TRANSMISSION DEVICE FOR GEAR SWITCHING, AND HUMAN-POWERED VEHICLE COMPRISING SAID DEVICE
20190368579 ยท 2019-12-05
Inventors
Cpc classification
F16H2200/0065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M6/55
PERFORMING OPERATIONS; TRANSPORTING
B62M11/145
PERFORMING OPERATIONS; TRANSPORTING
B62M11/08
PERFORMING OPERATIONS; TRANSPORTING
F16H2306/46
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2704/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B62M9/06
PERFORMING OPERATIONS; TRANSPORTING
F16H2200/0013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H3/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The transmission (10) comprises a support (40) where an input central shaft (1) is rotatably supported. A central wheel (11) is integral with the central shaft (1) and rotates therewith. The transmission further comprises an output wheel (18) and a rotary unit (100) rotatably supported by the support (40) around a rotation axis (100) to take a plurality of angular positions. Selectable gear pairs (101-109) are rotatably supported on the rotary unit (100). A rotation mechanism of the rotary unit (100) brings the rotary unit (100) into one of said angular position selectively. In each angular position of the rotary unit (100) a selectable gear pair (101-109) transmits motion from the central wheel (11) to the output wheel (18);
Claims
1. A transmission comprising: a support for rotatably supporting an input central shaft; a central wheel integral with the central shaft and rotating therewith; an output wheel; a rotary unit rotatably supported by the support around a rotation axis to take a plurality of angular positions; a plurality of selectable gear pairs each of which gear pairs is rotatably mounted on the rotary unit; a rotation mechanism of the rotary unit adapted to bring selectively the rotary unit into one of said angular positions; wherein in each angular position of the rotary unit a respective one of said selectable gear pairs transmits motion from the central wheel to the output wheel; and wherein each selectable gear pair is configured to provide a different gear ratio between the central wheel and the output wheel.
2. The transmission according to claim 1, wherein each selectable gear pair comprises a respective primary gear and a respective secondary gear.
3. The transmission according to claim 2, wherein a ratio between a diameter of the primary gear and a diameter of the respective secondary gear differs between the selectable gear pairs, so as to define a different gear ratio of the transmission for each selectable gear pair.
4. The transmission according to claim 2, wherein the rotary unit comprises two parallel rings mounted perpendicularly to the central shaft, and wherein the selectable gear pairs are arranged between the two rings, with the respective rotation axes thereof perpendicular to the two rings.
5. The transmission according to claim 4, wherein the primary gear and the secondary gear of each selectable gear pair are parallel to each other, integral with an intermediate hub portion and spaced from one another by said intermediate hub portion, so as to be respectively adjacent to the rings of the rotary unit.
6. The transmission according to claim 1, wherein the central wheel engages said selectable gear pairs through an intermediate gear comprising a first intermediate wheel meshing with the central wheel and a second intermediate wheel selectively meshing with each selectable gear pair according to the angular position taken by the rotary unit through the rotation mechanism.
7. The transmission according to claim 6, wherein the output wheel is concentric with the rotary unit and has a toothing meshing with the selectable gear pairs; wherein the output wheel is configured as an inner gear; and wherein all the selectable gear pairs mesh simultaneously with the output wheel.
8. The transmission according to claim 1, wherein the output wheel is external with respect to the rotary unit and selectively meshes with only one of said selectable gear pairs and wherein the rotary unit is eccentric with respect to the central wheel so that the selectable gear pairs selectively mesh, one at a time, with the central wheel.
9. The transmission according to claim 1, wherein the output wheel is external with respect to the rotary unit and selectively meshes with only one of said selectable gear pairs and wherein the rotary unit is concentric with respect to the central wheel so that all said selectable gear pairs simultaneously mesh with the central wheel.
10. The transmission according to claim 1, wherein the rotation mechanism comprises a switching unit configured to selectively perform a switching movement and to make the rotary unit displace angularly around the rotation axis thereof so as: to disengage a currently selected gear pair from a mechanical transmission between the central wheel and the output wheel; and to make a further selectable gear pair, different from said current selected gear pair, engage the mechanical transmission between the central wheel and the output wheel.
