Planetary wheel drive using bushings
10697520 ยท 2020-06-30
Assignee
Inventors
- Scott Martin (Battle Ground, IN, US)
- Yichen Li (West Lafayette, IN, US)
- Shuo Zhang (West Lafayette, IN, US)
Cpc classification
F16C17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2361/61
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/046
PERFORMING OPERATIONS; TRANSPORTING
F16H57/0486
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2208/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K2007/0092
PERFORMING OPERATIONS; TRANSPORTING
F16C33/1095
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2057/085
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H1/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/04
PERFORMING OPERATIONS; TRANSPORTING
F16C33/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H57/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A planetary wheel drive uses: main bushings affixed to a rotatable housing between a stationary spindle permitting the rotatable output housing to rotate with respect to the stationary spindle, and, planet bushings affixed to rotatable planet gear between a planet pin permitting the planet gear to rotate with respect to the planet pin. The main bushings have two sides, a first side which is press fit into the rotatable output housing and a second side which includes a sliding layer which mates with a surface of the stationary housing.
Claims
1. A planetary wheel drive, comprising: a stationary spindle and a rotatable output housing; a first main bushing interposed between said stationary spindle and said rotatable output housing; a second main bushing interposed between said stationary spindle and said rotatable output housing: wherein said first main bushing includes a first flange and wherein said second main bushing includes a second flange; an output planet carrier having a locking lug extending outward from at least a portion thereof; and wherein at least a portion of said locking lug of said output planet carrier is received within at least a portion of one or more notches in a bearing nut that is threadingly connected to at least a portion of said stationary spindle.
2. The planetary wheel drive of claim 1, wherein said first main bushing includes a first side made of steel; wherein said first main bushing includes a second side made of a steel backing and a sliding layer of PTFE, Polytetrafluoroethylene; wherein said second main bushing includes a first side made of steel; and wherein said second main bushing includes a second side made of a steel backing and a sliding layer of PTFE, Polytetrafluoroethylene.
3. The planetary wheel drive of claim 2, wherein said first main bushing and said second main bushing are press-fit onto said rotatable output housing.
4. The planetary wheel drive of claim 1, wherein said stationary spindle includes an exterior surface; wherein said stationary spindle includes an exterior shoulder in said exterior surface; wherein said rotatable output housing includes an internal surface; wherein said internal surface of said rotatable output housing includes a first shoulder and a second shoulder; wherein said first flange of said first main bushing affixed to said rotatable output housing and abuts said first shoulder of said internal surface of said rotatable output housing; wherein said first flange of said first main bushing affixed to said rotatable output housing abuts said exterior shoulder of said spindle; wherein said second flange of said second main bushing affixed to said rotatable output housing and abuts said second shoulder of said internal surface of said rotatable output housing; and wherein said bearing nut secures said stationary spindle and said rotatable output housing against axial separation.
5. The planetary wheel drive of claim 4, wherein said first main bushing and said second main bushing are press-fit onto said rotatable output housing.
6. The planetary wheel drive of claim 1, wherein said first main bushing and said second main bushing are press-fit onto said rotatable output housing.
7. The planetary wheel drive of claim 1, wherein said first main bushing includes a second side made of a steel backing and a first sliding layer of PTFE, Polytetrafluoroethylene; wherein said second main bushing includes a second side made of a steel backing and a second sliding layer of PTFE, Polytetrafluoroethylene; and wherein said first sliding layer and said second sliding layer slidingly engage said stationary spindle.
8. The planetary wheel drive of claim 1, further comprising a securing washer; and wherein at least a portion of said securing washer is interposed between said second flange of said second main bushing and said bearing nut.
9. The planetary wheel drive of claim 8, wherein at least a portion of said securing washer is disposed within at least a portion of said one or more notches in said bearing nut.
