SHOCK ABSORBER ASSEMBLY WITH ADJUSTABLE HEIGHT
20220379677 · 2022-12-01
Inventors
Cpc classification
B60G17/0272
PERFORMING OPERATIONS; TRANSPORTING
F16F9/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F13/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62K25/04
PERFORMING OPERATIONS; TRANSPORTING
F16F1/121
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60G15/063
PERFORMING OPERATIONS; TRANSPORTING
B60G2202/312
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60G17/027
PERFORMING OPERATIONS; TRANSPORTING
B62K25/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A shock absorber assembly with adjustable height for two-wheeled motor vehicles and the like, including a shock absorber with a spring, e.g. a helical spring coaxial to the shock absorber, the shock absorber having a nominal length (L) and at least two couplings operatively connected to the suspension of the vehicle, the spring having a first end and a second end; the shock absorber assembly includes at least one hydraulic fluid pusher installed in series with the spring, the pusher acts on either end of the spring or the pusher acts on either coupling, a source of pressurise hydraulic fluid in fluid connection with the pusher and to actuate the pusher, the shock absorber assembly includes an accumulator tank assembly in fluid connection with the pusher, the accumulator tank assembly in turn includes one tank and a solenoid valve.
Claims
1-11: (canceled)
12. A shock absorber assembly with adjustable height for two-, or three-, or four-wheels motor leaning vehicles, said leaning motor vehicle including at least a suspension, comprising a shock absorber with a spring, having a nominal length, including at least one spring, at least two couplings operatively connected to said suspension of the leaning vehicle, said spring having a first end and a second end, at least one hydraulic fluid pusher installed in series with the spring, said pusher acting on either one of the two ends of the spring or said pusher acting on one of the two couplings, a source of pressurised hydraulic fluid in direct fluid connection with said pusher without any intermediate valves in order to actuate said pusher, an accumulator tank assembly in fluid connection with said pusher, said accumulator tank assembly in turn including at least one tank and at least one solenoid valve which controls the opening or closing of the inlet/outlet opening of the hydraulic fluid of said tank, said solenoid valve being provided with a large-section port and reduced pressure drops for the hydraulic fluid, so as to allow quick discharge of the hydraulic fluid present in the pusher towards said tank and causing an immediate release of the preload of the spring of the shock absorber or an immediate reduction of the loaded length of the shock absorber and therefore an immediate lowering of said leaning motor vehicle.
13. The shock absorber assembly according to claim 12, wherein said accumulator tank assembly comprises a device with a membrane loaded with gas or a device comprising a set composed of a hydraulic fluid separator and a mechanical spring.
14. The shock absorber assembly according to claim 12, wherein said source of pressurised hydraulic fluid comprises a single-acting hydraulic pump which is motor-driven via a motor assembly of the electric type.
15. The shock absorber assembly according to claim 14, wherein said motor assembly comprises a rotary type electric motor, a reducer and a mechanism to convert the rotary motion of the electric motor into linear motion.
16. The shock absorber assembly according to claim 15, wherein said mechanism to convert the rotary motion into linear motion comprises a mechanism formed by a screw and a nut screw in operative connection with each other.
17. A shock absorber assembly with adjustable height for two-, or three-, or four-wheels motor leaning vehicles, said leaning motor vehicle including at least a suspension, comprising a shock absorber with a spring, having a nominal length, including at least one spring, at least two couplings operatively connected to said suspension of the leaning vehicle, said spring having a first end and a second end, at least one hydraulic fluid pusher installed in series with the spring, said pusher acting on either one of the two ends of the spring or said pusher acting on one of the two couplings, a source of pressurised hydraulic fluid including a single-acting hydraulic pump in direct fluid connection with said pusher said hydraulic pump including a single-acting piston and a hydraulic cylinder, said piston sliding in a fluid tight manner within said hydraulic cylinder and being operated by a motor assembly in a linear manner in both directions, an accumulator tank assembly in fluid connection with said pusher, said accumulator tank assembly in turn including at least one tank and at least one solenoid valve which controls the opening or closing of the inlet/outlet opening of the hydraulic fluid of said tank in order to allow the discharge of the hydraulic fluid present in the pusher towards said tank and causing an immediate release of the preload of the spring of the shock absorber or an immediate reduction of the loaded length of the shock absorber and therefore an immediate lowering of said leaning motor vehicle.
