USRE36452E - Composite seal for rotary cone rock bits - Google Patents
Composite seal for rotary cone rock bits Download PDFInfo
- Publication number
- USRE36452E USRE36452E US08/649,954 US64995496A USRE36452E US RE36452 E USRE36452 E US RE36452E US 64995496 A US64995496 A US 64995496A US RE36452 E USRE36452 E US RE36452E
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- United States
- Prior art keywords
- seal
- elastomer
- iaddend
- iadd
- dynamic
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-
- E—FIXED CONSTRUCTIONS
- E21—EARTH OR ROCK DRILLING; MINING
- E21B—EARTH OR ROCK DRILLING; OBTAINING OIL, GAS, WATER, SOLUBLE OR MELTABLE MATERIALS OR A SLURRY OF MINERALS FROM WELLS
- E21B10/00—Drill bits
- E21B10/08—Roller bits
- E21B10/22—Roller bits characterised by bearing, lubrication or sealing details
- E21B10/25—Roller bits characterised by bearing, lubrication or sealing details characterised by sealing details
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C33/00—Parts of bearings; Special methods for making bearings or parts thereof
- F16C33/72—Sealings
- F16C33/74—Sealings of sliding-contact bearings
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C2352/00—Apparatus for drilling
Definitions
- This invention relates to a rotary cone seal with two or more elastomeric materials joined together to form the seal.
- this invention is a composite seal with two or more elastomeric materials bonded together with further means affixed to the seal to minimize damage to the seal from detritus invading the seal cavity surrounding the seal.
- U.S. Pat. No. 3,765,495 describes an earth boring drill employing roller cone cutters with a seal to inhibit ingress of detritus into the cutter bearing area and egress of lubricant therefrom
- the seal cavity and adjacent journal is designed to place the seal in hoop compression.
- the shape of the seal is such that its cross-section is not overly compressed or displaced when in operating position.
- the seal has a greater radial cross-sectional extent than axial extent by a ratio of at least one-and-one-half to one to conserve bearing space and to provide flexibility to accommodate the various movements of the cutter cone relative to its bearing journal which it is rotatively mounted.
- the seal Since the seal is fabricated from a homogeneous resilient material, the portion of the seal adjacent to the journal bearing is exposed to debris and thus, vulnerable to wear that will eventually compromise the seal.
- the seal has to be flexible enough to maintain the seal in hoop compression as heretofore mentioned. If the seal material is too bard in an attempt to resist abrasion it will not be resilient enough to maintain proper hoop compression.
- U.S. Pat. No. 3,788,654 teaches a multiple hardness o-ring seal
- a molded ring of partially activated nitrile rubber materials subsequently forms a hardened skin by the process of surface curing the Activated materials in a solution of a curing agent.
- the nitrile rubber curing agent provides a secondary curing period which increases the exterior hardness of the seat.
- the compression set characteristics of the o-ring however are somewhat sacrificed as a result
- the hardened skin does not necessarily provide lower friction and/or greater wear resistance.
- the harsh environment sealed bearing rock bits are subjected to, demand that the bearing seals adapt to these condition.
- hard rock earthen formations subject the roller cone cutters to uneven loads that eventually cause the cones to eccentrically wobble on their respective journal bearings especially after extended run times.
- heat buildup caused from depth of bit penetration, weight on bit and relatively high bit rotational speeds challenge the seals to perform despite these deterring factor.
- modern day drilling techniques have resulted in higher bit rotational speeds deeper borehole penetration depths and a greater weight on the bit that further challenges the performance of the rotary cone seals.
- the present invention teaches the fabrication of a composite seal designed to resist abrasion from bore hole detritus and heat from high rotary speeds.
- the seal is pliable enough to maintain a seal despite cone wobble and excessive bit weight.
- a predominantly elastomeric O-ring rock bit seal is fabricated with two or more integrally bonded elastomers or phenolic type materials.
- the dynamic sealing face typically adjacent the journal bearing is made from an elastomer/phenolic engineered specifically for wear resistance due to sliding wear on the dynamic wear surface and from abrasive wear due to the abrasive slurry being sealed.
- the bulk of the seal is molded from an elastomer engineered specifically for precise control of the seal contact force adjacent the dynamic seal face when the seal is squeezed.
- seal face may be further divided into more specialized functions.
- one material can be formulated for resisting abrasive wear from the sealed slurry as heretofore mentioned.
- This material may be a phenolic material and the sliding wear face can be formulated from an elastomer designed for a sliding wear only.
- a composite O-ring seal for a sealed bearing rotary cone rock bit is disclosed.
- the seal is confined within a seal cavity formed between a rotary cutter cone and a bearing journal.
- a first elastomer is integrally bonded to at least a second elastomer.
- the first elastomer that is in contact with a dynamic surface, is wear resistant.
- the second elastomer has properties that is adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within the seal cavity.
- a means is provided for applying contact pressure to the composite seal.
- the invention further teaches a barrier material such as a screen mesh that is bonded to the first elastomer in contact with the dynamic surface.
- the mesh is positioned adjacent to an exterior area that is exposed to detritus material generated during operation of the rock bit in an earthen formation.
- the invention is further characterized by a means for applying contact pressure to the composite seal.
- the seal cavity is preferably formed in the cutter cone.
- the maximum diameter of the seal cavity is smaller in diameter than the outside diameter of the composite O-ring seal. This dimensioning assures that the seal is subjected to hoop compression forces that maintains constant contact of the first wear resistant elastomer against the dynamic surface formed on the journal bearing.
- An advantage then of the present invention over the prior art is the composite O-ring seal with the capability to withstand high frictional wear loads while remaining flexible enough to resist compressibility during rock bit drilling operations.
- Yet another advantage of the present invention over the prior art is the addition of a screen mesh bonded to the dynamic portion of the composite seal adjacent the exposed side of the seal to further protect the seal from the harsh elements present during drilling operations.
