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Research on the impact of system parameter combinations on flow-induced vibration power generation characteristics based on exploratory data analysis

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  • Li, Weijie
  • Zhang, Dahai
  • Shi, Xiaofeng

Abstract

In this paper, an exploratory data analysis method is employed to investigate the impact of different system parameter combinations on the magnitude and stability of power of flow-induced vibration (FIV). Firstly, orthogonal experimental design within exploratory data analysis is used to set up numerical simulations of flow-induced vibration and collect data on FIV power generation characteristics. Then range method is used to select the optimal parameters combination for flow-induced vibration power generation, and the degree of influence of different system parameters on power and stability is quantitatively described by variance and entropy weight methods. Our results reveal that the optimal parameter combination for power corresponds to m* = 1.343, K = 1200 andζ = 0.08, and the optimal parameter combination for stability is m* = 1.343, K = 1200 andζ = 0.04. Additionally, the weight relationship of each system parameter affecting power and stability is WK > Wζ>Wm* and Wζ>Wm*>WK, respectively. These weight relationships allow for the effective adjustment of the parameter levels to quickly achieve the goal of optimizing power and stability. A new parameter Pvalue-stability is proposed to comprehensively evaluate power magnitude and power stability, and optimal parameter combinations in different vibration branches is achieved. This paper provides new ideas and guidance for the design of the FIV energy harvesting device.

Suggested Citation

  • Li, Weijie & Zhang, Dahai & Shi, Xiaofeng, 2024. "Research on the impact of system parameter combinations on flow-induced vibration power generation characteristics based on exploratory data analysis," Renewable Energy, Elsevier, vol. 224(C).
  • Handle: RePEc:eee:renene:v:224:y:2024:i:c:s0960148124003112
    DOI: 10.1016/j.renene.2024.120246
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    References listed on IDEAS

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    1. Sun, Hai & Kim, Eun Soo & Nowakowski, Gary & Mauer, Erik & Bernitsas, Michael M., 2016. "Effect of mass-ratio, damping, and stiffness on optimal hydrokinetic energy conversion of a single, rough cylinder in flow induced motions," Renewable Energy, Elsevier, vol. 99(C), pages 936-959.
    2. Ding, Lin & Zhang, Li & Bernitsas, Michael M. & Chang, Che-Chun, 2016. "Numerical simulation and experimental validation for energy harvesting of single-cylinder VIVACE converter with passive turbulence control," Renewable Energy, Elsevier, vol. 85(C), pages 1246-1259.
    3. Lv, Yanfang & Sun, Liping & Bernitsas, Michael M. & Sun, Hai, 2021. "A comprehensive review of nonlinear oscillators in hydrokinetic energy harnessing using flow-induced vibrations," Renewable and Sustainable Energy Reviews, Elsevier, vol. 150(C).
    4. Rostami, Ali Bakhshandeh & Armandei, Mohammadmehdi, 2017. "Renewable energy harvesting by vortex-induced motions: Review and benchmarking of technologies," Renewable and Sustainable Energy Reviews, Elsevier, vol. 70(C), pages 193-214.
    5. Sun, Weipeng & Zhao, Daoli & Tan, Ting & Yan, Zhimiao & Guo, Pengcheng & Luo, Xingqi, 2019. "Low velocity water flow energy harvesting using vortex induced vibration and galloping," Applied Energy, Elsevier, vol. 251(C), pages 1-1.
    6. Sun, Hai & Bernitsas, Marinos M. & Turkol, Mert, 2020. "Adaptive harnessing damping in hydrokinetic energy conversion by two rough tandem-cylinders using flow-induced vibrations," Renewable Energy, Elsevier, vol. 149(C), pages 828-860.
    7. Yanfang Lv & Liping Sun & Michael M. Bernitsas & Mengjie Jiang & Hai Sun, 2021. "Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data," Energies, MDPI, vol. 14(4), pages 1-24, February.
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