18. The shock absorber assembly according to claim 17, wherein said motor assembly comprises a rotary type electric motor, a reducer and a mechanism to convert the rotary motion of the electric motor into linear motion.
19. The shock absorber assembly according to claim 18, wherein said mechanism to convert the rotary motion into linear motion comprises a mechanism formed by a screw and a nut screw in operative connection with each other.
20. A kit for upgrading or retrofitting an adjustable-height shock absorber comprising an adjustable-height shock absorber assembly according to claim 12.
21. A drive method of an adjustable-height shock absorber assembly, comprising the steps of: providing a shock absorber assembly with adjustable height for two-, or three-, or four-wheels motor leaning vehicles, according to claim 12; adjusting the preload of the spring or the length of the shock absorber and thus adjusting the height of the loaded vehicle with a precise positioning control; opening the solenoid valve to allow for a fast discharge of the hydraulic fluid from the cylinder of the pusher assembly towards the accumulator tank assembly, if a sudden lowering of the vehicle becomes necessary starting from any height position of the vehicle; maintaining the solenoid valve open; and recalling the hydraulic fluid from the tank assembly towards the source of pressurised hydraulic fluid and the pusher, bringing said source of pressurised hydraulic fluid back to the minimum preload position of the spring or minimum length of the shock absorber.
22. The drive method of an adjustable-height shock absorber assembly according to claim 21, wherein said steps are performed in the order described in claim 21 and comprising a subsequent closing step of the solenoid valve to prepare said adjustable-height shock absorber assembly for a new cycle of operation.
23. The method of operating a shock absorber assembly with adjustable height assembly according to claim 21, wherein said source of pressurised hydraulic fluid comprises a single-acting hydraulic cylinder with a piston sliding is a fluid tight manner within said cylinder and actuated in a linear manner in both directions within the stroke limits of the piston, by means of the electric motor assembly.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0022] Further aspects and advantages of the present invention will become clearer from the following detailed description of some examples of its embodiment, illustrated as an example only and not by way of limitation in the accompanying drawings, in which:
[0023]
[0024]
[0025]
[0026]
[0027]
DETAILED DESCRIPTION OF THE INVENTION
[0028] With reference to a version of the present invention,
[0029] The shock absorber assembly with adjustable height 1, in the version illustrated in
[0030] It should be noted that the shock absorber assembly with adjustable height according to the present invention can also be applied to different types of suspension, for example to a telescopic fork for a motorcycle, in which case, the pusher can be installed in series with each spring inside the fork sliders, but it need not always be coaxial to the shock absorber, so it can also be configured as an actuator comprising a standard hydraulic cylinder. i.e. non-annular, single-acting.
[0031] The shock absorber 2 has a nominal length L and comprises at least two couplings 8, 9 operatively connected to the vehicle suspension.
[0032] The shock absorber 2 also has a first support base 10 located in a first support position PI and a second support base 11 located in a second support position P2; the spring 3 has the first end 4 resting in the first position PI on the first support base 10 of the shock absorber 2 and the second end 5 resting in the second position P2 on the second support base 11 of the shock absorber 2.
[0033] The pusher 6 can modify the supporting position PI or P2 of one of the ends 4 or 5 of the spring 3; in particular in the version of
[0034] It should be noted that alternatively, the pusher 6 could be in contact and act on the second end 5 of the spring 3 by changing the second position P2 of the second end 5 of the spring 3; possibly two pushers 6 could be provided to vary both supporting positions PI, P2 of the spring 3.
[0035] By changing the supporting position PI, or the supporting position P2, or both supporting positions PI, P2, the preload of spring 3 is changed: the initial preload can be increased or the initial preload can be decreased or cancelled.
[0036] Consequently, the height of the shock absorber group 1, and more generally the height of the vehicle, on which the aforementioned group 1 is mounted, can be changed: by increasing the preload of the spring 3, the height of the vehicle practically increases because the sinking of the suspension under load due to the vehicle's own weight and to loads applied to the vehicle decreases, by decreasing (or cancelling) the preload of the spring 3, the height of the vehicle practically decreases because the sinking of the suspension under load increases.
