• 제목/요약/키워드: wave finite element method

검색결과 563건 처리시간 0.023초

Grooved $SiO_2$ 박막을 갖는 Mach-Zehnder Ti:$LiNbO_3$ 광변조기의 진행파형 CPW 전극설계 (Design of Traveling-Wave Type CPW Electrodes in a Mach-Zehnder Ti:$LiNbO_3$ Optical Modulator with a Grooved $SiO_2$ thin Film)

  • 한영탁;김창민;윤형도;임상규;안철;구경환
    • 대한전자공학회논문지SD
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    • 제37권11호
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    • pp.50-58
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    • 2000
  • Goodved $SiO_2$ 박막을 갖는 Mach-Zehnder(M-Z)형태의 $Ti:LiNbO_3$ 진행파 광변조기의 전극구조를 변화시켜가며 유한요소법에 의한 해석을 수행하였다. 최적의 설계치를 추출하였으며, 제작된 전극에 대하여 특성임피던스($Z_o$), 마이크로파 유효굴절률($N_{eff}$), 감쇠정수($a_o$)를 측정하여 그 결과를 이론치와 비교하였다. 전극두께가 11${\mu}m$이고, $SiO_2$ 완중박막을 식각한 전극에 대하여, RF 측정결과로부터 계산된 3dB 변조대역폭은 18GHz로 나타났다.

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불규칙 지형을 고려한 2차원 유한요소 탄성파 모델링 (2 Dimensional FEM Elastic Wave Modeling Considering Surface Topography)

  • 이종하;서정희;신창수
    • 지구물리와물리탐사
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    • 제4권2호
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    • pp.34-44
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    • 2001
  • 종래의 탄성파 모델링은 지표를 수평면으로 가정하고 그 아래쪽에 여러 개의 반사면에 대한 모델링이 대부분 이었다. 그러나, 실제 탐사에서는 복잡한 지형을 가진 지표에서 탐사가 수행되기 때문에 탄성 매질에서의 반응을 명확하게 구분해 내는 것이 힘들다. 지표에 탄성파 전파특성을 규명하기 위하여 모델에 지형을 고려할 수 있도록 하여 시간영역 유한요소법을 이용하여 매질의 반응을 구하였다. 이러한 이러한 알고리즘을 이용하여 지표에서 진원을 가했을 때 수평 및 제방(mound), 채널(channel)등의 구조로부터 지표의 수신기에서 합성 탄성파 기록을 관찰하고, 스냅사진(snapshot)을 얻어냄으로써 해석해와 잘 일치함을 확인하였고, 지표 및 지하 반사면에 의한 복잡한 탄성파의 전파 양상을 파악할 수 있었다. 불규칙 지표면을 따라 전파하는 표면파가 모서리에서 새로운 진원으로 작용하여 큰 잡음이 생성됨을 관찰하였고, 지표를 따라 전파하는 높은 에너지의 레일리파, 상대적으로 낮은 압축파, 전단파 등의 전파 양상으로부터 파의 천이 상태를 관찰할 수 있었다.

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Tension Leg Platform의 Tether의 동적해석 (Dynamic Analysis of Tethers of Tension Leg Platforms)

  • 편종근;박우선;김규한
    • 대한토목학회논문집
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    • 제7권4호
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    • pp.73-81
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    • 1987
  • 본 논문에서는 파랑하중에 대한 Tension Leg Platform(TLP)의 tether와 platform의 동적거동해석에 대해서 연구하였다. tether의 동특성 효과를 적절하고도 간단히 고려할 수 있는 platform 해석모델을 제안하여 platform 운동해석을 수행하였으며, tether에 작용하여 인장력에 기인된 기하학적 강성을 고려한 유한요소법을 사용하여 tether의 거동을 해석하였다. 해석 예제용구조물로는 설치수심이 1000ft 및 3000ft인 두 가상적인 TLP를 선택하였으며, 비교를 목적으로 tether의 동특성 효과를 고려하지 않은 기존모델 및 platform과 tether를 조합한 모델 등에 의한 해석도 수행하여, 그 결과를 본 연구에서 제안한 모델에 의한 platform 운동과 tether의 거동 해석결과와 비교분석하였다. 아울러, tether의 통상적인 휨강성 및 tether에 작용하는 파랑하중이 tether의 거동에 미치는 영향정도도 고찰하였다.

