TURBINE WITH SHEET-FLOW NOZZLE HAVING ADJUSTABLE WIDTH
A turbine that includes a runner and a variable nozzle. The runner is configured to rotate about an axis of rotation. The variable nozzle is configured to produce a sheet flow when fluid passes through the variable nozzle toward the runner. The sheet flow has a circumferential length at an exit of the variable nozzle that is greater than a flow width at the exit of the variable nozzle. The flow width is adjustable. In other configurations, the sheet flow may be planar, conical, or cylindrical.
1 . A turbine comprising:
a runner configured to rotate about an axis of rotation; and
a variable nozzle configured to produce a sheet flow when fluid passes through the variable nozzle toward the runner, the sheet flow having a circumferential length at an exit of the variable nozzle that is greater than a flow width at the exit of the variable nozzle, the flow width being perpendicular to the circumferential length, the flow width being adjustable between a first flow width and a second flow width, where the first flow width is greater than the second flow width.
2 . The turbine of claim 1 , the variable nozzle comprising a movable gate coupled to at least one actuator that is configured to move the movable gate toward and away from a second gate of the nozzle, the movable gate allowing the flow width to be adjustable between the first flow width and the second flow width.
3 . The turbine of claim 2 , in which the movable gate is coupled to at least one actuator that is configured to axially move the movable gate toward and away from the second gate of the nozzle, allowing the radial flow width to be continuously variable between the first radial flow width and the second radial flow width.
4 . The turbine of claim 1 , further comprising adjustable wicket gates upstream of the exit of the variable nozzle, the adjustable wicket gates configured to condition fluid flow at an entrance to the variable nozzle.
5 . A turbine comprising:
a runner configured to rotate about an axis of rotation; and
a variable nozzle configured to produce a conical-sheet flow when fluid passes through the variable nozzle toward the runner, the conical-sheet flow having a circumferential length at an exit of the variable nozzle that is greater than a radial flow width at the exit of the variable nozzle, the radial flow width being perpendicular to the circumferential length, the radial flow width being adjustable between a first radial flow width and a second radial flow width, where the first radial flow width is greater than the second radial flow width, the conical-sheet flow having an axial flow component and a radial flow component, the radial flow component being directed toward the axis of rotation.
6 . The turbine of claim 5 , further comprising:
a rotor driven by the runner and configured to rotate about the axis of rotation; and
a stator that is radially external to the rotor, the rotor configured to rotate within the stator.
7 . The turbine of claim 5 , the variable nozzle comprising a movable gate coupled to at least one actuator that is configured to axially move the movable gate toward and away from a second gate of the nozzle, allowing the radial flow width to be continuously variable between the first radial flow width and the second radial flow width.
8 . The turbine of claim 5 , further comprising fixed guide-vanes upstream of the exit of the variable nozzle, the fixed guide-vanes configured to condition fluid flow at an entrance to the variable nozzle.
9 . The turbine of claim 5 , further comprising adjustable wicket gates upstream of the exit of the variable nozzle, the adjustable wicket gates configured to condition fluid flow at an entrance to the variable nozzle.
10 . The turbine of claim 5 , further comprising an axial shaft coincident with the axis of rotation, the shaft being coupled to the runner at an end of the shaft, the end of the shaft having one or more airholes, the shaft further having an air passageway extending from the end of the shaft to an opposition end of the shaft.
11 . A turbine comprising:
a runner configured to rotate about an axis of rotation; and
a variable nozzle configured to produce a planar-sheet flow when fluid passes through the variable nozzle toward the runner, the planar-sheet flow having a circumferential length at an exit of the variable nozzle that is greater than an axial flow width at the exit of the variable nozzle, the axial flow width being perpendicular to the circumferential length, the axial flow width being adjustable between a first axial flow width and a second axial flow width, where the first axial flow width is greater than the second axial flow width, the planar-sheet flow having an radial flow component and a tangential flow component.
12 . The turbine of claim 11 , the variable nozzle comprising a movable gate coupled to at least one actuator that is configured to axially move the movable gate toward and away from a second gate of the nozzle, allowing the axial flow width to be continuously variable between the first axial flow width and the second axial flow width.
13 . The turbine of claim 11 , further comprising adjustable wicket gates upstream of the exit of the variable nozzle, the adjustable wicket gates configured to impart the radial flow component and the tangential flow component at the exit of the variable nozzle.