Dual action hydraulic clutch system
10731672 ยท 2020-08-04
Inventors
Cpc classification
F16D2125/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2025/081
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B2/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B7/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62L3/023
PERFORMING OPERATIONS; TRANSPORTING
F15B7/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2125/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D67/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B7/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B2/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D67/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A dual action hydraulic clutch system. The system includes a master cylinder having an outer piston therein, wherein the outer piston includes a channel therethrough that can receive an inner piston therein. A gap is formed between the outer and inner pistons, such that activation of the outer piston activates the inner piston once the outer piston has traveled a length of the gap. The outer piston forces hydraulic fluid through an outer outlet connected to a hydraulic clutch, and the inner piston forces hydraulic fluid through an inner outlet connected to a rear brake, allowing a user to simultaneously disengage the clutch and engage the rear brake. A lever is connected to the outer piston, such that the lever can move the outer piston between a resting position, a clutch position, and a brake position. The master cylinder can secure to a support surface via a mounting bracket thereon.
Claims
1. A dual action hydraulic clutch system, comprising: a master cylinder having an outer piston and an inner piston therein; wherein the outer piston comprises a channel configured to receive an inner piston therein; wherein the inner piston is configured to extend along the channel such that a gap is formed between a proximal end of the inner piston and an interior surface of the channel; an outer pressure chamber formed annularly about an interior volume of the master cylinder along a lower end of the outer piston; an inner pressure chamber formed within the interior volume about a distal end of the inner piston; a reservoir configured to hold hydraulic fluid therein; wherein the reservoir is in fluid communication with each of the inner pressure chamber and the outer pressure chamber via interior inlet ports and outer inlet ports, respectively; an outer outlet port through the outer pressure chamber, wherein the outer outlet port is operably connected to a hydraulic clutch; an inner outlet port through the inner pressure chamber, wherein the inner outlet port is operably connected to a rear brake; a lever operably connected to the outer piston, wherein the lever is configured to selectively move the outer piston between a resting position, a clutch position, and a brake position; wherein the interior surface approaches the proximal end when the outer piston is in the clutch position, forcing hydraulic fluid through the outer outlet port, thereby disengaging the hydraulic clutch; wherein the interior surface contacts the proximal end such that the inner piston is actuated when the outer piston is in the brake position, forcing hydraulic fluid through the inner outlet port, thereby actuating the rear brake.
2. The dual action hydraulic clutch system of claim 1, wherein the reservoir further comprises a check valve therein, wherein the check valve is configured to allow fluid from within the master cylinder to return to the reservoir.
3. The dual action hydraulic clutch system of claim 1, wherein the reservoir further comprises a lid removably securable to an upper side of the reservoir.
4. The dual action hydraulic clutch system of claim 3, wherein the lid further comprises a diaphragm on a lower surface thereof, wherein the diaphragm is configured to prevent air from accumulating within the reservoir.
5. The dual action hydraulic clutch system of claim 1, wherein the reservoir is disposed annularly about the master cylinder.
6. The dual action hydraulic clutch system of claim 1, wherein the outer piston further comprises an adjustment member disposed through the master cylinder and the interior surface, wherein the adjustment member is configured to adjust a linear distance between the proximal end and the interior surface.
7. The dual action hydraulic clutch system of claim 6, wherein an adjustment seal is disposed about the adjustment member, wherein the adjustment seal is configured to prevent fluid from exiting the master cylinder.
8. The dual action hydraulic clutch system of claim 1, wherein the master cylinder further comprises a spring-biased clip about a circumference thereof, wherein the spring-biased clip is configured to prevent the outer piston from exiting the master cylinder.
9. The dual action hydraulic clutch system of claim 1, wherein the inner piston is removably securable within the master cylinder via a threaded connection.
10. The dual action hydraulic clutch system of claim 1, wherein the inner and outer seals each comprise a plurality of ribs thereon.
11. The dual action hydraulic clutch system of claim 1, further comprising an outer seal disposed about the lower end, wherein the outer seal is configured to prevent fluid from entering the channel and an inner seal disposed about the distal end, wherein the inner seal is configured to prevent fluid from entering the channel.
12. The dual action hydraulic clutch system of claim 1, further comprising a mounting bracket configured to removably secure the master cylinder to a support surface.
13. The dual action hydraulic clutch system of claim 12, wherein the mounting bracket comprises a C-shaped clamp configured to removably secure the master cylinder to a handlebar of a vehicle.
14. The dual action hydraulic clutch system of claim 13, wherein the mounting bracket comprises a flange extending perpendicularly away from an outer surface of the master cylinder, the flange configured to removably secure the master cylinder to a support surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Although the characteristic features of this invention will be particularly pointed out in the claims, the invention itself and manner in which it may be made and used may be better understood after a review of the following description, taken in connection with the accompanying drawings wherein like numeral annotations are provided throughout.
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE INVENTION
(6) Reference is made herein to the attached drawings. Like reference numerals are used throughout the drawings to depict like or similar elements of the dual action hydraulic clutch system. The figures are intended for representative purposes only and should not be considered to be limiting in any respect.
