EP2376738A2 - Rollenkegel mit nicht integrierten schneidstrukturen, bohrmeissel damit und herstellungsverfahren dafür - Google Patents

Rollenkegel mit nicht integrierten schneidstrukturen, bohrmeissel damit und herstellungsverfahren dafür

Info

Publication number
EP2376738A2
EP2376738A2 EP10732065A EP10732065A EP2376738A2 EP 2376738 A2 EP2376738 A2 EP 2376738A2 EP 10732065 A EP10732065 A EP 10732065A EP 10732065 A EP10732065 A EP 10732065A EP 2376738 A2 EP2376738 A2 EP 2376738A2
Authority
EP
European Patent Office
Prior art keywords
integral
tooth
cone body
teeth
forming
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP10732065A
Other languages
English (en)
French (fr)
Inventor
Robert J. Buske
James L. Overstreet
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Baker Hughes Holdings LLC
Original Assignee
Baker Hughes Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Baker Hughes Inc filed Critical Baker Hughes Inc
Publication of EP2376738A2 publication Critical patent/EP2376738A2/de
Withdrawn legal-status Critical Current

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Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B10/00Drill bits
    • E21B10/08Roller bits
    • E21B10/16Roller bits characterised by tooth form or arrangement
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21BEARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
    • E21B10/00Drill bits
    • E21B10/46Drill bits characterised by wear resisting parts, e.g. diamond inserts
    • E21B10/50Drill bits characterised by wear resisting parts, e.g. diamond inserts the bit being of roller type

Definitions

  • the present invention relates generally to rotary drill bits for drilling wellbores in subterranean formations, to components of such drill bits, and to methods of manufacturing such drill bits and components.
  • Roller cone earth-boring bits are commonly used for drilling subterranean earth formations.
  • One type of roller cone earth-boring bit is a steel tooth or milled tooth earth-boring drill bit which typically comprises two or more cones with teeth protruding from the surface of each cone for engaging the rock.
  • the teeth are made of hardened steel and generally are triangular in cross-sectional shape (as observed in a plane perpendicular to the rotational axis of the cone).
  • Another type of roller cone earth-boring bit has annular structures exhibiting substantially circular exteriors, which are termed “disks" or “disk cutters,” and protrude from the surface of the cone for engaging the rock.
  • the disks are also made of hardened steel and extend around a circumference of the cone.
  • Typical hardfacing material may be formed from a particle-matrix composite material.
  • particle-matrix composite materials include particles of hard material such as, for example, tungsten carbide dispersed throughout a metal-matrix material (often referred to as a "binder" material).
  • Particle-matrix composite materials exhibit relatively higher erosion resistance and wear resistance relative to the hardened steel of the teeth and disks. Deposition of hardfacing material on the surfaces of the milled teeth or disks may be accomplished using manual welding processes or an automated hardfacing system.
  • Typical manual welding processes include a person holding a welding torch and a rod of hardfacing material and welding a coating of hardfacing material to the surface of a tooth. After one tooth has been coated, the person moves the torch, the hardfacing material, and/or the cone to permit the next tooth to be coated.
  • Automated processes may be very complex due to the geometry, inaccessibility to the faces of each tooth or disk by a hardfacing torch, and the number of teeth on a milled-tooth cone.
  • the present invention includes methods of forming a roller cone for an earth-boring bit.
  • a non-integral tooth may be formed adjacent at least one integral tooth.
  • a non-integral tooth may be formed in a gap between two-integral teeth.
  • such a gap may be located between at least two integral teeth on different rows of teeth, or such a gap may be located between at least two integral teeth in the same row of teeth.
  • the present invention includes methods of forming a roller cone for an earth-boring rotary drill bit in which at least one non-integral disk cutter is provided on a roller cone adjacent to an integral disk cutter on the cone.
  • a gap may be formed between two integral disk cutters, and at least one non-integral disk cutter may be provided in the gap.
  • the present invention includes methods of forming earth-boring rotary drill bits in which a plurality of integral teeth are formed on a cutter, and hardfacing material is deposited on the cutter to form at least one non-integral tooth thereon.
  • the hardfacing material may be deposited on the cutter in a gap between two adjacent integral teeth, and the hardfacing material may be built up to form at least one non-integral tooth between the integral teeth.
  • a hardfacing layer may be applied to at least one surface on each of the adjacent integral teeth.
