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      Vibration control laws via shunted piezoelectric transducers: A review

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      https://www.riss.kr/link?id=A99965594

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      다국어 초록 (Multilingual Abstract)

      Attaching a piezoelectric transducer to a vibrating structure, and shunting it with an electric circuit, gives rise to different passive, semi-passive, and semi-active control techniques. This paper attempts to review the research related to structura...

      Attaching a piezoelectric transducer to a vibrating structure, and shunting it with an electric circuit, gives rise to different passive, semi-passive, and semi-active control techniques. This paper attempts to review the research related to structural vibration control, via passive, semi-passive, and semi-active control methods. First, the existing electromechanical modeling is reviewed, along with the modeling methods. These range from lumped parameters, to distributed parameters modeling of piezostructural systems shunted by electrical networks. Vibration control laws are then discussed, covering passive, semi-passive, and semi-active control techniques, which are classified according to whether external power is supplied to the piezoelectric transducers, or not. Emphasis is placed on recent articles covering semi-passive and semi-active control techniques, based upon switched shunt circuits. This review provides the necessary background material for researchers interested in the growing field of vibration damping and control, via shunted piezostructural systems.

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      목차 (Table of Contents)

      • Abstract
      • 1. Introduction
      • 2. Modeling of Shunted Piezostructural Systems
      • 3. Control Laws for Shunted Piezostructural Systems
      • 4. Conclusion and Future Direction
      • Abstract
      • 1. Introduction
      • 2. Modeling of Shunted Piezostructural Systems
      • 3. Control Laws for Shunted Piezostructural Systems
      • 4. Conclusion and Future Direction
      • References
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      참고문헌 (Reference)

      1 Clark, W.W., "Vibration control with state-switched piezoelectric materials" 11 (11): 263-271, 2000

      2 Dong, X. J., "Vibration control of piezoelectric smart structures based on system identification technique: Numerical simulation and experimental study" 297 (297): 680-693, 2006

      3 Song, G., "Vibration control of civil structures using piezoceramic smart materials: A review" 28 (28): 1513-1524, 2006

      4 Ji, H., "Vibration control of a composite beam using self-sensing semi-active approach" 23 : 663-670, 2010

      5 Ji, H., "Two-mode vibration control of a beam using nonlinear synchronized switching damping based on the maximization of converted energy" 329 (329): 2751-2767, 2010

      6 Mokrani, B., "Synchronized switch damping on inductor and negative capacitance" 23 (23): 2065-2075, 2012

      7 Ducarne, J., "Structural vibration reduction by switch shunting of piezoelectric elements: modeling and optimization" 21 (21): 797-816, 2010

      8 Wu, S. Y., "Structural vibration damping experiments using improved piezoelectric shunts" 3045 : 40-50, 1997

      9 Guyomar, D., "Stiffness tuning using a low-cost semiactive nonlinear technique" 13 (13): 604-607, 2008

      10 Cunefare, K. A., "State-switched absorber for vibration control of point-excited beams" 13 (13): 97-105, 2002

      1 Clark, W.W., "Vibration control with state-switched piezoelectric materials" 11 (11): 263-271, 2000

      2 Dong, X. J., "Vibration control of piezoelectric smart structures based on system identification technique: Numerical simulation and experimental study" 297 (297): 680-693, 2006

      3 Song, G., "Vibration control of civil structures using piezoceramic smart materials: A review" 28 (28): 1513-1524, 2006

      4 Ji, H., "Vibration control of a composite beam using self-sensing semi-active approach" 23 : 663-670, 2010

      5 Ji, H., "Two-mode vibration control of a beam using nonlinear synchronized switching damping based on the maximization of converted energy" 329 (329): 2751-2767, 2010

      6 Mokrani, B., "Synchronized switch damping on inductor and negative capacitance" 23 (23): 2065-2075, 2012

      7 Ducarne, J., "Structural vibration reduction by switch shunting of piezoelectric elements: modeling and optimization" 21 (21): 797-816, 2010

      8 Wu, S. Y., "Structural vibration damping experiments using improved piezoelectric shunts" 3045 : 40-50, 1997

      9 Guyomar, D., "Stiffness tuning using a low-cost semiactive nonlinear technique" 13 (13): 604-607, 2008

      10 Cunefare, K. A., "State-switched absorber for vibration control of point-excited beams" 13 (13): 97-105, 2002

      11 Larson G. D., "State switched transducers: A new approach to high-power, lowfrequency, underwater projectors" 103 (103): 1428-1441, 1998

      12 Fisco, N. R., "Smart structures: Part I—Active and semi-active control" 18 (18): 275-284, 2011

      13 Fisco, N. R., "Smart structures: Part II— Hybrid control systems and control strategies" 18 (18): 285-295, 2011

      14 Lefeuvre, E., "Semipassive piezoelectric structural damping by synchronized switching on voltage sources" 17 (17): 653-660, 2006

