• 제목/요약/키워드: Newmark displacement model

검색결과 49건 처리시간 0.02초

Seismic response of smart nanocomposite cylindrical shell conveying fluid flow using HDQ-Newmark methods

  • Zamani, Abbas;Kolahchi, Reza;Bidgoli, Mahmood Rabani
    • Computers and Concrete
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    • 제20권6호
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    • pp.671-682
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    • 2017
  • In this research, seismic response of pipes is examined by applying nanotechnology and piezoelectric materials. For this purpose, a pipe is considered which is reinforced by carbon nanotubes (CNTs) and covered with a piezoelectric layer. The structure is subjected to the dynamic loads caused by earthquake and the governing equations of the system are derived using mathematical model via cylindrical shell element and Mindlin theory. Navier-Stokes equation is employed to calculate the force due to the fluid in the pipe. Mori-Tanaka approach is used to estimate the equivalent material properties of the nanocomposite and to consider the effect of the CNTs agglomeration on the scismic response of the structure. Moreover, the dynamic displacement of the structure is extracted using harmonic differential quadrature method (HDQM) and Newmark method. The main goal of this research is the analysis of the seismic response using piezoelectric layer and nanotechnology. The results indicate that reinforcing the pipeline by CNTs leads to a reduction in the displacement of the structure during an earthquake. Also the negative voltage applied to the piezoelectric layer reduces the dynamic displacement.

시간적분법을 이용한 경수로 핵연료집합체의 선형충격 거동해석 (Linear-Impact Behaviour of PWR Fuel Assembly)

  • 임정식;손동성
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2000년도 춘계학술대회논문집
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    • pp.627-632
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    • 2000
  • A finite element model for the transient dynamic analysis of a PWR fuel assembly was developed and programmed as a name of DAMASS. The Newmark time integration method was used to solve the governing equation of motion. Results of the program was compared with those of ANSYS in terms of displacement and impact forces to show the validity of the model. Up to now it has capability of solving the linear impact of FA(s) and it will be extended to the non-linear analysis of a FA in the future.

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Bridge-vehicle coupled vibration response and static test data based damage identification of highway bridges

  • Zhu, Jinsong;Yi, Qiang
    • Structural Engineering and Mechanics
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    • 제46권1호
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    • pp.75-90
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    • 2013
  • In order to identify damage of highway bridges rapidly, a method for damage identification using dynamic response of bridge induced by moving vehicle and static test data is proposed. To locate damage of the structure, displacement energy damage index defined from the energy of the displacement response time history is adopted as the indicator. The displacement response time histories of bridge structure are obtained from simulation of vehicle-bridge coupled vibration analysis. The vehicle model is considered as a four-degree-of-freedom system, and the vibration equations of the vehicle model are deduced based on the D'Alembert principle. Finite element method is used to discretize bridge and finite element model is set up. According to the condition of displacement and force compatibility between vehicle and bridge, the vibration equations of the vehicle and bridge models are coupled. A Newmark-${\beta}$ algorithm based professional procedure VBAP is developed in MATLAB, and used to analyze the vehicle-bridge system coupled vibration. After damage is located by employing the displacement energy damage index, the damage extent is estimated through the least-square-method based model updating using static test data. At last, taking one simply supported bridge as an illustrative example, some damage scenarios are identified using the proposed damage identification methodology. The results indicate that the proposed method is efficient for damage localization and damage extent estimation.

Elastodynamic and wave propagation analysis in a FG graphene platelets-reinforced nanocomposite cylinder using a modified nonlinear micromechanical model

  • Hosseini, Seyed Mahmoud;Zhang, Chuanzeng
    • Steel and Composite Structures
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    • 제27권3호
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    • pp.255-271
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    • 2018
  • This paper deals with the transient dynamic analysis and elastic wave propagation in a functionally graded graphene platelets (FGGPLs)-reinforced composite thick hollow cylinder, which is subjected to shock loading. A micromechanical model based on the Halpin-Tsai model and rule of mixture is modified for nonlinear functionally graded distributions of graphene platelets (GPLs) in polymer matrix of composites. The governing equations are derived for an axisymmetric FGGPLs-reinforced composite cylinder with a finite length and then solved using a hybrid meshless method based on the generalized finite difference (GFD) and Newmark finite difference methods. A numerical time discretization is performed for the dynamic problem using the Newmark method. The dynamic behaviors of the displacements and stresses are obtained and discussed in detail using the modified micromechanical model and meshless GFD method. The effects of the reinforcement of the composite cylinder by GPLs on the elastic wave propagations in both displacement and stress fields are obtained for various parameters. It is concluded that the proposed micromechanical model and also the meshless GFD method have a high capability to simulate the composite structures under shock loadings, which are reinforced by FGGPLs. It is shown that the modified micromechanical model and solution technique based on the meshless GFD method are accurate. Also, the time histories of the field variables are shown for various parameters.

