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Review of Application of VOF-Based NWT on Integrated OWC SystemVOF 기반의 수치조파수조를 이용한 OWC 통합시스템 성능연구에 대한 고찰

Other Titles
VOF 기반의 수치조파수조를 이용한 OWC 통합시스템 성능연구에 대한 고찰
Authors
류진김길원현범수홍기용
Issue Date
31-5월-2012
Publisher
한국해양환경공학회
Keywords
Integrated System; Numerical Wave Tank; Orifice; Oscillating Water Column; Wave Energy Conversion
Citation
한국해양환경공학회지, v.15, no.2, pp 111 - 117
Pages
7
Journal Title
한국해양환경공학회지
Volume
15
Number
2
Start Page
111
End Page
117
URI
https://www.kriso.re.kr/sciwatch/handle/2021.sw.kriso/8218
Abstract
Oscillating water column is the most widely used ocean energy converting systems all over the world. The operating performance is influenced by the efficiencies of the two converting stages in the OWC chamber-turbine integrated system. In order to consider the effects of the turbine, the orifice model are carried out. The VOF based Numerical Wave Tank (NWT) is utilized to simulate the water column oscillation inside the chamber and the results are compared with corresponding experimental data. This paper reviews the state of the art in interaction among wave elevation inside the chamber and air flow rate in the duct, which are considered the turbine effects. Effects of incident wave conditions and several shape parameters on the operating performance of OWC chamber are investigated numerically. The effects of the impulse turbine on the integrated system and interaction among the wave elevation, pressure and air flow velocities variations are investigated.In order to consider the effects of the turbine, the orifice model are carried out. The VOF based Numerical Wave Tank (NWT) is utilized to simulate the water column oscillation inside the chamber and the results are compared with corresponding experimental data. This paper reviews the state of the art in interaction among wave elevation inside the chamber and air flow rate in the duct, which are considered the turbine effects. Effects of incident wave conditions and several shape parameters on the operating performance of OWC chamber are investigated numerically. The effects of the impulse turbine on the integrated system and interaction among the wave elevation, pressure and air flow velocities variations are investigated.
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