The present invention relates in general to the field of mechanical transmissions. More precisely, the present invention refers to a chain transmission, particularly for bicycles, allowing to continuously vary the transmission ratio.
It is known to use, particularly in chain mechanical transmissions, systems for changing the transmission ratio which adopt solutions for modifying the chain's radius when passing over a single chainring, so as to avoid the need to resort to a plurality of chainrings.
An example of a system of this type, applied to a bicycle chain transmission, is known from document DE 3932342, where a slotted disc is proposed which has a plurality of slots arranged in a spiral, in which forks engaging with the chain are slidably received. In this way, the forks can be radially moved to vary the chain's radius. This known system, however, has little flexibility, since it does not make it possible to vary the maximum distance that can be reached by the fork from the centre of the disc. The forks are in fact forced to follow the path of the slots in the disc, which have a fixed size that cannot be modified, and therefore the travel of the forks with respect to the disc will always follow the same path, without the possibility of being modified and thus of varying the transmission ratio between the disc of the chainring and the rear sprocket.
A chain transmission having the characteristics specified in the preamble of the attached independent claim 1 is known from US 2004/198542. According to this known solution, the forks are supported by a driving wheel so that each of them is able to tilt around a respective tilting axis parallel to the axis of rotation of the wheel. The tilting of the forks with respect to the driving wheel is opposed by means of springs. This entails a reduction in the efficiency of the transmission, since part of the energy is dissipated by compression of the springs.
It is an object of the present invention to solve the aforementioned problems, providing a chain transmission with continuously variable transmission ratio which has a higher efficiency than the prior art.
This and other objects are fully achieved according to the invention by virtue of a transmission having the characteristics specified in independent claim 1.
Advantageous embodiments of the invention are the subject matter of the dependent claims, whose content is to be understood as forming an integral and integrating part of the description which follows.
In short, the invention is based on the idea of providing a transmission in which each tilting fork is connected to respective braking means capable of hindering the tilting of the tilting fork around its own tilting axis. Since the tilting forks are locked, wastage of power is avoided and thus the total efficiency of the transmission is maximized.
According to a further aspect of the present invention, the transmission comprises a system for varying the radial travel of the tilting forks with respect to the chainring, thus varying the transmission ratio between the chainring and the sprocket, by means of a shifter in which a curved track is formed which delimits a path along which the tilting forks move. Following the path defined by the curved track, the tilting forks move with respect to the centre of the chainring, moving towards it or away from it, until they are located in the desired radial position to provide the chain with the selected diameter. The shifter can also be radially moved with respect to the chainring, so as to vary the dynamics with which the sliders associated to the tilting forks move towards or away from the centre of the chainring. Thanks to this solution, it is possible to continuously change the positioning of the tilting forks, and consequently to continuously vary the transmission ratio.
The structural and functional characteristics of preferred embodiments of a mechanical chain transmission with continuously variable ratio according to the invention will now be described with reference to the attached drawings, in which:
Before explaining in detail a plurality of embodiments of the invention, it must be clarified that the application of the invention is not limited to the constructional details and the configuration of the components set forth in the following description or shown in the drawings. The invention can be carried out according to other embodiments than those here proposed. It must also be understood that the phraseology and terminology here used have a purely descriptive purpose and must not be taken as limiting the scope of protection of the invention.
The chainring 12 comprises a disc 16 rotatable around an axis of rotation x. The disc 16 carries a plurality of radially movable meshing devices 22 which allows engagement between the chainring 12 and the chain 14 for the transmission of torque from the chainring 12 to the sprocket(s) 13 by means of the chain 14, as will be better appreciated in the remaining part of the description.
As shown in
Still with reference to
The braking means comprise a braking member 38, which is supported by the support body 24 and is interposed between the tilting fork 28 and the tilting member 32. The braking member 38 is tiltable around a tilting axis A, extending perpendicular to the tilting axes x′ and x″ of the tilting fork 28 and of the tilting member 32, between a first position (or rest position), in which the braking member 38 is not in contact with the tilting member 32, and a second position (or working position), in which the braking member 38 is in contact with the tilting member 32 so as to prevent the latter from tilting around the respective tilting axis x″. The movement of the braking member 38 between the aforesaid first and second positions takes place by means of a control member 40. More specifically, the braking member 38 has a face 44 facing towards the tilting member 32, on which there are locking elements 46 for engaging the tilting member 32 to prevent the latter from tilting around the respective tilting axis x″. According to an embodiment of the invention, the locking elements 46 are formed by projections made of rubber or other friction material, which are urged against the tilting member 32 when the braking member 38 is in the second position.