11. The transmission according to claim 10, further comprising an actuator unit to control the switching movement of the switching unit, wherein the actuator unit is selected among: a manual actuator unit provided with an actuation control; and a servo-assisted actuator unit provided with an actuation motor having control buttons.
12. The transmission according to claim 11, wherein: the switching unit comprises a switching wheel provided with a drawing member suitable to couple to the rotary unit; the rotary unit is provided with a plurality of radial grooves arranged around the rotation axis of the rotary unit uniformly angularly spaced and suitable to couple to the drawing member of the switching wheel; so that a rotation of the switching wheel makes the drawing member engage a radial groove and, as the rotation continues, the drawing member makes the rotary unit rotate by an angle equal to an angle of 360 divided by the number of selectable gear pairs.
13. The transmission according to claim 12, wherein the switching unit comprises a coupling toothed gear with a longitudinally incomplete coupling/decoupling tooth, and the actuator unit is configured to cause a translation of the coupling toothed wheel from a position of normal running to a switching position, such that: in the switching position the coupling/decoupling tooth meshes with said central wheel or with an auxiliary wheel rotatably actuated by the central wheel, so that the central wheel, when rotating, draws the coupling toothed gear into rotation; and that the coupling/decoupling tooth disengages from the central wheel or the auxiliary wheel when the rotary unit has rotated by a desired angle around the axis thereof, stopping said coupling toothed gear.
14. The transmission according to claim 13, wherein the coupling toothed gear and the switching wheel are connected to one another such that the rotation and the stopping of the coupling wheel results in the rotation and the stopping of the switching wheel.
15. The transmission according to claim 12, further comprising elastic return means for returning to a normal running position, the elastic return means being associated with the coupling toothed gear such that, upon actuating the actuator unit without retention thereof, the coupling toothed gear and the switching wheel make only one turn up to a position of disengagement of the longitudinally incomplete tooth, and therefore the rotary unit rotates causing the switching from a gear ratio to a contiguous gear ratio.
16. The transmission according to claim 10, wherein the switching unit comprises at least one angular blocking element for blocking the rotary unit, and the rotary unit is provided with a plurality of recesses that are uniformly angularly spaced around the rotation axis of the rotary unit and are configured selectively to engage the blocking element; the blocking element being arranged to disengage the peripheral recesses when the switching unit causes the rotation of the rotary unit.
17. The transmission according to claim 16, wherein the blocking element is integral with the switching wheel and is in a given angular position with respect to the drawing member, and wherein the peripheral recesses are angularly offset with respect to the radial grooves by such an offset angle that, when the drawing member engages one of the radial grooves, during said rotation of the switching wheel, the angular blocking element disengages one of the recesses.
18. The transmission according to claim 17, wherein the recesses are provided in correspondence of an edge of at least one of said two rings, and the recesses are formed in pairs in correspondence of edges of each of said two rings, in corresponding angular positions.
19. The transmission according to claim 10, wherein the manual actuator unit comprises a cable, constrained at one end to said actuation control so as to receive a traction therefrom and, at a second end, to an actuation element configured to cause said switching movement of said switching unit due to said traction.
20. The transmission according to claim 19, wherein the second end of the cable is torsionally constrained to the switching unit so that, when the switching unit angularly displaces the rotary unit, the cable makes a rotation depending on the angular displacement.
21. The transmission according to claim 20, further comprising a display device wherein an indicator is provided, configured to move depending on said rotation of the cable, so as to display a symbol indicating the current gear ratio.
22. The transmission according to claim 1, further comprising an auxiliary motor associated with the central wheel, so as to transmit a rotary motion to the central wheel, that can be added to the motion imparted through the central shaft.
23. The transmission according to claim 22, further comprising: a detector for detecting a presence of the central shaft and detecting a rotation direction of the central shaft, the detector being adapted to emit a signal according to the rotation direction of the central shaft; a control unit adapted to: receiving and recognizing said rotation direction signal, and enabling a rotation of the auxiliary motor in the same direction as the rotation direction of the central shaft; so as to allow the gear ratio switching made proceeding in the direction depending on the rotation direction of the central shaft.
