• 제목/요약/키워드: Floating wave energy converter(WEC)

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Theoretical Analysis of Wave Energy Converter

  • Oh, Jin-Seok;Komatsu, Toshimitsu;Kim, Yun-Hyung
    • Journal of Advanced Marine Engineering and Technology
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    • 제32권1호
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    • pp.169-174
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    • 2008
  • Floating devices, such as a cavity resonance device take advantage of both the water motion and the wave induced motions of the floating body itself. The wave energy converter is known commercially as the WAGB(Wave Activated Generator Buoy) and is used in some commercially available buoys to power navigation aids such as lights and horns. This wave energy converter consists of a circular floatation body which contains a vertical center pipe that has free communication with the sea. A theoretical analysis of this power generated by a pneumatic type wave energy converter is performed and the results obtained from the analysis are used for a real wave energy converter for buoy. This paper presents the analysis results and the design method for the WEC(Wave Energy Converter), and the associate results are application to the commercially available WEC for buoy. Maximum performance of WEC occurs at resonance with driving waves. The analysis of WEC is performed with LabVIEW program, and the design method of WEC for buoy is suggested in this paper.

Oscillating Water Column (OWC) Wave Energy Converter Part 1: Fixed OWC

  • Yang, Hyunjai;Jung, Hyen-Cheol;Koo, WeonCheol
    • 한국해양공학회지
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    • 제36권4호
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    • pp.280-294
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    • 2022
  • This study reviews the recent development and research results of a fixed oscillating water column (OWC) wave energy converter (WEC). The OWC WEC can be divided into fixed and floating types based on the installation location and movement of the structure. In this article, the study on a stationary OWC WEC, which is close to commercialization through the accumulation of long-term research achievements, is divided into five research categories with a focus on primary energy conversion research. These research categories include potential-flow-based numerical analysis, wave tank experiments, computational fluid dynamics analyses toward investigation of fluid viscous effects, U-shaped OWC studies that can amplify water surface displacement in the OWC chamber, and studies on OWC prototypes that have been installed and operated in real sea environments. This review will provide an overview of recent research on the stationary OWC WEC and basic information for further detailed studies on the OWC.

Design of the dual-buoy wave energy converter based on actual wave data of East Sea

  • Kim, Jeongrok;Kweon, Hyuck-Min;Jeong, Weon-Mu;Cho, Il-Hyoung;Cho, Hong-Yeon
    • International Journal of Naval Architecture and Ocean Engineering
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    • 제7권4호
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    • pp.739-749
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    • 2015
  • A new conceptual dual-buoy Wave Energy Converter (WEC) for the enhancement of energy extraction efficiency is suggested. Based on actual wave data, the design process for the suggested WEC is conducted in such a way as to ensure that it is suitable in real sea. Actual wave data measured in Korea's East Sea (position: $36.404N^{\circ}$ and $129.274E^{\circ}$) from May 1, 2002 to March 29, 2005 were used as the input wave spectrum for the performance estimation of the dual-buoy WEC. The suggested WEC, a point absorber type, consists of two concentric floating circular cylinders (an inner and a hollow outer buoy). Multiple resonant frequencies in proposed WEC affect the Power Ttake-off (PTO) performance of the WEC. Based on the numerical results, several design strategies are proposed to further enhance the extraction efficiency, including intentional mismatching among the heave natural frequencies of dual buoys, the natural frequency of the internal fluid, and the peak frequency of the input wave spectrum.

Motion Analysis of A Wind-Wave Energy TLP Platform Considering Second-order Wave Forces

  • Hongbhin Kim;Eun-hong Min;Sanghwan Heo;WeonCheol Koo
    • 한국해양공학회지
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    • 제36권6호
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    • pp.390-402
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    • 2022
  • Offshore wind energy has become a major energy source, and various studies are underway to increase the economic feasibility of floating offshore wind turbines (FOWT). In this study, the characteristics of wave-induced motion of a combined wind-wave energy platform were analyzed to reduce the variability of energy extraction. A user subroutine was developed, and numerical analysis was performed in connection with the ANSYS-AQWA hydrodynamic program in the time domain. A platform combining the TLP-type FOWT and the Wavestar-type wave energy converter (WEC) was proposed. Each motion response of the platform on the second-order wave load, the effect of WEC attachment and Power take-off (PTO) force were analyzed. The mooring line tension according to the installation location was also analyzed. The vertical motion of a single FOWT was increased approximately three times due to the second-order sum-frequency wave load. The PTO force of the WEC played as a vertical motion damper for the combined platform. The tension of the mooring lines in front of the incident wave direction was dominantly affected by the pitch of the platform, and the mooring lines located at the side of the platform were mainly affected by the heave of the platform.

부유식 파력발전구조물의 운동 저감부 형상설계에 관한 수치 및 실험적 연구 (Experimental and Numerical Study for Motion Reduction Design of Floating Wave Energy Converter)

  • 박지용;남보우;홍사영;신승호
    • 한국해양환경ㆍ에너지학회지
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    • 제17권2호
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    • pp.81-89
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    • 2014
  • 부유식 파력발전구조물의 운동은 발전성능과 구조물의 안정성에 중요한 영향을 미치며, 이에 구조물의 형상 최적화가 필요하다. 본 연구에서는 기존에 연구되고 있는 부유식 진자형 파력발전장치를 대상으로 운동 저감부 형상의 부가를 통해 운동응답특성을 최적화 하려 한다. 이를 위해 감쇠판을 설치하여 부가저항과 감쇠력을 변화시키고, 복원판을 설치하여 복원력을 증가시켜 구조물의 운동응답의 변화를 확인하였다. 실험을 통해 운동응답특성의 변화를 비교 검증하였으며, 수치해석을 통해 다양한 운동저감부 형상에 대해 분석하였다. 본 연구를 통해 부유식 파력발전구조물의 형상을 최적화하고 성능을 향상 시킬 수 있다.

진동수주형 파력발전시스템을 탑재한 공기주입식 부유식방파제의 동적거동해석 (Dynamic Response Analysis of Pneumatic Floating Breakwater Mounted Wave-power Generation System of Oscillating Water Column)

  • 이광호;김도삼;정익한
    • 한국해안·해양공학회논문집
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    • 제29권6호
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    • pp.305-314
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    • 2017
  • 단독의 파력발전변환장치를 설치하는 경우 경제성이 떨어지는 문제점이 있으므로 기존 혹은 신설의 방파제에 적용하여 파랑제어와 파랑에너지의 이용을 동시에 도모하는 방식이 많이 추진되어 왔다. 본 연구는 전편의 연구(Lee et al., 2014)에서와 같이 부유식방파제로 연구 개발된 공기주입식 부유식방파제에 진동수주형 파력발전시스템을 탑재한 경우를 대상으로 부유식방파제로의 기능과 파력발전장치로의 기능을 병행하여 검토하였다. 여기서, 전편의 연구(Lee et al., 2014)에서는 공기실내에서 공기의 동적거동에 단열변화에 따른 압축성을 고려한 반면에 본 연구에서는 비압축성의 경우에 구조물의 고정시 혹은 부유시에 각각에 대한 파랑변형율, 공기흐름속도 및 구조물의 운동을 검토하였으며, 공기의 동적거동에 대한 압축성의 고려여부에 따른 결과의 차이를 논의하였다. 수치해석법으로는 선형속도포텐셜이론에 기초한 경계요소법을 적용한다. 얻어진 모든 해석결과에 따르면 공기압축성을 고려한 전편의 연구와 거의 동일한 결과를 나타내었으며, 따라서 공기실내에서의 공기거동해석에 압축성을 고려하지 않는 본 해석이 보다 효율적이고, 유용한 것으로 판단된다.