  • the present invention includes methods of forming earth-boring bits in which integral teeth are formed on a cutter, hardfacing is applied to the integral teeth, and a non-integral tooth is separately formed from the cutter and bonded to the cutter in a gap between two integral teeth.
  • the present invention includes earth-boring bits having a roller cone mounted to a bit leg.
  • the roller cone includes at least one integral tooth formed on a surface of the roller cone, and at least one non-integral tooth bonded to the surface of the roller cone adjacent the integral tooth.
  • FIG. 1 is a perspective view of an embodiment of an earth-boring rotary drill bit of the present invention
  • FIG. 2 is an enlarged perspective view of an embodiment of a roller cone of the present invention
  • FIG. 3 is an enlarged perspective view of an embodiment of a partially formed roller cone of the present invention.
  • FIG. 4 is an enlarged perspective view of another embodiment of a partially formed roller cone of the present invention
  • FIG. 5 is an enlarged partial view of another embodiment of a partially formed roller cone of the present invention
  • FIG. 6 illustrates hardfacing material being applied to the portion of the partially formed roller cone shown in FIG. 5;
  • FIG. 7 illustrates a cutting structure formed by application of hardfacing material to the portion of the partially formed roller cone, as shown in FIG. 6;
  • FIG. 8 illustrates an example of a robot that may be used to form roller cones in accordance with embodiments of the present invention
  • FIG. 9 is an enlarged partial view of a non-integral tooth being applied to a portion of a partially formed roller cone;
  • FIG. 10 is a partial cross-sectional view of an embodiment of a roller cone of the present invention that includes a non-integral tooth disposed between two integral teeth of the roller cone;
  • FIG. 11 is an enlarged partial view of another embodiment of a non-integral tooth applied to a portion of a partially formed roller cone;
  • FIG. 12 is an enlarged perspective view of another embodiment of a roller cone of the present invention
  • FIG. 13 is an enlarged perspective view of another embodiment of a partially formed roller cone of the present invention.
  • FIG. 14 is an enlarged perspective view of another embodiment of a partially formed roller cone of the present invention.
  • FIG. 1 An embodiment of an earth-boring drill bit 102 of the present invention is illustrated in FIG. 1 as a non-limiting example of a drill bit employing a plurality of roller cones.
  • the drill bit 102 comprises a bit body 104 having three bit legs 106.
  • a cone 109 is rotatably mounted to a bearing pin (not shown) on each of the bit legs 106.
  • the cone body 108 (FIG. 2) of each cone 109 may be at least substantially comprised of, for example, an iron-based alloy (e.g., steel).
  • each cone 109 has three rows of teeth 110, 111 including an outer row 112, an inner row 114, and an intermediate row 116.
  • the cones 109 of the drill bit 102 include both integral teeth and non-integral teeth, as discussed in further detail below.
  • a circumferential recess 118 may be disposed between the inner row 114 and the intermediate row 116, as well as between the intermediate row 116 and the outer row 112.
  • Each tooth 110 is separated from adjacent teeth in the same row by a valley 128.
  • Each cone 109 also has a gage surface 130 that defines the diameter of the bit and the borehole.
  • Embodiments of drill bits 102 and cones 109 of the present invention may have any number of rows of teeth 110, 111 and may have any number of teeth 110, 111.
  • embodiments of drill bits 102 and cones 109 of the present invention may have teeth 110, 111 that are arranged in any pattern on the cones 109, and the teeth 110, 111 may not be arranged in rows.
  • the drill bit 102 has a threaded section 122 at its upper end for connection to a drillstring (not shown).
  • the drill bit 102 also has an internal fluid plenum that extends through the bit body 104, as well as fluid passageways that extend from the fluid plenum to nozzles 124.
  • drilling fluid may be pumped down the center of the drillstring, through the fluid plenum and fluid passageways, and out the nozzles 124.
  • Each bit leg 106 also may include a lubricant reservoir for supplying lubricant to the bearing surfaces between the cones 109 and the bearing pins on which they are mounted.
  • a pressure compensator 126 may be used to equalize the lubricant pressure with the borehole fluid pressure, as known in the art.
  • FIG. 2 is an enlarged view of a cone 109 of the drill bit 102 shown in FIG. 1. As previously mentioned, the cone 109 includes both integral teeth 110 and non-integral teeth 111.