24. A vehicle comprising: a frame; at least a drive wheel arranged rotatable on the frame and provided with a drive element; a transmission comprising: a support which is rigidly fastened to the frame; an input central shaft rotatably supported in said support; a central wheel integral with the central shaft and rotating therewith; an output wheel; a rotary unit rotatably supported by the support around a rotation axis to take a plurality of angular positions; a plurality of selectable gear pairs each of which is rotatably mounted on the rotary unit; a rotation mechanism of the rotary unit adapted to bring selectively the rotary unit into one of said angular positions; wherein in each angular position of the rotary unit a respective one of said selectable gear pairs transmits motion from the central wheel to the output wheel; and wherein each selectable gear pair is configured to provide a different gear ratio between the central wheel and the output wheel; members for transmitting torque to the central shaft; and a mechanical transmission configured to transmit motion from the output wheel of the transmission to the drive of the drive wheel.
25. A vehicle according to claim 24, wherein the mechanical transmission comprises: an output rotatable element, supported rotatable by said support of the transmission and mechanically coupled to the output wheel of the transmission; and a member for transmitting motion from the output rotatable element to the drive of the drive wheel.
26. A vehicle according to claim 24, wherein the members for transmitting torque to the central shaft of the transmission comprise at least one member for actuation through the muscle force of the vehicle's user.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0086] The invention will be explained below by means of the description of some embodiments thereof, given just by way of non-limiting examples, and with reference to the attached drawing, where:
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DETAILED DESCRIPTION OF THE INVENTION
[0108] With reference to
[0109] Even if the description below is made only with reference to a bicycle 9, it is understood that it also applies, obviously with the necessary modifications, to any human-powered vehicle actuated through pedals or handles, such as bike taxis, tricycles, quadcycles, torpedo bikes, urban rickshaws, tandems.
[0110] Moreover, without limiting the general scope of the disclosure, reference will be made in the description to the case where the transmission member 5 is a chain, and therefore the output and drive elements are respectively a sprocket 19 and a pinion 4. However, any other transmission member may be provided for transmitting motion from the pedals to the wheel 6. In an embodiment, not shown, the transmission member 5 is a belt and the output and drive elements 4, 19 are pulleys, in particular a toothed belt mounted between toothed pulleys. In a further embodiment, not shown, the transmission member 5 comprises a drive shaft, for instance a cardan shaft.
[0111] Preferably, even if not mandatory, the support 40 is shaped like a box or casing, as shown in the figures.
[0112] Respective pedals 2 are mounted, through pedal cranks 2, at the end of the shaft 1; through the pedals the shaft receives the rotary motion imparted by the user. According to the invention, the transmission device 7 is mounted between the central shaft 1 and the transmission chain 5. More precisely, the transmission device 7 is arranged between the frame 3 and one of the pedals 2, and has a drive shaft coinciding with the central shaft 1, while the output wheel or sprocket 19 meshes with the chain 5.
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First Embodiment
[0114]
[0115] As shown in
[0116] As shown in
[0117] Advantageously, the rotary unit 100, seen from the side as in
[0118] In this case, the number n of selectable gear pairs is nine, corresponding to a same number of gear ratios between the central shaft 1 and the wheel 6 (
[0119] The central wheel 11 and the rotary unit 100 are arranged with the respective axes 1 and 100 parallel to each other, and spaced from each other by a distance E (
[0120] An integral guide, not shown, is arranged inside the casing 40 so as to allow a rotation of the rotary unit 100 with respect to the casing 40 and, therefore, with respect to the frame 3 (
[0121] Each selectable gear pair comprises a primary gear 111-119, and a secondary gear 121-129, parallel to one another, integral with an intermediate hub portion and spaced apart from one another by said intermediate hub portion so as to be adjacent to the rings 131 and 132 of the rotary unit 100 respectively. In particular, the primary gears 111-119, on the one hand, and the central wheel 11, on the other hand, are arranged so that the central wheel 11 can selectively engage each primary gear 111-119, transferring the rotation of the shaft 1 to the respective selectable gear pair 101-109 and making this rotary motion available through the respective secondary gear 121-129.
