Oscillating arm front suspension for saddle-type vehicles
The oscillating arm front suspension with a four-bar kinematic system addresses load response and bending stress issues by adjusting the pro-dive/anti-dive behavior, enhancing smoothness and durability.
Patent Information
- Application Number
- JP2023536887
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-17
- Filing Date
- 2021-10-25
- Publication Date
- 2025-12-25
- Estimated Expiration
- 2041-10-25
AI Technical Summary
Existing oscillating arm front suspensions for saddle-ride vehicles do not optimally respond to loads, exhibit significant pro-dive or anti-dive effects, and suffer from bending stresses that can damage the damper seal due to braking torque.
An oscillating arm front suspension with a four-bar kinematic system, comprising a steering bar, first and second oscillating arms, and a support element, allows for adjustable length and articulation points to modify the pro-dive or anti-dive behavior, reducing bending loads on the shock absorber assembly.
The suspension optimally responds to loads, reduces or eliminates pro-dive/anti-dive effects, and minimizes damage to the damper seal by adjusting the kinematic behavior to enhance smoothness and durability.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to the technical field of suspensions for transportation vehicles, and in particular to an oscillating arm front suspension for saddle-ride type vehicles. [Background technology]
[0002] In the field of straddle-type vehicles, such as motorcycles, it is known to provide the front wheels of the vehicle with an oscillating arm suspension, which represents the front suspension. The oscillating arm front suspension can be both a single-arm suspension and a double-arm suspension, but generally consists of a rigid arm, also called a steering bar, which is mechanically connected to the steering handlebar of the straddle-type vehicle.
[0003] In an oscillating arm front suspension, a first end of an oscillating arm is typically pivotally hinged to the steering bar, and the oscillating arm has a second, opposite end that carries the pivot pin of the front wheel.
[0004] Such an oscillating arm front suspension typically further includes a shock absorber assembly including a spring and a damper (e.g., a hydraulic or pneumatic damper). The shock absorber assembly extends between a mounting head and a mounting foot. The mounting head is connected to the steering bar, and the mounting foot is rotatably hinged to a pivot pin of the front wheel by a support bracket. A disc brake caliper or a drum brake fixing part is typically fixed to the support bracket. An oscillating arm front suspension of the above type is disclosed, for example, in European Patent EP 2996929 B1.
[0005] The prior art oscillating arm front suspensions described above have the drawback of not responding optimally to loads and are characterized by a significant pro-dive or anti-dive effect, defined by the trajectory that the suspension dives during braking to cover the instantaneous center of rotation of the front wheel assembly, which also causes the front tire's contact point with the ground to follow a complex trajectory.
[0006] Furthermore, in known oscillating arm front suspensions in which the body of the shock absorber is integral with the support of the brake caliper which rotates freely on the wheel axle, the braking torque generated by the application of the front brake imposes bending stresses on the stem which determine the sliding friction within the sheath and can even damage the damper seal and therefore the shock absorber assembly.
[0007] International patent application WO 2019207445 A1 describes a motorcycle front suspension that allows reducing or eliminating the pro-dive or anti-dive effects of prior art oscillating arm front suspensions and has the ability to optimally react to loads. However, to ensure the sliding of the damper, such known suspensions require a sheath covered with a jacket that defines a telescopic guide. Summary of the Invention
[0008] A general object of the present specification is to provide a swaying arm front suspension for a saddle-ride type vehicle that can overcome or at least reduce the above-mentioned drawbacks with reference to prior art swaying arm suspensions.
[0009] Such an object is achieved by an oscillating arm front suspension as generally defined in claim 1. Preferred and advantageous embodiments of said suspension are defined in the attached dependent claims.
[0010] The invention will be better understood from the following detailed description of particular embodiments thereof, given by way of non-limiting example, with reference to the accompanying drawings, which are briefly described in the following paragraphs. [Brief explanation of the drawings]
[0011] [Figure 1] FIG. 1 is a side view of an exemplary, non-limiting embodiment of a saddle-type vehicle, particularly a motorcycle, with an oscillating arm front suspension.
[0012] [Figure 2] FIG. 2 is a side view of a portion of the vehicle of FIG. 1 showing the front suspension of the vehicle in greater detail.
[0013] [Figure 3] FIG. 3 is a side view similar to that of FIG. 2 with some components removed, such as the front wheels and shock absorber assembly.
