IP Library Granted Patent US 8,801,365
Granted Patent B2
US 8,801,365 · App. 13/003,776 · Granted Aug 12, 2014

Hydraulic machine, and an energy conversion installation including such a machine

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Quick Facts
Patent No.
US 8,801,365
App. No.
13/003,776
Granted
Aug 12, 2014
Kind
B2
Abstract

This hydraulic machine comprises a wheel supported by a shaft ( 5 ), the wheel and the shaft being able to rotate about a vertical axis (X 5 ) while a radial hydrostatic or hydrodynamic bearing ( 100 ) is formed between, on the one hand, a radial peripheral surface ( 52 ) of the shaft and, on the other hand, an internal radial surface ( 102 ) of a member ( 101 ) that is fixed relative to the vertical axis. The bearing ( 100 ) extends between two edges ( 121, 122 ) which, in normal operation, constitute regions for the removal of a film of water formed in the bearing. At least one cavity ( 130 ) is created in the fixed member ( 101 ) and opens onto its internal radial surface ( 102 ) near a first edge ( 122 ) of the bearing. The machine comprises means ( 131, 132, 133 ) for placing the cavity ( 130 ) in fluidic communication with a volume (V 1 ) situated outside the bearing near the second edge ( 121 ) of the bearing ( 100 ). That allows some (E 2 ) of the film of water from the bearing ( 100 ) to be removed towards the second edge ( 121 ) if the bearing becomes obstructed near the first edge ( 122 ).

Claims (37)

1. A hydraulic machine comprising:

a wheel supported by a shaft, the wheel and the shaft being mounted to move in rotation about an axis,

a radial hydrostatic or hydrodynamic water bearing is formed between a radially peripheral surface of the shaft and a radially inside surface of a stationary member that is stationary relative to the axis, the bearing extending between two opposite gap limits that, when the bearing is operating normally, constitute outlet zones for discharging a film of water that is formed in the bearing,

at least one liquid receiving cavity is provided in the stationary member and opens to the inner radial surface of the stationary member adjacent to a first one of the two opposite gap limits of the bearing, and

the stationary member is provided with flow communication means for putting the cavity into fluid communication with a volume situated outside the bearing adjacent the second of the two opposite gap limits of the bearing, the cavity and the flow communication means removing a portion of a flow forming the film of water when removal of the film of water is obstructed at the first of the two opposite gap limits,

wherein an expansion seal is disposed adjacent one of the two opposite gap limits of the bearing.

2. A hydraulic machine comprising:

a wheel supported by a shaft, the wheel and the shaft being mounted to move in rotation about an axis,

a radial hydrostatic or hydrodynamic water bearing is formed between a radially peripheral surface of the shaft and a radially inside surface of a stationary member that is stationary relative to the axis, the bearing extending between two opposite gap limits that, when the bearing is operating normally, constitute outlet zones for discharging a film of water that is formed in the bearing,

at least one liquid receiving cavity is provided in the stationary member and opens to the inner radial surface of the stationary member adjacent to a first one of the two opposite gap limits of the bearing, and

the stationary member is provided with flow communication means for putting the cavity into fluid communication with a volume situated outside the bearing adjacent the second of the two opposite gap limits of the bearing, the cavity and the flow communication means removing a portion of a flow forming the film of water when removal of the film of water is obstructed at the first of the two opposite gap limits,

wherein an expansion seal is disposed adjacent one of the two opposite gap limits of the bearing, and the expansion seal faces towards the shaft.

3. A hydraulic machine comprising:

a wheel supported by a shaft, the wheel and the shaft being mounted to move in rotation about an axis,

a radial hydrostatic or hydrodynamic water bearing is formed between a radially peripheral surface of the shaft and a radially inside surface of a stationary member that is stationary relative to the axis, the bearing extending between two opposite gap limits that, when the bearing is operating normally, constitute outlet zones for discharging a film of water that is formed in the bearing,

at least one liquid receiving cavity is provided in the stationary member and opens to the inner radial surface of the stationary member adjacent to a first one of the two opposite gap limits of the bearing, and

the stationary member is provided with flow communication means for putting the cavity into fluid communication with a volume situated outside the bearing adjacent the second of the two opposite gap limits of the bearing, the cavity and the flow communication means removing a portion of a flow forming the film of water when removal of the film of water is obstructed at the first of the two opposite gap limits,

wherein an expansion seal is disposed adjacent one of the two opposite gap limits of the bearing, and the expansion seal faces towards the shaft, and

wherein the shaft rotates about a vertical axis and the cavity is provided above the expansion seal adjacent to a lower of the two opposite gap limits of the bearing, and wherein the flow communication means connect the cavity to the volume that is situated above an upper of the two opposite gap limits relative to the bearing.