- the dynamic sealing surface may be on the outer diameter of the seal, with the elastomer engineering for control of the seal contact force on the inner diameter.
- the seal may be constructed to have dynamic sealing surfaces on both its outer and inner diameters with the energizing elastomer sandwiched inbetween.
- FIG. 1 is a partially cutaway perspective view of a sealed bearing rotary cone rock bit
- FIG. 2 is a cross-section of a cone mounted to a journal bearing illustrating a seal retained within a seal gland formed within the mouth of the cone, the dynamic surface of the preferred embodiment of the seal is adjacent the base of the journal bearing.
- FIG. 3 is an enlarged cross-sectional view of the seal illustrating the various design features
- FIG. 4 is an enlarged cross-sectional view of an alternative embodiment of the O-ring seal.
- a sealed bearing rotary cone rock bit generally designated as 10, consists of rock bit body 12 forming an upper pin end 14 and a cutter end of rotary cones 16 that are supported by legs 13 extending from body 12.
- the threaded pin end 14 is adapted to be connected to a drill swing (not shown).
- Lubricant passages 21 and 42 are provided from the reservoir to rotary cone bearing surfaces formed between a journal bearing 24 and each of the cones 16.
- Each of the legs 13 terminate in a shirttail portion 22.
- Each of the roller cones 16 typically have a multiplicity of tungsten carbide inserts 17 interference fitted within insert sockets formed in the cones.
- Drilling fluid is directed within the hollow pin end 14 of the bit 10 to an interior plenum chamber 11 formed by the bit body 12. The fluid is then directed out of the bit through one or more nozzle openings 20. The fluid accelerated through the nozzles serves to cool the rock bit and to clean the debris from the bottom of the borehole as the bit works in a borehole (not shown).
- leg 13 of the bit illustrates the grease reservoir system in detail.
- Lubricant contained within chamber 19 of the reservoir is directed through lube passage 21 formed within leg 13.
- the passage 21 terminates adjacent ball plug hole 42.
- the ball plug bole 42 serves to admit a multiplicity of cone retention balls 28 to cone retention ball races 29 and 32 formed between journal 24 and cone 16.
- the balls 28 are passed through the ball plug hole 42, entering a track 29 formed in journal 24.
- the ball race 29 is indexed with ball race 32 formed in the cone.
- the ball track is filled with balls 28 and a ball plug 44 is subsequently inserted within the ball plug hole 42 to retain the balls within the ball races 29 and 32.
- the end of the plug 44 is welded within shirt 22 of leg 13.
- Journal 24 extends from leg 13 and forms bearing surface 25.
- the cone forms bearing surface 26.
- a floating bearing 45 is disposed between the cone and the journal.
- a smaller concentric spindle or pilot bearing 31 extends from end 33 of the journal bearing 24 and is retained within a complimentary bearing formed within the cone.
- a seal generally designated as 50 is positioned within a seal gland formed between the journal 24 and the cone 16.
- seal 50 consists of an O-ring having a generally oval cross-section.
- the dynamic sealing face for example, is made from a material formulated specifically for low friction and wear resistance.
- the body of the seal is made from a material formulated specifically to maintain its stiffness properties throughout the temperature and chemical environments that the seal encounters, thus a consistent preload on the sliding surface. Therefore, the material for the wear function must emphasize properties of low friction in a sliding motion, low wear in a sliding motion and good resistance to particle abrasion.
- FIG. 3 illustrates the seal in the unconfined state represented by the phantom line at outer portion 56 of the seal.
- the seal therefore is placed under hoop compression (the forces being directed radially inwardly) when it is installed within the confines of the bottom 49 of the annular groove 46.
- the static portion of the seal therefore is adjacent the outer surface 52 of the seal 50 where it contacts the bottom 49 of the groove 46.
- the bottom of the groove 46 is rounded and the static sealing surface of the seal has a radius of curvature in a transverse cross section similar to that of the bottom of the groove. .Iaddend.
- the inner dynamic seal face or surface 54 of the seal 50 is adjacent seal bearing surfaces 48 formed on journal bearing 24.
- the dynamic seal face includes a radius of curvature in a transverse cross section different from the radius of curvature of the static face. .Iaddend.
- the seal preferably consists of a formulation of different elastomers that are co-joined and designed to function under unusually harsh rock bit drilling conditions.
- the radially outwardly extended elastomer portion 56 of the seal 50 adjacent the bottom 49 of the groove 46 consists of a low compression set material having a constant compression modulus with good dynamic response characteristics that maintain seal compression.
- the inner seal portion 58 adjacent dynamic surface 48 is an elastomeric formulation having the following characteristics; low friction and wear in a sliding motion.
- the outer seal portion 60 adjacent the outer environment consists of an elastomer having the following characteristics; low friction and wear with good resistance to particle abrasion.
- the same family of elastomers may be used for both materials but with different additives to enhance their specific function.
- Kevlar fiber is a non-elastomeric polymeric aromatic polyamide fiber. .Iaddend.
- the percent by weight of rubber hydrocarbons (R.H.C.) formulating the wear face material 60 is as follows:
- the percent by weight of R.C.H. formulating the wear face material 58 is as follows:
- the percent by weight of R.C.H. formulating the body material 56 is as follows:
- novel elastomer material combinations are molded to the desired o-ring seal cross-section using well known, state of the art molding techniques.
- the durometer hardness of the elastomeric wear materials 58 and 60 is between 80 and 100.
- the durometer hardness of materials 58 and 60 is preferably 85 to 90.
- the durometer hardness of elastomeric material 56 is between 60 and 80.
- the durometer hardness of material 56 is preferably between 65 and 70.
- the alternative seal includes a seal protection feature consisting of a metal wire mesh 162 that is bonded to, or encapsulated within the seal segment 160 of composite seal generally designated as 150.
- Elastomeric segments 156, 158 and 160 are comparable to those material combinations set forth for seal 50 of FIGS. 1 through 3.