[0122] As shown in
[0123] With reference to
[0124] As shown in
[0125] By rotating the rotary unit 100 around the axis 100 thereof, along the guide means integral with the support or casing 40, by the angle m 2/n, where m is an integer comprised between 1 and n1, a corresponding selectable gear pair 102-109, not necessary adjacent to the selectable gear pair 101, engages the central wheel 11 and the output wheel 18, respectively through the respective primary gear 112 or 119 and through the respective secondary wheel 122 or 129, thus setting the desired gear ratio.
[0126] To this end, as shown in
[0127] Advantageously, the switching wheel 71 is mounted just outside the rotary unit 100 and parallel to the ring 131. The switching wheel 71 advantageously has, in a peripheral portion thereof, a drawing member 72 that can be configured like a switching protuberance or pin 72 projecting towards the ring 131. Herein, the drawing member 72 will be referred to as switching pin 72.
[0128] In this case, as shown in
[0129] The coupling toothed gear 62 is advantageously provided with at least one coupling/decoupling tooth or incomplete tooth 64, i.e. a tooth realized in only one end portion along the height of the coupling toothed gear 62. Moreover, an auxiliary wheel or inversion wheel 68, meshing with the coupling toothed gear 62, is keyed to the secondary switching shaft 65.
[0130] The actuator unit may be a manual actuator unit 90, comprising a traction cable 91 as in
[0131] The manual actuator 90 is preferably actuatable through a control element 99 accessible by a user, such as a lever 99 arranged on the handlebar 8 of the vehicle (
[0132] In the embodiment of
[0133] Advantageously, the cursor 94 comprises an element 98 with increasing cross-section, for instance a truncated-conical element 98 coaxial with the remaining part of the cursor 94, beyond and preferably near the shoulder 94.
[0134] The secondary switching shaft 65 is provided with a central hole along the axis 65 thereof, where a slidable pin 79 is inserted, whose end 69 is kept pressed against the surface of the element with increasing cross-section 98 by means of an elastic return device 85, described below, resisting the translation of the slidable pin 79 moving away from the element 98. The opposite end 69 of the slidable pin 79 rests on an arm of a lever 82, hinged at an intermediate point or pivot point to the casing 40, or to an element integral therewith; the opposite arm of the lever rests on the primary switching shaft 61, mounted slidable along the axis 61 around a fixed pin 66, that is in turn mounted between two portions 41 and 42 integral with the casing 40. In this way, by pulling the cable 91, which results in the slidable pin 79 translating away from the element 98, the lever 82 controls a displacement of the primary switching shaft 61 in opposite direction.
[0135] An elastic element 85 is arranged between the coupling toothed gear 62 and the portion 41 of the casing, for example a further compression spring 85, preferably around a portion of the fixed pin 66, in order to form, together with the primary switching shaft 61 and the lever 82, said elastic return device, thanks to which, when there is no more traction through the cable 91, the slidable pin 79 returns to the position it had before the traction, translating in opposite direction with respect to what described above. In more detail, the coupling toothed gear 62 is keyed to the primary switching shaft 61 in such a position that, by applying a traction to the cable 91, the gear translates integrally with the primary switching shaft 61, making the coupling/decoupling incomplete tooth 64 thereof engage the central wheel 11. In this way, the rotary motion imparted by pedaling to the central wheel 11 is transmitted to the coupling toothed gear 62 and to the primary switching shaft 61 and also, through the auxiliary wheel 68, to the secondary switching shaft 65, in opposite direction of rotation. Therefore, also the switching wheel 71, which is keyed to the secondary switching shaft 65, is driven into rotation around the axis 65, and the switching pin 72 makes a revolution around the axis 65. The rotation of the primary and secondary shafts 61 and 65 continues until the coupling/decoupling tooth 64 meets again the central wheel 11, i.e. it continues for a complete turn of the coupling toothed gear 62; then, this latter disengages from the central wheel 11 and stops. If, on the contrary, the user continuously pulls the cable 91 for a prolonged time beyond the duration of one turn of the coupling toothed gear 62, and therefore of the secondary gear 68, the coupling toothed gear 62 continues rotating until the coupling/decoupling tooth 64 meets the central wheel 11 for the first time after that the user has released the control element 99.
