WO2012128278A1 - Dispositif de roulement pour roue et procédé de fabrication de celui-ci - Google Patents
Dispositif de roulement pour roue et procédé de fabrication de celui-ci Download PDFInfo
- Publication number
- WO2012128278A1 WO2012128278A1 PCT/JP2012/057139 JP2012057139W WO2012128278A1 WO 2012128278 A1 WO2012128278 A1 WO 2012128278A1 JP 2012057139 W JP2012057139 W JP 2012057139W WO 2012128278 A1 WO2012128278 A1 WO 2012128278A1
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- WO
- WIPO (PCT)
- Prior art keywords
- wheel
- mounting flange
- hub
- bearing device
- cold forging
- Prior art date
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- 238000004519 manufacturing process Methods 0.000 title claims abstract description 25
- 238000010273 cold forging Methods 0.000 claims abstract description 81
- 238000005242 forging Methods 0.000 claims abstract description 60
- 238000005096 rolling process Methods 0.000 claims description 79
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Images
Classifications
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60B—VEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
- B60B27/00—Hubs
- B60B27/0005—Hubs with ball bearings
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21J—FORGING; HAMMERING; PRESSING METAL; RIVETING; FORGE FURNACES
- B21J1/00—Preparing metal stock or similar ancillary operations prior, during or post forging, e.g. heating or cooling
- B21J1/06—Heating or cooling methods or arrangements specially adapted for performing forging or pressing operations
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21J—FORGING; HAMMERING; PRESSING METAL; RIVETING; FORGE FURNACES
- B21J5/00—Methods for forging, hammering, or pressing; Special equipment or accessories therefor
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B21—MECHANICAL METAL-WORKING WITHOUT ESSENTIALLY REMOVING MATERIAL; PUNCHING METAL
- B21K—MAKING FORGED OR PRESSED METAL PRODUCTS, e.g. HORSE-SHOES, RIVETS, BOLTS OR WHEELS
- B21K1/00—Making machine elements
- B21K1/28—Making machine elements wheels; discs
- B21K1/40—Making machine elements wheels; discs hubs
-
- 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
- F16C19/00—Bearings with rolling contact, for exclusively rotary movement
- F16C19/02—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows
- F16C19/14—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load
- F16C19/18—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls
- F16C19/181—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact
- F16C19/183—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact with two rows at opposite angles
- F16C19/184—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact with two rows at opposite angles in O-arrangement
- F16C19/186—Bearings with rolling contact, for exclusively rotary movement with bearing balls essentially of the same size in one or more circular rows for both radial and axial load with two or more rows of balls with angular contact with two rows at opposite angles in O-arrangement with three raceways provided integrally on parts other than race rings, e.g. third generation hubs
-
- 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
- F16C33/30—Parts of ball or roller bearings
- F16C33/58—Raceways; Race rings
- F16C33/64—Special methods of manufacture
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60B—VEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
- B60B2310/00—Manufacturing methods
- B60B2310/20—Shaping
- B60B2310/208—Shaping by forging
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60B—VEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
- B60B2900/00—Purpose of invention
- B60B2900/10—Reduction of
- B60B2900/111—Weight
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60B—VEHICLE WHEELS; CASTORS; AXLES FOR WHEELS OR CASTORS; INCREASING WHEEL ADHESION
- B60B2900/00—Purpose of invention
- B60B2900/10—Reduction of
- B60B2900/112—Costs
-
- 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
- F16C2220/00—Shaping
- F16C2220/40—Shaping by deformation without removing material
- F16C2220/46—Shaping by deformation without removing material by forging
-
- 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
- F16C2223/00—Surface treatments; Hardening; Coating
- F16C2223/10—Hardening, e.g. carburizing, carbo-nitriding
- F16C2223/18—Hardening, e.g. carburizing, carbo-nitriding with induction hardening
-
- 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
- F16C2326/00—Articles relating to transporting
- F16C2326/01—Parts of vehicles in general
- F16C2326/02—Wheel hubs or castors
Definitions
- the present invention relates to a wheel bearing device that rotatably supports a wheel of an automobile or the like.
- the present invention relates to a reduction in cost by reducing a cutting allowance and an increase in the strength of a high load portion, thereby reducing the weight and increasing the weight.
- the present invention relates to a wheel bearing device that solves the conflicting problem of increasing rigidity and extends the life of the bearing, and a method of manufacturing the same.
- the wheel bearing device has a structure called a first generation in which a wheel bearing composed of a double-row angular ball bearing or the like is fitted between a knuckle and a hub wheel constituting a suspension device.
- Second generation structure with body mounting flange or wheel mounting flange formed directly on the outer periphery
- third generation structure with one inner rolling surface formed directly on the outer periphery of the hub wheel, or constant velocity with the hub wheel It is roughly classified into a fourth generation structure in which the inner rolling surface is directly formed on the outer periphery of the outer joint member of the joint.
- the wheel bearing device 50 is called a third generation on the driven wheel side, and includes an inner member 51, an outer member 52, and double-row balls 53, 53.
