Electronically adjustable shock absorber
11009093 · 2021-05-18
Assignee
Inventors
Cpc classification
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G2800/162
PERFORMING OPERATIONS; TRANSPORTING
F16F9/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2228/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/0152
PERFORMING OPERATIONS; TRANSPORTING
B60G17/0165
PERFORMING OPERATIONS; TRANSPORTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
F16F9/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2226/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/466
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/3271
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16F9/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/08
PERFORMING OPERATIONS; TRANSPORTING
B60G17/0165
PERFORMING OPERATIONS; TRANSPORTING
F16F9/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G17/015
PERFORMING OPERATIONS; TRANSPORTING
F16F9/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A mechanism for electronically adjusting a shock absorber includes a cartridge that is located on the fluid path between the main body of the shock absorber and a damping reservoir. A piston valve is mounted for reciprocal movement inside an elongated chamber of the cartridge, and a solenoid is mounted on the cartridge to interact with the piston valve. In operation, the solenoid is electronically controlled to selectively move the piston valve into various positons in the cartridge chamber to thereby vary the volume of liquid flow along the fluid path which will adjust the response characteristics of the shock absorber.
Claims
1. A mechanism for adjusting a shock absorber which comprises: a shock absorber containing a liquid; a cartridge mounted on a fluid path in fluid communication with the shock absorber, wherein the cartridge defines a longitudinal vertical axis and has a first end and a second end and is formed with an elongated cylindrical chamber therebetween with a plurality of openings into the chamber between the first and the second ends with at least one opening for receiving liquid from the shock absorber, where entire portion of said opening is in a direction tangential to the vertical axis of the cartridge, said opening is positioned in such manner that fluid starts flowing on only one side of said vertical axis of the cartridge, and wherein the first end of the cartridge is connected in fluid communication with the liquid chamber of a damping reservoir; a solenoid engaged with the second end of the cartridge; a piston valve positioned in the chamber of the cartridge for reciprocal movement therein in response to the solenoid; and a controller connected to the solenoid for moving the piston valve in the chamber of the cartridge to establish an open/close configuration for at least one opening of the cartridge to adjust the volume of liquid flow on the fluid path between the shock absorber and the liquid chamber of the damping reservoir.
2. The mechanism recited in claim 1 wherein the shock absorber comprises: a main body of the shock absorber for holding the liquid, wherein the main body defines an axis; a shock shaft including a drive piston engaged with the main body for reciprocal motion of the drive piston along the axis of the main body, wherein the main body is attached to a first point on a vehicle and the shock shaft is attached to a second point on the vehicle; a cylindrical shaped damping reservoir defining an axis, wherein the damping reservoir includes a gas chamber and a liquid chamber with a floating piston positioned therebetween for axial movement to compress gas in the gas chamber when liquid is introduced into the liquid chamber, and to expel liquid from the liquid chamber when gas expands in the gas chamber; and a manifold bridge defining a fluid path connecting the shock absorber in fluid communication with the liquid chamber of the damping reservoir via the cartridge.
3. The mechanism recited in claim 2 further comprising a one-way check valve mounted on the manifold bridge in fluid communication with the fluid path for returning liquid from the liquid chamber of the damping reservoir to the main body.
4. The mechanism recited in claim 2 further comprising a choke passageway in the fluid path between the main body of the shock absorber and the cartridge.
5. The mechanism recited in claim 2 further comprising a compression valve positioned between the main body of the shock absorber and the cartridge to relieve an excessive pressure increase on the cartridge.
6. The mechanism recited in claim 2 wherein the piston valve comprises: a hollow central tube having a distal end and a proximal end, wherein the central tube has an outer diameter d.sub.tube; a first ring mounted on the central tube at the distal end thereof, the first ring having an outer diameter d.sub.ring, wherein d.sub.ring>d.sub.tube; and a second ring mounted on the central tube at the proximal end thereof, the second ring having the same outer diameter d.sub.ring, wherein a recess is formed around the central tube between the first ring and the second ring to define the flow path through the cartridge.
