Suspension system
10618593 ยท 2020-04-14
Assignee
Inventors
Cpc classification
B62K2025/044
PERFORMING OPERATIONS; TRANSPORTING
B60G2202/30
PERFORMING OPERATIONS; TRANSPORTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G15/061
PERFORMING OPERATIONS; TRANSPORTING
F16F9/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/44
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/49
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system/assembly for a suspension fork for a bicycle is disclosed. The fork may comprise a compression system and an adjustment mechanism configured for adjustment of compression damping and adjustment of travel. Adjustment of travel reduces compression stroke distance within the full length of travel. The adjustment mechanism may be configured for at least two settings for compression damping and at least two settings for adjustment of travel. Settings for compression damping may comprise a setting with adjustment of compression damping but no adjustment of travel and a setting with adjustment of compression damping and adjustment of travel. Settings for adjustment of travel may comprise a travel-adjust setting where the stroke distance is reduced and a setting where the stroke distance may be the full length of travel. The adjustment mechanism may provide for performance adjustment at an adjuster. The fork may comprise a rebound system with an adjuster.
Claims
1. A suspension system for use in a vehicle comprising: (a) a damper assembly having an available length of travel configured to operate with a stroke providing a path with a length of travel between a zero point of travel and an end point of travel; and (b) an adjustment system within the damper assembly configured to provide (1) at least two settings for compression damping for the damper assembly and (2) at least two settings for adjustment of travel from the zero point of travel for the damper assembly; wherein the at least two settings for compression damping within the damper assembly comprise (1) a first damping setting at which there is adjustment of compression damping but not adjustment of travel and (2) a second damping setting at which there is adjustment of compression damping and adjustment of travel; wherein the at least two settings for adjustment of travel within the available length of travel comprise (1) a first travel setting to provide a travel-adjust point of travel on the path of the stroke between the zero point of travel and the end point of travel to define a shortened path from the travel-adjust point of travel to the end point of travel so that the length of travel of the stroke in the shortened path from the travel-adjust point of travel is greater than zero but reduced to a portion of the available length of travel to the end point of travel; and (2) a second travel setting where the path of the stroke is between the zero point of travel and the end point of travel so that the length of travel of the stroke may comprise a full length of available travel between the zero point of travel and the end point of travel.
2. The suspension system of claim 1 wherein at the second travel setting of the adjustment system the path of the stroke is configured to provide a loop between the zero point of travel and the end point of travel wherein the length of travel is not reduced; and wherein at the first setting of the adjustment system the shortened path of the stroke is configured to provide a shortened loop wherein the length of travel is reduced.
3. The suspension system of claim 1 wherein the adjustment system comprises a knob; and wherein the knob is externally adjustable.
4. The suspension system of claim 1 wherein the damper assembly comprises a compression assembly; wherein the compression assembly comprises an adjuster knob providing for externally accessible adjustment of the compression assembly.
5. The suspension system of claim 4 wherein the compression assembly comprises a compression needle and wherein rotation of the compression adjuster knob provides axial translation of the compression needle.
6. The suspension system of claim 1 wherein the damper assembly comprises a compression assembly and a rebound assembly; wherein the adjustment system comprises an adjustment mechanism for the compression assembly and an adjustment mechanism for the rebound assembly.
7. The suspension system of claim 1 further comprising an internal floating piston assembly comprising a flow control element; wherein the internal floating piston assembly is configured to obstruct fluid flow at the flow control element.
8. The suspension system of claim 7 wherein the damper assembly comprises a first fluid flow orifice; wherein the length of travel comprises a stroke to absorb impact in compression; wherein at the first travel setting the internal floating piston assembly blocks fluid flow through the first fluid flow orifice to reduce the stroke.
9. The suspension system of claim 1 wherein the adjustment system is configured to provide a third damping setting for compression damping; wherein the relative degree of restriction of fluid flow is greater in the first damping setting than in the second damping setting and greater in the second damping setting than in the third damping setting.
10. A damper assembly configured to contain a hydraulic fluid for fluid flow in a flow path and to operate within an available length of travel between a zero point of travel and an end point of travel to define a full length of travel comprising: (a) a compression assembly comprising a piston assembly; (b) an adjuster provided at the compression assembly and configured to adjust settings within the compression assembly; wherein settings for the compression assembly by the adjuster at the compression assembly can be configured at the adjuster (1) to modify compression damping characteristics and (2) to provide an adjust point of travel between the zero point of travel and the end point of travel to reduce travel to a portion of the available length of travel on a shortened path between the adjust point of travel and the end point of travel; wherein the portion of the available length of travel on the shortened path between the adjust point of travel and the end point of travel is greater than zero.