  • integral tooth means a tooth having at least a major portion thereof that is integrally formed with and an integral part ofthe cone body 108 of a roller cone 109 such that no identifiable, discrete boundary exists between the cone body 108 ofthe roller cone 109 and the major portion ofthe tooth.
  • integral teeth 110 may be formed by machining a cone body 108 of a roller cone 109 using machining methods such as, for example, turning, milling, and/or drilling.
  • non-integral tooth means a tooth having a major portion thereof that is either formed separately from and attached to the cone body 108 of a roller cone 109, or is formed on the cone body 108 ofthe roller cone 109 such that an identifiable discrete boundary exists between the cone body 108 ofthe roller cone 109 and the major portion ofthe tooth.
  • each ofthe outer row 112 and the inner row 114 comprises integral teeth 110
  • the intermediate row 116 comprises non-integral teeth 111.
  • At least an outer surface of each tooth 110, 111 of the cone 109 may comprise a hardfacing material 120 (FIGS. 1 and 2).
  • a layer of hardfacing material 120 may be applied over each integral tooth 110 ofthe cone 109, and a major portion of each non-integral tooth 111 of the cone 109 may be formed from the hardfacing material 120.
  • various welding processes including, for example, metal-inert gas (MIG) welding processes, tungsten-inert gas (TIG) welding process, plasma arc welding (PAW) processes may be used to apply a layer of hardfacing material 120 over integral teeth 110 and to form a major portion of non-integral teeth 111 by building up the teeth 111 from the hardfacing material 120 in a layer-by-layer process.
  • MIG metal-inert gas
  • TMG tungsten-inert gas
  • PAW plasma arc welding
  • the hardfacing material 120 may be applied manually or robotically.
  • the teeth 110, 111 on the cone 109 are formed very close together. If each of the teeth 110, 111 were integrally formed with the cone 109 (i.e., were an integral tooth 110), it might be difficult to apply a layer of hardfacing material 120 over each of the teeth 110, 111 due to the difficulty of positioning a welding torch between the teeth 110, 111. In other words, it may be difficult to appropriately position a welding torch between the teeth 110, 111 to apply hardfacing material 120 to the surfaces thereof due to physical interference between the welding torch and adjacent teeth 110, 111. As a result, the areas of the teeth 110, 111 that could be covered with hardfacing material 120 might be limited.
  • Additional embodiments of the present invention include methods of forming roller cones for earth-boring roller drill bits that may be used to overcome such problems, as described in further detail herein below.
  • a cone body 108 may be machined to form the intermediate cone structure 166 shown in FIG. 3.
  • the intermediate cone structure 166 includes an outer row 112 of integral teeth 110 and an inner row 114 of integral teeth 110.
  • a gap 132 may be formed between the integral teeth 110 of the outer row 112 and the integral teeth 110 of the inner row 114 at the location on the cone body 108 at which non-integral teeth 111 (FIG. 2) will be subsequently formed.
  • the outer row 112 and the inner row 114 of integral teeth 110 may extend circumferentially about a rotational axis of the cone body 108, as shown in FIG. 3.
  • a layer of hardfacing material 120 may be applied to one or more surfaces of each integral tooth 110 of the outer row 112 and the inner row 114. As at least a portion of the hardfacing material 120 is applied to surfaces of the integral teeth 110, the welding torch used to apply the hardfacing material 120 may be at least partially positioned within the gap 132 between the outer row 112 and the inner row 114. By providing the gap 132 between the integral teeth 110 of the outer row 112 and the integral teeth 110 of the inner row 114, physical interference problems may be reduced or eliminated to facilitate the application of the hardfacing material 120 to the integral teeth 110.
  • non-integral teeth 111 may be formed on, or separately formed and attached to, the cone body 108 in the gap 132 between the outer row 112 and the inner row 114 to form the cone 109 shown in FIG. 2.
  • a cone body 108 may be machined to form the intermediate cone structure 170 shown in FIG. 4.
  • the intermediate cone structure 170 includes an outer row 172 of integral teeth 110, an inner row 174 of integral teeth 110, and an intermediate row 176 of integral teeth 110.
  • a gap 182 may be formed between the integral teeth 110 of the outer row 172, between the integral teeth 110 of the inner row 174, and between the integral teeth 110 of the intermediate row 176.