- the protection element 162 may be, for example, selected from steel, brass, or bronze. Moreover, the protection element may be a thermo-plastic such as polytetraflouroethylene (PTFE). Graphite is another material that could be utilized.
- PTFE polytetraflouroethylene
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Abstract
An elastomeric o-ring rock bit seal is disclosed with two or more integrally bonded elastomers or phenolic type materials joined together to form the seal. The dynamic sealing face adjacent the journal bearing is fabricated from an elastomer/phenolic engineered specifically for wear resistance The bulk of the seal adjacent the static seal retention cavity typically formed in the rotary cone is molded from an elastomer engineered specifically for precise control of the seal contact force adjacent the dynamic seal face when the seal is compressed against the dynamic face by the seal retention cavity in the cone.
Description
I. Field of the Invention
This invention relates to a rotary cone seal with two or more elastomeric materials joined together to form the seal.
More particularly, this invention is a composite seal with two or more elastomeric materials bonded together with further means affixed to the seal to minimize damage to the seal from detritus invading the seal cavity surrounding the seal.
II. Description of the Prior Art
There are a number of prior art patents that teach sea for sealed bearing rotary cone rock bits
For example, U.S. Pat. No. 3,765,495 describes an earth boring drill employing roller cone cutters with a seal to inhibit ingress of detritus into the cutter bearing area and egress of lubricant therefrom The seal cavity and adjacent journal is designed to place the seal in hoop compression. The shape of the seal is such that its cross-section is not overly compressed or displaced when in operating position. The seal has a greater radial cross-sectional extent than axial extent by a ratio of at least one-and-one-half to one to conserve bearing space and to provide flexibility to accommodate the various movements of the cutter cone relative to its bearing journal which it is rotatively mounted.
Since the seal is fabricated from a homogeneous resilient material, the portion of the seal adjacent to the journal bearing is exposed to debris and thus, vulnerable to wear that will eventually compromise the seal. The seal, of necessity, has to be flexible enough to maintain the seal in hoop compression as heretofore mentioned. If the seal material is too bard in an attempt to resist abrasion it will not be resilient enough to maintain proper hoop compression.
U.S. Pat. No. 3,788,654 teaches a multiple hardness o-ring seal A molded ring of partially activated nitrile rubber materials subsequently forms a hardened skin by the process of surface curing the Activated materials in a solution of a curing agent. The nitrile rubber curing agent provides a secondary curing period which increases the exterior hardness of the seat. The compression set characteristics of the o-ring however are somewhat sacrificed as a result Furthermore, the hardened skin does not necessarily provide lower friction and/or greater wear resistance.
The harsh environment sealed bearing rock bits are subjected to, demand that the bearing seals adapt to these condition. For example, hard rock earthen formations subject the roller cone cutters to uneven loads that eventually cause the cones to eccentrically wobble on their respective journal bearings especially after extended run times. In addition, heat buildup caused from depth of bit penetration, weight on bit and relatively high bit rotational speeds challenge the seals to perform despite these deterring factor. Moreover, modern day drilling techniques have resulted in higher bit rotational speeds deeper borehole penetration depths and a greater weight on the bit that further challenges the performance of the rotary cone seals.
The prior art seals, while they exhibited adequate performance under ordinary drilling conditions, lack the necessary composition to withstand the higher performance demanded by drilling operators competing in the petroleum industry.
The present invention teaches the fabrication of a composite seal designed to resist abrasion from bore hole detritus and heat from high rotary speeds. In addition, the seal is pliable enough to maintain a seal despite cone wobble and excessive bit weight.
It is an object of this invention to provide a composite seal for a sealed bearing rotary cone rock bit that protects the cutter cone journal bearings despite increased rock bit operating performance parameters.
A predominantly elastomeric O-ring rock bit seal is fabricated with two or more integrally bonded elastomers or phenolic type materials. The dynamic sealing face typically adjacent the journal bearing is made from an elastomer/phenolic engineered specifically for wear resistance due to sliding wear on the dynamic wear surface and from abrasive wear due to the abrasive slurry being sealed. The bulk of the seal is molded from an elastomer engineered specifically for precise control of the seal contact force adjacent the dynamic seal face when the seal is squeezed.
Moreover, the seal face may be further divided into more specialized functions. For example, one material can be formulated for resisting abrasive wear from the sealed slurry as heretofore mentioned. This material may be a phenolic material and the sliding wear face can be formulated from an elastomer designed for a sliding wear only.
A composite O-ring seal for a sealed bearing rotary cone rock bit is disclosed. The seal is confined within a seal cavity formed between a rotary cutter cone and a bearing journal.
A first elastomer is integrally bonded to at least a second elastomer. The first elastomer that is in contact with a dynamic surface, is wear resistant. The second elastomer has properties that is adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within the seal cavity.
A means is provided for applying contact pressure to the composite seal.
The invention further teaches a barrier material such as a screen mesh that is bonded to the first elastomer in contact with the dynamic surface. The mesh is positioned adjacent to an exterior area that is exposed to detritus material generated during operation of the rock bit in an earthen formation.
The invention is further characterized by a means for applying contact pressure to the composite seal. The seal cavity is preferably formed in the cutter cone. The maximum diameter of the seal cavity is smaller in diameter than the outside diameter of the composite O-ring seal. This dimensioning assures that the seal is subjected to hoop compression forces that maintains constant contact of the first wear resistant elastomer against the dynamic surface formed on the journal bearing.
An advantage then of the present invention over the prior art is the composite O-ring seal with the capability to withstand high frictional wear loads while remaining flexible enough to resist compressibility during rock bit drilling operations.
Yet another advantage of the present invention over the prior art is the addition of a screen mesh bonded to the dynamic portion of the composite seal adjacent the exposed side of the seal to further protect the seal from the harsh elements present during drilling operations.
