• Title/Summary/Keyword: vibration velocity

검색결과 1,400건 처리시간 0.031초

난류하에서의 TMD에 의한 현수교 주탑의 진동제어 (Vibration Control for Tower of Suspension Bridge under Turbulence using TMD)

  • 김기두;황윤국;변윤주;장동일
    • 한국강구조학회 논문집
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    • 제9권2호통권31호
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    • pp.181-191
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    • 1997
  • 케이블이 가설되기 전까지 외팔보 형태로 지지되는 현수교의 주탑에 불규칙적인 변동 공기력이 작용할 때 발생하는 버페팅은 구조물의 기본 고유진동수와 일치하는 풍속이 존재하고 이에 따른 주탑의 공진에 의해 큰 응답을 유발할 수 있다. 버페팅 하중에 의한 동적 응답을 감소시키기 위해서 제진장치의 일종인 TMD(Tuned Mass Damper)를 부착한 주탑의 거동특성에 관한 연구를 유한요소법에 의하여 시간영역에서 수행하였다. 버페팅 하중을 구하기 위하여 주파수 영역의 속도스펙트럼을 시간영역의 무작위변량으로 변환시켰으며, peak factor를 이용하여 일정기간동안 일어날 수 있는 구조물의 최대 변위의 기대치를 구하였다. 최적의 TMD 부착위치와 제원을 변수별 수치해석을 통하여 결정하였으며, 최적의 제원을 갖는 TMD에 의한 풍속별 진동제어 효과를 검토하였다.

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Three-dimensional dynamics of vortex-induced vibration of a pipe with internal flow in the subcritical and supercritical regimes

  • Duan, Jinlong;Chen, Ke;You, Yunxiang;Wang, Renfeng;Li, Jinlong
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제10권6호
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    • pp.692-710
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    • 2018
  • The Three-dimensional (3-D) dynamical behaviors of a fluid-conveying pipe subjected to vortex-induced vibration are investigated with different internal flow velocity ${\nu}$. The values of the internal flow velocity are considered in both subcritical and supercritical regimes. During the study, the 3-D nonlinear equations are discretized by the Galerkin method and solved by a fourth-order Runge-Kutta method. The results indicate that for a constant internal flow velocity ${\nu}$ in the subcritical regime, the peak Cross-flow (CF) amplitude increases firstly and then decrease accompanied by amplitude jumps with the increase of the external reduced velocity. While two response bands are observed in the In-line (IL) direction. For the dynamics in the lock-in condition, 3-D periodic, quasi-periodic and chaotic vibrations are observed. A variety of CF and IL responses can be detected for different modes with the increase of ${\nu}$. For the cases studied in the supercritical regime, the dynamics shows a great diversity with that in the subcritical regime. Various dynamical responses, which include 3-D periodic, quasi-periodic as well as chaotic motions, are found while both CF and IL responses are coupled while ${\nu}$ is beyond the critical value. Besides, the responses corresponding to different couples of ${\mu}_1$ and ${\mu}_2$ are obviously distinct from each other.

Dynamic Responses and Fuzzy Control of a Simply Supported Beam Subjected to a Moving Mass

  • Kong, Yong-Sik;Ryu, Bong-Jo;Shin, Kwang-Bok;Lee, Gyu-Seop;Lee, Hong-Gi
    • Journal of Mechanical Science and Technology
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    • 제20권9호
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    • pp.1371-1381
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    • 2006
  • This paper deals with the active vibration control of a simply-supported beam traversed by a moving mass using fuzzy control. Governing equations for dynamic responses of a beam under a moving mass are derived by Galerkin's mode summation method, and the effect of forces (gravity force, Coliolis force, inertia force caused by the slope of the beam, transverse inertia force of the beam) due to the moving mass on the dynamic response of a beam is discussed. For the active control of dynamic deflection and vibration of a beam under the moving mass, the controller based on fuzzy logic is used and the experiments are conducted by VCM (voice coil motor) actuator to suppress the vibration of a beam. Through the numerical and experimental studies, the following conclusions were obtained. With increasing mass ratio y at a fixed velocity of the moving mass under the critical velocity, the position of moving mass at the maximum dynamic deflection moves to the right end of the beam. With increasing velocity of the moving mass at a fixed mass ratio ${\gamma}$, the position of moving mass at the maximum dynamic deflection moves to the right end of the beam too. The numerical predictions of dynamic deflection of the beam have a good agreement with the experimental results. With the fuzzy control, more than 50% reductions of dynamic deflection and residual vibration of the tested beam under the moving mass are obtained.