11. The damper assembly of claim 10 wherein when the adjuster is set to provide the adjust point of travel an internal floating piston on the compression shaft is positioned to restrict flow of fluid through a first orifice and a compression needle is positioned to restrict flow through a second orifice.
12. The damper assembly of claim 10 wherein the compression assembly is configured to operate at settings for performance adjustment of relative compression response comprising: (1) a first travel-adjust setting; (2) a second travel-adjust setting; (3) a neutral setting; and (4) a descend setting.
13. The damper assembly of claim 10 wherein restriction of fluid flow is greater in a travel-adjust setting than in a neutral setting and greater in the neutral setting than in a descend setting; wherein at the travel-adjust setting a length of a path of travel of an internal floating piston is reduced.
14. A front suspension fork for a bicycle comprising: a compression system comprising a damper assembly having a compression stroke distance no greater than a full length of available travel; and an adjustment mechanism for the damper assembly of the compression system configured for (1) adjustment of compression damping and (2) for adjustment of travel; wherein the adjustment mechanism is contained within the damper assembly; wherein adjustment of travel reduces the compression stroke distance between a zero point of travel and an end point of travel within the full length of available travel; wherein the adjustment mechanism is configured to provide (1) at least two settings for compression damping for the compression system and (2) at least two settings for adjustment of travel for the compression system; wherein the at least two settings for compression damping comprise (1) a first damping setting with adjustment of compression damping but no adjustment of travel and (2) a second damping setting with adjustment of compression damping and adjustment of travel; wherein the at least two settings for adjustment of travel comprise (1) a first travel setting to provide a travel-adjust point of travel on the path of the stroke between the zero point of travel and the end point of travel to define a shortened path from the travel-adjust point of travel to the end point of travel so that the length of travel of the stroke in the shortened path from the travel-adjust point of travel is greater than zero but reduced to a portion of the full length of available travel to the end point of travel; and (2) a second travel setting where the path of the stroke is between the zero point of travel and the end point of travel so that the length of travel of the stroke may comprise the full length of available travel between the zero point of travel and the end point of travel.
15. The fork of claim 14 wherein the compression system is configured for performance adjustment; wherein performance adjustment comprises at least three distinct settings for adjustment of travel and relative compression response: (1) a travel-adjust setting with a first damping setting and (2) a neutral setting with a second damping setting with quicker compression than the first damping setting and (3) a descend setting with a third damping setting with quicker compression than the second damping setting.
16. The fork of claim 14 wherein the adjustment mechanism comprises an adjuster; wherein when the adjuster is set for adjustment of travel an internal floating piston on a compression shaft is positioned to restrict flow of fluid through a first orifice and a compression needle is positioned to restrict flow through a second orifice.
17. The fork of claim 16 wherein rotation of the adjuster results in axial translation of a compression needle; wherein a relative degree of fluid restriction at the compression needle is greater in the first damping setting than in the second damping setting and greater in the second damping setting than in the third damping setting.
18. The fork of claim 14 wherein the adjustment mechanism comprises an externally accessible compression adjuster knob.
19. The fork of claim 14 wherein the adjustment mechanism is configured so that a rider of the bicycle can tune performance of the compression system.
20. The fork of claim 19 wherein the adjustment mechanism is configured for operation by a remote actuator.
Description
FIGURES
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DESCRIPTION
(57) Referring to
(58) Referring to
(59) According to an exemplary embodiment, the front suspension fork comprises a damper assembly/system with a compression assembly (see e.g.
(60) The compression assembly operates to absorb impact in compression (compressing/shortening the fork length); the rebound assembly dampens the return after impact (as the fork extends towards its full length).
