IP Library Granted Patent US 9,556,905
Granted Patent B2
US 9,556,905 · App. 12/648,002 · Granted Jan 31, 2017

Split bearing assemblies, air-cooled heat exchangers and related methods

Inventors: Gary E. Gibson, Jr. (The Woodlands, TX); Craig Watkinson (Littleover Derby, GB); Niles Hlavacek (Deer Park, TX)
Assignee: Green, Tweed Technologies, Inc.
F16C33/20F16C33/74F16J15/3236F16J15/3268Y10T29/4935
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Quick Facts
Patent No.
US 9,556,905
App. No.
12/648,002
Granted
Jan 31, 2017
Kind
B2
Abstract

Bearing assemblies are provided that include a bearing having a split bearing body that includes a material such as a composite or a thermoplastic; and at least one recess configured for receiving a rotary seal assembly; and at least one rotary seal assembly comprising an energizing component. The bearing assemblies may further include at least two recesses and/or an energizing component that is an o-ring.

Claims (33)

1. A bearing assembly comprising a bearing and at least one rotary seal assembly comprising an energizing component,

wherein the bearing has: a split bearing body split along an axial direction that comprises material chosen from a composite or a thermoplastic, and at least one recess configured for receiving the at least one rotary seal assembly, and

wherein the at least one rotary seal assembly is a split spring-energized seal assembly that comprises:

a seal assembly body having a first seal assembly body portion and a second seal assembly body portion, the first seal assembly body portion and the second seal assembly body portion each having a generally semi-circular cross-sectional configuration when viewed in an axial direction of the bearing assembly so that when the first and the second seal assembly body portions are joined to form the seal assembly body, they also form a generally circular cross-sectional configuration in the axial direction of the bearing assembly and

wherein the seal assembly body portions are shaped to define a groove within each of the

first and the second seal assembly body portions, wherein the grooves in the first and the second seal assembly body portions together are configured to meet in generally facing engagement;

a spring element configured to be received within the grooves, the spring element having an opening configured to receive the energizing component, wherein

the energizing component that is sized to fit within the opening in the spring element within the grooves in the first and the second seal assembly body portions to form a ball-and-socket o-ring configuration within the split metal spring-energized seal assembly and the energizing component comprises an elastomeric material.

2. The bearing assembly of claim 1 , wherein the energizing component is an o-ring.

3. The bearing assembly of claim 1 , wherein the elastomeric material is chosen from a nitrile rubber, a hydrogenated nitrile rubber, a fluoroelastomer, a tetrafluoroethylene/propylene rubber, a perfluoroelastomer, and copolymers thereof.

4. The bearing assembly of claim 1 , wherein the bearing body comprises a material chosen from polytetrafluoroethylene, polyimide, polyarylene ketones, polyamides, polyetherimides, polyetheramides, polysulfones, polyethersulfones, and derivatives and copolymers thereof.

5. The bearing assembly of claim 1 , wherein the bearing body comprises a polyarylene ketone chosen from polyether ketone, polyether ether ketone, and polyether ketone ketone.

6. The bearing assembly of claim 5 , wherein the bearing body comprises polytetrafluoroethylene or polyetherimide.

7. The bearing assembly of claim 1 , comprising at least two recesses configured for receiving a rotary seal assembly.

8. The bearing assembly of claim 7 , comprising at least two rotary seal assemblies.

9. The bearing assembly of claim 1 , wherein the at least one recess in the bearing body has an enlarged width, measured in the axial direction of the bearing assembly, that accommodates an enlarged joining area in the seal assembly body.

10. The bearing assembly of claim 1 , wherein the bearing is self-adjusting.

11. An air-cooled heat exchanger comprising a bearing assembly that comprises a bearing and at least one rotary seal assembly comprising an energizing component,

wherein the bearing is self-adjusting and has: a split bearing body split along an axial direction that comprises material chosen from a composite or a thermoplastic, and at least one recess configured for receiving the at least one rotary seal assembly, and

wherein the at least one rotary seal assembly is a split spring-energized seal assembly that comprises:

a seal assembly body having a first seal assembly body portion and a second seal assembly body portion, the first seal assembly body portion and the second seal assembly body portion each having a generally semi-circular cross-sectional configuration when viewed in an axial direction of the bearing assembly so that when the first and the second seal assembly body portions are joined to form the seal assembly body, they also form a generally circular cross-sectional configuration in the axial direction of the bearing assembly and

wherein the seal assembly body portions are shaped to define a groove within each of the

first and the second seal assembly body portions, wherein the grooves in the first and the second seal assembly body portions together are configured to meet in generally facing engagement;

a spring element configured to be received within the grooves, the spring element having an opening configured to receive the energizing component, wherein

the energizing component that is sized to fit within the opening in the spring element within the grooves in the first and the second seal assembly body portions to form a ball-and-socket o-ring configuration within the split metal spring-energized seal assembly and the energizing component comprises an elastomeric material.

12. A method of manufacturing an air cooled heat exchanger comprising providing to the air cooled heat exchanger a bearing assembly that comprises a bearing and at least one rotary seal assembly comprising an energizing component,

wherein the bearing is self-adjusting and has: a split bearing body split along an axial direction that comprises material chosen from a composite or a thermoplastic, and at least one recess configured for receiving the at least one rotary seal assembly, and

wherein the at least one rotary seal assembly is a split spring-energized seal assembly that comprises:

a seal assembly body having a first seal assembly body portion and a second seal assembly body portion, the first seal assembly body portion and the second seal assembly body portion each having a generally semi-circular cross-sectional configuration when viewed in an axial direction of the bearing assembly so that when the first and the second seal assembly body portions are joined to form the seal assembly body, they also form a generally circular cross-sectional configuration in the axial direction of the bearing assembly and

wherein the seal assembly body portions are shaped to define a groove within each of the

first and the second seal assembly body portions, wherein the grooves in the first and the second seal assembly body portions together are configured to meet in generally facing engagement;

a spring element configured to be received within the grooves, the spring element having an opening configured to receive the energizing component, wherein

the energizing component that is sized to fit within the opening in the spring element within the grooves in the first and the second seal assembly body portions to form a ball-and-socket o-ring configuration within the split metal spring-energized seal assembly and the energizing component comprises an elastomeric material.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2014
From: HLAVACEK, NILES
To: GREENE,TWEED TECHNOLOGIES, INC.
Reel/Frame 034548/0061 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2014
From: WATKINSON, CRAIG; GIBSON, GARY
To: GREENE, TWEED OF DELAWARE, INC.
Reel/Frame 034548/0249 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 12, 2014
From: GREENE, TWEED OF DELAWARE, LLC
To: GREENE, TWEED TECHNOLOGIES, INC.
Reel/Frame 032263/0712 →
CHANGE OF NAME Recorded Feb 7, 2014
From: GREENE, TWEED OF DELAWARE, INC.
To: GREENE, TWEED OF DELAWARE, LLC
Reel/Frame 032174/0324 →
Continuity (3)
Continuation In Part 12493376 · Jun 29, 2009
Provisional Application 61076481 · Jun 27, 2008
Related Publication 20100163219A1 · Jul 1, 2010