4. A hydraulic machine comprising:

a wheel supported by a shaft, the wheel and the shaft being mounted to move in rotation about an axis, a radial hydrostatic or hydrodynamic water bearing is formed between a radially peripheral surface of the shaft and a radially inside surface of a stationary member that is stationary relative to the axis, the bearing extending between two opposite gap limits that, when the bearing is operating normally, constitute outlet zones for discharging a film of water that is formed in the bearing,

at least one liquid receiving cavity is provided in the stationary member and opens to the inner radial surface of the stationary member adjacent to a first one of the two opposite gap limits of the bearing, and

the stationary member is provided with flow communication means for putting the cavity into fluid communication with a volume situated outside the bearing adjacent the second of the two opposite gap limits of the bearing, the cavity and the flow communication means removing a portion of a flow forming the film of water when removal of the film of water is obstructed at the first of the two opposite gap limits,

wherein an expansion seal is disposed adjacent one of the two opposite gap limits of the bearing, and the expansion seal faces towards the shaft, and

wherein the shaft rotates about a vertical axis, the cavity is provided adjacent to an upper of the two opposite gap limits of the bearing, and wherein the flow communication means connect the cavity to a lower portion of the bearing above the expansion seal that is disposed below a lower of two opposite gap limits of the bearing.

5. The machine according to claim 1 , wherein the cavity is an annular groove provided in the stationary member.

6. The machine according to claim 1 , wherein the cavity is formed by an association of a plurality of spaced cavities that open to the inner radial surface of the stationary member, and each of which is connected to a duct provided in the stationary member and forming a portion of the flow communication means.

7. The machine according to claim 1 , wherein the flow communication means include pressure reduction means.

8. The machine according to claim 1 , wherein the flow communication means include at least one duct connecting the cavity to the volume situated in the vicinity of a second of the two opposite gap limits of the bearing.

9. The machine according to claim 1 , wherein pressure determination means for determining the water pressure in a duct forming a portion of the flow communication means.

10. The machine according to claim 9 , wherein the pressure determination means sends signals representative of water pressure in the duct to a control unit for controlling the machine.

11. The machine according to claim 1 , wherein the cavity extends at an axial distance from the first of the two opposite gap limits that has a value less than 10% of an axial dimension of the bearing.

12. The machine according to claim 1 , wherein the cavity has an axial dimension having a value lying in a range of 2.5% of the axial dimension of the bearing to 5% of the axial dimension of the bearing.

13. The machine according to claim 1 , wherein the cavity has a radial depth having a value at least twenty-five times greater than a radial thickness of the bearing.

14. An installation for converting hydraulic energy into electrical or mechanical energy, or vice versa, the installation including the hydraulic machine according to claim 1 .

15. The machine according to claim 1 , wherein the cavity has a radial depth having a value fifty times greater than a radial thickness of the bearing.

16. The machine according to claim 1 , wherein the cavity is spaced at an axial distance from the first of the two opposite gap limits of the bearing that has a value less than 5% of an axial dimension of the bearing.

Assignments (3)
CHANGE OF NAME Recorded Apr 7, 2017
From: ALSTOM RENEWABLE TECHNOLOGIES
To: GE RENEWABLE TECHNOLOGIES
Reel/Frame 042191/0072 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 29, 2013
From: ALSTOM HYDRO FRANCE
To: ALSTOM RENEWABLE TECHNOLOGIES
Reel/Frame 030899/0545 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2011
From: BERTEA, JEAN-FRANCOIS; VUILLEROD, GERARD
To: ALSTOM HYDRO FRANCE
Reel/Frame 025623/0401 →