IP Library Granted Patent US 9,677,392
Granted Patent B2
US 9,677,392 · App. 13/926,891 · Granted Jun 13, 2017

Use of metal silicides in hydrocarbon production and transportation

Inventors: Paul H. Krumrine, III (Hanover, PA); James S. Falcone, Jr. (Palm Beach Gardens, FL); Michael Lefenfeld (New York, NY)
Assignee: SIGNA CHEMISTRY, INC.
E21B43/267C09K8/524C09K8/64C09K8/665C09K8/70C09K8/82C09K8/845C09K8/92E21B43/26
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Quick Facts
Patent No.
US 9,677,392
App. No.
13/926,891
Granted
Jun 13, 2017
Kind
B2
Abstract

A method of hydraulic fracturing is provided which uses metal silicides to generate significant pressure inside a wellbore. The method comprises injecting a fracturing fluid and an aqueous or reacting fluid into the wellbore to react with the fracturing fluid. The fracturing fluid comprises metal silicide, which may be uncoated or coated, and hydrocarbon fluid. The aqueous fluid comprises water. The reacting fluid comprises water or a solvent. A method of removing buildup in pipelines such as subsea pipelines which uses metal silicides to generate heat and pressure inside the pipeline is also provided. The method comprises injecting an organic slug and an aqueous slug. The organic slug comprises metal silicide and hydrocarbon fluid. The aqueous slug comprises water. Alternatively, there is also provided a method for purifying flowback water produced from a hydraulic fracturing process comprising adding metal silicide to the flowback water produced from a hydraulic fracturing process. The metal silicide in any of these methods may be alkali metal silicide or another metal silicide.

Claims (53)

1. A method of hydraulic fracturing comprising:

injecting a fracturing fluid into a wellbore,

said fracturing fluid comprising:

at least 10% proppant,

at least 5% metal silicide, and

hydrocarbon fluid; and

injecting an aqueous fluid comprising water into said wellbore,

wherein said metal silicide reacts with said water to generate a pressure of at least 1,000 prig in said wellbore.

2. The method of claim 1 , wherein said metal silicide is an alkali metal silicide.

3. The method of claim 1 , wherein said metal silicide is beryllium silicide, magnesium silicide, calcium silicide, strontium silicide, barium silicide, radium silicide, boron silicide or mixtures thereof.

4. A method of hydraulic fracturing comprising:

injecting a metal silicide loaded fracturing fluid into a wellbore,

said metal silicide loaded fracturing fluid comprising

at least 20% metal silicide, and

hydrocarbon fluid;

injecting a proppant loaded fracturing fluid into said wellbore,

said proppant loaded fracturing fluid comprising

at least 10% proppant and

hydrocarbon fluid; and

injecting an aqueous fluid comprising water into said wellbore,

wherein said metal silicide reacts with said water to generate a pressure of at least 1,000 psig in said wellbore.

5. The method of claim 4 , wherein said metal silicide is an alkali metal silicide.

6. The method of claim 4 , wherein said metal silicide is beryllium silicide, magnesium silicide, calcium silicide, strontium silicide, barium silicide, radium silicide, boron silicide or mixtures thereof.

7. A method of hydraulic fracturing comprising:

injecting a metal silicide loaded fracturing fluid into a wellbore,

said metal silicide loaded fracturing fluid comprising

at least 20% metal silicide and

hydrocarbon fluid;

injecting a spacer slug into said wellbore, said spacer slug comprising hydrocarbon fluid;

injecting a proppant loaded fracturing fluid into said wellbore,

said proppant loaded fracturing fluid comprising

at least 10% proppant and

water; and

injecting an aqueous fluid comprising water into said wellbore,

wherein said spacer slug is injected in between the metal silicide loaded fracturing fluid and the proppant loaded fracturing fluid, and

wherein said metal silicide reacts with water to generate a pressure of at least 1,000 psig in said wellbore.

8. The method of claim 7 , wherein said metal silicide is an alkali metal silicide.

9. The method of claim 7 , wherein said metal silicide is beryllium silicide, magnesium silicide, calcium silicide, strontium silicide, barium silicide, radium silicide, boron silicide or mixtures thereof.

10. A method of hydraulic fracturing comprising:

injecting a fracturing fluid into a wellbore,

said fracturing fluid comprising

at least 10% proppant,

at least 5% metal silicide composition, said metal silicide composition comprising metal silicide encapsulated in a water insoluble coating, and

a liquid carrier; and

injecting a reacting fluid into said wellbore to remove said water insoluble coating on said metal silicide composition and react with said metal silicide to generate a pressure of at least 1,000 prig in said wellbore.

11. The method of claim 10 , wherein said metal silicide is an alkali metal silicide.

12. The method of claim 10 , wherein said metal silicide is beryllium silicide, magnesium silicide, calcium silicide, strontium silicide, barium silicide, radium silicide, boron silicide or mixtures thereof.

13. The method of claim 10 , wherein

said water insoluble coating is a wax coating, and

said reacting fluid comprises water or steam, and is of a temperature greater than the melting point of said water insoluble coating.

14. The method of claim 10 , wherein

said water insoluble coating is a degradable polymer coating, and

said reacting fluid comprises a solvent that will dissolve said water insoluble coating.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 12, 2013
From: KRUMRINE, PAUL H., III; FALCONE, JAMES S., JR; LEFENFELD, MICHAEL
To: SIGNA CHEMISTRY, INC.
Reel/Frame 030786/0032 →
Continuity (2)
Provisional Application 61663880 · Jun 25, 2012
Related Publication 20130341023A1 · Dec 26, 2013