Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data

The VIVACE Converter consists of cylindrical oscillators in tandem subjected to transverse flow-induced oscillations (FIOs) that can be improved by varying the system parameters for a given in-flow velocity: damping, stiffness, and in-flow center-to-center spacing. Compared to a single isolated cyli...

Full description

Bibliographic Details
Main Authors: Yanfang Lv, Liping Sun, Michael M. Bernitsas, Mengjie Jiang, Hai Sun
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/14/4/827
id doaj-e870ecae4a9e4485afbf96c366ecc984
record_format Article
spelling doaj-e870ecae4a9e4485afbf96c366ecc9842021-02-06T00:01:12ZengMDPI AGEnergies1996-10732021-02-011482782710.3390/en14040827Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental DataYanfang Lv0Liping Sun1Michael M. Bernitsas2Mengjie Jiang3Hai Sun4College of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, ChinaCollege of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, ChinaMarine Renewable Energy Laboratory, Naval Architecture and Marine Engineering, University of Michigan, Ann Arbor, MI 48105, USACollege of Shipbuilding Engineering, Harbin Engineering University, Harbin 150001, ChinaMarine Renewable Energy Laboratory, Naval Architecture and Marine Engineering, University of Michigan, Ann Arbor, MI 48105, USAThe VIVACE Converter consists of cylindrical oscillators in tandem subjected to transverse flow-induced oscillations (FIOs) that can be improved by varying the system parameters for a given in-flow velocity: damping, stiffness, and in-flow center-to-center spacing. Compared to a single isolated cylinder, tandem cylinders can harness more hydrokinetic energy due to synergy in FIO. Experimental and numerical methods have been utilized to analyze the FIO and energy harnessing of VIVACE. A surrogate-based model of two tandem cylinders is developed to predict the power harvesting and corresponding efficiency by introducing a backpropagation neural network. It is then utilized to reduce excessive experimental or computational testing. The effects of spacing, damping, and stiffness on harvested power and efficiency of the established prediction-model are analyzed. At each selected flow velocity, optimization results of power harvesting using the prediction-model are calculated under different combinations of damping and stiffness. The main conclusions are: (1) The surrogate model, built on extensive experimental data for tandem cylinders, can predict the cylinder oscillatory response accurately. (2) Increasing the damping ratio range from 0–0.24 to 0–0.30 is beneficial for improving power efficiency, but has no significant effect on power harvesting. (3) In galloping, a spacing ratio of 1.57 has the highest optimal harnessed power and efficiency compared with other spacing values. (4) Two tandem cylinders can harness 2.01–4.67 times the optimal power of an isolated cylinder. In addition, the former can achieve 1.46–4.01 times the efficiency of the latter. (5) The surrogate model is an efficient predictive tool defining parameters of the Converter for improved energy acquisition.https://www.mdpi.com/1996-1073/14/4/827modelingflow-induced oscillationvortex-induced oscillationgallopingbackpropagation neural networktwo tandem cylinders
collection DOAJ
language English
format Article
sources DOAJ
author Yanfang Lv
Liping Sun
Michael M. Bernitsas
Mengjie Jiang
Hai Sun
spellingShingle Yanfang Lv
Liping Sun
Michael M. Bernitsas
Mengjie Jiang
Hai Sun
Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
Energies
modeling
flow-induced oscillation
vortex-induced oscillation
galloping
backpropagation neural network
two tandem cylinders
author_facet Yanfang Lv
Liping Sun
Michael M. Bernitsas
Mengjie Jiang
Hai Sun
author_sort Yanfang Lv
title Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
title_short Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
title_full Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
title_fullStr Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
title_full_unstemmed Modelling of a Flow-Induced Oscillation, Two-Cylinder, Hydrokinetic Energy Converter Based on Experimental Data
title_sort modelling of a flow-induced oscillation, two-cylinder, hydrokinetic energy converter based on experimental data
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2021-02-01
description The VIVACE Converter consists of cylindrical oscillators in tandem subjected to transverse flow-induced oscillations (FIOs) that can be improved by varying the system parameters for a given in-flow velocity: damping, stiffness, and in-flow center-to-center spacing. Compared to a single isolated cylinder, tandem cylinders can harness more hydrokinetic energy due to synergy in FIO. Experimental and numerical methods have been utilized to analyze the FIO and energy harnessing of VIVACE. A surrogate-based model of two tandem cylinders is developed to predict the power harvesting and corresponding efficiency by introducing a backpropagation neural network. It is then utilized to reduce excessive experimental or computational testing. The effects of spacing, damping, and stiffness on harvested power and efficiency of the established prediction-model are analyzed. At each selected flow velocity, optimization results of power harvesting using the prediction-model are calculated under different combinations of damping and stiffness. The main conclusions are: (1) The surrogate model, built on extensive experimental data for tandem cylinders, can predict the cylinder oscillatory response accurately. (2) Increasing the damping ratio range from 0–0.24 to 0–0.30 is beneficial for improving power efficiency, but has no significant effect on power harvesting. (3) In galloping, a spacing ratio of 1.57 has the highest optimal harnessed power and efficiency compared with other spacing values. (4) Two tandem cylinders can harness 2.01–4.67 times the optimal power of an isolated cylinder. In addition, the former can achieve 1.46–4.01 times the efficiency of the latter. (5) The surrogate model is an efficient predictive tool defining parameters of the Converter for improved energy acquisition.
topic modeling
flow-induced oscillation
vortex-induced oscillation
galloping
backpropagation neural network
two tandem cylinders
url https://www.mdpi.com/1996-1073/14/4/827
work_keys_str_mv AT yanfanglv modellingofaflowinducedoscillationtwocylinderhydrokineticenergyconverterbasedonexperimentaldata
AT lipingsun modellingofaflowinducedoscillationtwocylinderhydrokineticenergyconverterbasedonexperimentaldata
AT michaelmbernitsas modellingofaflowinducedoscillationtwocylinderhydrokineticenergyconverterbasedonexperimentaldata
AT mengjiejiang modellingofaflowinducedoscillationtwocylinderhydrokineticenergyconverterbasedonexperimentaldata
AT haisun modellingofaflowinducedoscillationtwocylinderhydrokineticenergyconverterbasedonexperimentaldata
_version_ 1724282790204145664