[0014] [Figure 4] FIG. 4 is a cross-sectional view of the front suspension taken along the cross-sectional plane ZZ shown in FIG.
[0015] [Figure 5] FIG. 5 is a distribution diagram of the pro-dive and anti-dive behavior of the suspension.
[0016] [Figure 6] Figure 6 is a diagram of an oscillating arm suspension where pro-dive behavior decreases as suspension dive increases. [Figure 7] Figure 7 is a diagram of an oscillating arm suspension where pro-dive behavior decreases as suspension dive increases. [Figure 8] FIG. 8 is a diagram of an oscillating arm suspension where pro-dive behavior decreases as suspension dive increases.
[0017] [Figure 9] FIG. 9 is a diagram of an oscillating arm suspension that has pro-dive behavior that decreases as suspension dive increases until about halfway through the suspension travel, after which it has anti-dive behavior that increases. [Figure 10] FIG. 10 is a diagram of an oscillating arm suspension that has pro-dive behavior that decreases as suspension dive increases until about halfway through the suspension travel, after which it has anti-dive behavior that increases. [Figure 11] FIG. 11 is a diagram of an oscillating arm suspension that has pro-dive behavior that decreases as suspension dive increases until about halfway through the suspension travel, after which it has anti-dive behavior that increases.
[0018] [Figure 12] 12 is a side view of the vibration arm of the front suspension of FIG. 2. FIG.
[0019] [Figure 13] 13 is a longitudinal cross-sectional view of the vibrating arm of FIG. 12 taken along the cross-sectional axis YY shown in FIG.
[0020] [Figure 13-] FIG. 13' is a cross-sectional view showing a part of the front suspension.
[0021] [Figure 14] FIG. 14 is a view similar to that of FIG. 3 showing a further embodiment of the front suspension. DETAILED DESCRIPTION OF THE INVENTION
[0022] Identical or similar elements are designated with the same reference numerals in the accompanying figures.
[0023] An embodiment of a straddle-type vehicle, in particular a motorcycle 1, is shown in the accompanying figures. In the particular example shown in the figures, the motorcycle 1 takes the form of a scooter, without introducing any limitation thereto, and comprises a front wheel 2 and a rear wheel 3, an engine 4, a support frame 5, a saddle 6, and a steering handlebar 7 rotatably fixed to the support frame 5.
[0024] Hereinafter, without introducing any limitations, reference will be made to a general motorcycle 1, meaning that the following description can generally be applied to any type of saddle-ride vehicle that is: - support frame 5; - a support frame 5 and at least two wheels 2, 3 restrained on the support frame 5; an engine 4, for example a thermal or electric or hybrid traction engine, constrained to a support frame 5 and operatively connected directly or indirectly to at least one of the two wheels 2, 3;
[0025] In the particular embodiment shown, without introducing any limitation thereby, the support frame 5 is a free-standing chassis.
[0026] The motorcycle 1 is configured with a steering tube 8 (FIG. 2) fixed to the steering handlebar 7 so as to rotate integrally therewith. The motorcycle 1 preferably further includes a front mudguard 9 fixed directly or indirectly to the steering tube 8 and rotating integrally therewith. In the example shown in the figures, the engine 4 is a thermal traction engine operatively connected to the rear wheel 3.
[0027] As best seen in Figure 2, the motorcycle 1 further comprises an oscillating arm front suspension 10 adapted and configured to secure the front wheel 2 to the steerer tube 8, said front suspension 10 being configured to be operatively interposed between the steerer tube 8 and the front wheel 2. In the particular embodiment shown in Figure 1, and without introducing any limitations thereby, a portion of the front suspension 10 is covered by a cover shell 20 whose function is essentially linked to aesthetic needs. Such cover shell 20 has been removed in the remaining figures.
[0028] The oscillating arm front suspension 10 includes a steering bar 11 that is mechanically connected or adapted to be connected to the steering handlebar 7 of the motorcycle 1. In the particular non-limiting example shown in Figures 2 and 3, the steering bar 11 has an upper end that is mechanically coupled to the steerer tube 8 so as to rotate integrally therewith. In the particular non-limiting example shown in the accompanying figures, the steering bar 11 is a bar of circular cross section, for example a tubular bar.
[0029] Without introducing any limitation thereby, in the embodiment shown in the figures, the steering bar 11 is arranged cantilevered relative to the steering tube 8 so that the plane of symmetry of the associable front wheel 2 passes along the steering axis.
[0030] The oscillating arm front suspension 10 further includes a first oscillating arm 100 having a first end 101 and a second end 102 opposite the first end 101 .
[0031] A first end 101 of the first oscillating arm 100 is rotatably joined to the steering bar 11, preferably at an end 11' of the steering bar 11. The first oscillating arm 100 carries a rotation pin 103 of the possible front wheel 2 of the motorcycle 1. In particular, the rotation pin 103 is supported directly on the first oscillating arm 100.
[0032] In particular, the rotation pin 103 defines a rotation axis AA for the front wheel 2. Preferably, the rotation pin 103 has an end that is forcibly engaged by interference and clamped inside a seat defined in the second end 102 of the first oscillating arm 100. More preferably, the rotation pin 103 is clamped inside said seat so as to prevent rotation of the rotation pin 103 relative to the first oscillating arm 100.
[0033] The oscillating arm front suspension 10 further includes a shock absorber assembly 30 extending between the mounting head 31 and the mounting foot 32 .
[0034] According to an embodiment, the shock absorber assembly 30 comprises a spring 33 and dampers 34, 35, e.g., hydraulic or pneumatic dampers. For example, the spring 33 is a coil spring interposed between the mounting head 31 and the mounting foot 32 of the shock absorber assembly 30 to exert a resilient thrust that tends to move the mounting head 31 and the mounting foot 32 away from each other. The spring 33 preferably surrounds the dampers 34, 35. The dampers 34, 35 preferably comprise a sheath 34 and a stem 35 having at least one portion adapted and configured to slide inside the sheath 34.
[0035] The mounting head 31 of the shock absorber assembly 30 is mechanically connected to the steering bar 11 by a cylindrical hinge oriented along an axis parallel to the axes A, B, C. Such a cylindrical hinge can be replaced by a spherical hinge made by a "unibal" or, more advantageously, by an elastic bushing 36, for example by a silent block.
[0036] The oscillating arm front suspension 10 further a support element 12 of a shock absorber assembly 30 to which a mounting foot 32 is rotatably joined, for example to which the mounting foot 32 is rotatably hinged; a second oscillating arm 200 operatively interposed between the steering bar 11 and the support element 12 and rotatably joined to the steering bar 11 and the support element 12 .
[0037] According to a particularly advantageous embodiment, the rotation pin 103 defines a first axis of rotation AA, the mounting foot 32 is rotatably coupled to the support element 12 for rotation about a second axis of rotation BB, and the second vibrating arm 200 is rotatably coupled to the support element 12 for rotation about a third axis of rotation CC (FIG. 4). The first, second, and third axes of rotation are aligned with one another along the same plane. However, the first, second, and third axes of rotation may not be aligned with one another.
[0038] The first vibrating arm 100 and the second vibrating arm 200 may be parallel to each other or may be tilted. Furthermore, as will be better explained below, the first vibrating arm 100 and the second vibrating arm 200 may have the same length or different lengths from each other.
[0039] According to an advantageous embodiment, the second oscillating arm 200 has a first end 201 that is rotatably, for example hinged, connected to the steering bar 11 and a second end 202 that is rotatably, for example hinged, connected to the support element 12. The support element 12 is, for example, a support bracket or consists of a support bracket.
[0040] The ends 201 and 202 can be connected to the respective parts of the suspension by cylindrical hinges, or, as shown in Figures 13 and 13', the ends 201 and 202 constitute respective ball joints 2003. This last embodiment works equally well, even though it introduces more degrees of freedom relative to those necessary and sufficient for a cylindrical hinge.
[0041] Preferably, an abutment element 2004, e.g., a washer made of plastic or similar material, is associated with the spherical hinge 2003. Such an abutment element 2004 substantially limits the rotation of the second oscillating arm 200 about its axis.
[0042] Structurally, a spherical hinge 2003 is attached to at least one or both of the ends 201, 202, which are inserted into the connection of the arm 200 consisting of a pin 2001 clamped by a clamping element 2202, for example a clamping nut. An abutment element 2004 contacts the second oscillating arm 200 and limits its movement around its axis of rotation.
[0043] According to a particularly advantageous embodiment, the steering bar 11, the first oscillating arm 100, the support element 12 and the second oscillating arm 200 are operatively connected to one another to form a four-bar link, in which the first oscillating arm 100 and the second oscillating arm 200 form a first set of opposing elements of the four-bar link, and the steering bar 11 and the support element 12 form a second set of opposing elements of the four-bar link.