It is obvious that the dynamic sealing surface may be on the outer diameter of the seal, with the elastomer engineering for control of the seal contact force on the inner diameter. Moreover, the seal may be constructed to have dynamic sealing surfaces on both its outer and inner diameters with the energizing elastomer sandwiched inbetween.
The above noted objects and advantages of the present invention will be more fully understood upon a study of the following description in conjunction with the detailed drawings.
FIG. 1 is a partially cutaway perspective view of a sealed bearing rotary cone rock bit;
FIG. 2 is a cross-section of a cone mounted to a journal bearing illustrating a seal retained within a seal gland formed within the mouth of the cone, the dynamic surface of the preferred embodiment of the seal is adjacent the base of the journal bearing.
FIG. 3 is an enlarged cross-sectional view of the seal illustrating the various design features, and
FIG. 4 is an enlarged cross-sectional view of an alternative embodiment of the O-ring seal.
Referring now to the partially sectioned perspective view of FIG. 1, a sealed bearing rotary cone rock bit, generally designated as 10, consists of rock bit body 12 forming an upper pin end 14 and a cutter end of rotary cones 16 that are supported by legs 13 extending from body 12. The threaded pin end 14 is adapted to be connected to a drill swing (not shown).
Contained within bit body 12 is a grease reservoir system generally designated as 18. Lubricant passages 21 and 42 are provided from the reservoir to rotary cone bearing surfaces formed between a journal bearing 24 and each of the cones 16.
Each of the legs 13 terminate in a shirttail portion 22. Each of the roller cones 16 typically have a multiplicity of tungsten carbide inserts 17 interference fitted within insert sockets formed in the cones.
Drilling fluid is directed within the hollow pin end 14 of the bit 10 to an interior plenum chamber 11 formed by the bit body 12. The fluid is then directed out of the bit through one or more nozzle openings 20. The fluid accelerated through the nozzles serves to cool the rock bit and to clean the debris from the bottom of the borehole as the bit works in a borehole (not shown).
With reference now to both FIGS. 1 and 2, the partially broken away cross-section of leg 13 of the bit illustrates the grease reservoir system in detail. Lubricant contained within chamber 19 of the reservoir is directed through lube passage 21 formed within leg 13. The passage 21 terminates adjacent ball plug hole 42. The ball plug bole 42 serves to admit a multiplicity of cone retention balls 28 to cone retention ball races 29 and 32 formed between journal 24 and cone 16. The balls 28 are passed through the ball plug hole 42, entering a track 29 formed in journal 24. The ball race 29 is indexed with ball race 32 formed in the cone. The ball track is filled with balls 28 and a ball plug 44 is subsequently inserted within the ball plug hole 42 to retain the balls within the ball races 29 and 32. The end of the plug 44 is welded within shirt 22 of leg 13. Journal 24 extends from leg 13 and forms bearing surface 25. The cone forms bearing surface 26. A floating bearing 45 is disposed between the cone and the journal. A smaller concentric spindle or pilot bearing 31 extends from end 33 of the journal bearing 24 and is retained within a complimentary bearing formed within the cone. A seal generally designated as 50 is positioned within a seal gland formed between the journal 24 and the cone 16.
Referring specifically now to FIGS. 2 and 3, the preferred embodiment of seal 50 consists of an O-ring having a generally oval cross-section. The dynamic sealing face, for example, is made from a material formulated specifically for low friction and wear resistance. The body of the seal is made from a material formulated specifically to maintain its stiffness properties throughout the temperature and chemical environments that the seal encounters, thus a consistent preload on the sliding surface. Therefore, the material for the wear function must emphasize properties of low friction in a sliding motion, low wear in a sliding motion and good resistance to particle abrasion.
The inner dynamic seal face or surface 54 of the seal 50 is adjacent seal bearing surfaces 48 formed on journal bearing 24. .Iadd.The dynamic seal face includes a radius of curvature in a transverse cross section different from the radius of curvature of the static face. .Iaddend.
The seal preferably consists of a formulation of different elastomers that are co-joined and designed to function under unusually harsh rock bit drilling conditions.
For example, with specific reference to FIGS. 2 and 3, the radially outwardly extended elastomer portion 56 of the seal 50 adjacent the bottom 49 of the groove 46, consists of a low compression set material having a constant compression modulus with good dynamic response characteristics that maintain seal compression.
The inner seal portion 58 adjacent dynamic surface 48 (nearest the lubricated bearings) is an elastomeric formulation having the following characteristics; low friction and wear in a sliding motion.
The outer seal portion 60 adjacent the outer environment consists of an elastomer having the following characteristics; low friction and wear with good resistance to particle abrasion.
The same family of elastomers may be used for both materials but with different additives to enhance their specific function.
The chart below gives the preferred seal formulations for elastomer segments 56, 58 and 60:
______________________________________ PARTS BY WEIGHT WEAR WEAR BODY FACE FACE MTL MTL MTL ADDITIVE FUNCTION (56) (58) (60) ______________________________________ 2207S HSN POLYMER 100.0 100.0 100.0 NAUGARD ANTIOXIDANT 1.1 1.1 1.1 445 ZMTI ANTIOXIDANT 0.4 0.4 0.4 STEARIC ACTIVATOR 0.5 0.5 0.5 ACID ZINC ACTIVATOR 5.0 5.0 5.0 OXIDE VULCAN REINFORCE- 0.0 40.0 40.0 6-LM MENT CARBON- BLACK N-990 REINFORCE- 30.0 0.0 0.0 MENT CARBON- BLACK VUL-CUP CURATIVE 10.0 10.0 10.0 40KE RICON 153D CO-AGENT 4.0 4.0 4.0 CURATIVE GRAPHITE FRICTION 0.0 15.0 15.0 A99 REDUCER PHENOLIC TEAR RESIS- 0.0 5.0 5.0 RESIN TANCE KEVLAR TEAR & ADRA- 0.0 0.0 5.0 FIBER* SION RESIS- TANCE ______________________________________
The additives listed above may be obtained from the following suppliers:
______________________________________ HSN Miles, Polysar, Silver Lake, Ohio NAUGARD 445 Uniroyal Chemical, Middlebury, Connecticut ZMTI R. T. Vanderbilt, Norwalk, Connecticut STEARIC ACID C. P. Hall Co., Memphis, Tennessee ZINC OXIDE R. T. Vanderbilt, Norwalk, Connecticut VULCAN 6-LM CABOT, Atlanta, Georgia N-990 J. M. Huber, Akron, Ohio VUL-CUP 40KE Hercules, Wilmington, Delaware RICON 153D Colorado Chemical, Golden, Colorado GRAPHITE A99 Superior Graphite, Chicago, Illinois PHENOLIC Occidental Chemical, North Tonawanda, N.Y. RESIN KEVLAR E. I. DuPont, Wilmington, Delaware FIBER 6F568 ______________________________________
.Iadd.Kevlar fiber is a non-elastomeric polymeric aromatic polyamide fiber. .Iaddend.