10. A planetary wheel drive, comprising: a stationary spindle, wherein said stationary spindle includes an exterior surface; wherein said stationary spindle includes an exterior shoulder in said exterior surface; a rotatable housing, wherein said rotatable housing includes an internal surface; wherein said internal surface of said rotatable housing includes a first shoulder and a second shoulder; wherein a first main bushing includes a first flange affixed to said rotatable housing, wherein said first flange of said first main bushing affixed to said rotatable housing and abuts said first shoulder of said internal surface of said rotatable housing; wherein said first flange of said first main bushing affixed to said rotatable housing abuts said exterior shoulder of said exterior surface of said stationary spindle; wherein a second main bushing includes a second flange press-fit to said rotatable housing, wherein said second flange of said second main bushing affixed to said rotatable housing and abuts said first shoulder of said internal surface of said rotatable housing; wherein said second flange of said second main bushing press-fit to said rotatable housing and abuts said second shoulder of said internal surface of said rotatable housing; a bearing nut for securing said stationary spindle and said rotatable housing against axial separation a securing washer; wherein at least a portion of said securing washer is interposed between said second main bushing and said bearing nut; an output planet carrier having a locking lug extending outward from at least a portion thereof; and wherein at least a portion of said locking lug of said output planet carrier is received within at least a portion of one or more notches in said bearing nut that is threadingly connected to at least a portion of said stationary spindle.
11. The planetary wheel drive of claim 10, wherein said first main bushing includes a first side made of steel; wherein said first main bushing includes a second side made of a steel backing and a first sliding layer; wherein said second main bushing includes a first side made of steel; and wherein said second main bushing includes a second side made of a steel backing and a second sliding layer.
12. The planetary wheel drive of claim 11, wherein said first and second sliding layers are impregnated with a lubricating agent.
13. The planetary wheel drive of claim 10, wherein at least a portion of said securing washer is interposed between said second flange of said second main bushing and said bearing nut.
14. The planetary wheel drive of claim 10, wherein at least a portion of said securing washer is disposed within the one or more notches in said bearing nut that is threadingly connected to at least the portion of said stationary spindle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE INVENTION
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(33) Still referring to
(34) Still referring to
(35) Still referring to
(36)
(37) Bearing nut 101E includes internal threads 181 which mate with external threads 115A of the spindle 101A. Bearing nut 101E further includes a notch 183N into which a locking lug 186 of the output planet carrier 104A resides. Reference is made to
(38) Referring to
(39) The output stage includes a single wall output planet carrier 104A fixed against rotation by stationary spindle 101A. The single wall output planet carrier 104A includes an internal spline 182. The stationary spindle 101A includes an external spline 183. The internal spline 182 of the single wall output planet carrier 104A slidingly mates with said external spline 183 of the stationary spindle securing the single wall output planet carrier 104A against rotation but permitting axial movement between the output planet carrier and said stationary spindle.
(40) The single wall output planet carrier 104A includes a locking lug 186. The stationary spindle includes exterior threads 115A extending circumferentially therearound. Internal threads 181 of the bearing nut mate with the exterior threads extending circumferentially around the stationary spindle securing the internal threads of the bearing nut thus securing the bearing nut to the spindle. See
(41) The output stage includes an output planet pin 104E. The single wall output planet pin 104E includes a hole therein to receive the output planet pin therein. The hole of the output planet carrier 104A interrupts the internal spline of the output planet carrier creating a discontinuity of the internal spline.
(42) The output planet pin 104E includes a flanged head which is unnumbered in
(43) Reference is made to
(44) As used herein, an interrupted output planetary carrier means that the internal spline of the carrier is discontinuous as holes for the planet pin are cut therein. See
(45) Referring to
(46) In
(47) Still referring to
(48) The planetary wheel drive of all the examples, to wit, the first example
(49) The bolt 304D threadedly interconnects with the threaded bore of the output planet pin 304E interconnecting the output planet thrust plate 304B to the output planet pin 304E securing the output planet pin to the single wall output planet carrier 304A adding single wall output planet carrier strength and stiffness to the single wall output planet carrier 304A.
(50) The output planet thrust plate 104B, 204B, 304B interengages the input stage limiting axial movement of the single wall output planet carrier 104A, 204A, 304A with respect to the stationary spindle 301A and preventing axial retraction of the locking lug of the single wall output planet carrier from the notch of the bearing nut.