부착식 PSC 텐던의 종진동 메카니즘 (Longitudinal Vibration Mechanism of Grouted PSC Tendon)

  • 김병화;장정범;이홍표
    • 대한토목학회논문집
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    • 제31권3A호
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    • pp.261-267
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    • 2011
  • 본 연구는 부착식 PSC 텐던에 도입된 긴장응력이 종진동 거동에 미치는 메커니즘을 규명한다. 텐던의 종방향 직선변형과 비틀림변형은 상호 연동하여 거동하고, 텐던에 도입된 긴장응력은 축강성과 비틀림강성에 영향을 미친다. 그러므로 텐던의 탄성파 속도를 계측함으로써 텐던에 도입된 긴장응력을 추정 할 수 있다. 이는 텐던의 탄성파속도가 축강성과 비틀림강성의 함수이기 때문에 가능하다. 도입 긴장력이 다른 6개의 PSC 보 시험체에 대한 종진동 실험결과를 이용하여 텐던의 종진동 특성과 도입 긴장응력 사이의 역학적 메커니즘이 검증되었다. 이를 위하여, 탄성파 속도로부터 텐던의 시스템 강성을 추정할 수 있는 시스템인식 이론이 적용 되었다. 추정 결과는 기존 문헌의 연구결과와 비교 검토되었다.

전단변형과 시간변화 이동자기력을 고려한 레일의 강제진동모델링 (Forced Vibration Modeling of Rail Considering Shear Deformation and Moving Magnetic Load)

  • 김준수;김성종;이혁;하성규;이영현
    • 대한기계학회논문집A
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    • 제37권12호
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    • pp.1547-1557
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    • 2013
  • 시간변화 이동자기력이 작용하는 레일의 변형을 티모센코 보 이론(Timoshenko beam theory)로 가정하였으며, 보의 진동특성에 영향을 미치는 탄성체기초의 감쇠효과 및 강성을 고려하였다. 푸리에 급수와 수치해석을 이용해 강제진동모델의 동적응답과 임계속도를 구하였다. 레일의 진동모델을 유한요소 해석 및 오일러 보 이론(Euler beam theory)과 비교 검증하였다. 강제진동모델을 이용하여 레일의 영구변형을 예측하였으며, 실험결과 레일표면의 영구변형 및 마모를 확인하였다. 보의 설계변수인 레일의 형상, 재료, 탄성체 기초의 감쇠효과 및 강성이 레일의 임계속도 및 레일의 처짐, 축 방향 응력, 전단 응력에 미치는 영향에 대한 매개변수적 연구를 진행하였으며, 보의 설계방향을 얻을 수 있었다.

발목관절 가동술과 결합한 전신진동운동이 뇌졸중 환자의 보행 기능과 균형 능력에 미치는 영향: 무작위 대조 예비연구 (Effects of the Whole-body Vibration Exercise Combined with Ankle Joint Mobilization on the Gait Function and Balancing Ability in Stroke Patients: A Preliminary Randomized, Controlled Study)

  • 손수봉;최경욱;김태우;박상영;차용준
    • 대한물리의학회지
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    • 제17권4호
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    • pp.103-111
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    • 2022
  • PURPOSE: This study was performed to investigate the effects of the whole-body vibration exercise combined with ankle joint mobilization on the gait and balancing ability in patients with hemiplegic stroke. METHODS: A total of 19 patients at a rehabilitation hospital who had suffered a hemiplegic stroke were randomly assigned to the experimental group (whole-body vibration exercise combined with ankle joint mobilization, n=10) or control group (whole-body vibration exercise, n=9). All participants underwent 30 min of comprehensive rehabilitation therapy (5 × /week for 6 weeks). Additionally, the experimental group performed the whole body vibration exercise and ankle joint mobilization (15 minutes each, 30 minutes total, 3 × / week for 6 weeks). In the control group, only the whole- body vibration exercise was performed in the same manner and not the ankle joint mobilization. The gait and balancing abilities were measured before and after the 6-week training. RESULTS: Significant improvements were observed in the 10-m walk test, timed up-and-go (TUG) test, center of pressure (COP) path length, and COP path velocity in the experimental group (p < .05). The experimental group showed a larger decrease in the COP path length and velocity than the control group (COP path length, -10.27 mm vs. -3.67 mm, p < .05; COP path velocity, -.33 cm/sec vs. -.13 cm/sec, p < .05, respectively). CONCLUSION: The whole-body vibration exercise combined with ankle joint mobilization could be effective in improving the gait and balancing ability of stroke patients and could also be more effective for improving the static balance ability than the general whole-body vibration exercise alone.

