IP Library Granted Patent US 10,590,763
Granted Patent B2
US 10,590,763 · App. 15/837,703 · Granted Mar 17, 2020

Proppant additives for hydraulic fracturing

Inventors: Pabitra N. Sen (Berkeley, CA); Alfred Kleinhammes (Chapel Hill, NC); Yue Wu (Chapel Hill, NC); Michele O'Callaghan (Houston, TX); Mohsen Ahmadian-Tehrani (Austin, TX)
Assignees: THE UNIVERSITY OF NORTH CAROLINA AT CHAPEL HILL; BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEM; STATOIL GULF SERVICES LLC
E21B49/00C09K8/80E21B43/267G01V3/26
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Quick Facts
Patent No.
US 10,590,763
App. No.
15/837,703
Granted
Mar 17, 2020
Kind
B2
Abstract

Hydraulic fracturing of a geological formation is performed by injection of a proppant mixture into the geological formation to form fractures in the geological formation. The proppant mixture includes at least a liquid, proppant, and proppant additive particles. The hydraulic fracturing results in a presence of the proppant additive particles within the formed fractures, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation. The formed fractures can then be imaged and mapped in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity. The complex conductivity includes a real conductivity and an imaginary conductivity.

Claims (35)

1. A method comprising:

performing a hydraulic fracturing of a geological formation by injection of a proppant mixture into the geological formation to form fractures in the geological formation, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the hydraulic fracturing results in a presence of the proppant additive particles within the formed fractures, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation, wherein the complex conductivity includes a real conductivity and an imaginary conductivity; and

imaging the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the imaginary conductivity is measured from a polarization induced in the proppant additive particles by the electromagnetic energy.

2. The method as recited in claim 1 , wherein the imaging is produced from measured phase shift responses over a range of the one or more frequencies.

3. The method as recited in claim 1 , wherein a volume percentage of the proppant additive particles is about 100% or less of the proppant mixture.

4. The method as recited in claim 1 , wherein the proppant additive particles have sizes in substantially a range of sizes of the proppant.

5. A method comprising:

performing a hydraulic fracturing of a geological formation by injection of a proppant mixture into the geological formation to form fractures in the geological formation, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the hydraulic fracturing results in a presence of the proppant additive particles within the formed fractures, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation, wherein the complex conductivity includes a real conductivity and an imaginary conductivity; and

imaging the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein a volume percentage of the proppant additive particles in the proppant mixture injected within the formed fractures is less than the electrical percolation threshold for distinguishing the real conductivity of the first complex conductivity from the real conductivity of the second complex conductivity.

6. A method comprising:

performing a hydraulic fracturing of a geological formation by injection of a proppant mixture into the geological formation to form fractures in the geological formation, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the hydraulic fracturing results in a presence of the proppant additive particles within the formed fractures, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation; and

imaging the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the proppant additive particles comprise coke breeze particles.

7. The method as recited in claim 6 , wherein the proppant mixture further comprises nanoparticles having an electromechanical frequency response different than that of the proppant additive particles, and wherein the nanoparticles are configured to penetrate into the geological formation surrounding the formed fractures.

8. The method as recited in claim 6 , wherein the proppant mixture further comprises nanoparticles having an electromechanical frequency response different than that of the proppant additive particles, and wherein the imaging the fractures formed in the geological formation is performed with at least two different frequencies so that images produced from the electromechanical frequency response of the nanoparticles are different than images produced from the electromechanical frequency response of the proppant additive particles.

9. A method comprising:

performing a hydraulic fracturing of a geological formation by injection of a proppant mixture into the geological formation to form fractures in the geological formation, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the hydraulic fracturing results in a presence of the proppant additive particles within the formed fractures, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation; and

imaging the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the proppant additive particles comprise zero valent iron particles.