[0037] The pusher 6 comprises a hydraulic actuator driven by means of the source 7 of pressurised hydraulic fluid; in
[0038] The assembly including the spring 3 and the cylinder 12 can replace the plain spring of a shock absorber with no adjustment, therefore the shock absorber assembly 1 according to the present invention can also be considered or sold as an upgrade or retrofit of existing shock absorbers without height adjustment.
[0039] Also in the case of a telescopic fork for motorcycles, the spring and pusher assembly according to the present invention can replace the plain spring provided in each slider of a pre-existing fork and therefore constitute an update or retrofit of a pre-existing telescopic fork.
[0040] Clearly, the shock absorber assembly with adjustable height according to the present invention can also be used as original equipment in newly produced vehicles.
[0041]
[0042] The source 7 of pressurised hydraulic fluid is connected directly to the pusher 6, without intermediate valves, by means of a pipe 16.
[0043] The pipe 16 in turn communicates in a fluid manner with the cylinder 12 of the pusher 6; to this end, the pipe 16 is fixed to a hydraulic connection 18 communicating with the internal chamber of the cylinder 12.
[0044] It should be noted that, thanks to the direct connection between the source 7 of pressurised hydraulic fluid and the pusher 6, the shock absorber assembly 1 according to the present invention is simpler, lighter, cheaper and more reliable than known solutions which comprise one or more solenoid valves.
[0045] As indicated above, the cylinder 12 is a single-acting cylinder which is actively actuated by the hydraulic fluid only to increase the preload of the spring 3; in the event that the preload of the spring 3 must be reduced or cancelled when the vehicle is lowered, it is the same spring 3 which causes the hydraulic fluid to be emptied from the internal chamber of the cylinder 12 by pushing on piston 15 of the cylinder itself.
[0046] Since the cylinder 12 is of the single-acting type, the constructive form of the cylinder 12 is particularly simple, lightweight, reliable and low cost to produce.
[0047] The source 7 of hydraulic fluid comprises a hydraulic pump 19 powered by an electric motor unit 20.
[0048] The hydraulic pump 19 comprises a single-acting hydraulic cylinder (see
[0049] The hydraulic pump 19 thus implemented is therefore simple, light, reliable and cheap to build.
[0050] According to what is illustrated in
[0051] The aforesaid constructive form with an electric motor 22 of the rotary type, a possible reduction unit 23, for example a planetary gear reduction unit, and a mechanism 24 for converting the rotary motion of the electric motor 22 into linear motion, allows, power being equal, to use a small and lightweight electric motor and to obtain limited footprint. The mechanism 24 for converting rotary motion into linear motion can be implemented in different ways, for example: a toothed wheel that engages on a rack, a thrust crank mechanism, a cam and a follower, and in particular, a mechanism formed by a screw 25 and a nut screw 26 in operative connection to each other.
[0052] As illustrated in
[0053] A direct connection is thus implemented between the pump 19 and the cylinder 12 of the hydraulic type, similar to the hydraulic actuation devices of the brakes or the clutch of a motor vehicle.
[0054] In this way, it is possible to position the output of the piston 21 of the cylinder 12 in a millimetric manner by controlling the rotation of the screw 25 of the motor assembly 20; as mentioned above, actuation occurs both in one direction and in the other within the limits set by the stroke of the piston 21.
[0055] An important characteristic of the present invention is that the shock absorber assembly with adjustable height 1 comprises an accumulator tank assembly 27 in fluid connection with the cylinder 12 of the pusher 6 by means of a second pipe 17 fixed to the hydraulic connection 18 of the cylinder 12.
[0056] The accumulator tank assembly 27 in turn comprises at least one tank 28, at least one low-pressure accumulation chamber 29 which can consist of a device with a membrane 30 charged with gas or a device comprising an assembly with hydraulic fluid separator and mechanical spring (not shown) and at least one solenoid valve 31, with two positions, which controls the opening or closing of the hydraulic fluid inlet/outlet port. By opening the solenoid valve 31, the accumulator tank assembly 27 allows any pressure present in the pusher 6 to be quickly discharged, causing an immediate release of the spring preload of the shock absorber and consequently, a lowering of the vehicle.