The percent by weight of rubber hydrocarbons (R.H.C.) formulating the wear face material 60 is as follows:
______________________________________ HSN POLYMER 53.763 NAUGARD 445 .591 ZMTI .215 STEARIC ACID .269 ZINC OXIDE 2.688 VULCAN 6-LM 21.505 VUL-CUP 40KE 5.376 RICON 153D 2.151 GRAPHITE A99 8.065 PHENOLIC RESIN 2.688 KEVLAR FIBER 2.688 EQUALS 100.00 ______________________________________
The percent by weight of R.C.H. formulating the wear face material 58 is as follows:
______________________________________ HSN POLYMER 55.249 NAUGARD 445 .608 ZMTI .222 STERAIC ACID .276 ZINC OXIDE 2.762 VULCAN 6-LM 22.099 VUL-CUP 40KE 5.525 RICON 153D 2.210 GRAPHITE A99 8.287 PHENOLIC RESIN 2.762 EQUALS 100.00 ______________________________________
The percent by weight of R.C.H. formulating the body material 56 is as follows:
______________________________________ HSN POLYMER 66.225 NAUGARD 445 .728 ZMTI .265 STEARLC ACID .331 ZINC OXIDE 3.311 N-990 19.868 VUL-CUP 40KE 6.623 RICON 153D 2.649 EQUALS 100.00 ______________________________________
The novel elastomer material combinations are molded to the desired o-ring seal cross-section using well known, state of the art molding techniques.
The durometer hardness of the elastomeric wear materials 58 and 60 is between 80 and 100. The durometer hardness of materials 58 and 60 is preferably 85 to 90.
The durometer hardness of elastomeric material 56 is between 60 and 80. The durometer hardness of material 56 is preferably between 65 and 70.
Referring now to FIG. 4, the alternative seal includes a seal protection feature consisting of a metal wire mesh 162 that is bonded to, or encapsulated within the seal segment 160 of composite seal generally designated as 150. Elastomeric segments 156, 158 and 160 are comparable to those material combinations set forth for seal 50 of FIGS. 1 through 3.
The protection element 162 may be, for example, selected from steel, brass, or bronze. Moreover, the protection element may be a thermo-plastic such as polytetraflouroethylene (PTFE). Graphite is another material that could be utilized.
It will of course be realized that various modifications can be made in the design and operation of the present invention without departing from the spirit thereof thus, while the principal preferred construction and mode of operation of the invention have been explained in what is now considered to represent its best embodiments, which have been illustrated and described, it should be understood that within the scope of the appended claims, the invention may be practiced otherwise than as specifically illustrated and described.
Claims (14)
1. A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a .Iadd.bearing .Iaddend.journal .[.bearing.]. comprising:
a first elastomer integrally bonded to at least a second elastomer, said first elastomer .Iadd.forming a wear resistant sealing surface .Iaddend.in contact with a dynamic .[.bearing.]. .Iadd.rotary .Iaddend.surface .[.being wear resistant.]., the first elastomer material consists of about 55 percent by .[.wht..]. .Iadd.weight .Iaddend.of HSN polymer, about 0.8 percent by .[.wht..]. .Iadd.weight .Iaddend.of an antioxidant, about 3 percent by .[.wht..]. .Iadd.weight .Iaddend.of an activator, about 22 percent by .[.wht..]. .Iadd.weight .Iaddend.of carbon black, about 8 percent by .[.wht..]. .Iadd.weight .Iaddend.of a curative and about 8 percent by .[.wht..]. .Iadd.weight .Iaddend.of graphite, said second elastomer .Iadd.being different from the first material and forming a second sealing surface in contact with a surface of the seal cavity, said second elastomer .Iaddend.having properties adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within said seal cavity, and
means for applying contact pressure to said composite seal.
2. .[.The invention as set forth in claim 1
wherein the second elastomer material consists of about 66 percent by wht. of HSN polymer, about 0.8 percent by wht. of an antioxidant, about 3 percent by wht. of an activator, about 20 percent by wht. of carbon black, and about 8 percent by wht. of a curative.]. .Iadd.A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a bearing journal comprising:
a first elastomer integrally bonded to at least a second elastomer, said first elastomer having a wear resistant sealing surface in contact with a dynamic rotary surface, said second elastomer being different from the first material and forming a second sealing surface in contact with a surface of the seal cavity, wherein the second elastomer material comprises about 66 percent by weight of HSN polymer, about 0.8 percent by weight of an antioxidant, about 3 percent by weight of an activator, about 20 percent by weight of carbon black, and about 8 percent by weight of a curative; and
means for applying contact pressure to said composite seal.Iaddend..