[0136] During this rotation, the switching pin 72 moves progressively towards an edge of the disc 131 of the rotary unit 100, and engages inside one of the control grooves 150 provided radially in the disc 131, making the rotary unit 100 rotate by at least the angle 2/n, or more in general a multiple m 2/n of said angle. The switching pin 72 and the control groove 150 are configured so that the pin disengages the groove, thus causing the rotary unit 100 to stop rotating around the axis 100, when a selectable gear pair 102 or 109, adjacent to the selectable gear pair 101, that before engaged the central wheel 11, has engaged the central wheel 11. In this way a new gear ratio is set.
[0137] The sequence of
[0138] However, if the action on the lever 99 continues beyond the duration of one turn of the coupling gear 62, this latter continues to rotate getting through one or more intermediate gear ratios, and making a selectable gear pair 101-108 mesh with the central wheel 11 immediately after the release of the lever 99 corresponding to a gear ratio which is not adjacent to the initial one.
[0139] In the gear ratio switching step, the rotary unit 100 is driven into rotation by the central shaft 1 through the central wheel 11, the coupling gear 62, the auxiliary wheel 68 and the switching wheel 71, due to the effect of pedaling. If pedaling is such that the central shaft 1 rotates clockwise, as shown in
[0140] The device 10 preferably comprises blocking means 76,160 for preventing the rotary unit 100 from rotating with respect to the support 40 during the normal running of the vehicle 9, and anyway outside the gear ratio switching steps. In the embodiment of
[0141] In particular, for the embodiment described above,
[0142] The blocking means preferably comprise two blocking elements 76 keyed at a reciprocal distance equal to the distance between the rings 131,132, and the peripheral recesses 160 are provided along the edge, in this case the inner edge, of both the rings 131,132, preferably as pairs of longitudinally aligned recesses.
[0143] This arrangement of the blocking recesses 160 and of the control grooves 150 is also shown in
[0144] In particular, the blocking element may comprise a half wheel 76 arranged so that the profile thereof is concentric with the switching wheel 71 and that, during the gear ratio switching step, the blocking element(s) 76 disengage the blocking recesses 160 corresponding to a current selectable gear pair immediately before, or exactly when, the switching pin 72 engages/disengages the radial control groove 150, so as to enable the rotation of the rotary unit 100 with respect to the casing 40.
[0145] To this end, in an embodiment of the invention the blocking element(s) 76 of each gear can be arranged in a position diametrically opposite to the switching pin 72.
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[0147] The device 10 is preferably provided with communication means for indicating the currently selected gear ratio to the rider of the vehicle 9. In the embodiment illustrated in
[0148] In more detail, the communication means employ a degree of torsional freedom of the cable 91 not used for actuating the switching unit 70. To this end, in addition to the auxiliary gear 68 and the switching gear 71 also a primary communication wheel 86 is keyed to the secondary switching shaft 65, while a secondary communication wheel 87 is integrally provided on a portion of the actuator 90 torsionally integral with the cursor 94 and with the cable 91. In particular, the secondary communication wheel 87 is provided peripherally with respect to the bush 95 where the cursor 94 can slide but cannot rotate. In this way, while the switching unit 70 rotates, i.e. during a step of gear ratio switching, also the primary communication wheel 86 makes a complete turn, and makes the secondary communication wheel 87 rotate by a given angle, causing an equal rotation of the cursor 94 and a rotation/torsion of the cable 91 (
[0149] At the display device 200, the end of the cable 91 is inserted and blocked inside a cable gland gear 92 that therefore rotates integrally with the cable 91 during the gear ratio switching step (
Second Embodiment
[0150] Referring to
[0151] As shown in
[0152] The manual actuator unit 90 of the device 20 comprises the same components of the corresponding actuator unit of the device 10 (
[0153] Referring again to
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[0155] The electric actuation motor 191 is configured so as to make the output shaft 193 rotate by angles equal to angle 2z.sub.2/z.sub.1 (where z1 is the number of teeth of the primary actuation gear 186, and z.sub.2 is the number of teeth of the secondary actuation gear 187), or to an integer multiple thereof, so as to cause, through the first and the second actuation wheels 186, 187 corresponding complete rotations and revolutions of respectively the switching wheel 71 and the switching pin 72 around the axis 61, so as to make the rotary unit 100 rotate around the axis 100 coinciding with the axis of the central shaft 1, by an angle corresponding to the angular distance between a selectable gear pair 101 currently meshing with the output wheel 18 and another selectable gear pair from 102 to 109 corresponding to a desired gear ratio, in particular a selectable gear pair 102 or 109 that is adjacent to the currently selected selectable gear pair 101, thus switching to the new gear ratio, according to what described above with reference to the first variant of the device 20 (
[0156] In this case it is not necessary to provide mechanical means for indicating the current gear ratio, as the servo-assisted actuator unit 190 may be provided with a rotation counter, for example an encoder, not shown, and with program means configured to receive a signal from the rotation counter and to transfer to a display device 200 the new selected gear ratio, after every actuation of the actuator unit 190.
