Downhole logging system with azimuthal and radial sensitivity

US9690006B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9690006-B2
Application numberUS-201414758700-A
CountryUS
Kind codeB2
Filing dateJan 21, 2014
Priority dateJan 21, 2014
Publication dateJun 27, 2017
Grant dateJun 27, 2017

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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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Abstract

Official abstract text for this publication.

Embodiments of the invention provide a downhole tool that includes a photon source, a photon detector having a plurality of detector pixels in a cylindrical row and column arrangement, and a radial collimator having at least two concentric frustoconical collimators circumferentially arranged about the photon detector and at least two azimuthal collimating members radially arranged with respect to the photon detector, wherein one of the azimuthal collimating members is on a first side of a detector pixel and a second azimuthal collimator is on a second side of a detector pixel opposite the first side.

First claim

Opening claim text (preview).

What is claimed is: 1. A downhole tool, comprising: a photon source; a photon detector having a plurality of discrete detector pixels in a cylindrical row and column arrangement, each detector pixel coupled to an adjacent detector pixel within a given cylindrical row; a radial collimator having at least two concentric frustoconical collimators circumferentially arranged about the photon detector, and at least two azimuthal collimators radially arranged with respect to the photon detector, wherein one of the azimuthal collimators is on a first side of a detector pixel and a second azimuthal collimator is on a second side of the detector pixel opposite the first side. 2. The downhole tool of claim 1 , wherein the radial collimator further comprises a plurality of concentric frustoconical radial collimators that extend radially from the photon detector at a predefined angle, each adjacent pair of the frustoconical radial collimators being separated at a predetermined distance to create a photon pathway that corresponds to a row of detector pixels. 3. The downhole tool of claim 2 , further comprising a plurality of blade-shaped azimuthal collimators arranged in the longitudinal direction of the photon detector, wherein the blade-shaped azimuthal collimators extend radially from the photon detector to subtend an angle formed by a pair of the azimuthal collimators corresponding to a photon detector column. 4. The downhole tool of claim 3 , wherein the radial collimator is coupled to the photon detector so that each photon detector pixel is correspondent to a region defined—by—a pair of the azimuthal collimators and a pair of the concentric frustoconical radial collimators. 5. The downhole tool of claim 4 , wherein the radial collimator is made of a high-Z material. 6. The downhole tool of claim 4 , wherein the radial collimator is made of lead, tantalum or tungsten. 7. The downhole tool of claim 4 , wherein the photon detector comprises a gamma-ray scintillator or a solid state detector. 8. A collimator, comprising: a plurality of concentric frustoconical radial collimators that extend radially from the longitudinal axis of the radial collimators at a predefined angle, wherein adjacent pairs of the frustoconical radial collimators are separated by a predetermined distance; and a plurality of blade-shaped azimuthal collimators arranged along the longitudinal axis of the concentric frustoconical radial collimators, the blade-shaped azimuthal collimators extending radially outward from the longitudinal axis of the frustoconical radial collimators with a subtended angle of 2π/M, where M is the number of azimuthal collimators, formed by each adjacent pair of the blade-shaped azimuthal collimators; wherein a photon pathway is created by adjacent azimuthal collimators and adjacent frustoconical radial collimators, each photon pathway corresponding to one detector pixel in a plurality of discrete detector pixels. 9. The collimator of claim 8 , wherein the collimator is made of a high-Z material. 10. The collimator of claim 9 , wherein the collimator is made of lead, tantalum or tungsten. 11. A system for detecting defects in the cement surrounding a wellbore, the system comprising: an apparatus for lowering a tool into the wellbore and receiving signals from the tool indicating a photon count, the tool further comprising: a photon source; a photon detector having a plurality of detector pixels in a cylindrical row and column arrangement, each detector pixel coupled to an adjacent detector pixel within a given cylindrical row; a radial collimator having at least two concentric frustoconical collimators circumferentially arranged about the photon detector, and at least two azimuthal collimators radially arranged with respect to the photon detector, wherein one of the azimuthal collimators is on a first side of a detector pixel and a second azimuthal collimator is on a second side of the detector pixel opposite the first side. 12. The system of claim 11 , wherein the radial collimator further comprises a plurality of concentric frustoconical radial collimators that extend radially from the photon detector at a predefined angle, each adjacent pair of the frustoconical radial collimators being separated at a predetermined distance to create a photon pathway that corresponds to a row of detector pixels. 13. The system of claim 12 , further comprising a plurality of blade-shaped azimuthal collimators arranged in the longitudinal direction of the photon detector, wherein the blade-shaped azimuthal collimators extend radially from the photon detector to subtend an angle formed by a pair of the azimuthal collimators corresponding to a photon detector column. 14. The system of claim 13 , wherein the radial collimator is coupled to the photon detector so that each photon detector pixel is correspondent to a region defined—by—a pair of the azimuthal collimators and a pair of the concentric frustoconical radial collimators. 15. The system of claim 14 , wherein the radial collimator is made of a high-Z material. 16. The system of claim 14 , wherein the radial collimator is made of lead, tantalum or tungsten. 17. The system of claim 14 , wherein the photon detector comprises a gamma-ray scintillator or a solid state detector.

Assignees

Inventors

Classifications

  • G01V5/08Primary

    using primary nuclear radiation sources or X-rays {(, e.g. for inducing radioactivity; investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays, neutrons G01N23/00)} · CPC title

  • G01V5/125Primary

    and detecting the secondary gamma- or X-rays in different places along the bore hole · CPC title

  • using multiple collimators, e.g. Bucky screens; other devices for eliminating undesired or dispersed radiation · CPC title

  • using gamma or X-ray sources {(gamma sources using isotopes G21G4/00; X-ray tubes H01J35/00)} · CPC title

  • G01T1/29Primary

    Measurement performed on radiation beams, e.g. position or section of the beam; Measurement of spatial distribution of radiation · CPC title

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What does patent US9690006B2 cover?
Embodiments of the invention provide a downhole tool that includes a photon source, a photon detector having a plurality of detector pixels in a cylindrical row and column arrangement, and a radial collimator having at least two concentric frustoconical collimators circumferentially arranged about the photon detector and at least two azimuthal collimating members radially arranged with respect …
Who is the assignee on this patent?
Halliburton Energy Services Inc
What technology area does this patent fall under?
Primary CPC classification G01V5/08. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Jun 27 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).