IP Library Granted Patent US 8,969,726
Granted Patent B2
US 8,969,726 · App. 12/465,769 · Granted Mar 3, 2015

Torque-balanced electrical cable

Inventors: Joseph Varkey (Sugar Land, TX); Sheng Chang (Sugar Land, TX); Vadim Protasov (Houston, TX)
Assignee: Schlumberger Technology Corporation
H01B7/046
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 8,969,726
App. No.
12/465,769
Granted
Mar 3, 2015
Kind
B2
Abstract

An embodiment of a wellbore cable comprises a cable core, at least a first armor wire layer comprising a plurality of strength members and surrounding the cable core, and at least a second armor wire layer comprising a plurality of strength members surrounding the first armor wire layer, the second armor wire layer covering a predetermined percentage of the circumference of the first armor wire layer to prevent torque imbalance in the cable.

Claims (22)

1. A wellbore cable, comprising:

three conductors, each comprising a cable core encased in a polymeric jacket, an inner armor wire layer disposed against the cable core at a lay angle, and a polymeric layer encasing the inner armor wire layer, wherein an additional armor wire layer covers a predetermined percentage of the circumference of the inner armor wire layer, wherein the predetermined percentage and radial spacing are selected to prevent torque imbalance in the cable, wherein the predetermined percentage is from 50 percent to 90 percent, and wherein the additional armor wire layer has strength members with a greater diameter than strength members in the inner armor wire layer; and

a soft polymer central element disposed between the three conductors, wherein the soft polymer central element is deformed completely filling the interstitial space between the conductors, the conductors cabled together helically at a lay angle opposite the lay angles of the respective armor wires in the conductors to prevent torque imbalance in the cable.

2. The cable of claim 1 wherein torque balance between the conductors is achieved by adjustments in the opposing lay angles of the armor wires and the completed cable.

3. The cable of claim 1 further comprising a final polymeric jacket encasing the three conductors.

4. The cable of claim 1 wherein a diameter of a circle passing through the centers of each of the conductors is approximately the same size as the individual diameter of each of the three conductors.

5. The cable of claim 1 wherein the cable cores comprise at least one of a monocable, a coaxial cable, a triad cable, and a heptacable.

6. The cable of claim 1 wherein at least one of the cable cores comprises an optical fiber.

7. A wellbore cable, comprising:

a cable core comprising a soft polymer central element disposed between three conductors, wherein the soft polymer central element is deformed completely filling the interstitial space between the conductors;

at least a first armor wire layer comprising a plurality of strength members and surrounding the cable core;

at least one layer of a polymeric material surrounding the cable core and the first armor wire layer and defining a predetermined radial thickness; and

at least a second armor wire layer comprising a plurality of strength members surrounding the first armor wire layer and partially disposed within the polymeric material, the polymeric material defining a predetermined radial spacing between the first armor wire layer and the second armor wire layer, the second armor wire layer covering a predetermined percentage of the circumference of the first armor wire layer, wherein the predetermined percentage and the radial spacing are selected to prevent torque imbalance in the cable, wherein the predetermined percentage is from 50 percent to 90 percent, and wherein a diameter of the strength members in the second armor wire layer is greater than a diameter of the strength members in the first armor wire layer.

8. The cable of claim 7 wherein the strength members of the second armor wire layer comprise at least one stranded armor wire member.

9. The cable of claim 7 wherein the polymeric material bonds to the first armor wire layer, the second armor wire layer, and the cable core.

10. The cable of claim 7 wherein the cable core further comprises a polymeric insulating layer and wherein the polymeric material bonds to the insulating layer of the cable core.

11. The cable of claim 7 further comprising a polymeric jacket forming an outer layer of the cable, the jacket bonded to at least the second armor wire layer.

12. The cable of claim 11 wherein the polymeric jacket comprises a fiber-reinforced polymer.

13. The cable of claim 7 wherein the cable core comprises one of a monocable, a coaxial cable, a triad cable, and a heptacable.

14. The cable of claim 7 wherein the cable core comprises a plurality of conductors and wherein at least one of the conductors of the plurality of conductors comprises an optical fiber.

15. The cable of claim 7 , wherein the cable core comprises an optical fiber.

16. The cable of claim 7 , wherein a diameter of a circle passing through the centers of each of the conductors is approximately the same size as the individual diameter of each of the three conductors.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2009
From: VARKEY, JOSEPH; CHANG, SHENG; PROTASOV, VADIM
To: SCHLUMBERGER TECHNOLOGY CORPORATION
Reel/Frame 022873/0328 →
Continuity (2)
Provisional Application 61053054 · May 14, 2008
Related Publication 20090283295A1 · Nov 19, 2009