Propeller blade-tip flow isolator
A blade-tip flow isolator that can be used on a propeller, rotor, or wind turbine is provided. The blade-tip flow isolator integrates with the blade at the outer radius and shields the blade-tip boundary layer, reducing blade-tip vortices. A twist along the blade-tip chord further reduces or eliminates the blade-tip vortices that inherently occur on the exposed blade tips during normal operations. Efficiency and performance are improved while noise and acoustic levels are reduced.
1. A blade-tip flow isolator comprising:
a physical barrier extending from a blade-tip leading edge to a blade-tip trailing edge, extending to a blade-tip high-pressure boundary layer, extending to a blade-tip low-pressure boundary layer, connected to a blade-tip along a blade-tip chord, twisted along the blade-tip chord in an opposite direction to a naturally occurring vortex generated at the blade tip, configured onto a curved blade-tip chord configured to generate to a blade-tip flow isolator, whereby blade-tip vortices, non-axial fluid flow components, and acoustic levels are reduced.
2. A corkscrew isolator comprising:
a physical barrier connected to a blade tip along a blade-tip chord, isolating a blade-tip high-pressure boundary layer from a blade-tip low-pressure boundary layer, twisted along the blade-tip chord in an opposite direction to a naturally occurring vortex generated at the blade tip, configured to generate to a corkscrew isolator, whereby blade-tip vortices and non-axial fluid-flow components are reduced.
3. Said corkscrew isolator of claim 2 , wherein said isolator is configured onto a curved blade-tip chord, configured to generate to a blade-tip flow isolator, whereby blade-tip vortices, non-axial fluid flow components, and acoustic levels are further reduced.
4. A method for reducing blade-tip vortices comprising:
a physical barrier extending from a blade-tip leading edge to a blade-tip trailing edge, extending to a blade-tip high-pressure boundary layer, extending to a blade-tip low-pressure boundary layer, connected to a blade-tip along a blade-tip chord, twisted along the blade-tip chord in an opposite direction to a naturally occurring vortex generated at the blade tip, configured onto a curved blade-tip chord configured to generate to a blade-tip flow isolator, whereby blade-tip vortices, non-axial fluid flow components, and acoustic levels are reduced.