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Dynamic response of a base-isolated CRLSS with baffle

  • Cheng, Xuansheng;Liu, Bo;Cao, Liangliang;Yu, Dongpo;Feng, Huan
    • Structural Engineering and Mechanics
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    • 제66권3호
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    • pp.411-421
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    • 2018
  • Although a rubber isolation cushion can reduce the dynamic response of a structure itself, it has little influence on the height of a sloshing wave and even may induce magnification action. Vertical baffles are set into a base-isolated Concrete Rectangular Liquid Storage Structure (CRLSS), and baffles are opened as holes to increase the energy dissipation of the damping. Problems of liquid nonlinear motion caused by baffles are described using the Navier-Stokes equation, and the space model of CRLSS is established considering the Fluid-Solid Interaction (FSI) based on the Finite Element Method (FEM). The dynamic response of an isolated CRLSS with various baffles under an earthquake is analyzed, and the results are compared. The results show that when the baffle number is certain, the greater the number of holes in baffles, the worse the damping effects; when a single baffle with holes is set in juxtaposition and double baffles with holes are formed, although some of the dynamic response will slightly increase, the wallboard strain and the height of the sloshing wave evidently decrease. A configuration with fewer holes in the baffles and a greater number of baffles is more helpful to prevent the occurrence of two failure modes: wallboard leakage and excessive sloshing height.

수중익에 의한 비선형 조파현상의 수치해석 (Numerical Computations for Hydrofoil-Generated Nonlinear Waves)

  • 이홍기;배광준
    • 대한조선학회논문집
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    • 제30권3호
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    • pp.29-40
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    • 1993
  • 본 연구는 정수면으로 부터 얕게 잠겨 항주하는 3차원 수중익에 의한 비선형 조파현상의 특성규명을 위한 기초연구로서 수중익이 예인수조안에서 일정속도로 항주할 때 자유표면에 발생하는 비선형 파형의 특성과 수중익에 작용하는 유체력을 계산하기 위한 수치해법의 개발을 목적으로 하였다. 수치해법으로는 변분원리에 기초한 유한요소법올 사용하였으며 수중익 근처에서는 비선형 자유표면조건을 엄밀하게 만족시켰고 수중익으로 부터 충분히 떨어진 영역에서는 종래의 선형화된 자유표면 경계조건을 만족시켰다. 수치해법의 계산효율을 높이기 위하여 비선형영역과 선형영역 사이에 인위적인 비선형-선형 완충영역을 도입하여 계산영역을 크게 줄였다. 수중익을 간단한 직사각형 보오텍스계로 표현하여 유속과 몰수길이, 보오텍스의 세기 및 분포의 변화에 따른 비선형 파형의 특성을 조사하였으며 특히 자유 보오텍스선이 비선형 파형에 미치는 영향을 파악하였다. 파동에 의하며 수중익에 유기되는 속도성분들의 크기 및 분포, 양력 및 유기항력에 대한 계산을 수행하여 자유표면의 비선형성에 의한 영향을 규명하였다.

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Ultrasonic guided waves-based fatigue crack detection in a steel I-beam: an experimental study

  • Jiaqi Tu;Xian Xu;Chung Bang Yun;Yuanfeng Duan
    • Smart Structures and Systems
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    • 제31권1호
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    • pp.13-27
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    • 2023
  • Fatigue crack is a fatal problem for steel structures. Early detection and maintenance can help extend the service life and prevent hazards. This paper presents the ultrasonic guided waves-based (UGWs-based) fatigue crack detection of a steel I-beam. The semi-analytical finite element model has been built to obtain the wave propagation characteristics. Damage indices in both time and frequency domains were analyzed by considering the characteristic variations of UGWs including the amplitude, phase angle, and wave packet energy. The pulse-echo and pitch-catch methods were combined in the detection scheme. Lab-scale experiments were conducted on welded steel I-beams to verify the proposed method. Results show that the damage indices based on the characteristic variations in the time domain can identify and localize the fatigue crack before it enters the rapid growth stage. The damage severity can be reasonably evaluated by analyzing the time-domain damage indices. Two nonlinear damage indices in the frequency domain give earlier warnings of the fatigue crack than the time-domain damage indices do. The identification results based on the above two nonlinear indices are found to be less consistent under various excitation frequencies. More robust nonlinear techniques needed to be searched and tested for early crack detection in steel I-beams in further study.

Investigation of seismic response of long-span bridges under spatially varying ground motions

  • Aziz Hosseinnezhad;Amin Gholizad
    • Earthquakes and Structures
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    • 제26권5호
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    • pp.401-416
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    • 2024
  • Long-span structures, such as bridges, can experience different seismic excitations at the supports due to spatially variability of ground motion. Regarding current bridge designing codes, it is just EC 2008 that suggested some regulations to consider it and in the other codes almost ignored while based on some previous studies it is found that the effect of mentioned issue could not be neglected. The current study aimed to perform a comprehensive study about the effect of spatially varying ground motions on the dynamic response of a reinforced concrete bridge under asynchronous input motions considering soil-structure interactions. The correlated ground motions were generated by an introduced method that contains all spatially varying components, and imposed on the supports of the finite element model under different load scenarios. Then the obtained results from uniform and non-uniform excitations were compared to each other. In addition, the effect of soil-structure interactions involved and the corresponding results compared to the previous results. Also, to better understand the seismic response of the bridge, the responses caused by pseudo-static components decompose from the total response. Finally, an incremental dynamic analysis was performed to survey the non-linear behavior of the bridge under assumed load scenarios. The outcomes revealed that the local site condition plays an important role and strongly amplifies the responses. Furthermore, it was found that a combination of wave-passage and strong incoherency severely affected the responses of the structure. Moreover, it has been found that the pseudo-static component's contribution increase with increasing incoherent parameters. In addition, regarding the soil condition was considered for the studied bridge, it was found that a combination of spatially varying ground motions and soil-structure interactions effects could make a very destructive scenarios like, pounding and unseating.

