects of foundation size soil layer depth and piles were also significant suggesting the necessity of nonlinear seismic analyses of structures.

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