(61) According to an exemplary embodiment shown schematically in the FIGURES: the compression assembly or system operates at three distinct settings for performance adjustment of relative compression response (responsiveness under compressive force/load) for the system: (1) a travel-adjust mechanism/setting (t) for the system and (2) a neutral setting (n) and (3) a descend setting (d), and the rebound assembly or system operates within a variable range of settings for performance adjustments for relative speed of rebound response (restoration of stroke length) for the system between: (1) a quicker rebound setting (q) and (2) a slower rebound setting (s). (Where applicable, indication of a particular system setting may be provided with a FIGURE number in the specification showing the system at the particular setting; for example reference to
(62) The configuration of settings for the compression assembly and/or rebound assembly determine (e.g. by configuration/positioning of flow control elements/restrictions) the flow path/flow rate of contained fluid (e.g. hydraulic fluid) in the suspension fork and corresponding performance/response characteristics experienced through the system by the rider. See
Assembly/System
(63) The parts/components of the compression assembly/system are shown generally in
(64) The parts/components of the rebound assembly/system are shown generally in
Assembly/System Adjustment/Settings
(65) As shown in
(66) Rotation of the adjuster knob 146 rotates a compression adjuster 212 through a keyed interface which rotates the compression needle 162 through a keyed interface and axially translates compression needle 162 within a compression shaft 164; translation is driven through a ball 206 (or balls) engaged within spiral grooves of compression needle 162 and corresponding pockets in the compression shaft 164. The compression needle 162 translates as the adjustment mechanism is rotated to a setting (e.g. each setting maintained by detents in the mechanism/knob).
(67) As shown in
(68) As further indicated schematically in
Travel-Adjust Setting (t)
(69) The system operation and response in the travel-adjust setting (t) according to an exemplary embodiment, are shown in
Neutral/Intermediate Setting (n)
(70) The system operation and response in the neutral/intermediate setting (n) according to an exemplary embodiment, are shown in
Descend Setting (d)
(71) The system operation and response in the descend setting (d) according to an exemplary embodiment, are shown in
(72) The compression system employs a set of shim stacks each comprising a set of shim springs (having the form of a flange or washer) secured to operate as a flow control element as shown in
(73) As indicated schematically in
(74) As shown schematically in
(75) As shown in
Operation/Performance of the System
(76) Referring to
(77)
(78)
(79) Operation of the flow control element of the assembly for compression is set by an externally-adjustable control mechanism as shown in
(80) As shown the knob is operated by hand (e.g. directly at the system/assembly). According to an alternative embodiment, the system could be configured so that knob could be operated by a remote actuator located on the handlebar (e.g. a conventional remote actuator of a type that is or can be used for bicycles or other such vehicles); operation of the remote actuator would rotate the knob to the desired setting.
(81) The effect of the setting of the adjustment mechanism on the corresponding flow control element and resultant flow is shown schematically in
(82) The flow control element comprises a compression piston 172 having a central passage and a first set of shims 166a and 168a at one end and a second set of shims 166b and 168b at the other end. Counter-flow into the annular sleeve passage 406 is through a passage 416 and a radial check valve orifice 418.
(83) At the travel-adjust (t) setting flow is restricted such that flow occurs substantially only from a lower passage 412 of the compression piston 172 through the second set of shims 166b and 168b. See
(84) At the neutral (n) setting flow is restricted such that flow occurs substantially only from an upper passage at compression piston 172 through the first set of shims 166a and 168a. See
(85) As indicated in
(86) At the descend (d) setting flow is restricted such that flow occurs substantially only through an orifice 420 in compression needle 102 and an orifice 422 in compression shaft 164 and from upper passage 414 of the compression piston through the first set of shims 166a and 168a. See
(87) The flow circuit of the assembly during rebound is shown schematically (in part) in
(88)
(89) Operation of the flow control element of the assembly for rebound is set by an externally-adjustable mechanism as shown schematically in
(90) At the quick flow (q) setting counter-flow is permitted at the flow control element into passage 436 in compression shaft and through passage 438 between rebound needle 234 and compression adjuster 212 and into passage 426. See
(91) At the slow flow (s) setting, counter-flow is restricted at the flow control element and blocked at passage 438 by rebound needle 234 and directed through passage 428 past shim 188 through orifice 430 in compression shaft into helical passage 432 through orifice 434 in compression needle 162 into passage 426. See
(92) Referring to
(93) Elements of the fluid flow circuit of the assembly including floating piston 200 are shown generally in
(94) In
(95) In
(96) As indicated, at the travel-adjust (t) setting the length of the path of travel of the internal floating piston 200 is reduced and therefore the rebound stroke of the fork is reduced. Compare
Air Vent/Spring Effect
(97) Referring to
(98) The assembly shown in
System Performance/Performance Curves
(99) The compression system assembly of the front suspension fork provides for externally-accessibly adjustment providing adjustment controls (e.g. knobs) at the top of the leg or casting/housing containing the compression assembly. The configuration of the externally-accessible adjustment mechanisms provides a rider of a bicycle with the front suspension fork with the ability to conveniently make adjustments to tune the performance of the compression assembly of the fork (e.g. before a ride or during a ride or after a ride in preparation for the next ride).