[0044] According to a particularly advantageous embodiment, the steering bar 11, the first oscillating arm 100, the support element 12 and the second oscillating arm 200 are operatively connected to one another forming a four-bar kinematic system, in which in the kinematic diagram the steering bar 11 forms the fixed element, the support element 12 forms the connecting rod and the first oscillating arm 100 and the second oscillating arm 200 form two cranks.
[0045] According to an embodiment, the first oscillating arm 100, the second oscillating arm 200 and the support element 12 are arranged and shaped so as not to exceed the possible radial occupation of the front wheel 2. This solution has the advantage of having a highly reduced aesthetic impact.
[0046] According to a preferred embodiment, the support element 12 is rotatably joined to, for example rotatably hinged to, a rotation pin 103 of the front wheel 2. Preferably, the rotation pin 103 projects from a first oscillating arm 100 which engages in a seat 13 defined in the support element 12, crosses completely to exit on the opposite side with respect to the inlet side, and projects from said seat 13 in such a way that the hub 15 of the front wheel 2 can engage on the protruding part of the rotation pin 103.
[0047] According to an advantageous embodiment, at least one bearing 14, for example a ball bearing or needle bearing, is operatively interposed between the rotation pin 103 and the seat 13, which bearing is also preferably accommodated inside the seat 13.
[0048] The support element 12 is adapted and configured to support a braking member 16 acting in particular on the front wheel 2, for example a caliper 16 for a disc brake or the drum of a drum brake, i.e. the stationary part of the drum brake, in other words the part of the drum brake that carries the brake jaws. In the particular example shown in the figures, the support element 12 supports the caliper 16 of a disc brake, this disc being designated with the reference numeral 160.
[0049] It will now be explained how it is possible to change the behavior of the oscillating arm suspension 10 by changing the structure of the same so as to adjust the diving effect of the suspension 10 when braking.
[0050] 5 is a diagram illustrating the behavior of the suspension 10 as a function of the position of the instantaneous center of rotation (CIR) of the contact point of the tire of the wheel 2 with the ground. The CIR shown is that of the support element 12 and varies with dive, describing a curve called the displacement curve.
[0051] In particular, according to the invention, the quadrilateral suspension can be kinematically outlined as a pair of cranks, i.e., a first and a second oscillating arm, which move relative to a steering bar representing a fixed frame, and which are connected to each other on opposite sides of the steering bar by a connecting rod element, which is represented by a support element 12.
[0052] During braking, the wheel, brake caliper and support element 12 can be assimilated into one group, so that the CIR is that of the support element 12. The CIR is therefore defined by the support element 12 being interconnected at its ends facing a pair of cranks.
[0053] A suspension has a pro-dive effect or behavior if the component of the braking force on the ground, perpendicular to the connection between the tire's contact point on the ground and the CIR, compresses the suspension. In this case, such a component of the braking force falls within box Q1 or Q3 of Figure 5. On the other hand, if the component of the braking force on the ground, perpendicular to the connection between the tire's contact point on the ground and the CIR, extends the suspension, the suspension has an anti-dive effect or behavior. In this case, such a component of the braking force falls within box Q2 or Q4 of Figure 5.
[0054] 6-8 are perspective views showing the variation of CIR as a function of the dive degree of the front suspension 10 when the second vibrating arm 200 is shorter than the first vibrating arm 100. Fig. 6 shows the suspension in an extended configuration, Fig. 7 shows the half-travel configuration, and Fig. 8 shows the maximum compression or maximum dive configuration. Based on the variation of CIR shown in Figs. 6-8, it can be inferred that the front suspension 10 has a pro-dive behavior that decreases as the suspension dives.
[0055] Figures 9-11 are perspective views showing the variation of CIR as a function of dive for the front suspension 10 when the second vibrating arm 200 is longer than the first vibrating arm 100. Figure 9 shows the extended suspension configuration, Figure 10 shows the half-travel configuration, and Figure 11 shows the maximum compression or maximum dive configuration. Based on the variation of CIR shown in Figures 9-11, it can be inferred that the front suspension 10 has pro-dive behavior that decreases with dive up to about half suspension travel, while beyond this point it has increasing anti-dive behavior.
