Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms

A full-scale prototype of sealed ocean kinetic energy harvester for underwater mooring platforms was tested on a Stewart platform, a 6-degree-of-freedom ocean motion simulation device, and the overall sealed ocean kinetic energy harvester concept was confirmed. Initial results were collected and sig...

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Main Authors: Mengfan Gu, Baowei Song
Format: Article
Language:English
Published: SAGE Publishing 2017-10-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814017714971
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author Mengfan Gu
Baowei Song
author_facet Mengfan Gu
Baowei Song
author_sort Mengfan Gu
collection DOAJ
description A full-scale prototype of sealed ocean kinetic energy harvester for underwater mooring platforms was tested on a Stewart platform, a 6-degree-of-freedom ocean motion simulation device, and the overall sealed ocean kinetic energy harvester concept was confirmed. Initial results were collected and significant insights discovered. Experimental results show that the optimal resonant frequency for maximum power output is 1 Hz at high load resistances (large amplitude), or is 1.1 Hz at low load resistances (small amplitude), due to the nonlinear effect. It also demonstrates that the optimal output power takeoff damping is 300 Ω at 1.1 Hz resonant frequency or is 600 Ω at 1.0 Hz resonant frequency or is 100 Ω at nonresonant frequencies. Moreover, the fluctuation impulses in output power curve indicate that the sealed ocean kinetic energy harvester needs great overload capability, and the energy storage system is essential to even out power fluctuations.
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spelling doaj.art-dd07920994cd4a0f843c49273df267822022-12-22T00:46:33ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402017-10-01910.1177/1687814017714971Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platformsMengfan GuBaowei SongA full-scale prototype of sealed ocean kinetic energy harvester for underwater mooring platforms was tested on a Stewart platform, a 6-degree-of-freedom ocean motion simulation device, and the overall sealed ocean kinetic energy harvester concept was confirmed. Initial results were collected and significant insights discovered. Experimental results show that the optimal resonant frequency for maximum power output is 1 Hz at high load resistances (large amplitude), or is 1.1 Hz at low load resistances (small amplitude), due to the nonlinear effect. It also demonstrates that the optimal output power takeoff damping is 300 Ω at 1.1 Hz resonant frequency or is 600 Ω at 1.0 Hz resonant frequency or is 100 Ω at nonresonant frequencies. Moreover, the fluctuation impulses in output power curve indicate that the sealed ocean kinetic energy harvester needs great overload capability, and the energy storage system is essential to even out power fluctuations.https://doi.org/10.1177/1687814017714971
spellingShingle Mengfan Gu
Baowei Song
Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
Advances in Mechanical Engineering
title Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
title_full Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
title_fullStr Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
title_full_unstemmed Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
title_short Experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
title_sort experimental trials of a sealed ocean kinetic energy harvester for underwater mooring platforms
url https://doi.org/10.1177/1687814017714971
work_keys_str_mv AT mengfangu experimentaltrialsofasealedoceankineticenergyharvesterforunderwatermooringplatforms
AT baoweisong experimentaltrialsofasealedoceankineticenergyharvesterforunderwatermooringplatforms