7. The mechanism recited in claim 6 wherein the first ring of the piston valve and the second ring of the piston valve each abuts the cartridge from inside its chamber for movement of the piston valve in the chamber to vary a cross-section area of the at least one opening to adjust the volume of the liquid flow therethrough.
8. The mechanism recited in claim 7 wherein the first ring of the piston valve and the second ring of the piston valve are each formed with a taper/notch to provide for an incremental transition of the cross-section area of the opening between the open/close configurations of the opening of the cartridge.
9. The mechanism recited in claim 1 wherein the liquid is a hydraulic/mineral type oil.
10. The mechanism recited in claim 1 wherein the controller is an electronic control device.
11. A mechanism for adjusting a shock absorber wherein the shock absorber contains a liquid and includes a main body for holding the liquid, wherein the main body defines an axis, and the shock absorber further includes a shock shaft including a drive piston engaged with the main body for reciprocal motion of the drive piston along the axis of the main body, and wherein the main body is attached to a first point on a vehicle and the shock shaft is attached to a second point on the vehicle, the mechanism comprising: a damping reservoir for interacting with the shock absorber, wherein the damping reservoir is in fluid communication with the shock absorber and includes a gas chamber and a liquid chamber with a floating piston positioned therebetween for axial movement to compress gas in the gas chamber when liquid is introduced into the liquid chamber, and to expel liquid from the liquid chamber when gas expands in the gas chamber; a cartridge for establishing a portion of a fluid path between the main body of the shock absorber and the damping reservoir, wherein the cartridge defines a longitudinal vertical axis and has a first end and a second end and is formed with an elongated cylindrical chamber therebetween with a plurality of openings into the chamber between the first and second ends with at least one opening for receiving liquid from the shock absorber, where entire portion of said opening is in a direction tangential to the vertical axis of the cartridge, said opening is positioned in such manner that fluid starts flowing on only one side of said vertical axis of the cartridge, and wherein the first end of the cartridge is connected in fluid communication with the liquid chamber of the damping reservoir; and a means for moving a piston valve in the chamber of the cartridge to establish an open/close configuration for the at least one opening of the cartridge to adjust the volume of liquid flow on the fluid path between the shock absorber and the liquid chamber of the damping reservoir.
12. The mechanism recited in claim 11 wherein the means for moving the piston valve is a solenoid engaged with the second end of the cartridge.
13. The mechanism recited in claim 11 further comprising a one-way check valve positioned in the fluid path for returning liquid from the liquid chamber of the damping reservoir to the main body of the shock absorber.
14. The mechanism recited in claim 11 further comprising a choke passageway in the fluid path between the main body of the shock absorber and the cartridge.
15. The mechanism recited in claim 11 further comprising a compression valve positioned between the main body of the shock absorber and the cartridge to relieve an excessive pressure increase on the cartridge.
16. The mechanism recited in claim 11 wherein the piston valve comprises: a hollow central tube having a distal end and a proximal end, wherein the central tube has an outer diameter d.sub.tube; a first ring mounted on the central tube at the distal end thereof, the first ring having an outer diameter d.sub.ring, wherein d.sub.ring>d.sub.tube; and a second ring mounted on the central tube at the proximal end thereof, the second ring having the same outer diameter d.sub.ring, wherein a recess is formed around the central tube between the first ring and the second ring to define the flow path through the cartridge.
17. The mechanism recited in claim 11 wherein the first ring of the piston valve and the second ring of the piston valve each abut with the cartridge for movement of the piston valve in the chamber of the cartridge to vary a cross-section area of the at least one opening to adjust the volume of the liquid flow therethrough.
18. The mechanism recited in claim 17 wherein the first ring of the piston valve and the second ring of the piston valve are each formed with a taper/notch to provide for an incremental transition of the cross-section area of the opening between the open/close configurations of the opening of the cartridge.