  • the gaps 182 may be located on the cone body 108 at locations at which non-integral teeth 111 (FIG. 2) will be subsequently formed. Each gap 182 may be sized to accommodate one or more non-integral teeth 111.
  • a layer of hardfacing material 120 may be applied to one or more surfaces of each integral tooth 110 of the outer row 172, the inner row 174, and the intermediate row 176.
  • the welding torch used to apply the hardfacing material 120 may be at least partially positioned within the gaps 182 between integral teeth 110 in each of the outer row 172, the inner row 174, and the intermediate row 176.
  • non-integral teeth 111 may be formed on, or separately formed and attached to, the cone body 108 in the gaps 182 between the integral teeth 110 in each of the outer row 172, the inner row 174, and the intermediate row 176 to form a cone similar to the cone 109 shown in FIG. 2.
  • intermediate cone structures may be formed to comprise any number of missing teeth and/or rows for subsequently providing non-integral teeth therein.
  • an intermediate cone structure may include both gaps 132 between rows of teeth, as previously described in relation to FIG. 3, as well as gaps 182 between integral teeth 110 in the same row of teeth, as previously described in relation to FIG. 4.
  • a marking feature or structure may be provided on a cone body 108 of an intermediate cone structure at each location at which a non-integral tooth 111 is to be formed on the cone body 108 or attached to the cone body 108.
  • FIG. 5 is an enlarged partial view of an embodiment of an intermediate cone structure of the present invention, similar to that shown in FIG. 4, and illustrates a marking feature comprising a marking stub 134 formed on the cone body 108 in a gap 182 adjacent an integral tooth 110.
  • the marking stub 134 defines an area on the surface of the cone body 108 in the at least one gap 132 at which a non-integral tooth 111 is to be formed or attached. As shown in FIG.
  • the marking stub 134 may comprise a relatively small protrusion formed on the cone body 108 having a size at least substantially corresponding to a size of a base of a non-integral tooth 111 to be formed on or attached to the marking stub 134.
  • the marking stub 134 may extend, for example, about 1/8 of an inch (about 0.2825 cm) from a surrounding outer surface of the cone body 108.
  • a cone body 108 may be etched or inscribed to mark the location of non-integral teeth 111 to be formed on or attached to the cone body 108. For example, if a row of non-integral teeth 111 is to be provided on a cone body, as shown in FIG.
  • lines may be etched or inscribed on the cone body 108 that extend circumferentially around the cone body 108 about a rotational axis of the cone body 108 to define longitudinal boundaries of non-integral teeth 111 to be formed on or attached to the cone body 108, and lines may be etched or inscribed on the cone body 108 that extend longitudinally between the circumferential lines to define the circumferential boundaries of non-integral teeth 111 to be formed on or attached to the cone body 108.
  • markings may be formed during the machining process or processes used to form the integral teeth 110 on the cone body 108.
  • one or more non-integral teeth 111 may be formed on a cone body 108 by depositing hardfacing material 120 on the cone body 108 in such a manner as to build up the non-integral teeth 111 on the cone body 108 from the hardfacing material 120.
  • FIGS. 6 and 7 illustrate one example of an embodiment of a method of the present invention that may be used to form a non-integral tooth 111 on a cone body 108. Referring to FIG.
  • hardfacing material 120 may be deposited on the cone body 108 (e.g., on a marking stub 134 of a cone body 108 in a gap 132 or a gap 182) in a layer-by-layer process (i.e., successively deposited layers of hardfacing material 120 being deposited over previously deposited layers of hardfacing material 120) so as to form one or more non-integral teeth 111 like that shown in FIG. 7 comprising multiple layers of hardfacing material 120.
  • an integral tooth 110 may be formed on a cone body 108 and a hardfacing material 120 may be applied to a surface of the integral tooth 110.
  • a marking stub 134 may be formed on the cone body 108 adjacent the integral tooth 110, and hardfacing material 120 may be deposited on the marking stub 134 to build up a non-integral tooth 111 on the marking stub 134 from the hardfacing material 120.
  • the hardfacing material 120 may be deposited by, for example, manually welding the hardfacing material 120 to the cone body 108 using a welding torch 138 and a tube or rod 136 comprising hardfacing material 120.
  • the hardfacing tube or rod 136 and the welding torch 138 may be moved across the surfaces of the integral tooth 110 and the marking stub 134 to weld the hardfacing material 120 to the integral tooth 110 and the marking stub 134.