(51) The thrust plate 304B is not an integral part of the single walled output planet carrier as it is for a normal double wall carrier. Thrust plate 304B functions as a stiffener for the planet pins to reduce deflection but makes manufacturing considerably easier on the single walled output planet carrier.
(52) See
(53) Referring to
(54) Referring to
(55) Referring to
(56) The single wall output carrier offers high performance with low cost by having carrier strength and stiffness required to perform. Locking lugs keep the bearing nut retention from backing off and allow for easy disassembly of the planetary wheel drive for service. The output carrier thrust plate adds stiffness to the assembly under load and acts as a thrust plate. Additionally, the single wall carrier design allows for short overall length.
(57) Referring to
(58) Couplings 109, 209 receive input power from a prime mover which is not illustrated. Coupling 109, 209 includes an internal spline which mates with the prime mover and transfers the rotational input into rotation of the input shaft 107, 207 through an interconnection with the coupling 109, 209.
(59) Once the output thrust plate 104B is bolted to the planet pins 104D that are pressed into the single walled output planet carrier 104A, the thrust plate 104B rotates with the single walled output planet carrier. The output thrust plate 104B provides stiffness for the output planet pins to minimize deflections under load. It also functions as a thrust surface for the bushing 133C inside the planet gear, whereas normally, the planet gear would thrust against a separate thrust washer that would be locked into the carrier to prevent rotation, using a tang or button that fits into a slot in the carrier. These are not required with the instant invention.
(60) Referring to
(61) Referring to
(62) Planet gears in planetary speed reducers require the use of some bearing to ensure the effective life of the system. Planetary wheel drives typically utilize full compliment needle roller bearings, tapered roller bearings, or cylindrical roller bearings eliminate metal to metal contact of the planet gear bore and the planet shaft. Roller bearings use rolling elements to eliminate surface damage and provide efficiency while in operation and transferring power.
(63) Referring to
(64) Referring to
(65) Because the bushing 203C is pressed into the input planet gear 203F and rotates with the gear, the surface finish in the bore of the gear 203F does not need to be ground but can be turned to size and finish. This reduces an operation for the planet gear reducing cost. The tolerance is not as exacting as it would be for a roller bearing so the tolerance and required surface finish do not need to be as good. Because the OD to ID cross section is small, it does provide some benefit to reducing the cross-section required to house the bushing versus a roller bearing. Roller bearings reduce the amount of backing on the gear teeth of the planet gear making for a weaker part. In other words, the roller bearings take up more radial space reducing the volume of metal in the gear itself. Bushings allow the use of stronger planet gears in less space. Bushings also tend to require less lubrication than a roller bearing would to function properly.
(66) In regard to the first example, to wit,
(67) The first portion of the input planet pin 203E is preferably press fit into a respective bore of the input planet carrier 203A. Other methods of affixation may be used. The input planet gear 203F includes a bore. The bore of the input planet gear 203F is turned to size and finished but not ground.
(68) An input planet bushing 203C includes a flange. The flange of the input planet bushing separates the input planet gear 203F from the input planet carrier 203A.
(69) The input planet bushing includes a cylindrical portion and a flanged portion. The input planet bushing includes a first side and a second side and the first side is made of steel. The input planet bushing 203C includes a second side made of a steel backing and a first sliding layer. The first side of the input planet bushing 203C, the metal side, is affixed to the bore of the input planet gear by press-fitting same within the bore of the input planet gear 203F.
(70) The second side of the input planet bushing, the first sliding layer, is rotatable about the input planet pin. The rotatable housing 201G includes an internal ring gear 214A and the input planet gear 203F meshes with the internal ring gear 214A of the rotatable housing. The input planet carrier 203A includes an internal spline (unnumbered) which drives the sun gear 208 of the output planet stage. See
(71) The first sliding layer of the input planet bushing 203C is impregnated with a lubricating agent which may be PTFE.