Structural model updating of the Gageocho Ocean Research Station using mass reallocation method

  • Kim, Byungmo;Yi, Jin-Hak
    • Smart Structures and Systems
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    • 제26권3호
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    • pp.291-309
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    • 2020
  • To study oceanic and meteorological problems related to climate change, Korea has been operating several ocean research stations (ORSs). In 2011, the Gageocho ORS was attacked by Typhoon Muifa, and its structural members and several observation devices were severely damaged. After this event, the Gageocho ORS was rehabilitated with 5 m height to account for 100-yr extreme wave height, and the vibration measurement system was equipped to monitor the structural vibrational characteristics including natural frequencies and modal damping ratios. In this study, a mass reallocation method is presented for structural model updating of the Gageocho ORS based on the experimentally identified natural frequencies. A preliminary finite element (FE) model was constructed based on design drawings, and several of the candidate baseline FE models were manually built, taking into account the different structural conditions such as corroded thickness. Among these candidate baseline FE models, the most reasonable baseline FE model was selected by comparing the differences between the identified and calculated natural frequencies; the most suitable baseline FE model was updated based on the identified modal properties, and by using the pattern search method, which is one of direct search optimization methods. The mass reallocation method is newly proposed as a means to determine the equivalent mass quantities along the height and in a floor. It was found that the natural frequencies calculated based on the updated FE model was very close to the identified natural frequencies. In conclusion, it is expected that these results, which were obtained by updating a baseline FE model, can be useful for establishing the reference database for jacket-type offshore structures, and assessing the structural integrity of the Gageocho ORS.

응답변위법을 적용한 수직구의 내진설계 (Seismic Design of Vertical Shaft using Response Displacement Method)

  • 김용민;정상섬;이용희;장정범
    • 대한토목학회논문집
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    • 제30권6C호
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    • pp.241-253
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    • 2010
  • 본 연구에서는 응답변위법을 수직구 내진설계에 적용하고 구조물의 응답을 정확하게 구할 수 있는 방법을 제시하고자 기반면, 지반의 상대변위 산정 방법, 하중 산정 및 적용 방법에 따른 3차원 유한요소해석을 수행하였다. 그 결과, 수직구 내진설계를 위한 기반면은 전단파속도가 1500m/s를 초과하는 지반을 선정하는 것이 가장 적합하며, 지반변위 산정 방법은 다층지반의 특성을 반영할 수 있는 double cosine이 가장 적합하다. 또한 응답변위법 해석을 위한 동토압 및 주면전단력 산정 시 구조물의 단면형상효과를 고려하는 것이 실제 수직구의 동적거동을 적절히 반영하며 경제적인 설계를 할 수 있음을 알 수 있었다.

Seismic behavior of deep-sea pipeline after global buckling under active control

  • Jianshuo Wang;Tinghao Meng;Zechao Zhang;Zhihua Chen;Hongbo Liu
    • Earthquakes and Structures
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    • 제26권4호
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    • pp.261-267
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    • 2024
  • With the increase in the exploitation depth of offshore oil and gas, it is possible to control the global buckling of deep-sea pipelines by the snake lay method. Previous studies mainly focused on the analysis of critical buckling force and critical temperature of pipelines under the snake-like laying method, and pipelines often suffer structural failure due to seismic disasters during operation. Therefore, seismic action is a necessary factor in the design and analysis of submarine pipelines. In this paper, the seismic action of steel pipes in the operation stage after global buckling has occurred under the active control method is analyzed. Firstly, we have established a simplified finite element model for the entire process cycle and found that this modeling method is accurate and efficient, solving the problem of difficult convergence of seismic wave and soil coupling in previous solid analysis, and improving the efficiency of calculations. Secondly, through parameter analysis, it was found that under seismic action, the pipe diameter mainly affects the stress amplitude of the pipeline. When the pipe wall thickness increases from 0.05 m to 0.09 m, the critical buckling force increases by 150%, and the maximum axial stress decreases by 56%. In the pipe soil interaction, the greater the soil viscosity, the greater the pipe soil interaction force, the greater the soil constraint on the pipeline, and the safer the pipeline. Finally, the pipeline failure determination formula was obtained through dimensionless analysis and verified, and it was found that the formula was accurate.