- the inner member 51 includes a hub ring 55 including a solid shaft portion 54 and an inner ring 56 fitted to the hub ring 55.
- the hub wheel 55 integrally has a wheel mounting flange 57 for mounting a wheel (not shown) at one end thereof, an inner rolling surface 55a on the outer periphery, and a small diameter extending in the axial direction from the inner rolling surface 55a.
- a step portion 55b is formed.
- hub bolts 57 a for fixing the wheels are planted at equal circumferential positions of the wheel mounting flanges 57.
- a positioning cylinder portion 58 for positioning the wheel is provided concentrically with the shaft portion 54.
- An inner ring 56 having an inner rolling surface 56a formed on the outer periphery is press-fitted into the small diameter step portion 55b of the hub wheel 55.
- the inner ring 56 is prevented from coming off in the axial direction with respect to the hub wheel 55 by a crimped portion 55c formed by plastically deforming the end portion of the small diameter step portion 55b of the hub wheel 55 radially outward. .
- the outer member 52 includes a hollow shaft portion 59, and integrally includes a vehicle body attachment flange 52b for attachment to a suspension device (not shown) on the outer periphery, and double row outer rolling on the inner periphery. Surfaces 52a and 52a are formed. Between the inner rolling surfaces 55a and 56a facing the double-row outer rolling surfaces 52a and 52a, double-row balls 53 and 53 are accommodated via a cage 61 so as to roll freely. Further, a positioning cylinder portion 60 for positioning the vehicle body is formed concentrically with the shaft portion 59 on the opposite side of the shaft portion 59 with the vehicle body mounting flange 52b interposed therebetween.
- a wheel mounting flange 57 extending radially in a direction orthogonal to the shaft portion 54 is formed integrally with the shaft portion 54 by cold side extrusion, and is also extruded during molding.
- the positioning cylinder portion 58 constituted by the remaining portion is also formed integrally with the shaft portion 54.
- a vehicle body mounting flange 52b extending radially in a direction orthogonal to the shaft portion 59 is formed integrally with the shaft portion 59 by cold side extrusion, and is also extruded during molding.
- the positioning cylinder part 60 constituted by the remaining part is also formed integrally with the shaft part 59.
- the wheel mounting flange 57 and the vehicle body mounting flange 52b are compression-molded, it can be molded with a relatively small equipment using cold forging, and the machining cost in the subsequent process is reduced.
- the hub wheel 55 and the outer member 52 that are reduced and inexpensive can be obtained.
- cylindrical positioning cylinders 58, 60 that are continuous in the circumferential direction can be easily cold formed integrally with the shafts 54, 59 with high accuracy, so that the thickness of the necessary part is secured.
- the material yield can be improved and the manufacturing cost can be reduced (see, for example, Patent Document 1).
- the bonde process refers to a process of applying a phosphate film (lubricant film) in order to eliminate the frictional resistance between the molded product and the mold during the cold forging process.
- the present invention has been made in view of the above circumstances, and reduces the cutting cost to reduce the cost, while increasing the strength of the high-load portion, solving the conflicting problem of weight reduction and high rigidity.
- Another object of the present invention is to prevent overheating when a hub wheel lightened by increasing strength by work hardening of cold forging is induction-quenched.
- the present invention has an outer peripheral body integrally provided with a vehicle body mounting flange for mounting to a vehicle body via a fixing bolt on the outer periphery, and a double row outer rolling surface formed integrally on the inner periphery.
- a vehicle body mounting flange for mounting to a vehicle body via a fixing bolt on the outer periphery
- a double row outer rolling surface formed integrally on the inner periphery.
- One side member, a wheel mounting flange for mounting a wheel at one end, and a cylindrical pilot portion extending from the wheel mounting flange to the outer side are integrally formed on one of the outer rolling surfaces of the double row on the outer periphery.
- a hub ring formed with an opposing inner rolling surface, a small-diameter step portion extending in the axial direction from the inner rolling surface, and a small-diameter step portion of the hub ring, and the outer circumferential rolling of the double row on the outer periphery.
- An inner member formed of an inner ring formed with an inner rolling surface facing the other of the surfaces, and a double-row rolling element accommodated between the inner member and the outer member via a cage so as to be freely rollable.
- the wheel mounting flange has a circumference.
- the hub ring is formed by hot forging and cold forging, and the cold forging is partially applied to the cold forged portion. And the hardness difference between the parts not cold-forged is set to 6 points on the HRC scale or 47 points or more on the HV scale.
- the wheel bearing device of the third generation structure including the wheel mounting flange for mounting the wheel at one end portion and the hub wheel integrally including the cylindrical pilot portion extending from the wheel mounting flange to the outer side.
- the wheel mounting flange is composed of a plurality of partial flanges divided into a plurality of circumferential directions, and the pilot part is formed in an intermittent projecting piece shape with notches provided at a plurality of locations in the circumferential direction.
- the part is formed between the partial flanges, the hub wheel is formed by hot forging and cold forging, the cold forging is partially applied, and the cold forged part is cold forged.
