IP Library Granted Patent US 10,048,673
Granted Patent B2
US 10,048,673 · App. 14/884,563 · Granted Aug 14, 2018

High pressure blowout preventer system

Inventors: John Steven Holmes (Houston, TX); Douglas Milliman (Houston, TX); Luis E. Huerta (Houston, TX); Eric Dale Larson (Houston, TX); Gregory Ronald Gillette (Houston, TX); Robert Arnold Judge (Houston, TX); Viral Shah (Houston, TX)
Assignee: HYDRIL USA DISTRIBUTION, LLC
G05B19/406E21B33/0355E21B33/064E21B34/16G05B2219/37399
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Quick Facts
Patent No.
US 10,048,673
App. No.
14/884,563
Granted
Aug 14, 2018
Kind
B2
Abstract

A BOP system for use in a high pressure subsea environment, including a BOP stack including a lower marine riser package and a lower stack portion, the lower stack portion having a plurality of BOP rams attached to a subsea wellhead. The system also includes a riser subsystem extending from a drilling vessel to the BOP stack and providing fluid communication therebetween, a ship board subsystem electronically, mechanically, and hydraulically connected to the BOP stack and the riser subsystem to control the functions of the BOP stack and the riser subsystem, and a safety instrumented system having a surface logic solver and at least one subsea logic solver, the safety instrumented system in communication with at least a portion of the BOP rams to act as a redundant control system in case of failure of the ship board subsystem.

Claims (41)

1. A blowout preventer (BOP) system for use in a high pressure subsea environment, comprising:

a BOP stack including a lower marine riser package and a lower stack portion, the lower stack portion having a plurality of BOP rams attached to a subsea wellhead;

a riser subsystem extending from a drilling vessel to the BOP stack and providing fluid communication therebetween;

a ship board subsystem electronically, mechanically, and hydraulically connected to the BOP stack and the riser subsystem to control the functions of the BOP stack and the riser subsystem; and

a safety instrumented system having a surface logic solver and at least one subsea logic solver, the safety instrumented system in communication with at least a portion of the BOP rams to act as a redundant control system in case of failure of the ship board subsystem by providing hydraulic control and communication to the BOP stack.

2. The BOP system of claim 1 , further comprising:

an auxiliary stack test system for connection to the BOP stack to test the BOP stack prior to deployment in order to ensure compliance of the BOP stack with predetermined standards, the auxiliary stack test system having testing hardware and software designed to mimic control system software and hardware to be used during drilling operations in order to test the BOP stack.

3. The BOP system of claim 1 , further comprising:

a data management subsystem in communication with the ship board subsystem that hosts applications for controlling drilling operations, and that acts as a portal for transmitting data to a cloud based data management system.

4. The BOP system of claim 3 , wherein the data management subsystem comprises a server that resides on a drilling vessel.

5. The BOP system of claim 3 , wherein the data management subsystem utilizes cloud based data management services to transmit operational data about drilling operations.

6. The BOP system of claim 1 , further comprising:

an umbilical subsystem including power cables, hydraulic hoses, and communication cables between the ship board subsystem and the BOP stack, riser subsystem, and safety instrumented system.

7. The BOP system of claim 1 , wherein the BOP system is operable with wells having a pressure of up to at least approximately 20,000 pounds per square inch.

8. The BOP system of claim 1 , wherein the BOP system is operable with well fluids having a temperature of up to at least approximately 350 degrees Fahrenheit.

9. A blowout preventer (BOP) system for use in a high pressure subsea environment, comprising:

a BOP stack connected to a drilling vessel, the BOP stack including a lower marine riser package and a lower stack portion, the lower stack portion having a plurality of BOP rams attached to a subsea wellhead; and

an auxiliary stack test system for connection to the BOP stack to test the BOP stack on the deck of a drilling vessel prior to deployment in order to ensure compliance of the BOP stack with predetermined standards, the auxiliary stack test system having testing hardware and software designed to mimic control system software and hardware to be used during drilling operations in order to effectively test the BOP stack, the auxiliary stack test system comprising a safety integrity level rated system cabinet configured to test a safety instrumented system of the BOP system; and

the auxiliary stack test system to test redundancy of the safety instrumented system in providing hydraulic control and communication to the BOP stack.