[0056] According to a particularly advantageous embodiment, the second vibrating arm 200 is an arm with an adjustable length. For example, the second vibrating arm 200 consists of at least two parts, each having a part with an external thread (i.e., a screw part) and a part with an internal thread (i.e., a nut part) adapted to receive the part with the external thread. By rotating the two parts relative to each other to screw them together or unscrew them, the length of the second vibrating arm 200 can be decreased or increased, respectively.
[0057] 12 and 13 show an advantageous, non-limiting embodiment of a second vibrating arm 200, which includes a first end 201 and a second end 202, as well as a central portion 203 interposed between the end portions 201 and 202. The first end 201 includes a first externally threaded pin 211, and the second end 202 includes a second externally threaded pin 212. The pins 211 and 212 are therefore provided with respective threads having opposite thread directions, i.e., one right-hand thread and the other left-hand thread, or vice versa. The central portion 203 includes two opposing internally threaded seats 221 and 222 adapted to receive the pins 211 and 212 therein by threading. The opposing seats 221 and 222 are therefore provided with respective internal threads. In this way, by varying the degree of threaded engagement between the end portions 201, 202 and the central portion 203, it is possible to vary the length of the second vibrating arm 200; in other words, it is possible to lengthen or shorten the second vibrating arm 200 without detaching the end portions 201, 202 from their respective fasteners. In the embodiment shown, the central portion 230 comprises at least one engaging and / or gripping element, in particular an engaging hole 230, for facilitating rotation of the central portion 203 relative to the end portions 201, 202, for example using a tool. Again, in the particular embodiment shown, the second vibrating arm 200 comprises at least one locking element 233, in the embodiment two anti-threading lock nuts 233, adapted and configured to prevent undesired variations in the length of the second vibrating arm 200.
[0058] Obviously, other similar or equivalent solutions are possible for varying the length of the second oscillating arm 200, for example consisting in the oscillating arm 200 having only two parts that can be screwed or not screwed into each other, instead of three parts as in the previously described embodiment.
[0059] As a further example, the second vibrating arm 200 may have at least two parts that slide telescopically relative to one another, and a locking means for locking the sliding may be selectively operable to adjust the length of the second vibrating arm 200. As previously described with reference to FIGS. 6-11 , if the length of the second vibrating arm 200 is adjustable, it is advantageous to change the shape of the kinematic system formed by the two vibrating arms 100, 200, the steering bar 11, and the support element 12, thereby adjusting the dive of the suspension 10 and adjusting its pro-dive or anti-dive effect. In other words, by changing the length of the second vibrating arm 200, it is possible to change the shape of the four-bar link formed by the two vibrating arms 100, 200, the steering bar 11, and the support element 12. Therefore, the aforementioned advantageous means represents one possible example of an adjustment means for changing the shape of the four-bar link. Additionally or alternatively, the aforementioned shape change may be achieved by configuring the possibility of adjusting the length of the first vibrating arm 100.
[0060] Additionally or alternatively, as a further example of adjustment means adapted and configured to change the shape of the four-bar link, it is possible to provide means by which the position of an articulation point 250, for example a hinge point, between the second oscillating arm 200 and the steering bar 11 along the steering bar 11 can be adjusted. Referring to FIG. 14, to achieve this, it is possible, for example, to provide that said articulation point 250 is arranged to slide, for example inside, a movable element 251 relative to the steering bar 11, and that means are provided for selectively locking the sliding of the movable element 250. For example, the movable element can be a piston or a slider. The movable element 251 can be moved, for example, by a mechanical or electromechanical actuator 252 integrated into the steering bar 11. Referring again to FIG. 14, in the particular example shown, the steering bar comprises a slotted hole that defines the possible movement of the articulation point 250 along the steering bar 11, for example, receiving a pin coaxial with the articulation point 250. Referring again to Figure 14, there is shown a suspension having a second oscillating arm 200 as described above with reference to Figures 12 and 13, and it should be noted that both the length of said second oscillating arm on the steering bar 11 and the articulation point 250 of said second oscillating arm can be adjusted. However, this does not mean that the two adjustments must necessarily be configured simultaneously.
[0061] To vary the articulation point, it is further possible to configure the articulation point 250 to be selectable between a plurality of articulation points 250, 260, 270 discretely defined on the steering bar 11. For this purpose, two or more circular holes defining respective hinges or articulation axes can be configured on the steering bar 11. Referring to the example of Figure 3, for example, three articulation points 250, 260, 270 are configured, which can be mutually exclusively selected to adjust the hinge point of the first end 201 of the second oscillating arm 200 on the steering bar 11.