  • Layers of hardfacing 120 may be sequentially deposited on the marking stub 134 in a layer-by-layer process to form a non- integral tooth 111 having a desirable height and shape.
  • surfaces of the non-integral tooth 111 may be machined or ground as necessary or desirable to remove a portion of the hardfacing material 120 to provide the non-integral tooth 111 with a desirable geometry and dimension.
  • a template structure may be placed over the non-integral tooth 111 and the non-integral tooth 111 may be machined to cause the non-integral tooth 111 to conform to surfaces of the template. Using a template may help to ensure that the non-integral teeth 111 conform to a desirable shape and dimension.
  • the hardfacing material 120 may have any suitable composite composition comprising a discontinuous hard phase dispersed within a continuous matrix phase.
  • the hardfacing material may comprise relatively hard ceramic particles dispersed throughout a metallic matrix material.
  • Many hardfacing compositions are known in the art and may be employed as a hardfacing material 120 in embodiments of the present invention. Examples of such hardfacing compositions are described in, for example, U.S. Patent No. 5,663,512, entitled Hardfacing Composition for Earth-Boring Bits, issued September 2, 1997, U.S. Patent No. 6,248,149, entitled Hardfacing Composition for Earth-Boring Bits using Macrocrystalline Tungsten Carbide and Spherical Cast Tungsten Carbide, issued June 19, 2007, and pending U.S. Patent Application Serial No. 11/823,800, entitled Particle-Matrix Composite Drill Bits With Hardfacing and Methods of Manufacturing and Repairing Such Drill Bits Using Hardfacing Materials, filed October 31, 2007.
  • the hardfacing material 120 may be applied to the cone body 108 using welding techniques.
  • the hardfacing material 120 may be applied manually using a welding torch and a rod or tube comprising hardfacing material 120.
  • a tube comprising hardfacing material may comprise a hollow, cylindrical tube formed from a metal material that will eventually form a continuous metal-matrix phase of the hardfacing material 120.
  • the tube may be filled with hard particles, such as, for example, tungsten carbide particles that will eventually form a discontinuous hard phase of the hardfacing material 120.
  • At least one end of the hollow, cylindrical tube may be sealed. The sealed end of the tube may then be melted or welded onto the surface of the cone body 108.
  • a solid rod of hardfacing material 120 may be used instead of a tube.
  • the welding torch may comprise, for example, an arc welding torch or a fuel torch ⁇ e.g., an oxygen-acetylene torch).
  • a plasma torch may be used to weld the hardfacing material 120 to the cone body 108.
  • powdered hardfacing material 120 e.g., hard particles and particles comprising metal-matrix material
  • the hardfacing material 120 may be deposited using an automated (e.g., robotic) process.
  • a welding torch and/or a cone body 108 may be robotically manipulated while using the welding torch to deposit hardfacing material 120 on the cone body 108.
  • Automated welding processes and systems that may be used to deposit the hardfacing material 120 on the cone body 108 are described in, for example, U.S. Patent No. 5,233,150 entitled Methods of Production ofWorkpieces by Welding Equipment, filed August 3, 1993, U.S. Patent Application Serial No. 10/095,523 entitled Method and Apparatus for Forming a Workpiece, filed March 13, 2002, and U.S. Patent Application Serial No. 12/257,219, entitled Method and Apparatus for Automated Application of Hardfacing Material to Drill Bits, filed October 23, 2008.
  • FIG. 8 illustrates one example of an automated robotic system that may be used to apply hardfacing material 120 to a cone body 108 (e.g., to apply a layer of hardfacing material 120 to surfaces of integral teeth 110 and/or to build-up the non-integral teeth 111 from hardfacing material 140.
  • a first robotic device 141A may be used to manipulate a roller cone body 108
  • a second robotic device 141B may be used to manipulate a welding torch 138 as the welding torch 138 is used to deposit hardfacing material 120 on the cone body 108.
  • the cone body 108 may remain stationary while the second robotic device 141B manipulates the welding torch 138 around the surface of the cone body 108.
  • the welding torch 138 may remain stationary while the first robotic device 14 IA manipulates the cone body 108 such that the surface of the cone body 108 contacts the welding torch 138.
  • both the welding torch 138 and the cone body 108 may be manipulated by the first and second robotic devices 14 IA and 141B to contact the welding torch 138 with the surface of the cone body 108.
