Fiber-reinforced tools for downhole use

US10145179B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10145179-B2
Application numberUS-201414647960-A
CountryUS
Kind codeB2
Filing dateDec 11, 2014
Priority dateDec 13, 2013
Publication dateDec 4, 2018
Grant dateDec 4, 2018

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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 wellbore tool may be formed, at least in part, by a fiber-reinforced hard composite portion. The fiber-reinforced hard composite portion can include reinforcing particles and reinforcing fibers dispersed in a binder, wherein the reinforcing fibers have an aspect ratio ranging from 1 to 15 times a critical aspect ratio (Ac). The critical aspect ratio can be determined using the equation Ac=σf/(2τc), wherein σf is an ultimate tensile strength of the reinforcing fibers, and τc is an interfacial shear bond strength between the reinforcing fiber and the binder or a yield stress of the binder, whichever is lower.

First claim

Opening claim text (preview).

The invention claimed is: 1. A wellbore tool comprising: a fiber-reinforced hard composite portion that comprises reinforcing particles and reinforcing fibers dispersed in a binder, wherein the reinforcing fibers have an aspect ratio ranging from 1 to 15 times a critical aspect ratio (A c ), wherein A c =σ f / (2τ c ), σ f is an ultimate tensile strength of the reinforcing fibers, and τ c is an interfacial shear bond strength between the reinforcing fiber and the binder or a yield stress of the binder, whichever is lower, and wherein the reinforcing particles comprise a particle diameter distribution with a particle d 10 diameter size and a particle d 25 diameter size, and the reinforcing fibers comprise a fiber diameter distribution with a fiber d 10 diameter size and a fiber d 25 diameter size, wherein the particle d 10 diameter size is 25 microns or more and the fiber d 25 diameter size is 250 microns or less, or the fiber d 10 diameter size is 25 microns or more and the particle d 25 diameter size is 250 microns or less. 2. The wellbore tool of claim 1 , wherein the particle d 10 diameter size is larger than the fiber d 25 diameter size. 3. The wellbore tool of claim 1 , wherein the fiber d 10 diameter size is larger than the particle d 25 diameter size. 4. The wellbore tool of claim 1 , wherein the wellbore tool is a drill bit comprising: a matrix bit body comprising the fiber-reinforced hard composite portion; and a plurality of cutting elements coupled to an exterior portion of the matrix bit body. 5. The wellbore tool of claim 4 , wherein the matrix bit body further comprises another hard composite portion with the reinforcing particles but without reinforcing fibers dispersed in the binder. 6. The wellbore tool of claim 5 further comprising: a fluid cavity defined within the matrix bit body; at least one fluid flow passageway extending from the fluid cavity to the exterior portion of the matrix bit body; and at least one nozzle opening defined at an end of the at least one fluid flow passageway proximal to the exterior portion of the matrix bit body, wherein the fiber-reinforced hard composite portion is located proximal to the at least one nozzle opening. 7. The wellbore tool of claim 6 further comprising: a plurality of cutter blades formed on the exterior portion of the matrix bit body; and a plurality of pockets formed in the plurality of cutter blades, wherein the fiber-reinforced hard composite portion is located proximal to the at least one nozzle opening and the plurality of pockets. 8. The wellbore tool of claim 5 , wherein the fiber-reinforced hard composite portion is located at an apex of the matrix bit body. 9. The wellbore tool of claim 4 , wherein essentially the entire matrix bit body consists of the fiber-reinforced hard composite portion. 10. The wellbore tool of claim 4 , wherein a concentration of the reinforcing fibers is heterogeneous throughout the fiber-reinforced hard composite portion; and the wellbore tool further comprises: a fluid cavity defined within the matrix bit body; at least one fluid flow passageway extending from the fluid cavity to the exterior portion of the matrix bit body; and at least one nozzle opening defined at an end of the at least one fluid flow passageway proximal to the exterior portion of the matrix bit body, wherein the concentration of the reinforcing fibers is greatest proximal to the at least one nozzle opening. 11. The wellbore tool of claim 10 further comprising: a plurality of cutter blades formed on the exterior portion of the matrix bit body; a plurality of pockets formed in the plurality of cutter blades, wherein the concentration of the reinforcing fibers is greatest proximal to the at least one nozzle opening and the plurality of pockets. 12. The wellbore tool of claim 1 , wherein the reinforcing fibers comprise an elongated structure with an end diameter greater than an elongated structure diameter. 