Inelastic displacement ratios for evaluation of stiffness degrading structures with soil structure interaction built on soft soil sites

  • Aydemir, Muberra Eser
    • Structural Engineering and Mechanics
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    • 제45권6호
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    • pp.741-758
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    • 2013
  • In this study, inelastic displacement ratios are investigated for existing systems with known lateral strength considering soil structure interaction. For this purpose, SDOF systems for period range of 0.1-3.0 s with different hysteretic behaviors are considered for a number of 18 earthquake motions recorded on soft soil. The effect of stiffness degradation on inelastic displacement ratios is investigated. The Modified Clough model is used to represent structures that exhibit significant stiffness degradation when subjected to reverse cyclic loading and the elastoplastic model is used to represent non-degrading structures. Soil structure interaction analyses are conducted by means of equivalent fixed base model effective period, effective damping and effective ductility values differing from fixed-base case. For inelastic time history analyses, Newmark method for step by step time integration was adapted in an in-house computer program. A new equation is proposed for inelastic displacement ratio of system with SSI with elastoplastic or degrading behavior as a function of structural period ($\tilde{T}$), strength reduction factor (R) and period lengthening ratio ($\tilde{T}$/T). The proposed equation for $\tilde{C}_R$ which takes the soil-structure interaction into account should be useful in estimating the inelastic deformation of existing structures with known lateral strength.

Estimation of peak wind response of building using regression analysis

  • Payan-Serrano, Omar;Bojorquez, Eden;Reyes-Salazar, Alfredo;Ruiz-Garcia, Jorge
    • Wind and Structures
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    • 제29권2호
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    • pp.129-137
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    • 2019
  • The maximum along-wind displacement of a considerable amount of building under simulated wind loads is computed with the aim to produce a simple prediction model using multiple regression analysis with variables transformation. The Shinozuka and Newmark methods are used to simulate the turbulent wind and to calculate the dynamic response, respectively. In order to evaluate the prediction performance of the regression model with longer degree of determination, two complex structural models were analyzed dynamically. In addition, the prediction model proposed is used to estimate and compare the maximum response of two test buildings studied with wind loads by other authors. Finally, it was proved that the prediction model is reliable to estimate the maximum displacements of structures subjected to the wind loads.

Effect of excitation intensity on slope stability assessed by a simplified approach

  • Korzec, Aleksandra;Jankowski, Robert
    • Earthquakes and Structures
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    • 제21권6호
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    • pp.601-612
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    • 2021
  • The paper concerns the selection of a design accelerograms used for the slope stability assessment under earthquake excitation. The aim is to experimentally verify the Arias Intensity as an indicator of the excitation threat to the slope stability. A simple dynamic system consisting of a rigid block on a rigid inclined plane subjected to horizontal excitation is adopted as a slope model. Strong ground motions recorded during earthquakes are reproduced on a shaking table. The permanent displacement of the block serves as a slope stability indicator. Original research stand allows us to analyse not only the relative displacement but also the acceleration time history of the block. The experiments demonstrate that the Arias Intensity of the accelerogram is a good indicator of excitation threat to the stability of the slope. The numerical analyses conducted using the experimentally verified extended Newmark's method indicate that both the Arias Intensity and the peak velocity of the excitation are good indicators of the impact of dynamic excitation on the dam's stability. The selection can be refined using complementary information, which is the dominant frequency and duration of the strong motion phase of the excitation, respectively.

지하수위 변화에 따른 지진 유발 산사태의 취약섬 분석 (Assessment of Earthquake Induced Landslide Susceptibility with Variation of Groundwater Level)

