Fluid imaging in a borehole

US10364673B1 · US · B1

Patent metadata
FieldValue
Publication numberUS-10364673-B1
Application numberUS-201615545890-A
CountryUS
Kind codeB1
Filing dateSep 29, 2016
Priority dateSep 29, 2016
Publication dateJul 30, 2019
Grant dateJul 30, 2019

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

A borehole fluid imaging system includes a plurality of radiation sources located circumferentially around the borehole. A plurality of radiation detectors are located circumferentially around the borehole. The plurality of radiation detectors detect the radiation transmitted by each of the respective ones of the plurality of radiation sources. A controller is coupled to the plurality of radiation detectors to determine an attenuation of the radiation at the plurality of detectors and generate an image of the fluid in response to the attenuation of the radiation.

First claim

Opening claim text (preview).

What is claimed is: 1. A system comprising: a plurality of radiation sources located circumferentially around a borehole to transmit radiation into a fluid in the borehole; a plurality of radiation detectors located circumferentially around the borehole, the plurality of radiation detectors to detect the radiation transmitted by each of the respective ones of the plurality of radiation sources; and a controller coupled to the plurality of radiation detectors to determine an attenuation of the radiation at the plurality of detectors and determine a chemical composition of the fluid in response to the attenuation of the radiation. 2. The system of claim 1 , wherein the plurality of radiation sources transmit in a frequency band selected from a group consisting of terahertz radiation, microwave radiation, and infrared radiation. 3. The system of claim 1 , wherein the plurality of radiation sources equals the plurality of radiation detectors. 4. The system of claim 3 , wherein each of the plurality of radiation detectors is located opposite a respective one of the plurality of radiation sources. 5. The system of claim 1 , wherein the plurality of radiation sources and the plurality of radiation detectors are configured in alternating radiation sources and radiation detectors in a helical pattern circumferentially around the borehole. 6. The system of claim 1 , wherein the plurality of radiation sources and the plurality of radiation detectors are configured in alternating radiation sources and radiation detectors in a circular pattern circumferentially around the borehole. 7. The system of claim 6 , wherein the plurality of radiation sources and the plurality of radiation detectors alternate in a plurality of circular patterns circumferentially around the borehole, wherein each circular pattern comprises alternating radiation detectors and radiation sources. 8. The system of claim 1 , wherein each of the plurality of radiation sources comprises a selectable waveguide window. 9. The system of claim 8 , wherein each selectable waveguide window is configured to be selectable between being transparent to the radiation and opaque to the radiation. 10. The system of claim 8 , wherein each selectable waveguide window is configured to be switched between open and closed. 11. A method comprising: transmitting radiation into a fluid from a plurality of radiation sources; receiving, by a plurality of radiation detectors, the radiation from each respective radiation source, wherein the plurality of radiation sources and the plurality of radiation detectors alternate circumferentially around a pipe; and generating an image of the fluid in the pipe in response to an attenuation of the radiation measured at the plurality of radiation detectors. 12. The method of claim 11 , wherein transmitting the radiation comprises transmitting terahertz radiation. 13. The method of claim 11 , further comprising determining a composition of the fluid in response to the image of the fluid. 14. The method of claim 13 , further comprising determining a water cut of the fluid in response to the image of the fluid. 15. A system comprising: a pipe comprising a fluid; a plurality of radiation sources located circumferentially around the pipe, wherein respective ones of the plurality of radiation sources transmits radiation into the fluid at different times from others of the plurality of radiation sources; a plurality of radiation detectors located circumferentially around the pipe, the plurality of radiation detectors to detect the radiation transmitted by each of the respective ones of the plurality of radiation sources; and a controller coupled to the plurality of radiation detectors to determine an attenuation of the radiation at the plurality of detectors and generate an image of the fluid in response to the attenuation of the radiation. 16. The system of claim 15 , further comprising a plurality of waveguides, each waveguide coupled between a terahertz radiation source and a respective one of the plurality of radiation sources. 17. The system of claim 15 , further comprising: a light source to generate a light signal; an electro-opto-mechanical device coupled to the light source through a fiber optic cable and further coupled to the plurality of radiation sources, wherein the electro-opto-mechanical device is configured to generate microwave radiation in response to the light signal. 18. The system of claim 15 , further comprising: a light source to generate a light signal, the light source coupled to an electro-opto-mechanical device through a fiber optic cable, the electro-opto-mechanical device configured to generate microwave radiation in response to the light signal; and a frequency multiplier coupled between the electro-opto-mechanical device and the plurality of radiation sources, the frequency multiplier configured to generate terahertz radiation in response to the microwave radiation. 19. The system of claim 15 , wherein the system is one of a drilling system or a wireline system. 20. The system of claim 15 , wherein each radiation source is a respective source lens and each radiation detector is a respective detector lens, the system further comprising: a plurality of fiber optic cables, each fiber optic cable coupled to a respective lens; a light source coupled to the fiber optic cables that are coupled to a source lens; and a light detector coupled to the fiber optic cables that are coupled to a detector lens.

Assignees

Inventors

Classifications

  • Prospecting or detecting by methods combining techniques covered by two or more of main groups G01V1/00 - G01V9/00 · CPC title

  • using one transmitter and one receiver · CPC title

  • Prospecting or detecting by optical means · CPC title

  • Investigating or analysing materials by the use of microwaves or radio waves, i.e. electromagnetic waves with a wavelength of one millimetre or more (G01N3/00 - G01N17/00, G01N24/00 take precedence) · CPC title

  • Well testing, e.g. testing for reservoir productivity or formation parameters · CPC title

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What does patent US10364673B1 cover?
A borehole fluid imaging system includes a plurality of radiation sources located circumferentially around the borehole. A plurality of radiation detectors are located circumferentially around the borehole. The plurality of radiation detectors detect the radiation transmitted by each of the respective ones of the plurality of radiation sources. A controller is coupled to the plurality of radiat…
Who is the assignee on this patent?
Halliburton Energy Services Inc
What technology area does this patent fall under?
Primary CPC classification E21B47/053. Mapped technology areas include Fixed Constructions.
When was this patent published?
Publication date Tue Jul 30 2019 00:00:00 GMT+0000 (Coordinated Universal Time) (B1). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).