Articles

Integrated device for multiscale series vibration reduction and energy harvesting

Expand
  • Beijing Key Laboratory of Nonlinear Vibrations and Strength of Mechanical Structures, Faculty of Materials and Manufacturing, Beijing University of Technology, Beijing 100124, China

Received date: 2023-08-18

  Revised date: 2023-10-30

  Online published: 2023-11-27

Supported by

the National Natural Science Foundation of China (Nos. 11972050 and 12332001)

Abstract

A multi-degree-of-freedom device is proposed, which can achieve efficient vibration reduction as the main objective and energy harvesting as the secondary purpose. The device comprises a multiscale nonlinear vibration absorber (NVA) and piezoelectric components. Energy conversion and energy measurement methods are used to evaluate the device performance from multiple perspectives. Research has shown that this device can efficiently transfer transient energy from the main structure and convert a portion of transient energy into electrical energy. Main resonance and higher-order resonance are the main reasons for efficient energy transfer. The device can maintain high vibration reduction performance even when the excitation amplitude changes over a large range. Compared with the single structures with and without precompression, the multiscale NVA-piezoelectric device offers significant vibration reduction advantages. In addition, there are significant differences in the parameter settings of the two substructures for vibration reduction and energy harvesting.

Cite this article

Jihou YANG, Weixing ZHANG, Xiaodong YANG . Integrated device for multiscale series vibration reduction and energy harvesting[J]. Applied Mathematics and Mechanics, 2023 , 44(12) : 2227 -2242 . DOI: 10.1007/s10483-023-3063-8