(7) Referring now to
(8) The master cylinder 12 further comprises an outer pressure chamber 19 disposed annularly about the master cylinder 12 at a lower end 21 of the outer piston 13. The outer pressure chamber 19 is configured to receive hydraulic fluid therein, such that when the outer piston 13 is actuated, pressure builds within the outer pressure chamber 19, thereby forcing the hydraulic fluid from the outer pressure chamber 19 to a hydraulic line operably connected thereto. In the illustrated embodiments, the outer pressure chamber 19 comprises an outer outlet port 27 operably connected to a hydraulic clutch 28 of a vehicle. In this way, when the outer piston 13 is actuated, the hydraulic fluid disposed within the outer pressure chamber 19 is forced through the outer outlet port 27 to disengage the hydraulic clutch 28. In the shown embodiments, the outer pressure chamber 19 further comprises a return spring 50 therein, wherein the return spring 50 is configured to return the outer piston 13 to an initial resting position.
(9) The master cylinder 12 further comprises an inner pressure chamber 22, wherein the inner pressure chamber 22 is disposed centrally within the master cylinder 12 and aligned along a longitudinal axis of the inner piston 14, such that the inner piston 14 is configured to force hydraulic fluid from the inner pressure chamber 22 when the inner piston 14 is actuated. In the illustrated embodiments, the inner pressure chamber 22 further comprises an inner outlet port 29, wherein the inner outlet port 29 is operably connected to a rear brake 30, such that the rear brake 30 is actuated by the hydraulic fluid forced through the inner outlet port 29. As the outer piston 13 actuates the inner piston 14, the rear brake 30 is only actuated when the clutch 28 has been disengaged, allowing a user to conveniently disengage the clutch 28 and actuate the rear brake 30 simultaneously. A return spring 50 is disposed within the inner pressure chamber 22, wherein the return spring 50 is configured to return the inner piston 14 to an initial position within the channel 15 of the outer piston 13.
(10) The master cylinder 12 further comprises a reservoir 24 disposed thereon, wherein the reservoir 24 is configured to receive hydraulic fluid therein. In the illustrated embodiment of
(11) In the illustrated embodiment, the master cylinder 12 further comprises an outer seal 31 disposed annularly thereabout between the outer pressure chamber 19 and the lower end 21. The outer seal 31 is configured to prevent leakage of hydraulic fluid from the outer pressure chamber 19, thereby ensuring smooth operation of the outer piston 13. In the illustrated embodiment, the outer seal 31 further comprises a plurality of ribs 47 thereon, wherein the plurality of ribs 47 are configured to provide multiple layers of security between the outer pressure chamber 19 and the master cylinder 12. Should the hydraulic fluid leak from the outer pressure chamber 19 past one of the plurality of ribs 47, the hydraulic fluid must the break through the seal provided by the remaining ribs 47. The inner piston 14 further comprises an inner seal 32 disposed on a distal end 23 of the inner piston 14, wherein the inner seal 32 is configured to prevent leakage of hydraulic fluid from the inner pressure chamber 22, such that the operation of the inner piston 14 is not impeded thereby. In some embodiments, the inner seal 32 further comprises the plurality of ribs 47 as described above for the outer seal 31. In this way, the inner and outer seals 32, 31 can effectively retain the hydraulic fluid within the inner and outer pressure chambers 22, 19, respectively.
(12) The dual action hydraulic clutch system further comprises a mounting bracket 34 disposed on the master cylinder 12. The mounting bracket 34 is configured to removably secure the master cylinder 12 to a support surface. In the illustrated embodiment of
(13) In the illustrated embodiment of
(14) Referring now to
(15) In the illustrated embodiment, the adjustment member 40 is disposed on the lever 33, such that a user can easily reach the adjustment member 40 to adjust the sensitivity of the dual action hydraulic clutch system. In this way, the user can determine how much pressure must be placed on the lever 33 before triggering the inner cylinder such that the rear brake is actuated at the same time as the clutch is disengaged. Furthermore, the mounting bracket 34 comprises a C-shaped clamp disposed about a handlebar 42 of a vehicle, wherein the illustrated embodiment, the mounting bracket 34 is secured to the handlebar 42 via fasteners.
(16) Referring now to
(17) In the illustrated embodiment, the reservoir 24 is disposed above the master cylinder 12, such that the reservoir 24 can comprise a larger volume than an annular version. The reservoir 24 of
(18) It is therefore submitted that the instant invention has been shown and described in various embodiments. It is recognized, however, that departures may be made within the scope of the invention and that obvious modifications will occur to a person skilled in the art. With respect to the above description then, it is to be realized that the optimum dimensional relationships for the parts of the invention, to include variations in size, materials, shape, form, function and manner of operation, assembly and use, are deemed readily apparent and obvious to one skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the present invention.
(19) Therefore, the foregoing is considered as illustrative only of the principles of the invention. Further, since numerous modifications and changes will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation shown and described, and accordingly, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention.