IP Library Granted Patent US 8,663,348
Granted Patent B2
US 8,663,348 · App. 12/854,636 · Granted Mar 4, 2014

Apparatus for removing heat from injection devices and method of assembling same

Inventors: Kenneth M. Sprouse (Northridge, CA); Shahram Farhangi (Woodland Hills, CA); Robert M. Saxelby (Cedar Park, TX); David R. Matthews (Simi Valley, CA)
Assignee: General Electric Company
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Quick Facts
Patent No.
US 8,663,348
App. No.
12/854,636
Granted
Mar 4, 2014
Kind
B2
Abstract

A method of assembling an injection device for use in a reactor injector feed assembly includes extending the injection device at least partially into a cavity. The injection device includes a plurality of substantially concentric conduits coupled to a modular tip that includes a plurality of cooling channels and a plurality of substantially annular nozzles defined therein. The method also includes coupling at least one coolant distribution device in flow communication with the plurality of cooling channels to facilitate removing heat from an outer surface of the injection device.

Claims (47)

1. An injection device for use in a reactor injector feed assembly comprising:

a plurality of substantially concentric conduits coupled to a modular tip comprising a plurality of substantially annular nozzles;

an outer surface extending into a cavity such that said outer surface is exposed to a source of heat within the cavity;

a cooling fluid supply plenum;

a cooling fluid return plenum;

a plurality of cooling channels defined within said injection device, each of said cooling channels is at least one of radially and axially inward of said outer surface and coupled in flow communication with said cooling fluid supply and return plenums, wherein said plurality of cooling channels comprises a plurality of radially outer cooling channels, a plurality of radially inner cooling channels, and a plurality of substantially circumferential cooling channels, wherein said plurality of radially outer cooling channels comprises:

at least one radially outer cooling channel inlet coupled in flow communication with said cooling fluid supply plenum; and

at least one radially outer cooling channel outlet coupled in flow communication with said coolant fluid return plenum; and

at least one coolant distribution device coupled in flow communication with said plurality of cooling channels to facilitate removing heat from at least a portion of said outer surface.

2. An injection device in accordance with claim 1 , wherein

said at least one coolant distribution device comprises at least one cooling channel orifice plate.

3. An injection device in accordance with claim 1 , wherein:

said plurality of radially inner cooling channels comprise:

at least one radially inner cooling channel inlet orifice plate coupled in flow communication with said radially inner coolant supply plenum, said radially inner coolant supply plenum coupled in flow communication with said cooling fluid supply plenum via at least one coolant supply spoke; and

at least one radially inner cooling channel outlet coupled in flow communication with radially inner coolant return plenum, said radially inner coolant return plenum coupled in flow communication with said cooling fluid return plenum via at least one coolant return spoke; and

said plurality of substantially circumferential cooling channels comprises:

at least one axially inner circumferential cooling channel coupled in flow communication with said cooling fluid supply plenum and said cooling fluid return plenum; and

at least one axially outer circumferential cooling channel coupled in flow communication with said cooling fluid supply plenum and said cooling fluid return plenum.

4. An injection device in accordance with claim 1 , wherein said outer surface comprises a transpiration-type open cooling system, wherein said outer surface at least partially comprises a porous material.

5. A gasification facility comprising:

at least one carbonaceous reactant source;

at least one oxygenated fluid reactant source;

at least one gasification reactor comprising at least one injection device coupled in flow communication with said at least one carbonaceous reactant source and said at least one oxygenated fluid reactant source, said at least one injection device comprising:

a plurality of substantially concentric conduits coupled to a modular tip comprising a plurality of substantially annular nozzles;

an outer surface extending into said at least one gasification reactor such that said outer surface is exposed to a source of heat within said at least one gasification reactor;

a cooling fluid supply plenum;

a cooling fluid return plenum;