- the strength of the high load part can be increased by work hardening by cold forging. Because, to resolve conflicting problem weight and high rigidity can be provided a wheel bearing apparatus which aimed to extend the life of the bearing. In addition, it is possible to reduce the processing force by partial cold forging, to make the forging equipment compact, as well as to oil lubrication without needing to be bonded as in the past, reducing cutting cost and low cost. Can be achieved.
- the pilot portion is provided with notches at a plurality of locations in the circumferential direction, is formed in the shape of intermittent protrusions, and the pilot portion is disposed between the partial flanges.
- the weight can be reduced without reducing the rigidity of the hub wheel.
- the strength of the wheel mounting flange is effectively increased even if a large moment load is applied to the wheel mounting flange. Durability can be improved.
- the cold forging may be performed on the pilot portion.
- a recess extending in a mortar shape from the outer end surface of the hub wheel toward the inner side is formed, and a through hole opening from the recess to the inner end surface is formed by punching.
- the recess is tapered from the inner diameter portion of the pilot portion by the cold forging, and the outer end portion of the hub wheel has a uniform thickness substantially the same as the thickness of the wheel mounting flange. If it is formed thick, the conflicting problems of weight reduction and high rigidity can be solved simultaneously.
- the outer member is formed of medium-high carbon steel containing 0.40 to 0.80 wt% of carbon, and the cold forging is applied to the root portion of the vehicle body mounting flange, Even if a large moment load is applied to the wheel mounting flange, the strength of the wheel mounting flange can be effectively increased and the durability can be improved.
- the hub wheel is formed of medium-high carbon steel containing 0.40 to 0.80 wt% of carbon, and is formed by hot forging and cold forging, and the cold forging is partially performed.
- the hub wheel has a predetermined hardened layer formed by induction quenching from the base portion on the inner side of the wheel mounting flange to the small diameter step portion, and the maximum outer diameter of the hardened layer in the base portion is If it is set to be on the outer diameter side than the outer diameter of the concave bottom portion between the partial flanges, the weight can be reduced by increasing the strength by work hardening of cold forging.
- the method invention of the present invention is an outer side in which a vehicle body mounting flange for being attached to the vehicle body via a fixing bolt is integrally formed on the outer periphery, and a double row outer rolling surface is integrally formed on the inner periphery.
- a member, a wheel mounting flange for mounting a wheel at one end, and a cylindrical pilot portion extending from the wheel mounting flange to the outer side are integrally formed and opposed to one of the outer rolling surfaces of the double row on the outer periphery.
- the wheel mounting franc Is composed of a plurality of partial flanges divided into a plurality of circumferential directions, and the hub ring is partially applied after the hot forging step and the hot forging step, and the surface hardness is a predetermined hardness.
- a cold forging step that is greater than or equal to the difference is provided, and in the hot forging, a base portion of the wheel mounting flange is formed thicker than a tip portion, and is thinned by the cold forging to a substantially uniform thickness. Is formed.
- a wheel bearing device for a third generation structure having a wheel mounting flange for mounting a wheel at one end and a hub wheel integrally including a cylindrical pilot portion extending outward from the wheel mounting flange.
- the wheel mounting flange is composed of a plurality of partial flanges divided into a plurality of circumferential directions, and the hub ring is partially applied after the hot forging step and the hot forging step, It is equipped with a cold forging process in which the hardness is equal to or greater than a predetermined hardness difference, and the base part of the wheel mounting flange is formed thicker than the tip part by hot forging, and is thinned by cold forging to be substantially uniform.
- the cutting allowance can be reduced by partial cold forging, the processing force can be reduced, and the forging equipment can be made compact.
- the pilot portion is provided with notches at a plurality of locations in the circumferential direction, and is formed by hot forging into intermittent protrusions, and the pilot portion is disposed between the partial flanges.
- the base portion of the pilot portion may be formed by cold forging.
- the root portion of the wheel mounting flange is thinned by at least 10% by the cold forging, the strength and rigidity are increased by the work hardening of the cold forging. It is possible to reduce the weight by reducing the thickness.
- a base part is formed in a shape narrower than a tip part by the hot forging of the side surface in the circumferential direction of the partial flange, and the tip part is a mold by the cold forging. If the root part is formed in a smooth arc shape that gradually spreads from the tip part in a state of being restrained by the material, the plastic flow of the material can be made smooth, and the wheel mounting flange can be made thin. The remaining portion of the extrusion can accurately form the pilot portion, the base portion on the inner side of the wheel mounting flange, the inner rolling surface, and the like.
- a recess extending in a mortar shape from the end surface on the outer side of the hub wheel toward the inner side is formed by hot forging, and this recess is a circle protruding from the inner diameter surface of the pilot portion. If it is formed in an arc shape and the recess is tapered and thinned by cold forging, work hardening by cold forging increases the strength and rigidity of the hub wheel and realizes hollowing. Thus, the weight can be reduced.