3. .[.The invention as set forth in claim 1 further comprising.]. .Iadd.A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a journal .Iaddend.comprising:
.Iadd.a first elastomer integrally bonded to at least a second elastomer, said first elastomer in contact with a dynamic surface being wear resistant, said second elastomer having properties adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within said seal cavity, and
means for applying contact pressure to said composite seal, and .Iaddend.a third wear resistant elastomer bonded to said first elastomer and to said second elastomer, said first and third elastomers being in contact with said dynamic .[.bearing.]. surface, said third elastomer being positioned adjacent an exterior side of said seal, said third elastomer containing a tear and abrasion resistant ingredient to further inhibit admittance of detritus into the .[.dynamic.]. bearing surfaces.
4. .[.The invention as set forth in claim 3.]. .Iadd.A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a journal comprising:
a first elastomer integrally bonded to at least a second elastomer, said first elastomer in contact with a dynamic surface being wear resistant, said second elastomer having properties adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within said seal cavity,
means for applying contact pressure to said composite seal, and
a third wear resistant elastomer bonded to said first elastomer and to said second elastomer, said first and third elastomers being in contact with said dynamic surface, said third elastomer being positioned adjacent an exterior side of said seal, .Iaddend.wherein the third elastomer material consists of about 55 percent by .[.wht..]. .Iadd.weight .Iaddend.of HSN polymer, about 0.8 percent by .[.wht..]. .Iadd.weight .Iaddend.of an antioxidant, about 3 percent by .[.wht..]. .Iadd.weight .Iaddend.of an activator, about 22 percent by .[.wht..]. .Iadd.weight .Iaddend.of carbon black, about 8 percent by .[.wht..]. .Iadd.weight .Iaddend.of a curative, about 8 percent by .[.wht..]. .Iadd.weight .Iaddend.of graphite.Iadd., .Iaddend.and about 3 percent by .[.wht..]. .Iadd.weight .Iaddend.of a tear and abrasion resistance material.
5. The invention as set forth in claim 1 further including a barrier material bonded to said first elastomer in contact with said dynamic bearing surface, said barrier material being adjacent an exterior area exposed to detritus material generated during operation of said rock bit in an earthen formation.
6. The invention as set forth in claim 5 wherein said barrier material is a screen mesh.
7. The invention as set forth in claim 6 wherein the barrier material is selected from the group consisting of steel, brass and bronze. .[.
8. The invention as set forth in claim 6 wherein the barrier material is a thermo-plastic..].
9. .[.The invention as set forth in claim 6.]. .Iadd.A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a journal comprising:
a first elastomer integrally bonded to at least a second elastomer, said first elastomer in contact with a dynamic surface being wear resistant, said second elastomer having properties adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within said seal cavity, and
means for applying contact pressure to said composite seal, and
a barrier material bonded to said first elastomer in contact with said dynamic surface, said barrier material being adjacent an exterior area exposed to detritus material generated during operation of said rock bit in an earthen formation .Iaddend.wherein the .Iadd.barrier material is selected from the group of .Iaddend.thermo-plastic .[.is polyamide or.]. .Iadd.materials consisting of polyimide and .Iaddend.polytetraflouroethylene.
10. .[.The invention as set forth in claim 6 wherein the barrier material is graphite.]. .Iadd.A composite O-ring seal for a sealed bearing rotary cone rock bit, the seal being confined within a seal cavity formed between a rotary cutter cone and a journal comprising:
a first elastomer integrally bonded to at least a second elastomer, said first elastomer in contact with a dynamic surface being wear resistant, said second elastomer having properties adapted for precise control of seal contact force while resisting compression set when the seal is squeezed within said seal cavity, and
means for applying contact pressure to said composite seal, and
a graphite barrier material bonded to said first elastomer in contact with said dynamic surface, said barrier material being adjacent an exterior area exposed to detritus material generated during operation of said rock bit in an earthen formation.Iaddend..
11. The invention as set forth in claim 1 wherein the durometer hardness of the first wear resistance elastomeric material is about 90.
12. The invention as set forth in claim 1 wherein the durometer hardness of the second elastomeric material is from 65 to 70. .Iadd.13. A sealed bearing rotary cone rock bit comprising:
a bit body;
at least one rotary cutter cone mounted for rotation on the bit body;
a composite O-ring seal being confined within a seal cavity forced between the rotary cutter cone and a journal on the bit body, the seal comprising a first wear resistant elastomer integrally bonded to at least a second elastomer different from the first elastomer, the first wear resistant elastomer forming a sealing surface in contact with a dynamic rotary surface, the second elastomer forming a second sealing surface and having properties adapted for control of seal contact force while resisting compression set when the seal is squeezed within the seal cavity, and
a second surface for applying contact pressure to the second sealing surface of the composite seal. .Iaddend..Iadd.14. The sealed bearing rotary cone rock bit as recited in claim 13 wherein the dynamic surface has a first radius of curvature in a transverse cross section, and the second surface has a second radius of curvature in a transverse cross section which is different from the radius of curvature of the dynamic
surface. .Iaddend..Iadd.15. A sealed bearing rotary cone rock bit comprising:
a bit body;
at least one rotary cutter cone mounted for rotation on the bit body;