a plurality of cooling channels defined within said injection device, each of said cooling channels is at least one of radially and axially inward of said outer surface and coupled in flow communication with said cooling fluid supply and return plenums, wherein said plurality of cooling channels comprises a plurality of radially outer cooling channels, a plurality of radially inner cooling channels, and a plurality of substantially circumferential cooling channels, wherein said plurality of radially outer cooling channels comprises:

at least one radially outer cooling channel inlet coupled in flow communication with said cooling fluid supply plenum; and

at least one radially outer cooling channel outlet coupled in flow communication with said coolant fluid return plenum; and

at least one coolant distribution device coupled in flow communication with said plurality of cooling channels to facilitate removing heat from at least a portion of said outer surface.

6. A gasification facility in accordance with claim 5 , wherein said modular tip defines at least a portion of said outer surface, said outer surface comprises:

a plurality of first cooling surfaces that radially extend about and are spaced radially about at least a portion of said outer surface; and

a plurality of second cooling surfaces that circumferentially extend about and are spaced circumferentially about at least a portion of said outer surface.

7. A gasification facility in accordance with claim 6 , wherein:

said plurality of first cooling surfaces comprises a radially outer cooling surface and a radially inner cooling surface; and

said plurality of second cooling surfaces comprises an axially inner circumferential cooling surface and an axially outer circumferential cooling surface.

8. A gasification facility in accordance with claim 5 , wherein

said at least one coolant distribution device comprises at least one cooling channel orifice plate.

9. A gasification facility in accordance with claim 5 , wherein:

said plurality of radially inner cooling channels comprise:

at least one radially inner cooling channel inlet orifice plate coupled in flow communication with said radially inner coolant supply plenum, said radially inner coolant supply plenum coupled in flow communication with said cooling fluid supply plenum via at least one coolant supply spoke; and

at least one radially inner cooling channel outlet coupled in flow communication with said radially inner coolant return plenum, said radially inner coolant return plenum coupled in flow communication with said cooling fluid return plenum via at least one coolant return spoke; and

said plurality of substantially circumferential cooling channels comprises:

at least one axially inner circumferential cooling channel coupled in flow communication with said cooling fluid supply plenum and said cooling fluid return plenum; and

at least one axially outer circumferential cooling channel coupled in flow communication with said cooling fluid supply plenum and said cooling fluid return plenum.

10. A gasification facility in accordance with claim 5 , wherein said outer surface comprises a transpiration-type open cooling system, wherein said outer surface at least partially comprises a porous material.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS INCORRECTLY LIST SCHENECTADY, MISSOURI 12345 WHEN IT SHOULD BE SCHENCTADY, NEW YORK 12345 PREVIOUSLY RECORDED ON REEL 024918 FRAME 0558. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNEE: GENERAL ELECTRIC COMPANY 1 RIVER ROAD SCHENECTADY, NEW YORK 12345. Recorded Sep 3, 2010
From: SPROUSE, KENNETH M.; FARHANGI, SHAHRAM; SEXELBY, ROBERT M.; MATTHEWS, DAVID R.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 025028/0245 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE'S ADDRESS INCORRECTLY LIST SCHENECTADY, MISSOURI 12345 WHEN IT SHOULD BE SCHENECTADY, NEW YORK 12345 PREVIOUSLY RECORDED ON REEL 024918 FRAME 0558. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNEE: GENERAL ELECTRIC COMPANY 1 RIVER ROAD SCHENECTADY, NEW YORK 12345. Recorded Sep 3, 2010
From: SPROUSE, KENNETH M.; FARHANGI, SHAHRAM; SAXELBY, ROBERT M.; MATTHEWS, DAVID R.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 025032/0469 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 31, 2010
From: SPROUSE, KENNETH M.; FARHANGI, SHAHRAM; SAXELBY, ROBERT M.; MATTHEWS, DAVID R.
To: GENERAL ELECTRIC COMPANY
Reel/Frame 024918/0558 →
Continuity (1)
Related Publication 20120039761A1 · Feb 16, 2012