- the hub bolt insertion hole of the wheel mounting flange is stamped by the hot forging, and then formed into a predetermined inner diameter by the cold forging, and the heat of the hub bolt insertion hole is formed. If the hardness increase after cold forging is set to be less than 5% of the surface hardness of the inner peripheral surface after cold forging, the hardness difference between the hub bolt and the hub bolt insertion hole is set to 10 HRC or more.
- the inner peripheral surface of the hub bolt insertion hole is plastically deformed, and the hub bolt knurl sufficiently bites into the hub bolt insertion hole, thereby increasing and stabilizing the hub bolt slip torque without hindering assembly workability. it can.
- the cost can be reduced.
- a high-frequency coil as a heating conductor is inserted facing the outer peripheral surface of the hub wheel, and an outlet jig made of a conductor is fitted between the partial flanges via a predetermined magnetic clearance.
- a predetermined hardened layer is formed at a predetermined position of the hub wheel by passing a high-frequency current through the high-frequency coil and heating the high-frequency coil, the magnetic flux of the high-frequency coil escapes to the outlet jig.
- Concentration of magnetic flux at the concave bottom between the partial flanges is suppressed, and the concave bottom can be prevented from locally generating heat, and a desired quenching pattern can be obtained, and the strength of the hub wheel is improved and repeated. Sufficient durability can be ensured even when a bending moment load is applied.
- the magnetic clearance between the outlet jig and the concave bottom portion of the hub wheel is set to 5 mm or less, the magnetic flux of the high frequency coil can be surely released to the outlet jig.
- the outlet jig may be inserted between the partial flanges via an insulator.
- the wheel bearing device has a vehicle body mounting flange that is integrally attached to the vehicle body on the outer periphery via a fixing bolt, and an outer side in which a double row outer rolling surface is integrally formed on the inner periphery.
- a member, a wheel mounting flange for mounting a wheel at one end, and a cylindrical pilot portion extending from the wheel mounting flange to the outer side are integrally formed and opposed to one of the outer rolling surfaces of the double row on the outer periphery.
- the wheel mounting flange is circumferential.
- the hub ring is formed by hot forging and cold forging, and is partially subjected to the cold forging, and the cold forged portion.
- the hardness difference from the part that is not cold forged is set to 6 points on the HRC scale or 47 points or more on the HV scale, so work hardening by cold forging increases the strength of the high load part and reduces the weight.
- the method for manufacturing a wheel bearing device has a vehicle body mounting flange integrally attached to the vehicle body on the outer periphery via a fixing bolt, and a double row outer rolling surface is integrated on the inner periphery.
- the formed outer member, a wheel mounting flange for mounting a wheel at one end, and a cylindrical pilot portion extending from the wheel mounting flange to the outer side are integrally formed, and the double row outer rolling is performed on the outer periphery.
- Cold forging in which a portion is formed between the partial flanges, and the hub wheel is partially applied after the hot forging step and the hot forging step so that the surface hardness is equal to or greater than a predetermined hardness difference.
- a base portion of the wheel mounting flange is formed thicker than the tip portion by the hot forging, and is thinned by the cold forging to have a substantially uniform thickness. Even if a large moment load is applied to the wheel mounting flange by work hardening by inter-forging, the strength of the wheel mounting flange can be effectively increased and the durability can be improved.
- the cutting allowance can be reduced by partial cold forging, the processing force can be reduced, and the forging equipment can be made compact.
- FIG. 1 It is a longitudinal section showing a 1st embodiment of a bearing device for wheels concerning the present invention. It is a front view of FIG. It is a block diagram which shows the manufacturing process of the wheel bearing apparatus which concerns on this invention.
- A) is a front view showing the hub wheel of FIG. 1 after hot forging, and (b) is a longitudinal sectional view taken along line IV-IV of (a).
- A) is a front view showing the hub wheel of FIG. 1 after cold forging, and (b) is a longitudinal sectional view taken along line VV of (a). It is explanatory drawing which shows the cold forging method of the hub wheel of FIG.
- (A) is a plan view showing a state in which a molded product is set on a cold forging die
- (b) is a cross-sectional view taken along line VII-VII in (a).
- An outer member that integrally has a vehicle body mounting flange that is attached to the vehicle body via a fixing bolt on the outer periphery, and that has a double-row outer rolling surface formed integrally on the inner periphery, and for attaching a wheel to one end.
- a hub wheel formed with a small-diameter step portion extending in the axial direction from the running surface, and an inner rolling surface that is fitted to the small-diameter step portion of the hub wheel and that faces the other of the outer rolling surfaces of the double row on the outer periphery.
- a wheel bearing device comprising: an inner member formed of an inner ring formed; and a double-row rolling element that is rotatably accommodated between the inner member and the outer member via a cage.
- the hub wheel has a hot forging process and the hot forging process.
- the wheel mounting flange is configured with a plurality of partial flanges divided into a plurality of circumferential directions, and the pilot portion
- notches are provided in a plurality of locations in the circumferential direction, and are formed by the hot forging in the shape of intermittent protrusions, and the pilot portion is disposed between the partial flanges, and in the hot forging
- the base part of the wheel mounting flange is formed thicker than the tip part, and is thinned by the cold forging to have a substantially uniform thickness.