13. The wellbore tool of claim 1 , wherein at least some of the reinforcing fibers have an aspect ratio of 2 to 1000. 14. The wellbore tool of claim 1 , wherein at least some of the reinforcing fibers have a composition comprising at least one selected from the group consisting of tungsten, molybdenum, niobium, tantalum, rhenium, iridium, ruthenium, beryllium, titanium, chromium, rhodium, iron, cobalt, uranium, nickel, a steel, a stainless steel, a austenitic steel, a ferritic steel, a martensitic steel, a precipitation-hardening steel, a duplex stainless steel, an iron alloy, a nickel alloy, a chromium alloy, carbon, refractory ceramic, silicon carbide, silica, silicon nitride, alumina, titania, mullite, zirconia, boron nitride, boron carbide, titanium carbide, titanium nitride, tungsten carbide, and any combination thereof. 15. The wellbore tool of claim 1 , wherein the reinforcing fibers is present in the matrix bit body at 1% to 30% by weight of the reinforcing particles. 16. The wellbore tool of claim 1 , wherein the wellbore tool is one of: a reamer, a coring bit, a rotary cone drill bit, a centralizer, a pad, or a packer. 17. A drill bit comprising: a plurality of cutting elements coupled to an exterior portion of a matrix bit body, wherein at least a portion of the matrix bit body comprises a fiber-reinforced hard composite portion that comprises reinforcing particles and reinforcing fibers dispersed in a binder, wherein the reinforcing fibers have an aspect ratio ranging from 1 to 15 times a critical aspect ratio (A c ), wherein A c =σ f / (2τ c ), σ f is an ultimate tensile strength of the reinforcing fibers, and τ c is an interfacial shear bond strength between the reinforcing fiber and the binder or a yield stress of the binder, whichever is lower, and wherein the reinforcing particles comprise a particle diameter distribution with a particle d 10 diameter size and a particle d 25 diameter size, and the reinforcing fibers comprise a fiber diameter distribution with a fiber d 10 diameter size and a fiber d 25 diameter size, wherein the particle d 10 diameter size is 25 microns or more and the fiber d 25 diameter size is 250 microns or less, or the fiber d 10 diameter size is 25 microns or more and the particle d 25 diameter size is 250 microns or less. 18. The drill bit of claim 17 , wherein the matrix bit body further comprises another hard composite portion with the reinforcing particles but without reinforcing fibers dispersed in the binder. 19. The drill bit of claim 18 further comprising: a fluid cavity defined within the matrix bit body; at least one fluid flow passageway extending from the fluid cavity to the exterior portion of the matrix bit body; at least one nozzle opening defined by an end of the at least one fluid flow passageway proximal to the exterior portion of the matrix bit body; and wherein the fiber-reinforced hard composite portion is located proximal to the at least one nozzle opening. 20. The drill bit of claim 19 further comprising: a plurality of cutter blades formed on the exterior portion of the matrix bit body; and a plurality of pockets formed in the plurality of cutter blades, wherein the fiber-reinforced hard composite portion is located proximal to the at least one nozzle opening and the plurality of pockets. 21. A drilling assembly comprising: a drill string extendable from a drilling platform and into a wellbore; a drill bit attached to an end of the drill string; and a pump fluidly connected to the drill string and configu

Assignees

Inventors

Classifications

  • Non-metallic particles coated with metal · CPC title

  • Stabilisers or centralisers for casing, tubing or drill pipes (E21B17/1007 - E21B17/1064 take precedence) · CPC title

  • Drilling rods or pipes; Flexible drill strings; Kellies; Drill collars; Sucker rods; {Cables;} Casings; Tubings · CPC title

  • Packers; Plugs (used for cementing E21B33/134, E21B33/16) · CPC title

  • Operations & Transport · mapped topic

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What does patent US10145179B2 cover?
A wellbore tool may be formed, at least in part, by a fiber-reinforced hard composite portion. The fiber-reinforced hard composite portion can include reinforcing particles and reinforcing fibers dispersed in a binder, wherein the reinforcing fibers have an aspect ratio ranging from 1 to 15 times a critical aspect ratio (Ac). The critical aspect ratio can be determined using the equation Ac=σf/…
Who is the assignee on this patent?
Halliburton Energy Services Inc
What technology area does this patent fall under?
Primary CPC classification E21B10/46. Mapped technology areas include Fixed Constructions.
When was this patent published?
Publication date Tue Dec 04 2018 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 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).