19. A method for assembling an electronically adjustable shock absorber wherein the shock absorber contains a liquid and includes a main body for holding the liquid, wherein the main body defines an axis, and the shock absorber further includes a shock shaft including a drive piston engaged with the main body for reciprocal motion of the drive piston along the axis of the main body, wherein the main body is attached to a first point on a vehicle and the shock shaft is attached to a second point on the vehicle, the method comprising the steps of: connecting a cylindrical shaped damping reservoir in fluid communication with the main body of the shock absorber, wherein the damping reservoir includes a gas chamber and a liquid chamber with a floating piston positioned therebetween for axial movement to compress gas in the gas chamber when liquid is introduced into the liquid chamber, and to expel liquid from the liquid chamber when gas expands in the gas chamber; establishing a portion of a fluid path between the main body of the shock absorber and the damping reservoir with a cartridge, wherein the cartridge defines a longitudinal vertical axis and has a first end and a second end and is formed with an elongated cylindrical chamber therebetween with a plurality of openings into the chamber between the first and second ends with at least one opening for receiving liquid from the shock absorber, where entire portion of said opening is in a direction tangential to the vertical axis of the cartridge, said opening is positioned in such manner that fluid starts flowing on only one side of said vertical axis of the cartridge, and wherein the first end of the cartridge is connected in fluid communication with the liquid chamber of the damping reservoir; and electronically moving a piston valve in the chamber of the cartridge using a solenoid engaged with the second end of the cartridge to establish an open/close configuration for the at least one opening of the cartridge to adjust the volume of liquid flow on the fluid path between the shock absorber and the liquid chamber of the reservoir.
20. The method recited in claim 19 wherein the piston valve comprises: a hollow central tube having a distal end and a proximal end, wherein the central tube has an outer diameter d.sub.tube; a first ring mounted on the central tube at the distal end thereof, the first ring having an outer diameter d.sub.ring, wherein d.sub.ring>d.sub.tube; and a second ring mounted on the central tube at the proximal end thereof, the second ring having the same outer diameter d.sub.ring, wherein a recess is formed around the central tube between the first ring and the second ring to define the flow path through the cartridge, wherein the first ring of the piston valve and the second ring of the piston valve each abut with the cartridge for movement of the piston valve in the chamber of the cartridge to vary a cross-section area of the at least one opening to adjust the volume of the liquid flow therethrough, and wherein the first ring of the piston valve and the second ring of the piston valve are each formed with a taper/notch to provide for an incremental transition of the cross-section area of the opening between the open/close configurations of the opening of the cartridge.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The novel features of this invention, as well as the invention itself, both as to its structure and its operation, will be best understood from the accompanying drawings, taken in conjunction with the accompanying description, in which similar reference characters refer to similar parts, and in which:
(2)
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(8)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9) Referring initially to
(10)
(11) An overall appreciation of the fluid flow paths involved for the present invention will be best provided with reference to
(12) Also, with pressure considerations in mind, a one-way, overpressure valve 42 is provided to further relieve adverse pressures on the solenoid valve 34 should there be a spike value in pressure that cannot be suppressed by the choke valve 38. In this instance, an operation of the overpressure valve 42 would allow for a bypass of liquid into the liquid chamber 26 of the damping reservoir 24, rather than against the cartridge 40. On the other hand, to prevent an overpressure against the cartridge 40 from liquid in the damping reservoir 24, a one-way return valve 44 is provided. As intended for the present invention, both the overpressure valve 42 and the return valve 44 are established with threshold pressure values before they become operative.
(13) Referring now to
(14) Still referring to
(15) The flow of fluid (liquid) through the solenoid valve 34 between the main body 12 of the shock absorber 10 and the liquid chamber 26 of the damping reservoir 24 will be best appreciated with reference to both
(16) With the above in mind, movements of the piston valve 52 effectively do not fight against the fluid flow through the solenoid valve 34. As noted above, movement of the piston valve 52 in the chamber 60 of cartridge 40 is crucial for controlling fluid flow. For example, with piston valve 52 in the position shown in
(17) In an alternate embodiment of the present invention, a gate valve 78 is shown in
(18) For another alternate embodiment of the present invention,
(19) While the particular Electronically Adjustable Shock Absorber as herein shown and disclosed in detail is fully capable of obtaining the objects and providing the advantages herein before stated, it is to be understood that it is merely illustrative of the presently preferred embodiments of the invention and that no limitations are intended to the details of construction or design herein shown other than as described in the appended claims.