- FIG. 1 is a longitudinal sectional view showing a first embodiment of a wheel bearing device according to the present invention
- FIG. 2 is a front view of FIG. 1
- FIG. 3 is a manufacturing process of the wheel bearing device according to the present invention.
- FIG. 4A is a front view showing the hub wheel of FIG. 1 after hot forging
- FIG. 4B is a longitudinal sectional view taken along line IV-IV in FIG. ) Is a front view showing the hub wheel of FIG. 1 after cold forging
- (b) is a longitudinal sectional view taken along line VV of (a)
- FIG. 6 is a cold view of the hub wheel of FIG.
- FIG. 4A is a front view showing the hub wheel of FIG. 1 after hot forging
- FIG. 4B is a longitudinal sectional view taken along line IV-IV in FIG.
- Is a front view showing the hub wheel of FIG. 1 after cold forging
- (b) is a longitudinal sectional view taken along line VV of (a)
- FIG. 7A is a plan view showing a state in which a molded product is set on a cold forging die
- FIG. 7B is a sectional view taken along line VII-VII in FIG.
- FIG. 8 is a graph showing the surface hardness of a portion after hot forging and a portion after cold forging of the hub wheel according to the present invention.
- the side closer to the outer side of the vehicle when assembled to the vehicle is referred to as the outer side (left side in FIG. 1), and the side closer to the center is referred to as the inner side (right side in FIG. 1).
- This wheel bearing device is for a driven wheel called a third generation, and includes an inner member 1 and an outer member 2, and a double row rolling element housed between the inner member 1 and the outer member 2. (Balls) 3 and 3.
- the inner member 1 indicates a hub ring 4 and an inner ring 5 press-fitted into the hub ring 4.
- the hub wheel 4 integrally has a wheel mounting flange 6 divided into a plurality (in this case, five) in the circumferential direction at the outer end of the outer periphery, and a wheel (not shown) is fastened to the outer periphery.
- Hub bolts 7 are installed for the purpose.
- the wheel mounting flange 6 is cut out at a portion other than the vicinity of the hub bolt insertion hole 8, and has a width substantially the same as the portion where each bolt insertion hole 8 is formed, and protrudes radially from the annular base portion. It is formed as follows. That is, the wheel mounting flange 6 is formed by being divided into a plurality of partial flanges 6a separated in the circumferential direction.
- a cylindrical brake pilot portion 10 extending outward is formed on the base portion 9 of the wheel mounting flange 6 of the hub wheel 4 to guide the inner diameter surface of the brake rotor 11. Further, a wheel pilot portion 12 extending from the brake pilot portion 10 to the outer side is formed. The wheel pilot portion 12 guides the inner diameter surface of the wheel hub 13 mounted on the brake rotor 11 so as to be smaller in diameter than the brake pilot portion 10. And the notch is provided in the multiple places of the circumferential direction, and it forms in the shape of the intermittent protrusion.
- the intermittent wheel pilot portion 12 is formed between a plurality of partial flanges 6a (see FIG. 2). Thereby, weight reduction can be achieved without reducing the rigidity of the hub wheel 4.
- An inner rolling surface 4a and a cylindrical small-diameter step portion 4b extending in the axial direction from the inner rolling surface 4a are formed on the outer periphery of the hub wheel 4 from the wheel mounting flange 6 to the inner side. Then, the inner ring 5 having the inner raceway surface 5a formed on the outer periphery is press-fitted into the small diameter step portion 4b, and the crimping portion 4c formed by plastically deforming the end portion of the small diameter step portion 4b radially outwardly, The inner ring 5 is prevented from coming off in the axial direction with respect to the hub ring 4.
- the hub wheel 4 is made of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and the like, from the inner side rolling surface 4a on the outer side and the base 9 on which an outer side seal 19 described later is mounted.
- the surface hardness is set to a range of 58 to 64 HRC by induction hardening over the small diameter step 4b.
- the caulking portion 4c is an unquenched portion having a surface hardness of 30 HRC or less after forging.
- the inner ring 5 and the rolling element 3 are made of high carbon chrome bearing steel such as SUJ2, and are hardened in the range of 58 to 64 HRC to the core by quenching.
- the wheel mounting flange 6 is cut out at a portion other than the vicinity of the bolt insertion hole 8 and protrudes radially from the annular base portion with substantially the same width as the formation portion of each bolt insertion hole 8.
- the present invention is not limited to this, but it is not illustrated, but between the bolt insertion holes while avoiding the periphery of the bolt insertion holes, the R shape is deeper from the pitch circle diameter of the bolt insertion holes to the inner diameter side. It may be a wheel mounting flange having a flower shape in which a notch is formed.
- the outer member 2 integrally has a vehicle body mounting flange 14 attached to a knuckle (not shown) constituting a suspension device on the outer periphery, and has a bolt insertion hole 15 formed in the outer peripheral portion.