      15 Ji, H., "Semiactive vibration control of a composite beam using an adaptive SSDV approach" 20 (20): 401-412, 2009

      16 Tang, J., "Semiactive and active-passive hybrid structural damping treatments via piezoelectric materials" 32 (32): 189-200, 2000

      17 Guyomar, D., "Semi-passive random vibration control based on statistics" 307 (307): 818-833, 2007

      18 Richard, C., "Semi-passive damping using continuous switching of a piezoelectric device" 3672 : 104-111, 1999

      19 Cheng, J., "Semi-active vibration suppression by a novel synchronized switch circuit with negative capacitance" 37 (37): 291-308, 2011

      20 Clark, W. W., "Semi-active vibration control with piezoelectric materials as variable stiffness actuators" 3672 : 123-130, 1999

      21 Qiu, J., "Semi-active vibration control using piezoelectric actuators in smart structures" 4 (4): 242-251, 2009

      22 Ji, H., "Semi-active vibration control of a composite beam by adaptive synchronized switching on voltage sources based on LMS algorithm" 20 (20): 939-947, 2009

      23 Lallart, M., "Selfpowered circuit for broadband, multimodal piezoelectric vibration control" 143 (143): 377-382, 2008

      24 Richard, C., "Selfpowered Electronic Breaker with Automatic Switching by Detecting Maxima or Minima of Potential Difference Between its Power Electrodes"

      25 Lallart, M., "Self-powered circuit for broadband, multimodal piezoelectric vibration control" 143 (143): 377-382, 2007

      26 Sunar, M., "Recent advances in sensing and control of flexible structures via piezoelectric materials technology" 52 (52): 1-16, 1999

      27 Badel, A., "Piezoelectric vibration control by synchronized switching on adaptive voltage sources : towards wideband semi-active damping" 119 (119): 2815-2825, 2006

      28 Wu, S. Y., "Piezoelectric shunts with a parallel R-L circuit for structural damping and vibration control" 2720 : 259-269, 1996

      29 Wu, S., "Piezoelectric shunt vibration damping of an F-15 panel under high-acoustic excitation" 3989 : 276-287, 2000

      30 dell’Isola, F., "Passive damping of beam vibrations through distributed electric networks and piezoelectric transducers: prototype design and experimental validation" 13 (13): 299-308, 2004

      31 Guyomar, D., "Nonlinear semi-passive multimodal vibration damping: An efficient probabilistic approach" 294 (294): 249-268, 2006

      32 Lallart, M., "Nonlinear semi-active damping using constant or adaptive voltage sources: a stability analysis" 19 (19): 1131-1142, 2008

      33 Harari, S., "New semiactive multi-modal vibration control using piezoceramic components" 20 (20): 1603-1613, 2009

      34 Anderson, B.D.O., "Network Analysis and Synthesis: A Modern Systems Theory Approach" Prentice Hall 1973

      35 Behrens, S., "Multiple mode current flowing passive piezoelectric shunt controller" 266 (266): 929-942, 2003

      36 Hollkamp, J. J., "Multimodal passive vibration suppression with piezoelectric materials and resonant shunts" 5 (5): 49-56, 1994

      37 Ji, H., "Multi-modal vibration control using a synchronized switch based on a displacement switching threshold" 18 (18): 8-, 2009

      38 Hagood, N. W., "Modelling of piezoelectric actuator dynamics for active structural control" 1 (1): 327-354, 1990

      39 Erturk, A., "Issues in mathematical modeling of piezoelectric energy harvesters" 17 (17): 14-, 2008

      40 Simpson, J., "Industrial approach to piezoelectric damping of large fighter aircraft components" 3326 : 34-46, 1998

      41 Kim, S., "Improvement of aeroelastic stability of hingeless helicopter rotor blade by passive piezoelectric damping" 3672 : 131-141, 1999

      42 Han, X., "Improved piezoelectric switch shunt damping technique using negative capacitance" 332 (332): 7-16, 2013

      43 Trindade, M. A., "Hybrid active-passive damping treatments using viscoelastic and piezoelectric materials: Review and Assessment" 8 (8): 699-745, 2002

      44 Badel, A., "Finite element and simple lumped modeling for flexural nonlinear semi-passive damping" 18 (18): 727-742, 2007

      45 Hagood, N. W., "Experimental investigations of passive enhancement of damping space structures" 14 (14): 1100-1109, 1991

      46 Richard, C., "Enhanced semi-passive damping using continuous switching of a piezoelectric device on an inductor" 3989 : 288-299, 2000

      47 Delpero, T., "Energy harvesting module for the improvement of the damping performance of autonomous synchronized switching on inductance" 24 (24): 837-845, 2012

      48 Qiu, J. H., "Energy harvesting and vibration control using piezoelectric elements and a non-linear approach" 23-27, 2009

      49 Corr, L. R., "Energy dissipation analysis of piezoceramic semi-active vibration control" 12 (12): 729-736, 2001

      50 Ji, H., "Energy conversion and performance of switched-voltage control based on negative capacitance with arbitrary switching frequency" 21 (21): 11-, 2012