10. A system comprising:

hydraulic fracturing equipment configured to inject a proppant mixture into a geological formation to form fractures in the geological formation and result in a presence of the proppant additive particles within one or more of the formed fractures, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation; and

imaging equipment configured to produce images of the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles present within one or more of the formed fractures function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the proppant mixture further comprises nanoparticles having an electromechanical frequency response different than that of the proppant additive particles, and wherein the nanoparticles are configured to penetrate into the geological formation surrounding the formed fractures.

11. The system as recited in claim 10 , wherein the complex conductivity includes a real conductivity and an imaginary conductivity.

12. A system comprising:

hydraulic fracturing equipment configured to inject a proppant mixture into a geological formation to form fractures in the geological formation and result in a presence of the proppant additive particles within one or more of the formed fractures, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation, wherein the complex conductivity includes a real conductivity and an imaginary conductivity; and

imaging equipment configured to produce images of the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles present within one or more of the formed fractures function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the imaginary conductivity is measured from a polarization induced in the proppant additive particles by the electromagnetic energy.

13. The system as recited in claim 12 , wherein the imaging is produced from measured phase shift responses over a range of the one or more frequencies.

14. A system comprising:

hydraulic fracturing equipment configured to inject a proppant mixture into a geological formation to form fractures in the geological formation and result in a presence of the proppant additive particles within one or more of the formed fractures, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation, wherein the complex conductivity includes a real conductivity and an imaginary conductivity; and

imaging equipment configured to produce images of the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles present within one or more of the formed fractures function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein a volume percentage of the proppant additive particles in the proppant mixture injected within the formed fractures is less than the electrical percolation threshold for distinguishing the real conductivity of the first complex conductivity from the real conductivity of the second complex conductivity.

15. A system comprising:

hydraulic fracturing equipment configured to inject a proppant mixture into a geological formation to form fractures in the geological formation and result in a presence of the proppant additive particles within one or more of the formed fractures, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation; and

imaging equipment configured to produce images of the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles present within one or more of the formed fractures function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the proppant additive particles comprise coke breeze particles.

16. The system as recited in claim 15 , wherein the proppant and the coke breeze particles are configured to hold open the fractures subsequent to their formation.

17. A system comprising:

hydraulic fracturing equipment configured to inject a proppant mixture into a geological formation to form fractures in the geological formation and result in a presence of the proppant additive particles within one or more of the formed fractures, wherein the proppant mixture comprises a liquid, proppant, and proppant additive particles, wherein the proppant additive particles are configured with a first complex conductivity that is measurably different than a second complex conductivity exhibited by materials comprising the geological formation; and

imaging equipment configured to produce images of the fractures formed in the geological formation with electromagnetic energy at one or more frequencies in a manner so that the proppant additive particles present within one or more of the formed fractures function as a contrast agent due to the first complex conductivity of the proppant additive particles being measurably different from the second complex conductivity, wherein the proppant additive particles comprise insulating particles with a functionalized surface that acquires a high surface charge when exposed to water or an electrolyte.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 20, 2018
From: O'CALLAGHAN, MICHELE
To: STATOIL GULF SERVICES, LLC
Reel/Frame 045284/0295 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 20, 2018
From: SEN, PABITRA N.; KLEINHAMMES, ALFRED; WU, YUE
To: NORTH CAROLINA AT CHAPEL HILL, THE UNIVERSITY OF
Reel/Frame 045290/0477 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 16, 2018
From: AHMADIAN-TEHRANI, MOHSEN
To: BOARD OF REGENTS, THE UNIVERSITY OF TEXAS SYSTEM
Reel/Frame 045253/0680 →
Continuity (3)
Continuation In Part PCTUS2016037214 · Jun 13, 2016
Provisional Application 62174079 · Jun 11, 2015
Related Publication 20180100389A1 · Apr 12, 2018
Cited By (9)
US 12,365,828 US 12,466,992 US 12,521,764 US 12,540,273 US 12,637,611 US 12,649,875 US 12,650,066 US 12,662,624 US 12,674,380