a composite O-ring seal being confined within a seal cavity formed between the rotary cutter cone and a journal on the bit body, the seal comprising a first wear resistant elastomer integrally bonded to at least a second elastomer, the first wear resistant elastomer forming a first sealing surface and being in contact with a dynamic rotary surface, the second elastomer being formed from a material different than the first elastomer and forming a second sealing surface, wherein the second elastomer has properties adapted for control of seal contact force while resisting compression set when the seal is squeezed within the seal cavity, and
a second surface for applying contact pressure to the composite seal,
wherein the second sealing surface has a radius of curvature adjacent to the second surface different from a radius of curvature of the first sealing surface adjacent to the dynamic rotary surface. .Iaddend..Iadd.16. A sealed bearing rotary cone rock bit comprising:
a bit body;
at least one rotary cutter cone mounted for rotation on the bit body;
a composite O-ring seal being confined within a seal cavity formed between the rotary cutter cone and a journal on the bit body, the seal comprising a first wear resistant elastomer integrally bonded to at least a second elastomer, the first wear resistant elastomer forming a first sealing surface in contact with a dynamic rotary surface, the second elastomer forming a second sealing surface and being formed from a material different than the first elastomer, the second elastomer having properties adapted for control of seal contact force while resisting compression set when the seal is squeezed within the seal cavity, and a second surface for applying contact pressure to the composite seal, and wherein
the seal cross section has a greater width in a radial direction, between the second surface and the dynamic rotary surface, than a width in an axial direction. .Iaddend..Iadd.17. The sealed bearing rotary cone rock bit as recited in claim 16 wherein the dynamic surface has a first radius of curvature in a transverse cross section, and the second surface has a second radius of curvature in a transverse cross section which is different from the radius of curvature of the dynamic surface. .Iaddend..Iadd.18. A sealed bearing rotary cone rock bit comprising:
a bit body;
at least one rotary cutter cone mounted for rotation on the bit body; and
a composite O-ring seal disposed within a seal cavity formed between the rotary cutter cone and a journal on the bit body, the seal comprising:
a dynamic sealing surface rotatable bearing against one of the bit body and cutter cone, the dynamic sealing surface formed from a first wear resistant elastomer; and
a second sealing surface bearing against a relatively static surface of the other of the cutter cone and bit body, the second sealing surface formed from a second elastomer that is different than the first elastomer and that extends from the second sealing surface to the dynamic sealing surface, the second elastomer having a lower hardness than the first elastomer. .Iaddend..Iadd.19. The sealed bearing rotary cone rock bit as recited in claim 18 wherein the seal cross section has a greater width in a radial direction, between the second and dynamic surfaces, than a width in an axial direction. .Iaddend..Iadd.20. The sealed bearing rotary cone rock bit as recited in claim 18 wherein the dynamic surface has a first radius of curvature in a transverse cross section, and the second surface has a second radius of curvature in a transverse cross section which is different from the radius of curvature of the dynamic surface. .Iaddend..Iadd.21. The sealed bearing rotary cone rock bit as recited in claim 18 wherein the dynamic surface has a first radius of curvature in a transverse cross section, and the second surface has a second radius of curvature in a transverse cross section which is different from the radius
of curvature of the dynamic surface. .Iaddend..Iadd.22. A sealed bearing rotary cone rock bit comprising:
a bit body;
at least one rotary cutter cone mounted for rotation on the bit body; and
a composite O-ring seal disposed within a seal cavity formed between the rotary cutter cone and a journal on the bit body, the seal comprising a dynamic first sealing surface formed from a first elastomer and a second sealing seal surface formed from a second elastomer, wherein at least one of the first and second elastomers includes a non-elastomeric polymeric constituent. .Iaddend..Iadd.23. The rock bit as recited in claim 22 wherein the non-elastomeric polymeric constituent of the O-ring seal is selected from the group of fiber materials. .Iaddend..Iadd.24. The rock bit as recited in claim 22 wherein the non-elastomeric polymeric constituent of the O-ring seal is an aromatic polyamide fiber. .Iaddend.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US08/649,954 USRE36452E (en) | 1992-10-21 | 1996-07-08 | Composite seal for rotary cone rock bits |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US07/964,673 US5362073A (en) | 1992-10-21 | 1992-10-21 | Composite seal for rotary cone rock bits |
US08/649,954 USRE36452E (en) | 1992-10-21 | 1996-07-08 | Composite seal for rotary cone rock bits |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US07/964,673 Reissue US5362073A (en) | 1992-10-21 | 1992-10-21 | Composite seal for rotary cone rock bits |
Publications (1)
Publication Number | Publication Date |
---|---|
USRE36452E true USRE36452E (en) | 1999-12-21 |
Family
ID=27095744
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US08/649,954 Expired - Lifetime USRE36452E (en) | 1992-10-21 | 1996-07-08 | Composite seal for rotary cone rock bits |
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US (1) | USRE36452E (en) |
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US20050109502A1 (en) * | 2003-11-20 | 2005-05-26 | Jeremy Buc Slay | Downhole seal element formed from a nanocomposite material |
GB2415211A (en) * | 2004-06-15 | 2005-12-21 | Smith International | Seal assembly and drill bit |
US20060065445A1 (en) * | 2004-09-28 | 2006-03-30 | Smith International, Inc. | Rock-bit seals with asymmetric contact profiles |
US20060157941A1 (en) * | 2001-02-01 | 2006-07-20 | Jean-Pierre Vitel | Seal for assembling fluid-circuit tubular elements |
US7188691B2 (en) | 2004-06-15 | 2007-03-13 | Smith International, Inc. | Metal seal with impact-absorbing ring |