[0057] The solenoid valve 31 is built to comprise a large section port with reduced pressure drops for the hydraulic fluid, so as to offer low resistance to the discharge of the hydraulic fluid which is in the cylinder 12 of the pusher 6, allowing for quick lowering of the vehicle.
[0058] In the event that the solenoid valve 31 is closed, the shock absorber assembly 1 operates in a conventional way since the hydraulic fluid present inside the circuit is entirely contained in the hydraulic line which includes the hydraulic pump 19, the pipe 16 and the cylinder 12 of the pusher 6.
[0059] In this way, it is possible to adjust the preload of the spring 3 and therefore the height of the vehicle under load with very precise positioning control.
[0060] When sudden lowering of the vehicle is necessary, starting from any height position of the vehicle, e.g. from any preload position of the spring 3 greater than the minimum preload condition of the spring 3, the solenoid valve 31 opens to allow a quick discharge of the hydraulic fluid from the cylinder 12 of the pusher assembly 6 towards the accumulator tank assembly 27, moving the supporting position PI or P2 of the spring 3, so as to obtain a shortening of the length under load of the shock absorber 2.
[0061] At this point, that is, after carrying out the aforementioned fast discharge of hydraulic fluid, while still keeping the solenoid valve 31 open, the hydraulic pump 19 draws the hydraulic fluid from the tank assembly 27 returning to the position in which the piston 21 determines the minimum preload, i.e. the piston 21 is pulled back, drawing the hydraulic fluid from the tank assembly 27 towards the main circuit comprising the same hydraulic pump 19, the pipe 16 and the cylinder 12 of the pusher 6.
[0062] The emptying of the accumulator tank 28 is also helped by the pressure of the accumulation chamber 29, however the aforementioned pressure must have a not too high value because it must allow the complete discharge of the cylinder 12 of the pusher 6, normally the pressure of the accumulation chamber 29 is between 2 and 4 bars. i.e. 0.2-0.4 MPa.
[0063] When the hydraulic pump 19 has returned to its minimum preload position, the solenoid valve 31 closes and the shock absorber assembly 1 is ready for another operating cycle. According to a second version of the present invention illustrated in
[0064] The other components of the shock absorber assembly with adjustable height 1 according to this version are the same as in the preceding version and will not be described further. The effect of introducing hydraulic fluid into—or emptying hydraulic fluid from—the hydraulic cylinder 12 is to adjust the stroke C of the cylinder 12 and consequently, directly the loaded length of the shock absorber 102, and not the preload of the spring 3 like in the preceding version.
[0065] The effect and operation of the shock absorber assembly with adjustable height 1 of this version are quite similar to those of the preceding version: by operating the pusher 6 the length of the shock absorber 102 increases, due to the stroke C available from the hydraulic cylinder 12 and consequently the height of the vehicle increases, even if the shock absorber 102 is normally under load and therefore, the shock absorber 102 has a shorter length than the nominal length L.
[0066] Naturally, by decreasing (or setting to zero) the stroke C available from the hydraulic cylinder 12, the height of the vehicle also decreases because the length under load of the shock absorber 102 is reduced.
[0067] According to a third version of the present invention illustrated in
[0068] In this third version of the present invention, the integration of the components 7, 27 allows some weight reduction and quicker installation of these components on the vehicle, while in the first version of the present invention, the separation of the components 7, 27 can help finding available space on the vehicle as these components can be placed in different positions.
[0069] Also for this third version, the other components, in particular the shock absorber 2, remain the same as those of the first version of the present invention; alternatively it is possible to use the shock absorber 102 of the second version described above.
[0070] It has thus been seen how the invention achieves the intended purposes.
[0071] Various modifications and variations can be made in the invention thus conceived, without departing from the scope of the invention.
[0072] Moreover, all the elements can be replaced with other technically equivalent elements.
[0073] In practice, the materials used as well as the contingent shapes and dimensions can vary greatly according to needs, without thereby departing from the scope of protection of the following claims.