IP Library Patent Application 14308415
Patent Application
App. No. 14/308,415

METHOD AND APPARATUS FOR MEASURING DEFORMATION OF ELASTOMERIC MATERIALS

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Quick Facts
Patent No.
US None
App. No.
14/308,415
Abstract

A method for measuring the deformation of elastomeric materials using acoustic signals involves obtaining a sample, positioning the sample in a sealable chamber, sealing the chamber, and setting a temperature and pressure inside the chamber. A test fluid may be introduced to the chamber. An acoustic signal is used to measure a characteristic of the sample, such as a dimension or a modulus. Repeated measurements may be made overtime to monitor changes in the sample in response to temperature and pressure. The acoustic signal may be generated by an acoustic transducer including a backing component including a fluorine-containing polymer in which metal particles are incorporated. The sample may be a non-metallic material. Conditions inside the chamber may be set to simulate a wellbore environment.

Claims (56)

1 . A method of measuring deformation of a non-metallic material, comprising:

placing a sample of a non-metallic material in a sealable chamber;

sealing the sealable chamber;

generating an acoustic signal;

bringing the sealable chamber to a test pressure;

bringing the sealable chamber to a test temperature;

supplying a test medium to the sealable chamber; and

measuring a characteristic of the sample using the acoustic signal.

2 . The method of claim 1 , wherein the test medium is a hydrocarbon fluid.

3 . The method of claim 1 , wherein the characteristic is a modulus of the sample.

4 . The method of claim 1 , wherein the acoustic signal is generated by an acoustic transducer.

5 . The method of claim 4 , wherein the acoustic transducer comprises:

a piezoelectric element configured to generate acoustic signals according to an electrical signal that is applied to the piezoelectric element;

a backing component contacting a back-side surface of the piezoelectric element; and

an encasing material that surrounds the piezoelectric element and the backing component,

wherein the backing component comprises a fluorine-containing polymer in which metal particles are incorporated, and

the metal particles comprise greater than 60% of the backing component by volume.

6 . The method of claim 4 , further comprising positioning an acoustic reflecting plate between the acoustic transducer and the sample such that only a first portion of the acoustic signal generated by the transducer reaches the sample and a second portion of the acoustic signal generated by the transducer is reflected back to the acoustic transducer by the acoustic reflecting plate.

7 . An apparatus for measuring deformation of a non-metallic material, comprising:

a sealable chamber;

a sample holder for holding a sample of a non-metallic material inside the sealable chamber;

a port for introducing a test medium; and

an acoustic transducer positioned to supply an acoustic signal to the sample.

8 . The apparatus of claim 7 , wherein a temperature and a pressure inside of the sealable chamber can be controlled.

9 . The apparatus of claim 7 , wherein the acoustic transducer comprises:

a piezoelectric element configured to generate acoustic signals according to an electrical signal that is applied to the piezoelectric element;

a backing component contacting a back-side surface of the piezoelectric element; and

an encasing material that surrounds the piezoelectric element and the backing component,

wherein the backing component comprises a fluorine-containing polymer in which metal particles are incorporated, and

the metal particles comprise greater than 60% of the backing component by volume.

10 . The apparatus of claim 9 , wherein the fluorine-containing polymer is a fluoroelastomer that comprises a di-polymer of vinylidene fluoride and hexafluoropropylene having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature.

11 . The apparatus of claim 9 , wherein the fluorine-containing polymer comprises a perfluoroelastomer having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature.

12 . The apparatus of claim 9 , wherein the fluorine-containing polymer comprises a terpolymer of vinylidene fluoride, hexafluoropropylene, and tetrafluoroethylene having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature

13 . The apparatus of claim 7 , wherein the sealable chamber comprises a body and lid.

14 . The apparatus of claim 7 , wherein the sample holder includes a plurality of sample cups.

15 . The apparatus of claim 7 , further comprising:

an acoustic reflecting plate positioned between the acoustic transducer and the sample holder such that only a first portion of the acoustic signal generated by the acoustic transducer reaches the sample holder and a second portion of the acoustic signal generated by the transducer is reflected back to the acoustic transducer by the acoustic reflecting plate.

16 . The apparatus of claim 15 , further comprising a plurality of acoustic transducers.

17 . A method of measuring a downhole characteristic, comprising:

placing an acoustic transducer in a wellbore; and

using the acoustic transducer to measure a characteristic of a portion of a downhole device, wherein the acoustic transducer comprises:

a piezoelectric element configured to generate acoustic signals according to an electrical signal that is applied to the piezoelectric element;

a backing component contacting a back-side surface of the piezoelectric element; and

an encasing material that surrounds the piezoelectric element and the backing component,

wherein the backing component comprises a fluorine-containing polymer in which metal particles are incorporated, and

the metal particles comprise greater than 40% of the backing component by volume.

18 . The method of claim 17 , wherein the downhole device comprises a packer.

19 . The method of claim 17 , wherein the electrical signal is supplied from a battery positioned in the wellbore.

20 . An acoustic transducer, comprising:

a piezoelectric element configured to generate acoustic signals according to an electrical signal that is applied to the piezoelectric element;

a backing component contacting a back-side surface of the piezoelectric element; and

an encasing material that surrounds the piezoelectric element and the backing component,

wherein the backing component includes a fluorine-containing polymer containing metal particles in an amount greater than 40% of the backing component by volume and the fluorine-containing polymer is selected from the group consisting of:

a. a terpolymer of vinylidene fluoride, hexafluoropropylene, and tetrafluoroethylene having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature;

b. a fluoroelastomer that comprises a di-polymer of vinylidene fluoride and hexafluoropropylene having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature; and

c. a perfluoroelastomer having a Mooney viscosity of less than 20 Mooney units as measured in a Mooney scorch test using a large rotor, a one minute preheat time, a ten minute test time, and a 100° C. test temperature.

Assignments (2)
NUNC PRO TUNC ASSIGNMENT Recorded Sep 29, 2015
From: WEATHERFORD/LAMB, INC.
To: WEATHERFORD TECHNOLOGY HOLDINGS, LLC
Reel/Frame 036709/0793 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 20, 2014
From: SLAY, JEREMY BUC; LAWREY, MARTIN W.; TELLO, LUCIO NELSON
To: WEATHERFORD/LAMB, INC.
Reel/Frame 033147/0702 →