US20080011518A1 (en) * | 2006-07-12 | 2008-01-17 | Baker Hughes Incorporated | Excluder ring for earth-boring bit |
US20080023917A1 (en) * | 2006-07-28 | 2008-01-31 | Hydril Company Lp | Seal for blowout preventer with selective debonding |
US20080027693A1 (en) * | 2006-07-28 | 2008-01-31 | Hydril Company Lp | Method of designing blowout preventer seal using finite element analysis |
US20080099244A1 (en) * | 2006-10-30 | 2008-05-01 | Smith International, Inc. | Seal With Dynamic Sealing Surface At The Outside Diameter |
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US20090152009A1 (en) * | 2007-12-18 | 2009-06-18 | Halliburton Energy Services, Inc., A Delaware Corporation | Nano particle reinforced polymer element for stator and rotor assembly |
US20090260888A1 (en) * | 2008-04-21 | 2009-10-22 | Baker Hughes Incorporated | Fiber Reinforced Pressure Compensator Diaphragm |
US20100018778A1 (en) * | 2008-07-23 | 2010-01-28 | Smith International, Inc. | Seal comprising elastomeric composition with nanoparticles |
US20130319770A1 (en) * | 2011-02-18 | 2013-12-05 | National Oilwell Varco, L.P. | Drill bit seal and method of using same |
US10151148B2 (en) | 2010-02-03 | 2018-12-11 | Baker Hughes Incorporated | Composite metallic elastomeric sealing components for roller cone drill bits |
US10288133B1 (en) * | 2017-12-06 | 2019-05-14 | Warner Electric Technology Llc | Rotational coupling device having means for sealing the interface between the armature and the electromagnet |
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US6679342B2 (en) | 1995-12-19 | 2004-01-20 | Smith International, Inc. | Dual-seal drill bit pressure communication system |
US6695079B2 (en) * | 1997-12-01 | 2004-02-24 | Smith International, Inc. | Dual-seal drill bit pressure communication system |
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US20050109502A1 (en) * | 2003-11-20 | 2005-05-26 | Jeremy Buc Slay | Downhole seal element formed from a nanocomposite material |
US8283402B2 (en) | 2003-11-20 | 2012-10-09 | Halliburton Energy Services, Inc. | Downhole seal element formed from a nanocomposite material |
US7013998B2 (en) | 2003-11-20 | 2006-03-21 | Halliburton Energy Services, Inc. | Drill bit having an improved seal and lubrication method using same |
US20100181729A1 (en) * | 2003-11-20 | 2010-07-22 | Halliburton Energy Services, Inc. | Downhole Seal Element Formed From a Nanocomposite Material |
USRE40197E1 (en) * | 2003-11-20 | 2008-04-01 | Halliburton Energy Services, Inc. | Drill bit having an improved seal and lubrication method using same |
EP1533468A1 (en) * | 2003-11-20 | 2005-05-25 | Halliburton Energy Services, Inc. | Drill bit having an improved seal |
US7696275B2 (en) | 2003-11-20 | 2010-04-13 | Halliburton Energy Services, Inc. | Downhole seal element formed from a nanocomposite material |
EP2055890A1 (en) * | 2003-11-20 | 2009-05-06 | Halliburton Energy Services, Inc. | Drill bit having an improved seal |
US20080121436A1 (en) * | 2003-11-20 | 2008-05-29 | Halliburton Energy Services, Inc. | Downhole seal element formed from a nanocomposite material |
US7188691B2 (en) | 2004-06-15 | 2007-03-13 | Smith International, Inc. | Metal seal with impact-absorbing ring |
GB2415211A (en) * | 2004-06-15 | 2005-12-21 | Smith International | Seal assembly and drill bit |
US7347290B2 (en) | 2004-06-15 | 2008-03-25 | Smith International, Inc. | Multi-part energizer for mechanical seal assembly |
GB2415211B (en) * | 2004-06-15 | 2008-10-08 | Smith International | Seal assembly and drill bit |
US7461708B2 (en) | 2004-08-16 | 2008-12-09 | Smith International, Inc. | Elastomeric seal assembly having auxiliary annular seal components |
US20060065445A1 (en) * | 2004-09-28 | 2006-03-30 | Smith International, Inc. | Rock-bit seals with asymmetric contact profiles |
US20080011518A1 (en) * | 2006-07-12 | 2008-01-17 | Baker Hughes Incorporated | Excluder ring for earth-boring bit |
US7708090B2 (en) * | 2006-07-12 | 2010-05-04 | Baker Hughes Incorporated | Excluder ring for earth-boring bit |
US20080027693A1 (en) * | 2006-07-28 | 2008-01-31 | Hydril Company Lp | Method of designing blowout preventer seal using finite element analysis |
US20080023865A1 (en) * | 2006-07-28 | 2008-01-31 | Hydril Company Lp | Revised cure cycle for annular packing units |
US7736556B2 (en) | 2006-07-28 | 2010-06-15 | Hydril Usa Manufacturing Llc | Revised cure cycle for annular packing units |
US20080023917A1 (en) * | 2006-07-28 | 2008-01-31 | Hydril Company Lp | Seal for blowout preventer with selective debonding |
US8176933B2 (en) * | 2006-07-28 | 2012-05-15 | Hydril Usa Manufacturing Llc | Annular BOP packing unit |
US20080066906A1 (en) * | 2006-07-28 | 2008-03-20 | Hydril Company Lp | Annular bop packing unit |
US8020638B2 (en) | 2006-10-30 | 2011-09-20 | Smith International, Inc. | Seal with dynamic sealing surface at the outside diameter |
US20080099244A1 (en) * | 2006-10-30 | 2008-05-01 | Smith International, Inc. | Seal With Dynamic Sealing Surface At The Outside Diameter |
US20090152009A1 (en) * | 2007-12-18 | 2009-06-18 | Halliburton Energy Services, Inc., A Delaware Corporation | Nano particle reinforced polymer element for stator and rotor assembly |
US20090260888A1 (en) * | 2008-04-21 | 2009-10-22 | Baker Hughes Incorporated | Fiber Reinforced Pressure Compensator Diaphragm |
US20100018778A1 (en) * | 2008-07-23 | 2010-01-28 | Smith International, Inc. | Seal comprising elastomeric composition with nanoparticles |
US9169377B2 (en) * | 2008-07-23 | 2015-10-27 | Smith International, Inc. | Seal comprising elastomeric composition with nanoparticles |
US10151148B2 (en) | 2010-02-03 | 2018-12-11 | Baker Hughes Incorporated | Composite metallic elastomeric sealing components for roller cone drill bits |
US20130319770A1 (en) * | 2011-02-18 | 2013-12-05 | National Oilwell Varco, L.P. | Drill bit seal and method of using same |
US10161190B2 (en) | 2011-02-18 | 2018-12-25 | National Oilwell Varco, L.P. | Drill bit seal and method of using same |
US10288133B1 (en) * | 2017-12-06 | 2019-05-14 | Warner Electric Technology Llc | Rotational coupling device having means for sealing the interface between the armature and the electromagnet |
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