      51 Forward, R. L., "Electronic damping of vibrations in optical structures" 18 (18): 690-697, 1979

      52 Johnson, C.D., "Design of passive damping systems" 117 (117): 171-176, 1995

      53 Silva, S. D., "Design of a control system using linear matrix inequalities for the active vibration control of a plate" 17 (17): 81-93, 2006

      54 Edberg, D. L., "Design and development of passive damping concepts in advanced composite large space structures" 1991

      55 Hagood, N.W., "Damping of structural vibrations with piezoelectric materials and passive electrical networks" 146 (146): 243-268, 1991

      56 Holdhusen, M. H., "Damping effects on the state-switched absorber used for vibration suppression" 14 (14): 551-561, 2003

      57 Guyomar, D., "Damping behavior of semi-passive vibration control using shunted piezoelectric materials" 19 (19): 977-985, 2008

      58 Guyomar, D., "Damping behavior of semi-passive vibration control using shunted piezoelectric materials" 19 (19): 977-985, 2008

      59 Corr, L.R., "Comparison of lowfrequency piezoelectric switching shunt techniques for structural damping" 11 (11): 370-376, 2002

      60 Law, H. H., "Characterization of mechanical vibration damping by piezoelectric materials" 197 (197): 489-513, 1996

      61 Lallart, M., "Blind switch damping (BSD): A self-adaptive semi-active damping technique" 328 (328): 29-41, 2009

      62 Thorp, O., "Attenuation and localization of wave propagation in rods with periodic shunted piezoelectric patches" 10 (10): 979-989, 2001

      63 Ji, H., "Application of a Negative Capacitance Circuit in Synchronized Switch Damping Techniques for Vibration Suppression" 133 (133): 041015-1-1-, 2011

      64 Neubauer, M., "Analytical and experimental investigation of the frequency ratio and switching law for piezoelectric switching techniques" 17 (17): 9-, 2008

      65 Ji, H., "Analysis of energy conversion in two-mode vibration control using synchronized switch damping approach" 330 (330): 539-3560, 2011

      66 Ji, H., "Analysis of energy conversion in switched-voltage control with arbitrary switching frequency" 174 : 162-172, 2012

      67 Richard, C., "An original damping approach using a switched piezoelectric device" 21-28, 1999

      68 Niederberger, D., "An autonomous shunt circuit for vibration damping" 15 (15): 359-364, 2006

      69 Davis, C. L., "An actively tuned solid-state vibration absorber using capacitive shunting of piezoelectric stiffness" 232 (232): 601-617, 2000

      70 Benjeddou, A., "Advances in piezoelectric finite element modeling of adaptive structural elements: a survey" 76 (76): 347-363, 2000

      71 Benjeddou, A., "Advances in hybrid active-passive vibration and noise control via piezoelectric and viscoelastic constrained layer treatments" 7 (7): 565-602, 2001

      72 Fleming, A.J., "Adaptive piezoelectric shunt damping" 12 (12): 36-48, 2003

      73 Niederberger, D., "Adaptive multi-mode resonant piezoelectric shunt damping" 13 (13): 1025-1035, 2004

      74 Tang, J., "Active-passive hybrid piezoelectric networks for vibration control: Comparisons and improvement" 10 (10): 794-806, 2001

      75 Hopkins, M. A., "Active vibrationsuppression systems applied to twin-tail buffering" 3326 : 27-33, 1998

      76 Qiu, Z. C., "Active vibration control of a flexible beam using a non-collocated acceleration sensor and piezoelectric patch actuator" 326 (326): 438-455, 2009

      77 Sheta, E. F., "Active smart material control system for buffet alleviation" 292 (292): 854-868, 2006

      78 Ramaratnam, A., "A switched stiffness approach for structural vibration control: Theory and realtime implementation" 291 (291): 258-274, 2006

      79 Moheimani, S. O. R., "A survey of recent innovations in vibration damping and control using shunted piezoelectric transducers" 11 (11): 482-494, 2003

      80 Wang, Y., "A survey of control strategies for simultaneous vibration suppression and energy harvesting via piezoceramics" 23 (23): 2021-2037, 2012

      81 Hollkamp, J. J., "A self-tuning piezoelectric vibration absorber" 5 (5): 559-566, 1994

      82 Konak, M. J., "A self-powered discrete time piezoelectric vibration damper" 3241 : 270-279, 1997

      83 Anton, S. R., "A review of power harvesting using piezoelectric materials (2003–2006)" 16 (16): R1-R21, 2007

      84 Sodano, H. A., "A review of power harvesting from vibration using piezoelectric materials" 36 (36): 197-205, 2004

      85 Corr, L. R., "A novel semi-active multi-modal vibration control law for a piezoceramic actuator" 125 (125): 214-222, 2003

      86 Caruso, G., "A critical analysis of electric shunt circuits employed in piezoelectric passive vibration damping" 10 (10): 1059-1068, 2001

      87 Petit, L., "A broadband semi passive piezoelectric technique for structural damping" 5386 : 414-425, 2004

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