(72) Still referring to
(73) Reference is made to
(74) Referring to
(75) Each of the first and second output planet bushings includes a first side and a second side. Each of the output planet bushings includes a first side made of steel and a second side made of a steel backing and a first sliding layer.
(76) Each of the first sides of the output planet bushings 283C, 233C is affixed to a bore of the output planet gear. Each of the second sides of the output planet bushings 283C, 233C is rotatable about the output planet pin 204E. The output planet gear 204F meshes with the internal ring gear of the rotatable housing 201G. Each of the first sides of the output planet bushings is preferably press fit into the bore of the output planet gear. However, other methods of affixation may be used.
(77) Each of the first sliding layers of the output planet bushings are impregnated with a lubricating agent which may be PTFE.
(78) Referring to
(79) Referring to
(80) The first main bushing 201D includes a first side 275 made of steel. The first main bushing includes a second side 276 made of a steel backing and a sliding layer of PTFE, Polytetrafluoroethylene. The second main bushing 211D includes a first side 277 made of steel and the second main bushing 211D includes a second side made 278 of a steel backing and a sliding layer of PTFE, Polytetrafluoroethylene.
(81) The stationary spindle 201A includes an exterior surface and an exterior shoulder 270 in the exterior surface. The rotatable housing includes an internal surface and the internal surface of the rotatable housing includes a first shoulder 273 and a second shoulder 274. See
(82) The first flange 271 of the first main bushing 201D is affixed to the rotatable housing abuts the first shoulder 273 of the internal surface of the rotatable housing 201G. The first flange of the first main bushing is affixed to the rotatable housing and abuts the exterior shoulder 270 of the spindle 201A. The second flange 272 of the second main bushing 211D is affixed to the rotatable housing 201G abuts the second shoulder 274 of the internal surface of the rotatable housing 201G. A retaining nut 201E for securing the stationary spindle 201A and the rotatable housing 201G against axial separation.
(83) The first main bushing 201D and the second main bushing 211D are preferably press-fit onto the rotatable housing 201G. Other methods of affixation are specifically contemplated.
(84) The first main bushing 201D includes a second side 276 made of a steel backing and a first sliding layer of PTFE, Polytetrafluoroethylene. The second main bushing 211D includes a second side 278 made of a steel backing and a second sliding layer of PTFE, Polytetrafluoroethylene. The first sliding layer and the second sliding layer slidingly engage the stationary spindle.
(85) Referring to
(86) The housing includes an internal ring gear 314A, an input stage proximate the brake and residing within the spindle 301A, an intermediate stage proximate the cover 306A and an output stage.
(87)
(88) Referring to
(89) The input planet carrier 390, 370 is cantilevered and extends axially outside of the stationary spindle 301A. The input planet carrier drives the intermediate stage and the intermediate stage drives the output stage, and, the output stage includes an output carrier 304A and the output carrier is fixed to the stationary spindle.
(90) The cantilevered planet carrier includes an end portion 370 having an external spline thereon used to drive intermediate sun 312. The intermediate stage includes an intermediate sun gear 312, an intermediate planet gear 303F, an intermediate planet pin 303E and an intermediate planet carrier 303A. Intermediate sun gear 312 includes an internal spline mating with the external spline of the cantilevered planet carrier.
(91) Referring to
(92) The intermediate sun gear 312 in meshing engagement with the intermediate planet gear 303F. The intermediate planet carrier 303A is fixed to the intermediate planet pin 303E as illustrated in
(93) The external spline of the cantilevered planet carrier 370 drives the intermediate sun gear 312 The intermediate planet gear 303 is in meshing engagement with the internal ring gear 314A of the rotatable housing 301G. The output planet gear 304F is in meshing engagement with the internal ring gear 314A of the rotatable housing 301G. The input sun gear 381 and the input planet pin 380 of the input stage are located between the brake and the output stage.
(94) Referring to
(95)
(96) Still referring to
(97)
(98)
(99) The triple planetary wheel drive of
(100) By installing the high speed input carrier 390, 370 inside of the spindle diameter, the overall length of the planetary wheel drive is less than traditional three stage planetaries. This allows the use of the same internal ring gear 314A between double and triple planetary reductions.