References

[1] QUINTANA, G. and CIURAN, J. Chatter in machining processes: a review. International Journal of Machine Tools and Manufacture, 51, 363–376(2011)
[2] GHARIB, M., OMRAN, A., and El-BAYOUMI, G. Optimal vibration control for structuralacoustic coupling system. Journal of Vibration and Control, 19, 14–29(2013)
[3] LI, M. J., LI, M., LIU, Y. F., GENG, X. Y., and LI, X. Y. A review on the development of spaceborne membrane antennas. Space: Science and Technology, 2022, 9803603(2022)
[4] SUN, Z. Y., YANG, H., DONG, Q., MO, Y., LI, H., and JIANG, Z. H. Autonomous assembly method of 3-arm robot to fix the multipin and hole load plate on a space station. Space: Science and Technology, 2021, 9815389(2021)
[5] SOONG, T. T. and SPENCER, B. F. Supplemental energy dissipation: state-of-the-art and stateof-the-practice. Engineering Structures, 24, 243–259(2002)
[6] LU, Z., WANG, Z. X., ZHOU, Y., and LU, X. L. Nonlinear dissipative devices in structural vibration control: a review. Journal of Sound and Vibration, 42, 18–49(2018)
[7] DAVIS, C. L. and LESIEUTRE, G. A. An actively tuned solid-state vibration absorber using capacitive shunting of piezoelectric stiffness. Journal of Sound and Vibration, 232, 601–617(2000)
[8] SUN, J. Q., JOLLY, M. R., and NORRIS, M. A. Passive, adaptive and active tuned vibration absorbers: a survey. Journal of Mechanical Design, 117, 234–242(1995)
[9] VAKAKIS, A. F. Inducing passive nonlinear energy sinks in vibrating systems. Journal of Vibration and Acoustics-Transactions of the ASME, 123, 324–332(2001)
[10] GENDELMAN, O., MANEVITCH, L. I., VAKAKIS. A. F., and M’CLOSKEY, R. Energy pumping in nonlinear mechanical oscillators, part I: dynamics of the underlying Hamiltonian systems. Journal of Applied Mechanics-Transactions of the ASME, 68, 34–41(2001)
[11] VAKAKIS, A. F. and GENDELMAN, O. Energy pumping in nonlinear mechanical oscillators, part II: resonance capture. Journal of Applied Mechanics-Transactions of the ASME, 68, 42–48(2001)
[12] GOURDON, E., ALEXANDER, N. A., TAYLOR, C. A., LAMARQUE, C. H., and PERNOT, S. Nonlinear energy pumping under transient forcing with strongly nonlinear coupling: theoretical and experimental results. Journal of Sound and Vibration, 300, 522–551(2007)
[13] VAKAVIS, A. F., GENDELMAN, O. V., BERGMAN, L. A., MCFARLAND, D. M., KERSCHEN, G., and LEE, Y. S. Nonlinear Targeted Energy Transfer in Mechanical and Structural Systems, Springer Science & Business Media, New York, 162–227(2008)
[14] CHEN, H. Y., MAO, X. Y., DING, H., and CHEN, L. Q. Elimination of multimode resonances of composite plate by inertial nonlinear energy sinks. Mechanical Systems and Signal Processing, 135, 106383(2020)
[15] XUE, J. R., ZHANG, Y. W., DING, H., and CHEN, L. Q. Vibration reduction evaluation of a linear system with a nonlinear energy sink under a harmonic and random excitation. Applied Mathematics and Mechanics (English Edition), 41(1), 1–14(2020) https://doi.org/10.1007/s10483-020-2560-6
[16] ZHANG, Y. W., YUAN, B., FANG, B., and CHEN, L. Q. Reducing thermal shock-induced vibration of an axially moving beam via a nonlinear energy sink. Nonlinear Dynamics, 287, 1159– 1167(2017)
[17] CHEN, J. E., ZHANG, W., LIU, J., and HU, W. H. Vibration absorption of parallel-coupled nonlinear energy sink under shock and harmonic excitations. Applied Mathematics and Mechanics (English Edition), 42(8), 1135–1154(2021) https://doi.org/10.1007/s10483-021-2757-6
[18] ANTON, S. R. and SODANO, H. A. A review of power harvesting using piezoelectric materials. Smart Materials and Structures, 16, 1–21(2007)
[19] ZHU, D., TUDOR, M. J., and BEEBY, S. P. Strategies for increasing the operating frequency range of vibration energy harvesters: a review. Measurement Science and Technology, 21, 022001(2009)
[20] TANG, L. H., YANG, Y. W., and SOH, C. K. Toward broadband vibration-based energy harvesting. Journal of Intelligent Material Systems and Structures, 21, 1867–1897(2010)
[21] QUINN, D. D., TRIPLETT, A. L., VAKAKIS, A. F., and BERGMAN, L. A. Energy harvesting from impulsive loads using intentional essential nonlinearities. Journal of Vibration and AcousticsTransactions of the ASME, 133, 011004(2011)
[22] REMICK, K., JOO, H. K., MCFARLAND, D. M., BERGMAN, L. A., and VAKAKIS, A. F. Sustained high-frequency energy harvesting through a strongly nonlinear electromechanical system under single and repeated impulsive excitations. Journal of Sound and Vibration, 133, 3214–3235(2014)
[23] JIANG, W. A., HAN, X, J., CHEN, L. Q., and BI, Q. S. Improving energy harvesting by internal resonance in a spring-pendulum system. Acta Mechanica Sinica, 36, 618–623(2020)
[24] CHEN, L. Q. and JIANG, W. A. Internal resonance energy harvesting. Journal of Applied Mechanics, 82, 031004(2015)
[25] CHEN, L. Q., JIANG, W. A., PANYAM, M., and DAQAQ, M. F. A broadband internally-resonant vibratory energy harvester. Journal of Vibration and Acoutics, 138, 061007(2016)
[26] CHTIBA, M. O., CHOURA, S., and El-BORGI, S. Vibration confinement and energy harvesting in flexible structures using collocated absorbers and piezoelectric devices. Journal of Sound and Vibration, 329, 261–276(2010)
[27] KREMER, D. and LIU, K. A nonlinear energy sink with an energy harvester: transient responses. Journal of Sound and Vibration, 333, 4859–4880(2014)
[28] AHMADABADI, Z. N. and KHADEM, S. E. Nonlinear vibration control and energy harvesting of a beam using a nonlinear energy sink and a piezoelectric device. Journal of Sound and Vibration, 333, 4444–4457(2014)
[29] REMICK, K., QUINN, D. D., MCFARLAND, D. M., BERGMAN, L., and VAKAKIA, A. F. Highfrequency vibration energy harvesting from impulsive excitation utilizing intentional dynamic instability caused by strong nonlinearity. Journal of Sound and Vibration, 370, 259–279(2016)
[30] ZHANG, Y., TANG, L. H., and LIU, K. F. Piezoelectric energy harvesting with a nonlinear energy sink. Journal of Intelligent Material Systems and Structures, 28, 307–322(2017)
[31] FASUIH, A., SHAHGHOLI, M., and GHAHREMAN, S. The effects of nonlinear energy sink and piezoelectric energy harvester on aeroelastic instability of an airfoil. Journal of Vibration and Control, 28, 1418–1432(2021)
[32] HUANG, X. B. and YANG, B. T. Towards novel energy shunt inspired vibration suppression techniques: principles, designs and applications. Mechanical Systems and Signal Processing, 182, 109496(2023)
[33] ZHANG, Z., ZHANG, Y. W., and DING, H. Vibration control combining nonlinear isolation and nonlinear absorption. Nonlinear Dynamics, 100, 2121–2139(2020)
[34] LI, X., ZHANG, Y. W., DING, H., and CHEN, L. Q. Dynamics and evaluation of a nonlinear energy sink integrated by a piezoelectric energy harvester under a harmonic excitation. Journal of Vibration and Control, 25, 851–867(2019)
Outlines

/

APS Journals | CSTAM Journals | AMS Journals | EMS Journals | ASME Journals