- the vehicle body mounting flange 14 has an R-shaped notch 16 that is deeper from the periphery of the bolt insertion hole 15 to the inner diameter side than the pitch circle diameter of the bolt insertion hole 15. Is formed. That is, the vehicle body mounting flange 14 is divided into a plurality (here, four) of partial flanges 14a that are separated in the circumferential direction. Further, as shown in FIG.
- a cylindrical knuckle pilot portion 17 extending in the axial direction from the vehicle body mounting flange 14 is formed at the inner end of the outer member 2, and the outer diameter of the knuckle pilot portion 17 is formed.
- a knuckle is fitted to the surface.
- the outer member 2 is made of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and the inner periphery thereof has a plurality of inner rolling surfaces 4a and 5a facing the double rows of inner rolling surfaces 4a and 5a.
- the outer rolling surfaces 2a, 2a of the rows are formed.
- At least these double row outer raceway surfaces 2a and 2a are hardened by induction hardening to a surface hardness in the range of 58 to 64 HRC, and are held between the inner member 1 and outer member 2 rolling surfaces.
- the double-row rolling elements 3 and 3 are accommodated by the vessels 18 and 18 so as to roll freely.
- Seals 19 and 20 are attached to both ends of the outer member 2 to seal the annular space between the outer member 2 and the inner member 1. These seals 19 and 20 prevent leakage of the lubricating grease sealed inside the bearing and intrusion of rainwater, dust and the like from the outside into the bearing.
- the wheel mounting flange 6 of the hub wheel 4 is cut out at a portion other than the vicinity of the bolt insertion hole 8, and only the portion where each bolt insertion hole 8 is formed has substantially the same width from the annular base to the outer diameter side. Since it is formed so as to protrude, the knuckle bolt can be easily fastened with a tool without being obstructed by the wheel mounting flange 6 when the outer member 2 is fastened to the knuckle. Work can be simplified.
- the hub wheel 4 and the outer member 2 are significantly thinned, and the wheel mounting flange 6 and the vehicle body mounting flange 14 are formed by being divided into a plurality of partial flanges 6a and 14a, which are completely different from conventional disk-shaped flanges. Therefore, the lightest weight can be achieved while ensuring the strength and durability.
- the wheel bearing device referred to as the third generation in which the inner raceway surface 4a is formed directly on the outer periphery of the hub wheel 4 is illustrated, but the wheel bearing device according to the present invention is not limited to such a structure.
- a wheel bearing device having a first generation or second generation structure in which a pair of inner rings are press-fitted into a small-diameter step portion of a hub ring may be used.
- the wheel bearing apparatus comprised by the double row angular contact ball bearing which used the rolling elements 3 and 3 as a ball
- the hub wheel 4 and the outer member 2 are formed by hot forging, subsequent cold forging, and two forging processes.
- the manufacturing method of the hub wheel 4 according to the present invention will be described in detail.
- the hub wheel 4 is hot forged from a bar material as a raw material and then partially cold forged. And it heat-processes through a turning process, and is completed by an assembly process after a grinding process and a super finishing process.
- a predetermined forging shape as shown in FIG. 4 is formed by hot forging.
- both side faces 23 'and 24' of the wheel mounting flange 6 'and the pilot portion 12, the base 9' of the wheel mounting flange 6 ', the inner rolling surface 4a', the counter Forging is performed in a state in which the part 25 'and the small diameter step part 4b' are left with a machining allowance such as a predetermined turning machining allowance.
- a recess 26 ′ extending in a mortar shape from the outer end face 21 ′ toward the inner side is formed, and a through hole 27 opening from the recess 26 ′ to the inner end face 22 ′ is formed.
- the hub wheel 4 ' is formed into a hollow shaft by punching.
- the thickness of the base portion of the plurality of partial flanges 6a ′ and 6a ′ constituting the wheel mounting flange 6 ′ is formed thicker than the tip portion, and the circumference of the plurality of partial flanges 6a ′ and 6a ′.
- a side surface 28 (indicated by a two-dot chain line in the figure) 28 is formed in a shape in which a root portion 28a is narrower than a tip portion 28b.
- the recess 26 ′ is formed in a convex arc shape from the inner diameter surface of the pilot portion 12, and the hollow hub wheel 4 ′ is formed with a uniform thickness substantially the same as the thickness of the wheel mounting flange 6 ′. ing.
- forging is performed in a state where both side surfaces 23 and 24 of the wheel mounting flange 6 and the mortar-shaped recess 26 leave a predetermined turning allowance (indicated by a two-dot chain line in the figure).
- the die for cold forging includes an outer end surface 21 ′, an outer side surface 23 ′ of the wheel mounting flange 6 ′, a punch 29 that forms an inner peripheral portion, and a wheel. It is constituted by a die 30 that forms an inner side surface 24 ′, a base portion 9 ′, an inner rolling surface 4a ′, a counter portion 25 ′, and a small-diameter step portion 4b ′ of the mounting flange 6 ′.
- the base portions of the plurality of partial flanges 6a ′ and 6a ′ constituting the wheel mounting flange 6 ′ are thinned to be uniformly formed in the same manner as the tip portion, and are shown in FIG.