Hydraulic Model Test of a Floating Wave Energy Converter with a Cross-flow Turbine

  • Kim, Sangyoon;Kim, Byungha;Wata, Joji;Lee, Young-Ho
    • International Journal of Fluid Machinery and Systems
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    • 제9권3호
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    • pp.222-228
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    • 2016
  • Almost 70% of the earth is covered by the ocean. Extracting the power available in the ocean using a wave energy converter has been seen to be eco-friendly and renewable. This study focuses on developing a method for analyzing a wave energy device that uses a cross-flow turbine. The motion of the ocean wave causes an internal bi-directional flow of water and the cross-flow turbine is able to rotate in one direction. This device is considered of double-hull structure, and because of this structure, sea water does not come into contact with theturbine. Due to this, the problem of befouling on the turbine is avoided. This study shows specific relationship for wave length and several motions.

Enhancement of wave-energy-conversion efficiency of a single power buoy with inner dynamic system by intentional mismatching strategy

  • Cho, I.H.;Kim, M.H.
    • Ocean Systems Engineering
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    • 제3권3호
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    • pp.203-217
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    • 2013
  • A PTO (power-take-off) mechanism by using relative heave motions between a floating buoy and its inner mass (magnet or amateur) is suggested. The inner power take-off system is characterized by a mass with linear stiffness and damping. A vertical truncated cylinder is selected as a buoy and a special station-keeping system is proposed to minimize pitch motions while not affecting heave motions. By numerical examples, it is seen that the maximum power can actually be obtained at the optimal spring and damper condition, as predicted by the developed WEC(wave energy converter) theory. Then, based on the developed theory, several design strategies are proposed to further enhance the maximum PTO, which includes the intentional mismatching among heave natural frequency of the buoy, natural frequency of the inner dynamic system, and peak frequency of input wave spectrum. By using the intentional mismatching strategy, the generated power is actually increased and the required damping value is significantly reduced, which is a big advantage in designing the proposed WEC with practical inner LEG (linear electric generator) system.

파력발전기의 동력인출장치의 회전각도가 효율에 미치는 영향 분석 (Investigation of Moving Angle of Power Take off Mechanism on the Efficiency of Wave Energy Converter)

  • 도황팅;누엔밍치;판콩빙;이세영;박형규;안경관
    • 드라이브 ㆍ 컨트롤
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    • 제12권3호
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    • pp.25-35
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    • 2015
  • The hydraulic power-take-off mechanism (HPTO) is one of the most popular methods in wave energy converters (WECs). However, the conventional HPTO with only one direction motion has a number of drawbacks that limit its power capture capability. This paper proposes an adjustable moving angle wave energy converter (AMAWEC) and investigates the effect of the moving angle on the performance of the wave energy converter to find the optimal moving angle in order to increase the power capture capability as well as energy efficiency. A mathematical model of components from a floating buoy to a hydraulic motor was modeled. A small scale WEC test rig was fabricated to verify the power capture capability and efficiency of the proposed system through experiments.

정유압 구동식 변속기를 사용한 새로운 파력 발전기 설계 (A New Design of Wave Energy Generator Using Hydrostatic Transmission)

  • 안경관;딩광졍;윤종일
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 추계학술대회 초록집
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    • pp.171-171
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    • 2010
  • An innovative design of a floating-buoy wave energy converter (WEC) using hydrostatic transmission (HST), named HSTWEC, is presented in this paper. The system is designed to convert ocean wave fluctuation into electricity by using the HST circuit and an electric generator. Based on the floating-buoy concept, the wave forces the sub-buoy to move up and down. Consequently, the electric power can be obtained from the generator in both the moving directions of the sub-buoy through the HST circuit as shown in Fig. 1. In order to investigate the HSTWEC operations, a mathematical model of the system is indispensible. In addition, the method to control the HSTWEC, including: pump displacement control, tension adjustment control and ballast weight control, is also discussed in this paper. Finally, the design concept as well as simulation results indicated that this HSTWEC design is an effective solution and possible to fabricate for wave energy generation.

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