  • a laser sensor 146 may be used to determine a distance between the welding torch 138 and the surface of the cone body 108 and/or to measure a thickness of hardfacing material 120 applied to the surface of the cone body 108.
  • Each of the first and second robotic devices 141A and 141B may be provided with multiple (e.g., five, six, or more) axes of rotation 144 (or degrees of freedom) to provide sufficient freedom of movement between the welding torch 138 and the cone body 108.
  • the welding torch 138 may comprise a pulsed plasma-transferred arc welding (PTAW) torch in which the torch is used to generate a plasma column between the welding torch 138 and the cone body 108, or a plasma-transferred arc in which the current of the plasma transfer arc may be pulsed as the welding torch 138 is used to deposit hardfacing material 120 on the cone body 108.
  • PTAW pulsed plasma-transferred arc welding
  • a hardfacing material 120 used to form non-integral teeth 111 may be at least substantially identical in composition to a hardfacing material 120 that is applied over surfaces of integral teeth 110.
  • hardfacing material 120 having a first composition may be used to form non-integral teeth 111 on a cone body 108, and hardfacing material 120 having a second, different composition may be used to form a layer of hardfacing material 120 over integral teeth 110 on the cone body 108.
  • hardfacing materials 120 having different compositions may be used to form different portions or regions of non-integral teeth 111.
  • an interior region of non-integral teeth 111 may be formed from and comprise hardfacing material 120 having a first composition
  • an exterior region of the non-integral teeth 111 may be formed from and comprise a hardfacing material 120 having a second composition differing from that of the first hardfacing material 120.
  • the composition of the first hardfacing material 120 may exhibit a toughness that is relatively greater than a toughness exhibited by the composition of the second hardfacing material 120, and the composition of the second hardfacing material 120 may exhibit a hardness and/or wear resistance that is relatively greater than a hardness and/or wear resistance exhibited by the composition of the first hardfacing material 120.
  • non-integral teeth 111 may be separately formed from the cone body 108 and subsequently attached thereto.
  • FIG. 9 is an enlarged partial view of a cone body 108 and illustrates a non-integral tooth 111 that is being positioned on and attached to the cone body 108 in a gap 132 adjacent an integral tooth 110.
  • the non-integral tooth 111 may be separately formed from the cone body 108.
  • the non-integral tooth 111 may comprise a particle-matrix composite material (e.g., a hardfacing material) that includes hard particles (e.g., particles of tungsten carbide) dispersed within a metal-matrix material (e.g., a nickel-based, cobalt-based, or iron-based metal alloy).
  • the non-integral tooth 111 may be formed using, for example, a sintering process in which a particulate green body is sintered to form the non-integral tooth 111.
  • a particulate green body may be formed using known green body forming techniques including, for example, powder pressing techniques, powder injection molding techniques, and casting techniques (e.g., slurry casting techniques and tape casting techniques).
  • a powder mixture comprising hard particles and particles of a metal-matrix material (and, optionally, organic binders, lubricants, compaction aids, etc.) may be injected into a mold cavity having a shape corresponding to a desirable shape for a non-integral tooth 111 to form a green body.
  • the green body then may be removed from the mold and sintered to a desired final density in a furnace to form the non-integral tooth 111.
  • the non-integral tooth 111 may be attached to the cone body 108 by bonding (e.g., brazing or welding) the non-integral tooth 111 to the cone body 108 with a metallic material.
  • the metallic material 154 may comprise, for example, an iron-based alloy, a nickel-based alloy, or a cobalt-based alloy.
  • FIG. 10 is a partial cross-sectional view of a non-integral tooth 111 attached to a cone body 108 between two integral teeth 110. As shown in FIG. 10, a metallic material 154 may be disposed between at least a portion of the non-integral tooth 111 and the cone body 108.
  • FIG. 11 is a partial perspective view of a non-integral tooth 111 welded to a cone body 108 with a bead of metallic material 154 adjacent an integral tooth 110.
  • the bead of metallic material 154 may be welded to the non-integral tooth 111 and the cone body 108 around the perimeter of the base of the non-integral tooth 111.
  • Separately fabricating a non-integral tooth 111 and subsequently attaching the non-integral tooth 111 to the cone body 108 may be relatively useful for smaller cone bodies 108 on which it may be difficult to form a non-integral tooth 111 directly on the cone body 108, as previously described herein.