[0062] Based on the above explanation, it can therefore be seen that the oscillating arm front suspension 10 of the type described above makes it possible to achieve the objectives set out above with reference to the prior art.
[0063] In fact, the above-described oscillating arm front suspension 10 has an improved ability to optimally respond to loads, reducing or eliminating the pro-dive or anti-dive effects of prior art oscillating arm front suspensions. The above-described oscillating arm suspension also makes it possible to eliminate bending loads on the shock absorber assembly 30, thus increasing the smoothness of the suspension 10.
[0064] Without prejudice to the principles of the invention, the details of the embodiments and construction may vary widely with respect to the above description, which has been given as a non-limiting example, without departing from the scope of the invention thereby defined in the appended claims.
Claims
1. A vibrating arm front suspension (10) for a saddle-ride type vehicle (1), comprising: a steering bar (11) mechanically connected to the steering handlebar (7) of the saddle-ride type vehicle (1); a first vibrating arm (100) having a first end (101) and a second end (102) opposite to the first end (101), the first end (101) of the first vibrating arm (100) being rotatably joined to the steering bar (11), the first vibrating arm (100) directly bearing a rotation pin (103) of an associated front wheel (2) of the saddle-type vehicle (1); a shock absorber assembly (30) extending between a mounting head (31) and a mounting foot (32); a support element (12) adapted and configured to support the shock absorber assembly (30) and the damping member (16), the mounting foot (32) being rotatably joined to the support element (12); a second vibrating arm (200) operably interposed between the steering bar (11) and the support element (12), the second vibrating arm (200) being rotatably joined to the steering bar (11) and the support element (12).
2. 2. The oscillating arm front suspension (10) of claim 1, wherein the first end (101) of the first oscillating arm (100) is rotatably joined to the steering bar (11) at an end (11') of the steering bar (11).
3. 3. The oscillating arm front suspension (10) according to claim 1 or 2, wherein the second oscillating arm (200) has a first end (201) rotatably connected to the steering bar (11) and a second end (202) rotatably connected to the support element (12).
4. said rotation pin (103) defines a first rotation axis (A-A); the mounting foot (32) is rotatably joined to the support element (12) for rotation about a second axis of rotation (B-B); the second oscillating arm (200) is rotatably joined to the support element (12) so as to rotate about a third axis of rotation (C-C); 4. The oscillating arm type front suspension (10) according to claim 1, wherein the first rotation axis (A-A), the second rotation axis (B-B), and the third rotation axis (C-C) are aligned along the same plane.
5. 5. The oscillating arm front suspension (10) according to claim 1, wherein the steering bar (11), the first oscillating arm (100), the support element (12), and the second oscillating arm (200) are operatively connected to one another to form a four-bar link.
6. 6. The oscillating arm front suspension (10) according to claim 5, wherein in the four-bar link, the first oscillating arm (100) and the second oscillating arm (200) form a first pair of opposing elements of the four-bar link, and the steering bar (11) and the support element (12) form a second pair of opposing elements of the four-bar link.
7. 7. A oscillating arm front suspension (10) according to claim 5 or 6, comprising an adjustment means adapted and configured to change the shape of the four-bar link.
8. The second vibration arm (200) is an arm whose length varies, 8. The oscillating arm front suspension (10) according to claim 7, wherein the adjusting means constitutes the second oscillating arm (200).
9. 9. The oscillating arm front suspension (10) according to claim 7 or 8, wherein the adjusting means comprises means adapted to change the position of the articulation point between the steering bar (11) and the second oscillating arm (200).
10. A vibrating arm type front suspension (10) according to any one of claims 1 to 9, wherein the first vibrating arm (100), the second vibrating arm (200), and the support element (12) are arranged and formed so as not to exceed the radial length of the associated front wheel (2).
11. The oscillating arm front suspension (10) according to any one of claims 1 to 10, wherein the braking member (16) comprises a caliper for a disc brake.
12. A motorcycle (1) comprising at least one oscillating arm front suspension (10) according to any one of claims 1 to 11.
13. 13. A motorcycle (1) according to claim 12, characterized in that the motorcycle (1) is a scooter.
Citation Information
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