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