- the shape and dimensions of the side surfaces 28 in the circumferential direction of the plurality of partial flanges 6a ′ and 6a ′ constituting the wheel mounting flange 6 ′ are greatly changed. That is, the constricted root portion 28a is formed in a smooth arc shape gradually spreading from the tip portion 28b by cold forging while the tip portion 28b is constrained by a die, and the wheel mounting flange is formed by smooth plastic flow of the material.
- the root portion 28a is formed in a die shape by the remaining extrusion portion at the time of molding.
- the recess 26 is tapered from the outer side surface 24 of the wheel mounting flange 6 to reduce the thickness, and the hollow hub wheel 4 is replaced with the wheel mounting flange 6. It is formed to have a uniform wall thickness that is substantially the same as the wall thickness.
- the hub wheel 4 is cold forged at a site where strength is required after hot forging, the work hardening by cold forging, specifically, the surface hardness after forging is achieved.
- the Hv (Vickers hardness) scale has a hardness difference of 47 at the minimum ( ⁇ Hvmin.) And 99 at the maximum ( ⁇ Hvmax.), And the minimum at the HRC (Rockwell hardness) scale. It was found that a hardness difference of 6 was obtained at ( ⁇ HRC min.) And 12.5 at the maximum ( ⁇ HRCmax.).
- the hub bolt insertion hole 8 of the wheel mounting flange 6 is punched by hot forging, and then formed into a predetermined inner diameter by cold forging and the hub bolt 7 is press-fitted.
- the hub bolt insertion is performed.
- the hardness increase after cold forging is set to be less than 5% with respect to the surface hardness of the inner peripheral surface of the hole 8 after hot forging. This makes it easy to set the difference in hardness between the hub bolt 7 and the hub bolt insertion hole 8 to 10 HRC or more, and the inner peripheral surface of the hub bolt insertion hole 8 is plastically deformed, so that the knurl of the hub bolt 7 is sufficient in the hub bolt insertion hole 8.
- the slip torque of the hub bolt 7 can be increased and stabilized without impeding biting and assembly workability.
- the outer member 2 is hot forged from a bar material as a material, and then partially cold forged, like the hub wheel 4. And it heat-processes through a turning process, and is completed by an assembly process after a grinding process and a super finishing process.
- both end surfaces, both side surfaces of the partial flange 14a constituting the vehicle body mounting flange 14, the knuckle pilot portion 17 on which the knuckle is fitted, and the seals 19 and 20 are attached.
- the seal fitting surface, the double-row outer rolling surfaces 2a, 2a, and the inner diameter surface are forged with a predetermined turning allowance left by hot forging and partial cold forging.
- the partial flange 14a is thinned, and the outer side surface of the partial flange 14a and the corners of the outer peripheral surface are formed in an arc shape having a predetermined radius of curvature by the remaining extruded portion at the time of molding.
- the circumferential side surfaces of the plurality of partial flanges 14a, 14a are formed in a smooth arc shape that gradually spreads from the tip portion toward the root portion.
- FIG. 9 is a longitudinal sectional view showing a second embodiment of the wheel bearing device according to the present invention
- FIG. 10 is an explanatory view showing a heat treatment pattern of the hub wheel according to the present invention
- FIG. 11 is according to the present invention.
- FIG. 12 is a front view of FIG. 11, and FIG. 13 is an enlarged view of a main part of FIG. 12. Note that this embodiment basically differs from the above-described embodiment (FIG. 1) only in part in the configuration of the hub wheel, and the same reference numerals are assigned to the same parts or parts having the same functions. Therefore, detailed description is omitted.
- This wheel bearing device is for a driven wheel referred to as a third generation, and includes an inner member 31 and an outer member 2, and a double row rolling element housed between the inner member 31 and the outer member 2. 3 and 3.
- the inner member 31 refers to the hub ring 32 and the inner ring 5 press-fitted into the hub ring 32.
- the hub wheel 32 integrally has a wheel mounting flange 6 divided into a plurality (in this case, five) in the circumferential direction at the outer end of the outer periphery, and fastens a wheel (not shown) to the outer periphery. Hub bolts 7 are installed for the purpose.
- the hub wheel 32 is formed of medium and high carbon steel containing 0.40 to 0.80 wt% of carbon such as S53C, and the small diameter step starts from the inner side rolling surface 4a on the outer side and the base 9 to which the outer side seal 19 is mounted.
- a predetermined hardened layer 33 is formed over the portion 4b by induction hardening and having a surface hardness in the range of 58 to 64 HRC (indicated by cross hatching in the figure).
- the caulking portion 4c is an unquenched portion having a surface hardness of 30 HRC or less after forging.
- the rigidity of the hub wheel 32 is improved, and fretting wear on the fitting surface with the inner ring 5 can be prevented, and the durability of the hub wheel 32 is improved.
- the workability when plastically deforming the caulking portion 4c is improved, and the occurrence of cracks or the like during the processing is prevented, thereby improving the reliability of the quality.
