Academic literature on the topic 'Autoparametric Vibration Absorber'

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Journal articles on the topic "Autoparametric Vibration Absorber"

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HASEGAWA, Shin, and Hiroshi YABUNO. "Vibration absorber characteristics of linear dynamic vibration absorber and autoparametric resonance absorber." Proceedings of Conference of Kanto Branch 2019.25 (2019): 19G20. http://dx.doi.org/10.1299/jsmekanto.2019.25.19g20.

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Abundis-Fong, H. F., J. Enríquez-Zárate, A. Cabrera-Amado, and G. Silva-Navarro. "Optimum Design of a Nonlinear Vibration Absorber Coupled to a Resonant Oscillator: A Case Study." Shock and Vibration 2018 (2018): 1–11. http://dx.doi.org/10.1155/2018/2107607.

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This paper presents the optimal design of a passive autoparametric cantilever beam vibration absorber for a linear mass-spring-damper system subject to harmonic external force. The design of the autoparametric vibration absorber is obtained by using an approximation of the nonlinear frequency response function, computed via the multiple scales method. Based on the solution given by the perturbation method mentioned above, a static optimization problem is formulated in order to determine the optimum parameters (mass and length) of the nonlinear absorber which minimizes the steady state amplitud
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Yan, Zhimiao, and Muhammad R. Hajj. "Energy harvesting from an autoparametric vibration absorber." Smart Materials and Structures 24, no. 11 (2015): 115012. http://dx.doi.org/10.1088/0964-1726/24/11/115012.

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Yabuno, Hiroshi, Yasuhiro Endo, and Nobuharu Aoshima. "Stabilization of 1/3-Order Subharmonic Resonance Using an Autoparametric Vibration Absorber." Journal of Vibration and Acoustics 121, no. 3 (1999): 309–15. http://dx.doi.org/10.1115/1.2893981.

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The paper proposes a stabilization method for 1/3-Order subharmonic resonance with an autoparametric vibration absorber. A main system with nonlinear spring stiffness and harmonic excitation, i.e., subjected to a sinusoidally changed magnetic force, is introduced as a model which produces 1/3-Order subharmonic resonance. A damped pendulum system, whose natural frequency is in the neighborhood of one-half of the main system, is attached to the main system as an absorber, in order to induce 1:2 internal resonance. The 1/3-Order subharmonic resonance which occurs in the case of locked pendulum is
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Kecik, Krzysztof, and Marcin Kapitaniak. "Parametric Analysis of Magnetorheologically Damped Pendulum Vibration Absorber." International Journal of Structural Stability and Dynamics 14, no. 08 (2014): 1440015. http://dx.doi.org/10.1142/s021945541440015x.

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This paper presents numerical and experimental study of an autoparametric pendulum absorber attached to a vertically moving Duffing oscillator. The absorber can be highly efficient for slightly damped systems, when correctly tuned. In the suspension of pendulum absorber, the magnetorheological damper (MR) is installed to allow control. The influence of system parameters: Viscous and magnetorheological damping, stiffness of the spring, parameter which couples both systems on the suppression effectiveness are studied. Additionally, the influence of system parameters on periodic solutions and sta
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Vazquez-Gonzalez, Benjamın, and Gerardo Silva-Navarro. "Evaluation of the Autoparametric Pendulum Vibration Absorber for a Duffing System." Shock and Vibration 15, no. 3-4 (2008): 355–68. http://dx.doi.org/10.1155/2008/827129.

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In this work we study the frequency and dynamic response of a damped Duffing system attached to a parametrically excited pendulum vibration absorber. The multiple scales method is applied to get the autoparametric resonance conditions and the results are compared with a similar application of a pendulum absorber for a linear primary system. The approximate frequency analysis reveals that the nonlinear dynamics of the externally excited system are suppressed by the pendulum absorber and, under this condition, the primary Duffing system yields a time response almost equivalent to that obtained f
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Tan, Ting, Zhimiao Yan, Yajian Zou, and Wenming Zhang. "Optimal dual-functional design for a piezoelectric autoparametric vibration absorber." Mechanical Systems and Signal Processing 123 (May 2019): 513–32. http://dx.doi.org/10.1016/j.ymssp.2019.01.004.