  • 김지석;박혁진;이정현
    • 자원환경지질
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    • 제44권4호
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    • pp.289-302
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    • 2011
  • 최근 들어 우리나라에서도 지진의 발생빈도가 증가함에 따라 지진관련 재해에 대한 관심이 증가하고 있다. 특히 지진의 발생빈도가 증가함에 따라 지진에 의해 유발되는 산사태의 발생 가능성에 대한 연구의 필요성이 제기되고 있다. 최근 필리핀 레이테섬 산사태의 경우처럼 집중강우에 의해 포화된 사변에서는 소규모의 지진에 의해서도 대규모의 산사태가 유발될 수 있다는 사실이 밝혀짐에 따라 소규모 지진의 발생빈도가 증가하고 있는 우리나라에서도 지진에 의한 산사태의 발생 가능성이 제기되고 있다. 따라서 본 연구에서는 강우에 의해 지하수위가 상승하여 포화된 지반 조건에서 소규모 지진에 의해 유발될 수 있는 산사태의 가능성에 대한 분석을 수행하고자 하였다. 이를 위하여 국내의 지질 및 지형특성을 고려할 수 있는 Newmark displacement model을 해석모델로 선정하고 GIS 분석기법을 활용하여 연구대상지역에 대한 산사태 취약성 분석을 실시하였다. 연구 수행을 위하여 수치지형도와 지질도 등을 이용, 사변의 기하학적 특성과 지질공학적 특성에 대해 커버리지 형태인 10 m ${\times}$ 10 m 크기 격자(grid) 형태의 주제도를 작성하였으며 이를 지진특성에 의해 결정되는 Arias intensity와 임계가속도와 결합하여 Newmark 변위를 계산하였다. 본 연구에서는 특히 2007년 l윌 연구지역 주변에서 발생한 규모 4.8의 지진에 대하여 지진에 의해 유발되는 산사태의 취약성을 분석하였으며 지반의 포화정도가 취약성에 미치는 영향을 분석하기 위하여 지하수위를 변동시켜가며 분석을 수행하였다. 또한 지진의 규모와 진앙까지의 거리가 산사태의 취약성 해석결과에 미치는 영향을 파악하기 위하여 3.0 - 4.0 규모의 지진이 연구지역 내의 다양한 위치에서 발생하는 것을 가정하였으며 집중강우에 의해 지반에 포화된 상황을 고려하기 위해 지하수위를 변동시켜가며 산사태의 취약성을 분석하였다.

LRB 기초분리장치의 교량 내진효과 (Seismic Effect of LRB Base Isolator on Bridges)

  • 황의승
    • 대한토목학회논문집
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    • 제13권5호
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    • pp.13-18
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    • 1993
  • 본 논문의 목적은 LRB 기초분리장치가 설치된 교량의 내진효과를 해석하는 것이다. 기초분리방법은 지진력이 구조물에 전달되기 전에 그 영향을 최소화시키는 방법으로 현재 건물, 발전소, 교량 등의 구조물에 실용화되고 있다. 본 연구에서는 대표적인 기초분리장치인 Lead Rubber Bearing이 설치된 교량의 단순화된 모델을 개발하고 여러 크기의 LRB에 대하여 지진의 영향을 해석하였다. 단순화된 교량모델의 운동방정식을 Newmark ${\beta}$ 방법에 의해 시간이력해석을 수행하였다. 기초분리장치의 모델로는 이중선형성을 갖는 스프링을, 교각모델로는 비선형성 및 강성저하를 고려한 Q-HYST모델을 사용하였다. 해석예로 미국 네바다주에 소재한 Rose Creek 교량에 대한 남북방향 El Centro지진(1940)의 영향을 해석하였다. 상부구조 횡방향처짐, 교각연성 및 교각 밑면 전단력을 구하였다.

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Transient response of rhombic laminates

  • Anish, Anish;Chaubey, Abhay K.;Vishwakarma, Satyam;Kumar, Ajay;Fic, Stanislaw;Barnat-Hunek, Danuta
    • Structural Engineering and Mechanics
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    • 제70권5호
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    • pp.551-562
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    • 2019
  • In the present study, a suitable mathematical model considering parabolic transverse shear strains for dynamic analysis of laminated composite skew plates under different types of impulse and spatial loads was presented for the first time. The proposed mathematical model satisfies zero transverse shear strain at the top and bottom of the plate. On the basis of the cubic variation of thickness coordinate in in-plane displacement fields of the present mathematical model, a 2D finite element (FE) model was developed including skew transformations in the mathematical model. No shear correction factor is required in the present formulation and damping effect was also incorporated. This is the first FE implementation considering a cubic variation of thickness coordinate in in-plane displacement fields including skew transformations to solve the forced vibration problem of composite skew plates. The effect of transverse shear and rotary inertia was incorporated in the present model. The Newmark-${\beta}$ scheme was adapted to perform time integration from step to step. The $C^0$ FE formulation was implemented to overcome the problem of $C^1$ continuity associated with the cubic variation of thickness coordinate in in-plane displacement fields. The numerical studies showed that the present 2D FE model predicts the result close to the analytical results. Many new results varying different parameter such as skew angles, boundary conditions, etc. were presented.