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半潜式风、潮流联合发电平台水动力分析(英文)
引用本文:马勇,胡超,周丙浩,李磊,康有为.半潜式风、潮流联合发电平台水动力分析(英文)[J].船舶与海洋工程学报,2019(1):72-81.
作者姓名:马勇  胡超  周丙浩  李磊  康有为
作者单位:College of Shipbuilding Engineering;School of Marine Engineering and Technology;CHEC Dredging Co.;Department of Naval Architecture;National Engineering Lab
基金项目:financially supported by the National Natural Science Foundation of China(Nos.51779062;51579055);the Fundamental Research Funds for the Central Universities of China(No.HEUCFP201714);Shenzhen Special Fund for the future industries(No.JCYJ20160331163751413)
摘    要:Energy shortages and environmental pollution are becoming increasingly severe globally. The exploitation and utilization of renewable energy have become an effective way to alleviate these problems. To improve power production capacity, power output quality, and cost effectiveness, comprehensive marine energy utilization has become an inevitable trend in marine energy development. Based on a semi-submersible wind-tidal combined power generation device,a three-dimensional frequency domain potential flow theory is used to study the hydrodynamic performance of such a device. For this study, the RAOs and hydrodynamic coefficients of the floating carrier platform to the regular wave were obtained. The influence of the tidal turbine on the platform in terms of frequency domain was considered as added mass and damping. The direct load of the tidal turbine was obtained by CFX.FORTRAN software was used for the second development of adaptive query workload aware software, which can include the external force. The motion response of the platform to the irregular wave and the tension of the mooring line were calculated under the limiting condition(one mooring line breakage). The results showed that the motion response of the carrier to the surge and sway direction is more intense, but the swing amplitude is within the acceptable range. Even in the worst case scenario, the balance position of the platform was still in the positioning range, which met the requirements of the working sea area. The safety factor of the mooring line tension also complied with the requirements of the design specification. Therefore, it was found that the hydrodynamic performance and motion responses of a semi-submersible wind-tidal combined power generation device can meet the power generation requirements under all design conditions, and the device presents a reliable power generation system.

关 键 词:Power  generation  device  Coupling  HYDRODYNAMIC  ANALYSIS  AQWA  MOORING  line  tension  Motion  response  HYDRODYNAMIC  ANALYSIS

Hydrodynamic Analysis of a Semi-submersible Wind-Tidal Combined Power Generation Device
Yong Ma,Chao Hu,Binghao Zhou,Lei Li,Youwei Kang.Hydrodynamic Analysis of a Semi-submersible Wind-Tidal Combined Power Generation Device[J].Journal of Marine Science and Application,2019(1):72-81.
Authors:Yong Ma  Chao Hu  Binghao Zhou  Lei Li  Youwei Kang
Abstract:Energy shortages and environmental pollution are becoming increasingly severe globally. The exploitation and utilization of renewable energy have become an effective way to alleviate these problems. To improve power production capacity, power output quality, and cost effectiveness, comprehensive marine energy utilization has become an inevitable trend in marine energy development. Based on a semi-submersible wind-tidal combined power generation device,a three-dimensional frequency domain potential flow theory is used to study the hydrodynamic performance of such a device. For this study, the RAOs and hydrodynamic coefficients of the floating carrier platform to the regular wave were obtained. The influence of the tidal turbine on the platform in terms of frequency domain was considered as added mass and damping. The direct load of the tidal turbine was obtained by CFX.FORTRAN software was used for the second development of adaptive query workload aware software, which can include the external force. The motion response of the platform to the irregular wave and the tension of the mooring line were calculated under the limiting condition(one mooring line breakage). The results showed that the motion response of the carrier to the surge and sway direction is more intense, but the swing amplitude is within the acceptable range. Even in the worst case scenario, the balance position of the platform was still in the positioning range, which met the requirements of the working sea area. The safety factor of the mooring line tension also complied with the requirements of the design specification. Therefore, it was found that the hydrodynamic performance and motion responses of a semi-submersible wind-tidal combined power generation device can meet the power generation requirements under all design conditions, and the device presents a reliable power generation system.
Keywords:Power generation device  Coupling hydrodynamic analysis  AQWA  Mooring line tension  Motion response  Hydrodynamic analysis  Power generation device
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