TY - JOUR
T1 - Study on a flapping wing hydroelectric power generation system
AU - Abiru, Hisanori
AU - Yoshitake, Akira
PY - 2009/10
Y1 - 2009/10
N2 - In this paper, hydroelectric power generation system able to extract the water flow energy from the hydroelastic response of an elastically supported rectangular wing is experimentally investigated. Except for a vertical wing, supported in the manner of a cantilever, the generator has no other parts submerged in water. An electric motor is used to excite pitching oscillations of the wing. Both the wing and the electric motor are supported by leaf springs which are design to work both as a linear guide for the sway oscillations and as elastic elements. The wing mass in sway direction necessary to achieve a hydroelastic response is obtained by using a mechanical snubber mechanism. The appropriate load to generate electricity is provided by magnetic dampers. By employing the linear potential hydrodynamic theory, a theoretical analysis was performed to model the water channel tests on the power generation system and to determine its structural and hydrodynamic features. Tests revealed that the proposed power generation system is feasible and able to work with an efficiency of 32-37%.
AB - In this paper, hydroelectric power generation system able to extract the water flow energy from the hydroelastic response of an elastically supported rectangular wing is experimentally investigated. Except for a vertical wing, supported in the manner of a cantilever, the generator has no other parts submerged in water. An electric motor is used to excite pitching oscillations of the wing. Both the wing and the electric motor are supported by leaf springs which are design to work both as a linear guide for the sway oscillations and as elastic elements. The wing mass in sway direction necessary to achieve a hydroelastic response is obtained by using a mechanical snubber mechanism. The appropriate load to generate electricity is provided by magnetic dampers. By employing the linear potential hydrodynamic theory, a theoretical analysis was performed to model the water channel tests on the power generation system and to determine its structural and hydrodynamic features. Tests revealed that the proposed power generation system is feasible and able to work with an efficiency of 32-37%.
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U2 - 10.1299/kikaib.75.758_2036
DO - 10.1299/kikaib.75.758_2036
M3 - Article
AN - SCOPUS:73949109151
SN - 0387-5016
VL - 75
SP - 2036
EP - 2041
JO - Nihon Kikai Gakkai Ronbunshu, B Hen/Transactions of the Japan Society of Mechanical Engineers, Part B
JF - Nihon Kikai Gakkai Ronbunshu, B Hen/Transactions of the Japan Society of Mechanical Engineers, Part B
IS - 758
ER -