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Influence of the Francis Turbine location under vortex rope excitation on the Hydraulic System Stability
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  • Influence of the Francis Turbine location under vortex rope excitation on the Hydraulic System Stability
  • Influence of the Francis Turbine location under vortex rope excitation on the Hydraulic System Stability
저자명
Alligne. S.,Nicolet. C.,Allenbach. P.,Kawkabani. B.,Simond. J.J.,Avellan. F.
간행물명
International journal of fluid machinery and systems
권/호정보
2009년|2권 4호|pp.286-294 (9 pages)
발행정보
유체기계공업학회
파일정보
정기간행물|ENG|
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이 논문은 한국과학기술정보연구원과 논문 연계를 통해 무료로 제공되는 원문입니다.
서지반출

기타언어초록

Hydroelectric power plants are known for their ability to cover variations of the consumption in electrical power networks. In order to follow this changing demand, hydraulic machines are subject to off-design operation. In that case, the swirling flow leaving the runner of a Francis turbine may act under given conditions as an excitation source for the whole hydraulic system. In high load operating conditions, vortex rope behaves as an internal energy source which leads to the self excitation of the system. The aim of this paper is to identify the influence of the full load excitation source location with respect to the eigenmodes shapes on the system stability. For this, a new eigenanalysis tool, based on eigenvalues and eigenvectors computation of the nonlinear set of differential equations in SIMSEN, has been developed. First the modal analysis method and linearization of the set of the nonlinear differential equations are fully described. Then, nonlinear hydro-acoustic models of hydraulic components based on electrical equivalent schemes are presented and linearized. Finally, a hydro-acoustic SIMSEN model of a simple hydraulic power plant, is used to apply the modal analysis and to show the influence of the turbine location on system stability. Through this case study, it brings out that modeling of the pipe viscoelastic damping is decisive to find out stability limits and unstable eigenfrequencies.