  • the non-integral tooth 111 and the cone body 108 may be co-sintered together in a furnace to bond the non-integral tooth 111 to the cone body 108.
  • the previously described embodiments of the present invention include a roller cone 109 having both integral teeth 110 and non-integral teeth 111
  • additional embodiments of the present invention include roller cones having all non-integral teeth 111 and no integral teeth 110.
  • Such non-integral teeth 111 may be formed directly on the cone body 108, or separately formed and attached to the cone body 108 as previously described herein.
  • FIG. 12 illustrates an example embodiment of a roller cone 177 of the present invention having disk cutters.
  • the roller cone 177 has an outer disk cutter 183, an inner disk cutter 184, and an intermediate disk cutter 186.
  • Each of the disk cutters 183, 184, 186 extends circumferentially around the cone body 108 about a rotational axis thereof.
  • the roller cone 177 may comprise more or fewer disk cutters.
  • One or more of the disk cutters 183, 184, 186 may be an integral disk cutter that is integrally formed with and an integral part of the cone body 108.
  • one or more of the disk cutters 183, 184, 186 may comprise a non-integral disk cutter that is formed on the cone body 108 or formed separately from the cone body 108 and attached thereto.
  • a cone body 108 may be shaped (e.g., machined) to form an intermediate cone structure 178 comprising an integral disk cutter 183, another integral disk cutter 184, and a gap or recess 132 between the integral disk cutter 183 and the integral disk cutter 184.
  • a layer of hardfacing material 120 may be applied to the integral disk cutter 183 and the integral disk cutter 184 using techniques known in the art as previously described. After applying hardfacing material 120 to the integral disk cutter 183 and the integral disk cutter 184, the non-integral disk cutter 186 may be formed directly on the cone body 108, or the non-integral disk cutter 186 may be separately formed from the cone body 108 and subsequently attached thereto to form the roller cone 177 shown in FIG. 12.
  • the non-integral disk cutter 186 may be provided on the cone body 108 in the at least one gap 132 by, for example, depositing hardfacing material 120 over a surface of the cone body 108 in the at least one gap 132 and forming the at least one non-integral disk cutter 186 from the hardfacing material 120.
  • FIG. 14 is an enlarged perspective view of another embodiment of a roller cone 195 of the present invention.
  • the roller cone 195 is similar to the roller cone 177 shown in FIG. 12 and includes a cone body 108, an outer integral disk cutter 192, an inner integral disk cutter 194, and an intermediate non-integral disk cutter 196. In the embodiment of FIG. 14, however, the disk cutters 192, 194, 196 have a serrated cutting edge.
  • the roller cone 195 shown in FIG. 14 may be formed using embodiments of methods of the present invention, as previously described herein.
  • the present invention is described herein in relation to embodiments of earth-boring rotary drill bits that include rolling cutters and to embodiments of methods for forming such drill bits, the present invention also encompasses other types of earth-boring tools such as, for example, reamers, mills, and so-called “hybrid bits” that include both one or more roller cones and fixed cutters on blades or other supporting structures, as well as methods for forming such tools.
  • the term “drill bit” includes and encompasses all of the foregoing earth-boring tools, as well as components and subcomponents of such structures.

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  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Geology (AREA)
  • Mining & Mineral Resources (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Environmental & Geological Engineering (AREA)
  • Fluid Mechanics (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Earth Drilling (AREA)
  • Drilling Tools (AREA)
EP10732065A 2009-01-15 2010-01-14 Rollenkegel mit nicht integrierten schneidstrukturen, bohrmeissel damit und herstellungsverfahren dafür Withdrawn EP2376738A2 (de)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US12/354,604 US20100175926A1 (en) 2009-01-15 2009-01-15 Roller cones having non-integral cutting structures, drill bits including such cones, and methods of forming same
PCT/US2010/020966 WO2010083265A2 (en) 2009-01-15 2010-01-14 Roller cones having non integral cutting structures, drill bits including such cones, and methods of forming same

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WO2010083265A2 (en) 2010-07-22
BRPI1007049A2 (pt) 2016-02-10
WO2010083265A3 (en) 2010-10-21
CA2749482A1 (en) 2010-07-22
US20100175926A1 (en) 2010-07-15
RU2011133743A (ru) 2013-02-20
MX2011007250A (es) 2011-07-28

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