Still with reference to
Preferably, the control member 40 has an elastic spacer 42 which projects so as to be spaced from the face 44 of the braking member 38. In the embodiment illustrated in
In an initial phase, illustrated in
As the chain approaches the teeth 28a of the tilting fork 28, as illustrated in
When the chain 14 fully meshes with the teeth 28a, the elastic spacer 42 passes over the chain, as may be seen in
According to this variant embodiment, the control element 40 is a lever having an end 52 arranged on the opposite side from the braking member 38. This end 52 can pass through a slot 53 in the body of the tilting fork 28 and project centrally from the latter or, according to an alternative solution not illustrated, project laterally from the tilting fork 28. The opposite end 54 (i.e. the brake-side end) of the control element 40 is, on the other hand, connected to the braking member 38, for example by engagement of a curved rib 56 of the braking member 38 in a slot 54a of the control element 40. In this way, the control element 40, which is drivingly connected for tilting with the tilting fork 28, does not drag the braking member 38 in rotation but, when the end 52 is pressed by the chain link 14a, pulls the braking member 38 towards the tilting fork 28, activating the braking action. In other words, the chain link 14a brings down the end 52 of the control element 40 projecting from the tilting fork 28, thus pulling the braking member 38 towards the chain 14. Consequently, the braking member 38 rotates around the transverse tilting axis A so as to engage with the tilting member 32. Preferably, in order to oppose the tilting of the tilting member 32 an elastic element, for example a spring, is provided instead of a magnet as in the above illustrated embodiment.
As the chain 14 approaches, as shown in
When the chain 14 is fully meshed with the teeth 28a of the tilting fork 28, as shown in
Two further embodiments of a meshing device according to the invention are illustrated in
These two further embodiments differ from those previously described with reference to
The braking member 138 and the control member 140 according to the embodiment of
The braking member 138 and the control element 140 according to the embodiment of
With reference finally to
Each slider 60 comprises a rocking lever 64, having on an arm thereof a coupling device which engages the chainring 12 and radially locks the slider 60 in the desired position, i.e. the radial position which ensures the preselected transmission ratio. The coupling device is preferably formed by a wedge 66 meshing with teeth 66a which are provided on the disc 16 and are spaced a certain distance apart in a direction parallel to the radial guides 20. Each tooth 66a corresponds, therefore, to a given radial position in which the slider 60 can be stopped. Conveniently, a magnetic button 67 can be associated to the wedge 66 to ensure a greater locking force (as in
Preferably, a disengagement roller 68 is rotatably mounted on the arm of the rocking lever 64 opposite the arm carrying the wedge 66, in such a manner that when the disengagement roller 68 is urged towards the disc 16, the wedge 66 is lifted and disengaged from the disc 16 and the slider 60 is therefore free to slide radially with respect to the disc 16. The rocking lever 64 is in fact pivoted in an intermediate position on a pin 65, and therefore lowering of the arm which carries the disengagement roller 68 causes the lifting of the wedge 66 and its disengagement from the tooth 66a, thereby radially unlocking the respective slider 60. Conveniently, the lowering of the disengagement roller 68 can be achieved by providing the shifter 18 with a variable thickness (as shown in
According to an embodiment, each sliders 60 comprises a respective cylindrical housing 70 arranged to slide along the side walls of the curved guide 62. For example, the cylindrical housing 70 can be made of teflon, to improve sliding along the curved guide 62. Secondary rollers 74 can be rotatably mounted, for example on the intermediate pin 65, to make radial sliding of the slider 60 on the chainring 12 easier. Optionally, a cylindrical sleeve 72 may contain the rocking lever 64 and have radial holes with the intermediate pin 65 passing therethrough, so that the secondary rollers 74 are inside this cylindrical sleeve 72. The entire assembly can be contained in the cylindrical housing 70, as may be seen in
A peg 76, projecting from the slider 60, can pass through the disc 16 and connect the slider 60 for example to a respective meshing device 22 provided with a tilting fork 28.
As will be evident from the above description, the present invention provides a reliable and very efficient torque transmission system, which is easily adjustable for continuously setting the desired transmission ratio and which makes it possible to vary the transmission ratio without interruption in the transmission of torque. Furthermore, the transmission according to the present invention can be used independently of the direction of rotation of the chainring.
Various aspects and embodiments have been described of a mechanical transmission with continuously variable transmission ratio. It must be understood that each embodiment can be combined with any other embodiment here described. Furthermore, the invention is not limited to the embodiments here described, but may be varied within the scope defined by the attached claims.
Number | Date | Country | Kind |
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102015000057739 | Oct 2015 | IT | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/IB2016/055905 | 10/3/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2017/056076 | 4/6/2017 | WO | A |
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Number | Date | Country | |
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20180290710 A1 | Oct 2018 | US |