10. The BOP system of claim 9 , further comprising:

a ship board subsystem electronically, mechanically, and hydraulically connected to the BOP stack to control the functions of the BOP stack; and

wherein the safety instrumented system has a surface logic solver and at least one subsea logic solver, the safety instrumented system in communication with at least a portion of the BOP rams to act as a redundant control system in case of failure of the ship board subsystem.

11. The BOP system of claim 10 , further comprising:

a data management subsystem in communication with the ship board subsystem that provides a framework for hosting applications, and that acts as a portal for transmitting data to a cloud based data management system.

12. The BOP system of claim 11 , wherein the data management subsystem comprises a server that resides on a drilling vessel.

13. The BOP system of claim 11 , wherein the data management subsystem utilizes cloud based data management services to transmit operational data about drilling operations.

14. The BOP system of claim 11 , further comprising:

an umbilical subsystem including power cables, hydraulic hoses, and communication cables between the ship board subsystem and the BOP stack, riser subsystem, and safety instrumented system.

15. The BOP system of claim 9 , wherein the BOP system is operable with wells having a pressure of up to at least approximately 20,000 pounds per square inch.

16. The BOP system of claim 9 , wherein the BOP system is operable with well fluids having a temperature of up to at least approximately 350 degrees Fahrenheit.

17. A method of drilling for oil and gas in a high pressure subsea environment, the method comprising:

attaching a BOP stack to a wellhead at the sea floor, the wellhead capping a well having a pressure of up to at least approximately 20,000 pounds per square inch;

connecting the BOP stack to a drilling vessel using a subsea riser subsystem;

controlling functions of the BOP stack with a ship board subsystem that is electronically, mechanically, and hydraulically connected to components of the BOP stack;

connecting logic solvers associated with a safety instrumented system, and separate from the ship board subsystem, to components of the BOP stack, the safety instrumented system to act as a redundant control system for the BOP stack by providing hydraulic control and communication to the BOP stack.

18. The method of claim 17 , further comprising:

transmitting operational data to the cloud via a data management subsystem to notify of pending equipment service and failure patterns.

19. The method of claim 17 , further comprising:

connecting the BOP stack to an auxiliary stack test system to test the BOP stack prior to deployment in order to ensure compliance of the BOP stack with predetermined standards.

20. The method of claim 19 , further comprising:

testing the BOP stack on the deck of a drilling vessel using hardware and software in the auxiliary stack test system that mimics control system hardware and software to be used during drilling operations.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2015
From: HOLMES, JOHN STEVEN; MILLIMAN, DOUGLAS; HUERTA, LUIS E.; LARSON, ERIC DALE; GILLETTE, GREGORY RONALD; JUDGE, ROBERT ARNOLD; SHAH, VIRAL
To: HYDRIL USA DISTRIBUTION, LLC
Reel/Frame 036939/0766 →
Continuity (19)
Continuation In Part 14870249 · Sep 30, 2015
Provisional Application 62065431 · Oct 17, 2014
Provisional Application 62067829 · Oct 23, 2014
Provisional Application 62078236 · Nov 11, 2014
Provisional Application 62091160 · Dec 12, 2014
Provisional Application 62092973 · Dec 17, 2014
Provisional Application 62093051 · Dec 17, 2014
Provisional Application 62093083 · Dec 17, 2014
Provisional Application 62093200 · Dec 17, 2014
Provisional Application 62093029 · Dec 17, 2014
Provisional Application 62097845 · Dec 30, 2014
Provisional Application 62103817 · Jan 15, 2015
Provisional Application 62105445 · Jan 20, 2015
Provisional Application 62105379 · Jan 20, 2015
Provisional Application 62147210 · Apr 14, 2015
Provisional Application 62155671 · May 1, 2015
Provisional Application 62158364 · May 7, 2015
Provisional Application 62164086 · May 20, 2015
Related Publication 20160109874A1 · Apr 21, 2016
Cited By (2)
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