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Yabuno, Hiroshi, Ryo Kanda, Walter Lacarbonara, and Nobuharu Aoshima. "Nonlinear Active Cancellation of the Parametric Resonance in a Magnetically Levitated Body." Journal of Dynamic Systems, Measurement, and Control 126, no. 3 (2004): 433–42. http://dx.doi.org/10.1115/1.1789530.

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An active control strategy for the stabilization of parametric resonance in a magnetically levitated body is proposed. The characteristic feature of the strategy is the exploitation of the nonlinear effect of the inertial force associated with the motion of a pendulum-type vibration absorber driven by an appropriate control torque. As a distinguished feature, the proposed control method does not rely on the effective autoparametric energy transfer between the main system and the absorber. Because the main system is not linearly coupled with the absorber, the drawback inherent in the increase o
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Gumus, Emrah, and Atila Ertas. "Analysis of Free Pendulum Vibration Absorber Using Flexible Multi-Body Dynamics." Shock and Vibration 2016 (2016): 1–19. http://dx.doi.org/10.1155/2016/3253178.

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Structures which are commonly used in our infrastructures are becoming lighter with progress in material science. These structures due to their light weight and low stiffness have shown potential problem of wind-induced vibrations, a direct outcome of which is fatigue failure. In particular, if the structure is long and flexible, failure by fatigue will be inevitable if not designed properly. The main objective of this paper is to perform theoretical analysis for a novel free pendulum device as a passive vibration absorber. In this paper, the beam-tip mass-free pendulum structure is treated as
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Kecik, Krzysztof, Andrzej Mitura, Danuta Sado, and Jerzy Warminski. "Magnetorheological damping and semi-active control of an autoparametric vibration absorber." Meccanica 49, no. 8 (2014): 1887–900. http://dx.doi.org/10.1007/s11012-014-9892-2.

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Dissertations / Theses on the topic "Autoparametric Vibration Absorber"

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Yan, Zhimiao. "Modeling of Nonlinear Unsteady Aerodynamics, Dynamics and Fluid Structure Interactions." Diss., Virginia Tech, 2015. http://hdl.handle.net/10919/71824.

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We model different nonlinear systems, analyze their nonlinear aspects and discuss their applications. First, we present a semi-analytical, geometrically-exact, unsteady potential flow model is developed for airfoils undergoing large amplitude maneuvers. Towards this objective, the classical unsteady theory of Theodorsen is revisited by relaxing some of the major assumptions such as (1) flat wake, (2) small angle of attack, (3) small disturbances to the mean flow components, and (4) time-invariant free-stream. The kinematics of the wake vortices is simulated numerically while the wake and
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Book chapters on the topic "Autoparametric Vibration Absorber"

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Silva-Navarro, G., and H. F. Abundis-Fong. "Evaluation of Autoparametric Vibration Absorbers on N-Story Building-Like Structures." In Nonlinear Dynamics, Volume 1. Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-54404-5_19.

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Náprstek, Jiří, and Cyril Fischer. "A Ball-Type Passive Tuned Mass Vibration Absorber for Response Control of Structures under Harmonic Loading." In Vibration Control of Structures [Working Title]. IntechOpen, 2021. http://dx.doi.org/10.5772/intechopen.97231.

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Ball-type tuned mass absorbers are growing in popularity. They combine a multi-directional effect with compact dimensions, properties that make them attractive for use at slender structures prone to wind excitation. Their main drawback lies in limited adjustability of damping level to a prescribed value. Insufficient damping makes ball-type absorbers more prone than pendula to objectionable effects stemming from the non-linear character of the system. Thus, the structure and design of the damping device have to be made so that the autoparametric resonance states, occurrence of which depends on system parameters and properties of possible excitation, are avoided for safety reasons. This chapter summarises available 3D mathematical models of a ball-pendulum and introduces the non-linear approach based on the Appell–Gibbs function. Efficiency of the models is then illustrated for the case of kinematic and random excitation. Interaction of the absorber and the harmonically forced simple linear structure is numerically analysed. Finally, the chapter provides examples of typical patterns of the autoparametric response and outlines possibilities of applications in practical engineering.
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Conference papers on the topic "Autoparametric Vibration Absorber"

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Vyas, Ashwin, Anil K. Bajaj, and Arvind Raman. "Implementation of the Wideband Autoparametric Vibration Absorber on a Flexible Structure." In ASME 2003 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. ASMEDC, 2003. http://dx.doi.org/10.1115/detc2003/vib-48618.