(101) The triple planetary wheel drive that has the high speed input carrier 390, 370 and internal ring gear 388 within the spindle enable higher ratios in the same output ring gear 314A as a double planetary.
(102) The planetary wheel drives set forth in the first example,
(103) Referring to
(104) The thrust plate 203B, 303B is interposed between the high speed planet gear 203F, 303F and the high speed carrier thrust washer 210, 310. The high speed planet gear rotates about the high speed carrier planet pin. The high speed planet pin 203E, 303E affixed to said high speed planet carrier 203A, 303A. In the example set forth in
(105) When the high speed carrier thrust washer engages the thrust plate, axial thrust from the planet carrier is absorbed by the thrust washer and the cover. The planet gear 203F, the thrust plate 203B and said thrust washer rotate at different relative speeds while the thrust washer 210 is fixed to the cover.
(106) High speed carrier thrust is taken between planet gear 203F and cover 206A through thrust washer 210 and thrust plate 203B. Planet gear 203F, thrust plate 203B and thrust washer 210 all rotate at different relative speeds while thrust washer 210 is fixed to cover 206A. Thrust washer 210 is a slip fit on the cover 206A.
(107) Preferably, the thrust washer 210 is slip fit on the cover 206A and the thrust plate 203B rotates with the planet carrier 203A.
(108) Preferably, the thrust washer is a cylinder and has a rectangularly shaped in cross section wall. Other shapes and configurations of the thrust washer are specifically contemplated.
(109) The planetary wheel drives set forth in the first example,
(110)
(111) The stamped spring plate 101X includes a plurality of spring stabilizer connections 101Y and a corresponding plurality of coil springs 101R. Each one of the plurality of springs 101R is mechanically bonded to a respective one of the plurality of spring stabilizers 101Y. The brake piston 101L includes an unnumbered bore therethrough. The brake piston 101L is generally cylindrically shaped with an inner portion and an outer portion. The inner portion of the brake piston includes an inner shoulder 101Z therein. The brake piston resides in sliding engagement with the stationary spindle. Seals 101N, 101P prevent hydraulic fluid from escaping the chamber 198C. The plurality of coil springs 101R reside between the spring stabilizers 101Y and the inner shoulder 101Z of the brake piston 101L.
(112) The pressure plate 101S and the retainer 101T in the stationary spindle support and retain the plurality of springs between the stamped plate 101X and the brake piston 101L and within the stationary spindle 101A.
(113) The brake arrangement further includes a rotatable drive coupling 109, a brake friction pack 101J, 101K, a friction pack thrust plate 120 secured in the stationary spindle 101A. The brake friction pack includes rotors 101K affixed to the rotatable drive coupling 109 and a stator 101j affixed to the stationary spindle.
(114) The first end of the brake piston engages the stators 101J and forcibly compresses the stators into engagement with the rotors 101K and against the friction pack thrust plate 120 secured in the stationary spindle 101A.
(115) The stationary spindle 101A includes a passageway 198 therein and the shoulder 101Z of the stationary spindle and the brake piston form a piston chamber 198C. The piston chamber is in fluidic communication with the passageway in the stationary spindle. Hydraulic fluid resides in the piston chamber and in the passageway in the stationary spindle. The brake friction pack is not in compression when the hydraulic fluid is pressurized and the coupling 109 is free to rotate. The brake friction pack is in compression when the hydraulic fluid is not pressurized and the coupling 109 is fixed to the stationary spindle. The mechanical bonding of the springs to the spring stabilizers is a process that wedges or swells the last coil of the spring over the spring stabilizers.
(116) Typical spring applied hydraulically released brakes incorporate the use of individual springs located in spring pockets. The invention incorporates a brake piston 101L with a turned spring pocket diameter for the spring pack 101R. The spring pack is comprised of coil springs 101R that are mechanically bonded to the stamped single plate. Spring pack 101R reacts between the pressure plate 101S and the brake piston 101L to compress the brake friction pack 101J and 101K into the thrust plate 120. The brake is released by hydraulic pressure that seals on the outer diameter of the brake piston 101L and is sealed by quad ring sealing elements 101N and 101P.
