Investigating the coupled effect of different aspect ratios and leeward protrusion lengths on vortex-induced vibration (VIV)-galloping energy harvesting: Modelling and experimental validation

Journal of Sound and Vibration - Tập 568 - Trang 118054 - 2024
Juntong Xing1, Masoud Rezaei1, Huliang Dai2, Wei-Hsin Liao1
1Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Shatin, New Territories, Hong Kong, China
2Hubei Key Laboratory for Engineering Structural Analysis and Safety Assessment, School of Aerospace Engineering, Huazhong University of Science and Technology, Wuhan 430074, China

Tài liệu tham khảo

Safaei, 2019, A review of energy harvesting using piezoelectric materials: State-of-the-art a decade later (2008–2018), Smart Mater. Struct., 28, 10.1088/1361-665X/ab36e4 Fu, 2021, Rotational energy harvesting for self-powered sensing, Joule, 5, 1074, 10.1016/j.joule.2021.03.006 Xing, 2022, A rotational hybrid energy harvester utilizing bistability for low-frequency applications: Modelling and experimental validation, Int. J. Mech. Sci., 222, 10.1016/j.ijmecsci.2022.107235 Foong, 2020, Important considerations in optimising the structural aspect of a SDOF electromagnetic vibration energy harvester, J. Sound Vib., 482, 10.1016/j.jsv.2020.115470 Xu, 2022, A nonlinear triboelectric nanogenerator with a broadened bandwidth for effective harvesting of vibration energy, iEnergy, 1, 236, 10.23919/IEN.2022.0028 Yang, 2018, High-performance piezoelectric energy harvesters and their applications, Joule, 2, 642, 10.1016/j.joule.2018.03.011 Mannini, 2018, Modeling the interference of vortex-induced vibration and galloping for a slender rectangular prism, J. Sound Vib., 419, 493, 10.1016/j.jsv.2017.12.016 Zhang, 2017, Design and experimental analysis of broadband energy harvesting from vortex-induced vibrations, J. Sound Vib., 408, 210, 10.1016/j.jsv.2017.07.029 Barrero-Gil, 2010, Energy harvesting from transverse galloping, J. Sound Vib., 329, 2873, 10.1016/j.jsv.2010.01.028 Rezaei, 2019, Wideband PZT energy harvesting from the wake of a bluff body in varying flow speeds, Int. J. Mech. Sci., 163, 10.1016/j.ijmecsci.2019.105135 Wang, 2020, The state-of-the-art review on energy harvesting from flow-induced vibrations, Appl. Energy, 267, 10.1016/j.apenergy.2020.114902 Cao, 2022, Recent advancement of flow-induced piezoelectric vibration energy harvesting techniques: Principles, structures, and nonlinear designs, Appl. Math. Mech., 43, 959, 10.1007/s10483-022-2867-7 Meehan, 2022, Flutter prediction of its occurrence, amplitude and nonlinear behaviour, J. Sound Vib., 535, 10.1016/j.jsv.2022.117117 Wang, 2021, Exploring the potential benefits of using metasurface for galloping energy harvesting, Energy Convers. Manage., 243, 10.1016/j.enconman.2021.114414 Wang, 2021, On the use of metasurface for vortex-induced vibration suppression or energy harvesting, Energy Convers. Manage., 235, 10.1016/j.enconman.2021.113991 Xing, 2023, Investigating the effect of surface protrusions on galloping energy harvesting, Appl. Phys. Lett., 122, 10.1063/5.0142143 Parkinson, 1961, On the aeroelastic instability of bluff cylinders, J. Appl. Mech., 28, 252, 10.1115/1.3641663 Mannini, 2014, VIV–galloping instability of rectangular cylinders: Review and new experiments, J. Wind Eng. Ind. Aerodyn., 132, 109, 10.1016/j.jweia.2014.06.021 Mannini, 2015, Modelling the interaction of VIV and galloping for rectangular cylinders, 1 Tamura, 1981, Wake-oscillator model of vortex-induced oscillation of circular cylinder, J. Wind Eng., 1981, 13, 10.5359/jawe1980.1981.10_13 Yang, 2019, Modeling and verification of piezoelectric wind energy harvesters enhanced by interaction between vortex-induced vibration and galloping, Smart Mater. Struct., 28, 10.1088/1361-665X/ab4216 Rezaei, 2023, Integrating PZT layer with tuned mass damper for simultaneous vibration suppression and energy harvesting considering exciter dynamics: An analytical and experimental study, J. Sound Vib., 546, 10.1016/j.jsv.2022.117413 Rezaei, 2022, Investigating the performance of tri-stable magneto-piezoelastic absorber in simultaneous energy harvesting and vibration isolation, Appl. Math. Model., 102, 661, 10.1016/j.apm.2021.09.044 Zhao, 2013, Comparison of modeling methods and parametric study for a piezoelectric wind energy harvester, Smart Mater. Struct., 22, 10.1088/0964-1726/22/12/125003 Liao, 1997, On the analysis of viscoelastic materials for active constrained layer damping treatments, J. Sound Vib., 207, 319, 10.1006/jsvi.1997.1106 Erturk, 2011 Rezaei, 2021, Exploiting bi-stable