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The dynamics of a resonantly excited thin cantilever with an active controller are investigated experimentally. The controller mimics a passive wideband absorber discussed in [1]. PZT patches are bonded to both sides of the beam to actuate it, while an electromagnetic shaker drives the beam near resonance. An active controller consisting of an array of uncoupled controllers is developed, such that the governing equations for the controller are quadratically coupled to the resonating system. The control signal, in terms of the motion of the controllers, is quadratically nonlinear. The controlle
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Abundis-Fong, H. F., G. Silva-Navarro, and B. Vazquez-Gonzalez. "Design of a Passive/Active Autoparametric Cantilever Beam Absorber With PZT Actuator for a Building-Like Structure." In ASME 2013 Conference on Smart Materials, Adaptive Structures and Intelligent Systems. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/smasis2013-3230.

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An experimental and theoretical investigation is carried out on a system consisting of a primary structure coupled with a passive/active autoparametric vibration absorber. The primary structure consists of a building-like mechanical structure with two rigid floors connected by flexible columns made from aluminium strips, while the vibration absorber consists of a cantilever beam with a PZT patch actuator cemented and actively controlled through an acquisition card installed on a PC running on a Matlab/Simulink platform. The overall system is then a coupled nonlinear oscillator subjected to sin
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Yabuno, Hiroshi, Yasuhiro Endo, and Nobuharu Aoshima. "Stabilization of 1/3-Order Subharmonic Resonance Using an Autoparametric Absorber." In ASME 1997 Design Engineering Technical Conferences. American Society of Mechanical Engineers, 1997. http://dx.doi.org/10.1115/detc97/vib-4113.

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Abstract The paper proposes a stabilization method for 1/3-order subharmonic resonance with an autoparametric vibration absorber. A main system with nonlinear spring stiffness and harmonic excitation, i.e., subjected to a sinusoidally changed magnetic force, is introduced as a model which produces 1/3-order subharmonic resonance. A damped pendulum system, whose natural frequency is in the neighborhood of one-half of the main system, is attached to the main system as an absorber, in order to induce 1:2 internal resonance. The 1/3-order subharmonic resonance which occurs in the case of locked pe
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Sakaguchi, Ryunosuke, and Toshihiko Sugiura. "Reduction of a Parametrically Excited Horizontal Oscillation in a High-Tc Superconducting Levitation System." In ASME 2012 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference. American Society of Mechanical Engineers, 2012. http://dx.doi.org/10.1115/detc2012-70810.

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This research proposes reduction in the amplitude of nonlinear oscillation in a high-Tc superconducting magnetic levitation system by using a vibration absorber. High-Tc superconducting levitation systems have very low damping and stable levitation without control. However in such low-damped systems, complicated phenomena of dynamics can be easily generated by nonlinearity of the magnetic force. Our previous research showed that, when the frequency of vertical excitation is in the neighborhood of double the natural frequency in the horizontal direction, horizontal oscillation can occur paramet
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Enriquez-Zarate, J., H. F. Abundis-Fong, and G. Silva-Navarro. "Passive vibration control in a building-like structure using a tuned-mass-damper and an autoparametric cantilever beam absorber." In SPIE Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring, edited by Wei-Hsin Liao. SPIE, 2015. http://dx.doi.org/10.1117/12.2083779.

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Abundis-Fong, H. F., and G. Silva-Navarro. "Suppression of mechanical vibrations in a building-like structure using a passive/active autoparametric absorber." In SPIE Smart Structures and Materials + Nondestructive Evaluation and Health Monitoring, edited by Wei-Hsin Liao. SPIE, 2014. http://dx.doi.org/10.1117/12.2046152.

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