(117) The planetary wheel drive further includes disconnect structure in the form of a disconnect pin 105A, 205A, 305A, spring 105B, 205B, 305B, thrust spacer 105C, 205C, 305C, a disengage cap 106B, 206B, 306B, disengage rod 106D, 206D, 306D, o-rings 106E, 206E, 306E, 106K, 206K, 306K and thrust washer 106H, 106J, 206H, 206J are not described herein in detail.
(118) These and other reference numerals are included in this specification and their structure and function are discernible and understandable from the reference numerals listed hereinafter without further discussion of them.
(119) TABLE-US-00001 REFERENCE NUMERALS 100 end view of a first example of a planetary wheel drive shown in FIG. 1J 100A another end view of a first example of a planetary wheel drive shown in FIG. 1J 100B cross-sectional view of a first example of a planetary wheel drive taken along the lines 1B-1B of FIG. 1 100C cross-sectional view of a first example of a planetary wheel drive taken along the lines 1C- 1C of FIG. 1A 100D enlargement of a portion of FIG. 1B illustrating the brake arrangement 100E perspective view of the stamped brake plate and pressure plate 100F end view of the stamped brake plate, pressure plate and coil springs mechanically bonded to the stamped brake plate 100G side view of the stamped brake plate, pressure plate and coil springs 100H perspective view of the brake piston 100I enlargement of a portion of FIG. 1C illustrating the brake arrangement 100J perspective view of the first example of a planetary wheel drive 101A, 201A, 301A spindle, Steel (Thru Hardened) 101B, 201B, 301B lip seal 101D, 301D bearings 101E, 201E, 301E bearing nut 101G, 201G, 301G housing, Steel (Thru Hardened) 101J, 201J, 301J brake stator 101K, 201K, 301K brake rotor 101M, 201M, 301M stud 101N, 101P, 201N, seal, quad 201P, 301N, 301P 101L, 201L, 301L brake piston 101R, 201R, 301R spring 101S, 201S, 301S pressure plate 101T, 103D, 104D, retaining ring 105D, 106G, 122 201T, 203D, 204D, retaining ring 205D, 206G, 222 301T, 303D, 304D, retaining ring 305D, 306G, 322 101X, 201X, 301X stamped spring plate 101Y, 201Y, 301Y spring stabilizer 101Z, 201Z, 301Z spring wall of the brake piston 101L 103A, 203A, 303A carrier, Steel (Thru Hardened) 103B, 203B, 303B thrust plate 103C, 203C, 303C bushing 103E, 203E, 303E planet shaft/pin, Steel (Carburized) 103F, 203F, 303F planet gear, Steel (Carburized) 104A, 204A, 304A fixed output carrier, Steel (Thru Hardened) 104B, 204B, 304B retention plate 104D, 204D, 304D bolt, hex-unc 104E, 204E, 304E planet shaft, Steel (Carburized) 104F, 204F, 304F planet gear, Steel (Carburized) 104J, 204J, 304J washer 104K, 204K, 304K threaded interconnection of bolts 104D, 204D and 304D 105A, 205A, 305A disconnect/disengage pin 105B, 205B, 305B spring 105C, 205C, 305C thrust spacer 106A, 206A, 306A plate cover, Ductile Iron, Die Cast Aluminum 106B, 206B, 306B disengage cap 106C, 206C, 306C bolt, met-hex 106D, 206D, 306D disengage rod 106E, 206E, 306E o-ring 106H, 106J, 110, thrust washer 206H, 206J, 210, 306H, 306J, 310 106K, 206K, 306K o-ring 107, 207, 307 input shaft, Steel (Carburized) 108, 208, 308 sun gear, Steel (Carburized) 109, 209, 309 coupling 110, 210, 310 washer, thrust 111, 211, 311 pipe plug, o-ring 112, 212, 381 input sun gear 114A, 214A, 314A internal ring gear 115A, 215A, 315A external threads on stationary spindle 118, 218, 318 plate 119, 219, 319 rivet 120, 220, 320 friction pack thrust plate 130, 230, 330 plug, plastic 131, 231, 331 pressure plug 133, 233, 333 o-ring 133C, 183C bushing 140A, 240A, 340A internal spline 181 internal threads of bearing nut 101E 182 internal spline of fixed output carrier 183 external spine of stationary spindle 183N notches in threaded bearing nut 201E