자동볼평형장치의 동적거동에 미치는 중력과 속도파형의 영향 (Effects of Gravity and Angular Velocity Profiles on the Dynamic Behavior of an Automatic Ball Balancer)

  • 정두한;정진태
    • 대한기계학회논문집A
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    • 제28권5호
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    • pp.511-516
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    • 2004
  • The dynamic behavior of an automatic ball balancer (ABB) is studied considering the effects of gravity and angular velocity profiles. In this study, a physical model for an ABB installed on the Jeffcott rotor is adopted in order to investigate the effects of gravity and angular acceleration. The equations of motion for the rotor with ABB are derived by using Lagrange's equation. Based on derived equations, dynamic responses for the rotor are computed by using the generalized-o method. From the computed responses, the effects of gravity and angular velocity profiles on the dynamic behavior are investigated. It is found that the balancing of the rotor with ABB can be achieved regardless of gravity. It Is also shown that a smooth velocity profile yields relatively smaller vibration amplitude than a non-smooth velocity profile.

Fluidelastic instability of a curved tube array in single phase cross flow

  • Kang-Hee Lee;Heung-Seok Kang;Du-Ho Hong;Jong-In Kim
    • Nuclear Engineering and Technology
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    • 제55권3호
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    • pp.1118-1124
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    • 2023
  • Experimental study on the fluidelastic instability (FEI) of a curved tube bundle in single phase downward cross flow is investigated for the design qualification and analysis input preparation of helical coiled steam generator tubing. A 6×9 normal square curved tube array with equal and different vertical/horizontal pitch-to-diameter ratio was under-tested up to 6 m/s in term of gap flow velocity to measure the critical velocity for FEI. The critical velocity for FEI was measured at the turning point from the vibration amplitude plot along the gap flow velocity. Our test results were compared with straight tube results and published data in the design guideline. The applicability of the current design guidelines to a curved tube bundle is also assessed. We found that introducing frequency difference in a curved tube array increases the critical velocity for fluidelastic instability.

Vibration control of laminated composite plates using embedded smart layers

  • Reddy, J.N.;Krishnan, S.
    • Structural Engineering and Mechanics
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    • 제12권2호
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    • pp.135-156
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    • 2001
  • Analytical solutions and finite element results of laminated composite plates with smart material layers embedded in them are presented in this study. The third-order plate theory of Reddy is used to study vibration suppression characteristics. The analytical solution for simply supported boundary conditions is based on the Navier solution procedure. The velocity feedback control is used. Parametric effects of the position of the smart material layers, material properties, and control parameters on the suppression time are investigated. It has been found that (a) the minimum vibration suppression time is achieved by placing the smart material layers farthest from the neutral axis, (b) using thinner smart material layers have better vibration attenuation characteristics, and, (c) the vibration suppression time is larger for a lower value of the feedback control coefficient.

유체가 흐르는 곡선관의 진동 해석과 비선형 평형 방정식 (Vibration Analysis and Non-linear Equilibrium Equations of a Curved Pipe Conveying Fluid)

  • 정두한;정진태
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2005년도 춘계학술대회논문집
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    • pp.983-986
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    • 2005
  • Free vibration characteristics of a curved pipe conveying fluid is studied when the pipe is clamped at both ends. Using the perturbation method, the non-linear governing equations divided into two parts; the steady state non-linear equilibrium equations and the linearized equations of motion in the neighborhood of the equilibrium position. The natural frequencies are computed from the linearized equations of motion. In this study, the equilibrium positions are determined by two types of equations, i.e., (1) the non-linear equations, and (2) the equations obtained by neglecting the non-linear terms. The natural frequencies obtained from the non-linear equilibrium equations are compared to those obtained from the linearized equilibrium equations. From the results, as the fluid velocity increases, the equilibrium position should be determined from the nonlinear equations for the vibration analysis of the curved pipe conveying fluid.

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