- a predetermined hardened layer 33 is formed on the outer peripheral surface of the hub wheel 32 by induction hardening, and the range of the hardened layer 33 is from the inner side base 9 of the wheel mounting flange 6 as shown in FIG. It is formed over the small diameter step 4b.
- the maximum outer diameter D2 of the hardened layer 33 in the base portion 9 is the outer diameter of the concave bottom portion 34. It is set so as to be on the outer diameter side (D2> D1) from D1.
- the hardened layer 33 in the small diameter step 4b is stopped in the vicinity of an annular groove (undercut) 37 formed on the outer periphery of the small diameter step 4b before caulking, which will be described later.
- a high-frequency coil 35 serving as a heating conductor is inserted facing the outer peripheral surface of the hub wheel 32, and a high-frequency current is passed through the high-frequency coil 35, thereby Is performed by high frequency heating.
- the outlet jig 36 is inserted between the partial flanges 6a and 6a through a predetermined gap.
- the outlet jig 36 is made of a conductor such as copper or aluminum alloy.
- the outlet jig 36 prevents the magnetic flux from the high-frequency coil 35 from escaping to the outlet jig 36 and concentrating the magnetic flux on the concave bottom 34. Therefore, it is possible to prevent the concave bottom 34 from generating heat locally, a desired quenching pattern is obtained, the strength of the hub wheel 32 is improved, and sufficient durability is obtained even when a repeated bending moment load is applied. Can be secured.
- the clearance A between the outlet jig 36 and the concave bottom 34 of the hub wheel 32 is set to 5 mm or less as shown in FIG.
- the clearance A indicates a geometrical clearance, but is not limited thereto.
- the outlet jig 36 is inserted between the partial flanges 6a and 6a via an insulator such as ceramics. May be. That is, a magnetic clearance may be provided between the partial flanges 6a and 6a and the outlet jig 36. Thereby, the magnetic flux of the high frequency coil 35 can be surely released to the outlet jig 36.
- the hardened layer 33 in the small-diameter step portion 4b is stopped in the vicinity of the outer edge of the annular groove 37 formed on the outer periphery of the small-diameter step portion 4b before caulking.
- production of the crack by the plastic deformation of the hardened layer 33 can be prevented.
- the annular groove 37 is formed from the inner side inner diameter end of the inner ring 5 (not shown) beyond the large end surface, the depth is formed in the range of 0.5 to 1.0 mm, and predetermined at both ends. An arc surface having a radius of curvature is formed.
- the present invention can be applied to a wheel bearing device having a first to third generation structure provided with a hub wheel integrally having a wheel mounting flange.
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Abstract
[Problème] L'invention a pour objet de mettre en œuvre un dispositif de roulement pour une roue et un procédé de fabrication de celui-ci, à des fins de réduction des coûts par la minimalisation de l'écart de découpage, à des fins d'augmentation de la résistance au niveau des parties à grande capacité de charge, et à des fins de résolution des problèmes contradictoires visant à obtenir un poids plus léger et à obtenir une plus grande rigidité pour prolonger la durée de vie du roulement.
[Solution] L'invention concerne une roue à moyeu (4) formée par une étape de forgeage à chaud et une étape de forgeage à froid qui est partiellement exécutée après l'étape de forgeage à chaud de sorte qu'il y a une différence de dureté prédéterminée ou supérieure en ce qui concerne la dureté de surface. Un flasque de fixation de roue (6) est configuré à partir d'une pluralité de flasques partiels (6a), qui sont divisés dans la direction circonférentielle. Une partie pilote (12) comporte des découpes en de multiples positions dans la direction circonférentielle de celle-ci et est façonnée en une forme de saillies intermittentes par forgeage à chaud. Cette partie pilote (12) est disposée entre les flasques partiels (6a), et la partie de base du flasque de fixation de roue (6) est formée pour être plus épaisse par rapport aux parties d'extrémité avant de celui-ci au cours de l'étape de forgeage à chaud, puis amincie par l'étape de forgeage à froid de sorte que l'épaisseur est sensiblement uniforme.
Applications Claiming Priority (4)
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JP2011062967A JP2012197043A (ja) | 2011-03-22 | 2011-03-22 | 車輪用軸受装置およびその製造方法 |
JP2011-062967 | 2011-03-22 | ||
JP2011121462A JP2012245946A (ja) | 2011-05-31 | 2011-05-31 | 車輪用軸受装置およびその製造方法 |
JP2011-121462 | 2011-05-31 |
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WO2012128278A1 true WO2012128278A1 (fr) | 2012-09-27 |
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PCT/JP2012/057139 WO2012128278A1 (fr) | 2011-03-22 | 2012-03-21 | Dispositif de roulement pour roue et procédé de fabrication de celui-ci |
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CN112303127A (zh) * | 2019-08-01 | 2021-02-02 | 斯凯孚公司 | 用于车轮轮毂轴承的带凸缘的内圈 |
CN115229433A (zh) * | 2022-06-16 | 2022-10-25 | 长沙天和钻具机械有限公司 | 一种同心跟管钻具扩孔套组件的加工工艺 |
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