magneto-piezoelastic absorber for simultaneous energy harvesting and vibration mitigation, Int. J. Mech. Sci., 207, 10.1016/j.ijmecsci.2021.106618 Bibo, 2015, Modeling and characterization of a piezoelectric energy harvester under combined aerodynamic and base excitations, J. Vib. Acoust., 137, 10.1115/1.4029611 Rezaei, 2022, Investigations on magnetic bistable PZT-based absorber for concurrent energy harvesting and vibration mitigation: Numerical and analytical approaches, Energy, 239, 10.1016/j.energy.2021.122376 Meesala, 2018 Dai, 2014, Theoretical modeling and nonlinear analysis of piezoelectric energy harvesting from vortex-induced vibrations, J. Intell. Mater. Syst. Struct., 25, 1861, 10.1177/1045389X14538329 Dai, 2014, Piezoelectric energy harvesting from concurrent vortex-induced vibrations and base excitations, Nonlinear Dynam., 77, 967, 10.1007/s11071-014-1355-8 C. Mannini, A.M. Marra, T. Massai, G. Bartoli, Aeroelastic instabilities of rectangular cylinders with various side ratios, in: Proceedings of the 13th Conference of the Italian Association for Wind Engineering, 2014. Han, 2022, There is no critical mass ratio for galloping of a square cylinder under flow, J. Fluid Mech., 931, A27, 10.1017/jfm.2021.975 Niu, 2015, An empirical model for amplitude prediction on VIV-galloping instability of rectangular cylinders, Wind Struct., 21, 85, 10.12989/was.2015.21.1.085 Mehmood, 2013, Piezoelectric energy harvesting from vortex-induced vibrations of circular cylinder, J. Sound Vib., 332, 4656, 10.1016/j.jsv.2013.03.033 Santosham, 1966 Y. Tamura, K. Shimada, A mathematical model for the transverse oscillations of square cylinders, in: Proc. of International Conference on Flow Induced Vibrations, Bowness-Windermere, England, 1987, pp. 12–14. Tamura, 2020, Mathematical models for understanding phenomena: Vortex-induced vibrations, Jpn. Archit. Rev., 3, 398, 10.1002/2475-8876.12180 Païdoussis, 2010 Barrero-Gil, 2009, Hysteresis in transverse galloping: The role of the inflection points, J. Fluids Struct., 25, 1007, 10.1016/j.jfluidstructs.2009.04.008 Rezaei, 2020, Effects of higher-order terms in aerodynamic force on the nonlinear response of a galloping PZT energy harvester, J. Theor. Appl. Vib. Acoust., 6, 271 Funakawa, 1969, The mechanism of the excitation acting on a circular cylinder supported by a spring in a fluid flow, Trans. Jpn. Soc. Mech. Eng., 35, 303, 10.1299/kikai1938.35.303 Den Hartog, 1985 Hu, 2018, Experimental investigation on the efficiency of circular cylinder-based wind energy harvester with different rod-shaped attachments, Appl. Energy, 226, 682, 10.1016/j.apenergy.2018.06.056 Hu, 2016, Aerodynamic mechanisms of galloping of an inclined square cylinder, J. Wind Eng. Ind. Aerodyn., 148, 6, 10.1016/j.jweia.2015.10.011 Hu, 2015, Galloping of forward and backward inclined slender square cylinders, J. Wind Eng. Ind. Aerodyn., 142, 232, 10.1016/j.jweia.2015.04.010 Standard, 2006 Smith, 1962 Parkinson, 1981, Some considerations of combined effects of galloping and vortex resonance, J. Wind Eng. Ind. Aerodyn., 8, 135, 10.1016/0167-6105(81)90014-3 Hansen, 2007, Vortex-induced vibrations of structures Hansen, 2013, Vortex-induced vibrations–the Scruton number revisited, Proc. Inst. Civ. Eng.-Struct. Buil., 166, 560, 10.1680/stbu.11.00018 Wang, 2021, Perspectives in flow-induced vibration energy harvesting, Appl. Phys. Lett., 119, 10.1063/5.0063488 Yu, 2013, Simulation of the influence of aspect ratio on the aerodynamics of rectangular prisms, J. Eng. Mech., 139, 429, 10.1061/(ASCE)EM.1943-7889.0000494 Naudascher, 1993, Flow-induced vibrations of prismatic bodies and grids of prisms, J. Fluids Struct., 7, 341, 10.1006/jfls.1993.1021 Nakamura, 2013 Katopodes, 2018 Yang, 2013, Comparative study of tip cross-sections for efficient galloping energy harvesting, Appl. Phys. Lett., 102, 10.1063/1.4792737 Renno, 2009, On the optimal energy harvesting from a vibration source, J. Sound Vib., 320, 386, 10.1016/j.jsv.2008.07.029 Shu, 2006, Analysis of power output for piezoelectric energy harvesting systems, Smart Mater. Struct., 15, 1499, 10.1088/0964-1726/15/6/001 Boyd, 2004 Gill, 2019 Tan, 2021, Environment coupled piezoelectric galloping wind energy harvesting, Sensors Actuators A, 323, 10.1016/j.sna.2021.112641 Rezaei, 2017, Broadband and tunable PZT energy harvesting utilizing local nonlinearity and tip mass effects, Internat. J. Engrg. Sci., 118, 1, 10.1016/j.ijengsci.2017.04.001 Rezaei, 2022, Concurrent energy harvesting and vibration suppression utilizing PZT-based dynamic vibration absorber, Arch. Appl. Mech., 1