which receive a locking finger 186 198 passageway 198C chamber 199 first example of planetary wheel drive 200 end view of second example 200A cross-sectional view of second example taken along the lines 2A-2A of FIG. 2 200B enlargement of a portion of FIG. 2A illustrating the main bearings between the output housing and the spindle 200C enlarged portion of FIG. 2A illustrating the planet gears of the input stage and the output stage and planet bearings between the planet gears and respective planet pins 200D perspective view of the fixed output carrier 200E cross-sectional view of the rotatable output housing 201C washer 201D first main bushing between spindle 201A and housing 201G 211D second main bushing between spindle 201A and housing 201G 283C, 233C bushing 270 shoulder on the exterior of the spindle 201A 271 flange of first main bushing 201D 272 flange of second main bushing 211D 273, 274 shoulder of inner portion of housing 201G 275 first side (steel) of bushing 201D 276 second side (PTFE) of bushing 201D 277 first side (steel) of bushing 211D 278 second side (PTFE) of bushing 211D 280 washer with tab 201C 281 internal threads of bearing 201E 282 internal spline of fixed output carrier 204A 282A external spline of stationary spindle 283N notches in threaded bearing nut 201E which receive a locking finger 286 284 opening in fixed output carrier 204E for receiving planet pin (s) 204E 285 opening in output carrier 204A for coupling 209 286, 186 locking finger/locking lug 287 passageway for lubricating oil 299 second example of planetary wheel drive 300 end view of third example of the planetary wheel drive 300A cross-sectional view of the third example of the planetary wheel drive taken along the lines 3A- 3A of FIG. 3 300B enlarged portion of FIG. 3A illustrating the input sun, input planet gear, input planet pin and input planet carrier. 300C enlarged portion of FIG. 3A illustrating the intermediate planet gear 303F 300D enlarged portion of FIG. 3A illustrating the input sun gear, the output planet gear 304A, and the output ring gear 314A 300E enlarged portion of FIG. 3A illustrating the input carrier 370 and the input pin 300F enlarged portion of FIG. 3B illustrating the pin 304E 300G perspective view of the stationary spindle illustrating the external spline for mating with the internal threads of the output planet carrier and the external threads for mating with the internal threads of the bearing nut 303C bushing 340A internal spline of intermediate carrier 203A 360 flange 361 flange 360A first side of bushing 383C 360B second side of bushing 383C 361A first side of bushing 333C 3618 second side of bushing 333C 370 input carrier 371 thrust plate 372 retaining ring for thrust plate 371 373 thrust washer 380 input planet pin of third example 381 input sun gear of third example with internal spline 386 fixed to gear/spline 384 of shaft 307 382 generally cylindrical sleeve driven by prime mover (not shown) 383 internal spline of generally cylindrical sleeve 382 of third example 383C bushing 384 external spline of shaft 307 which mates with internal spline 383 of sleeve 382 386 internal spline of input sun 381 387 input planet gear 388 internal ring gear of spindle 301 389 flanged planet bushing 390 cantilevered input carrier 391 first cylindrical surface of pin 380 391F flange of input planet pin 380 392 second cylindrical surface of pin 380 393 first cylindrical surface of pin 303E 394 second cylindrical surface of pin 303E 395 first cylindrical surface of pin 304E 396 second cylindrical surface of pin 304E 396F flange of output planet pin 304E 397 flange on bushing 303C 398 first side of bushing 303C 398A second side (PTFE) of bushing 303C 399 third example of planetary wheel drive