(100) As indicated, the adjustment of compression setting is independent of the adjustment of the rebound setting (changing one setting does not change the other setting).
(101) The compression system and the rebound system operate (as adjusted) together to define the flow characteristics of the damping system of the fork, as indicated in
(102)
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(105) The suspension fork may be configured to contain a hydraulic fluid providing for compression damping and for rebound damping. A damper assembly configured to contain a hydraulic fluid is disclosed. The assembly/system may comprise an externally-accessible adjustment mechanism and an internal floating piston. The compression assembly/system may comprise an adjustment mechanism (e.g with a travel-adjust setting) operating through flow control elements; the compression assembly can be adjusted to a travel-adjust setting (with a reduced stroke length) and either of a neutral setting or descend setting with progressively less resistance in the fluid flow circuit. The rebound assembly/system of the suspension fork may be adjusted in a range between a quick setting and a slow setting (corresponding to relative system response speed in rebound to restore stroke length) operating through flow control elements.
(106) The parts and components of the systems shown in the FIGURES are identified by reference numeral in TABLE A and TABLE B. (Reference numerals appearing in the FIGURES may include an indicator a and b in association with the reference numeral as identifying the part or component in the TABLES.) TABLE C provides a legend for settings/stages for operation of the system according to an exemplary embodiment. See e.g.
(107) TABLE-US-00001 TABLE A REFERENCE NUMERAL PART/COMPONENT B bicycle 100 fork assembly 102 crown steer assembly 104 air cap 106 top cap 108 seal 110 foam ring 112 upper bushing 114 lower bushing 116 air piston 118 compression rod assembly 120 casting 122 seal 124 fastener 126 axle assembly 128 seat 130 seal 132 cap 134 seal 136 retaining ring 138 torsion spring 140 cable stop 142 retaining ring 144 set screw 146 compression knob 148 o-ring 150 rebound knob 160 damper cartridge assembly 162 compression needle 164 compression shaft 166 shim 168 shim 170 o-ring 172 compression piston 174 spacer 176 piston adapter 178 o-ring 180 shim 182 spring 184 hydraulic bottom out cup 186 shim 188 shim 186a and 188a first shim stack 186b and 188b second shim stack 190 shim 192 rebound piston 194 o-ring 196 spring 198 o-ring 200 internal floating piston (IFP) 202 o-ring 204 piston ring 206 ball 208 top cap 210 tube 212 compression adjuster 214 set screw 216 hydraulic bottom out piston 218 shaft 220 ring 222 end cap 224 o-ring 226 casting adapter 228 tube 230 outer tube 232 retaining ring 234 rebound needle 236 screw 238 o-ring
(108) TABLE-US-00002 TABLE B REFERENCE NUMERAL CHAMBER/PASSAGE IN PART/COMPONENT 400 upper chamber related parts/elements: hydraulic bottom out piston (216) tube (228) hydraulic bottom out cup (184) piston adapter (176) 402 lower chamber related parts/elements: hydraulic bottom out piston (216) shaft (218) end cap (222) tube (228) 404 IFP chamber related parts/elements: internal floating piston (IFP) (200) compression shaft (164) tube (228) compression piston (172) piston adapter (176) shim (180) 406 lower sleeve passage related parts/elements: tube (228) outer tube (230) 408 orifice related parts/elements: end cap (222) 410 lower central passage related parts/elements: compression shaft (164) 412 lower compression piston passage related parts/elements: compression piston (172) 414 upper compression piston passage related parts/elements: compression piston (172) 416 passage related parts/elements: piston adapter (176) 418 radial check valve orifice related parts/elements: piston adapter (176) 420 lower compression needle orifice related parts/elements: compression needle (162) 422 lower compression shaft orifice related parts/elements: compression shaft (164) 424 upper sleeve passage related parts/elements: tube (210) outer tube (230) 424 upper sleeve passage related parts/elements: tube (210) outer tube (230) 426 upper central passage related parts/elements: compression needle (162) 428 passage related parts/elements: top cap (208) 430 orifice related parts/elements: compression shaft (164) 432 helical passage related parts/elements: compression needle (162) compression shaft (164) 434 orifice related parts/elements: compression needle (162) 436 passage related parts/elements: top cap (208) compression shaft (164) 438 rebound needle passage related parts/elements: rebound needle (234) compression adjuster (212) 440 upper compression needle orifice related parts/elements: compression needle (162) 442 upper compression shaft orifice related parts/elements: compression shaft (164) 450 IFP air chamber related parts/elements: compression shaft (164) tube (210) internal floating piston (IFP) (200) rebound piston (192) top cap (208) 452 axial passage related parts/elements: top cap (208) 454 radial passage related parts/elements: top cap (208) 456 external sleeve passage related parts/elements: outer tube (230) crown steer assembly (102) 458 casting chamber related parts/elements: casting (120) shaft (218) casting adapter (226)
