IP Library Granted Patent US 8,168,570
Granted Patent B2
US 8,168,570 · App. 12/468,088 · Granted May 1, 2012

Method of manufacture and the use of a functional proppant for determination of subterranean fracture geometries

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Quick Facts
Patent No.
US 8,168,570
App. No.
12/468,088
Granted
May 1, 2012
Kind
B2
Abstract

Proppants having added functional properties are provided, as are methods that use the proppants to track and trace the characteristics of a fracture in a geologic formation. Information obtained by the methods can be used to design a fracturing job, to increase conductivity in the fracture, and to enhance oil and gas recovery from the geologic formation. The functionalized proppants can be detected by a variety of methods utilizing, for example, an airborne magnetometer survey, ground penetrating radar, a high resolution accelerometer, a geophone, nuclear magnetic resonance, ultra-sound, impedance measurements, piezoelectric activity, radioactivity, and the like. Methods of mapping a subterranean formation are also provided and use the functionalized proppants to detect characteristics of the formation.

Claims (69)

1. A proppant particle comprising:

a ceramic matrix; and

a functional component comprising a piezoelectric material, and further comprising one or more antenna-type device electrically coupled to the piezoelectric material, wherein upon irradiation of the proppant particle with an electromagnetic field, the one or more antenna-type device induces an electric current that generates a contraction or an expansion of the piezoelectric material.

2. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

providing one or more devices to generate signals in the geologic formation, the signals comprising acoustic, seismic, vibrational, magnetic, electrical, electromagnetic, and/or heat signals;

providing one or more devices to detect the signals in the geologic formation;

injecting a proppant of claim 1 into the fracture, wherein the proppant comprises a signal-transforming attribute configured to transform signals generated by the one or more devices to generate signals;

generating signals in the geologic formation, using the one or more devices to generate signals;

transforming the signals generated, with the proppant pack, to form transformed signals; measuring the transformed signals; and

determining the geometry of the fracture using the measured transformed signals.

3. The method of claim 2 , wherein the one or more devices to generate a signal comprises an ultra-sound generating device or an electrical signal generating device, and optionally the one or more devices to detect comprises an impedance measurement device, a piezoelectric detector, an optical detector that detects optical signals carried by fiber optics, or an array of accelerometers and the transformed signals comprise gravitational field strength signals.

4. The proppant particle of claim 1 , wherein the functional component is distributed throughout the ceramic matrix.

5. The proppant particle of claim 1 , wherein the functional component is incorporated in the proppant particle as a discrete phase.

6. The proppant particle of claim 1 , wherein the functional component is incorporated in the proppant particle as a solid solution, an alloy, or any combination thereof, with the ceramic matrix or a polymer, in one or more layers and overcoated with a layer of the ceramic matrix or a polymer.

7. The proppant particle of claim 1 , comprising a core of said functional component overcoated with the ceramic matrix or a polymer.

8. The proppant particle of claim 1 , wherein the contraction or expansion of the piezoelectric material induces a vibration of the proppant particle.

9. The proppant particle of claim 1 , wherein the piezoelectric material comprises a ceramic material having a perovskite-type crystal structure.

10. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

positioning a detector in a position to measure vibrations from the geologic formation;

injecting the proppant of claim 1 into the fracture;

irradiating the geologic formation with alternating electromagnetic radiation sufficient to generate an electric current in the antenna-type device;

exciting the piezoelectric material with the electric current to induce the piezoelectric material to cause vibrations;

measuring the frequency of the vibrations; and

determining the geometry of the fracture from the measured vibrations.

11. A proppant particle comprising:

a ceramic matrix; and

a functional component comprising a cathodoluminescent material and further comprising an antenna-type device, wherein upon irradiation of the proppant particle with an electromagnetic field, the antenna-type device induces a flow of electrons that excite the cathodoluminescent material to induce photon emission.

12. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

positioning a detector in a position to measure photons emitted from the geologic formation;

injecting the proppant of claim 11 into the fracture;

irradiating the proppant with an energy source sufficient to induce the cathodoluminescent material to emit photons;

measuring the photons emitted from the geologic formation; and

determining the geometry of the fracture from the measured photons.

13. The method of claim 12 , wherein the detector comprises an array of photomultiplier tubes, an array of photodetectors, photographic film, a CCD device, or a combination thereof, and wherein the detector is sent down hole to measure the photons emitted from the geologic formation.

14. A proppant particle comprising:

a ceramic matrix; and

a functional component comprising carbon nanotubes and further comprising a silica core, wherein the silica core is coated with carbon nanotubes, and the carbon nanotubes are overcoated with the ceramic matrix or a polymer.

15. A method for heating a proppant pack in a fracture in a geologic formation, the method comprising:

providing a source of electromagnetic radiation;

injecting the proppant of claim 14 into the fracture; and

irradiating the proppant with electromagnetic radiation sufficient to induce the proppant to generate heat.

16. The method of claim 15 , wherein the proppant further comprises a carrier fluid and the method comprises generating a sufficient amount of heat to degrade the carrier fluid.

17. The method of claim 15 , wherein crude oil is present in the fracture, the irradiating comprises generating sufficient heat to reduce the viscosity of the crude oil, and the method further comprises recovering the crude oil.

18. A proppant particle comprising:

a ceramic matrix; and

a functional component comprising an iron oxide.

19. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

positioning a detector in a position to measure a magnetic field generated from the geologic formation;

injecting the proppant of claim 18 into the fracture;

measuring the magnetic field generated from the geologic formation; and

determining the geometry of the fracture from the measured magnetic field.

20. The method of claim 19 , wherein the detector comprises one or more superconducting quantum interference device.

21. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

positioning one or more electrodes in a position to measure the electrical resistance of the geologic formation;

injecting the proppant of claim 18 into the fracture;

measuring the electrical resistance of the geologic formation; and

determining the geometry of the fracture from the measured electrical resistance.

22. A method for determining the geometry of a fracture in a geologic formation, the method comprising:

positioning a ground penetrating radar detector in a position to radiate electromagnetic signals into the geologic formation and to detect electromagnetic signals reflected from the geologic formation;

injecting the proppant of claim 18 into the fracture;

radiating electromagnetic signals into the geologic formation;

measuring electromagnetic signals that are reflected from the geologic formation; and

determining the geometry of the fracture from the reflected electromagnetic signals.

23. A proppant particle comprising:

a ceramic matrix; and

a functional component, wherein said ceramic matrix is:

a glass-ceramic matrix; and

said functional component comprises magnetite.

24. The proppant particle of claim 23 , wherein the functional component is incorporated in the proppant particle as a discrete phase in at least one layer overcoated with a layer of the glass-ceramic matrix.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 23, 2015
From: OXANE MATERIALS, INC.
To: HALLIBURTON ENERGY SERVICES, INC.
Reel/Frame 036174/0785 →
RELEASE OF SECURITY INTEREST Recorded Jul 9, 2015
From: COMERICA BANK
To: OXANE MATERIALS, INC.
Reel/Frame 036043/0417 →
RELEASE OF SECURITY INTEREST Recorded Jul 9, 2015
From: DELTA CENTAURI LLC
To: OXANE MATERIALS, INC.
Reel/Frame 036043/0665 →
SECURITY AGREEMENT Recorded Feb 28, 2014
From: OXANE MATERIALS, INC.
To: DELTA CENTAURI LLC
Reel/Frame 032367/0422 →
SECURITY AGREEMENT Recorded Mar 24, 2010
From: OXANE MATERIALS, INC.
To: COMERICA BANK, A TEXAS BANKING ASSOCIATION
Reel/Frame 024120/0914 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 10, 2009
From: BARRON, ANDREW R.; SKALA, ROBERT D.; COKER, CHRISTOPHER E.; CHATTERJEE, DILIP K.; XIE, YUMING
To: OXANE MATERIALS, INC.
Reel/Frame 022807/0960 →