(109) TABLE-US-00003 TABLE C Legend c compression r rebound q quick rebound setting s slow rebound setting t travel-adjust compression position setting n neutral/intermediate compression position setting d descend compression position setting x, y, z stages of a compression/rebound sequence
(110) It is important to note that the construction and arrangement of the elements of the inventions as described in this application and as shown in the figures is illustrative only. Although some embodiments of the present inventions have been described in detail in the present disclosure, those skilled in the art who review the present disclosure will readily appreciate that many modifications are possible without materially departing from the novel teachings and advantages of the subject matter recited. Accordingly, all such modifications are intended to be included within the scope of the present inventions. Other substitutions, modifications, changes and omissions may be made in the design, operating conditions and arrangement of the preferred and other exemplary embodiments without departing from the spirit of the present inventions.
(111) It is important to note that the present inventions (e.g. inventive concepts, etc.) have been described in the specification and/or illustrated in the FIGURES of the present patent document according to exemplary embodiments; the embodiments of the present inventions are presented by way of example only and are not intended as a limitation on the scope of the present inventions. The construction and/or arrangement of the elements of the inventive concepts embodied in the present inventions as described in the specification and/or illustrated in the FIGURES is illustrative only. Although exemplary embodiments of the present inventions have been described in detail in the present patent document, a person of ordinary skill in the art will readily appreciate that equivalents, modifications, variations, etc. of the subject matter of the exemplary embodiments and alternative embodiments are possible and contemplated as being within the scope of the present inventions; all such subject matter (e.g. modifications, variations, embodiments, combinations, equivalents, etc.) is intended to be included within the scope of the present inventions. It should also be noted that various/other modifications, variations, substitutions, equivalents, changes, omissions, etc. may be made in the configuration and/or arrangement of the exemplary embodiments (e.g. in concept, design, structure, apparatus, form, assembly, construction, means, function, system, process/method, steps, sequence of process/method steps, operation, operating conditions, performance, materials, composition, combination, etc.) without departing from the scope of the present inventions; all such subject matter (e.g. modifications, variations, embodiments, combinations, equivalents, etc.) is intended to be included within the scope of the present inventions. The scope of the present inventions is not intended to be limited to the subject matter (e.g. details, structure, functions, materials, acts, steps, sequence, system, result, etc.) described in the specification and/or illustrated in the FIGURES of the present patent document. It is contemplated that the claims of the present patent document will be construed properly to cover the complete scope of the subject matter of the present inventions (e.g. including any and all such modifications, variations, embodiments, combinations, equivalents, etc.); it is to be understood that the terminology used in the present patent document is for the purpose of providing a description of the subject matter of the exemplary embodiments rather than as a limitation on the scope of the present inventions.
(112) It is also important to note that according to exemplary embodiments the present inventions may comprise conventional technology (e.g. as implemented and/or integrated in exemplary embodiments, modifications, variations, combinations, equivalents, etc.) or may comprise any other applicable technology (present and/or future) with suitability and/or capability to perform the functions and processes/operations described in the specification and/or illustrated in the FIGURES. All such technology (e.g. as implemented in embodiments, modifications, variations, combinations, equivalents, etc.) is considered to be within the scope of the present inventions of the present patent document. inventions.