[0157] Similarly, a variant of the device 10 according to the first embodiment (
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[0159] The motor 300 further comprises a rotor 36, in this case provided with permanent magnets 37, integral with the central wheel 11. The set formed by the central wheel 11 and the rotor 36 is connected to the central shaft 1 through a freewheel 39 and a bearing 38. The freewheel 39 is configured to transmit the rotary motion from the central shaft 1 to the central wheel 11 and therefore to the motor in only one rotation direction, in this case in the rotation direction resulting in the forward movement of the vehicle 9, only if the motion coming from the auxiliary electric motor 300 does not exceed, in torque and rotation speed, the motion imparted by the user coming from the central shaft 1. In other words the auxiliary motor 300 adds its drive action to that of the user until the motion coming from the central shaft 1 has a speed lower than the maximum speed of the motion coming from the auxiliary motor 300. Only if the rider pedals very slowly (or does not pedal, in case the local laws allows the motor operation also in this case), the auxiliary motor 300 makes the whole traction work of the vehicle. In this way the torque from the motor does not interfere with the free rotation of the central shaft 1, but acts only as an aid for said free rotation.
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[0161] The freewheel 39 does not allow the rotation of the central wheel 11 in the direction opposite to the running direction of the vehicle 9, acting through the central shaft 1. To avoid the freewheel 39 preventing the device according to the invention from switching the gear ratio by reverse pedaling, i.e. by pedaling in a direction opposite to the running direction, a detector 57 may be provided for detecting the rotation direction of the central shaft 1, configured to generate a signal indicating the running direction. The control unit 50 is configured to receive the rotation direction signal through conventional electric connection means, for example through the power supply cable 33 of the motor 300. The control unit 50 is configured so as to enable, once detected the rotation direction signal, the rotation of the auxiliary motor 300 also in case of pedaling, and therefore of rotation of the central shaft 1, according to a direction opposite to the vehicle actuation direction, thus making the gear ratio switching always possible.
[0162] In an embodiment of the invention, the detector 57 for detecting the rotation direction comprises a disc 35 integrally keyed to the central shaft 1 and provided with peripheral windows or notches 56 that are angularly equidistant from each other, a pair of sensors 57 and 57 emitting a signal and integral with the support 40, a sensitive end of which is arranged close to the face of the disc 35, and that are adjacent to one another along to the circumferential direction of the disc 35, configured to emit signal zero or signal one and to change state when the windows 56 pass in front of them during the rotation of the disc 35. In this way, if the sensor 57 is the first to change state, as shown in the sequence of
[0163] Apart from what illustrated above, the motion transmission during the normal running, as well as the gear ratio switching steps are performed according to what described above with reference to the first variant of the device 10.
[0164] With reference to
[0165] Alternatively or in combination, the device 7 of respectively
[0166] Similarly, as shown in
[0167] In a further embodiment, as schematically shown in
Third Embodiment
[0168] Referring to
[0169] As shown in
[0170] Moreover, the manual actuator 90 comprises the same components as the corresponding actuator unit 90 of the device 10 (
[0171] With reference again to
[0172] Moreover, as schematically shown in
[0173] As shown in
[0174] The above description of specific embodiments discloses the invention from a conceptual viewpoint, so that other people, using the known technique, can modify and/or adapt in various applications these specific embodiments without further researches and without departing from the concept of the invention, and therefore it is intended that such adaptations and modifications shall be considered as equivalent to the specific embodiments. Means and materials to embody the various described functions can be of various nature without however departing from the protective scope of the present invention. It should be understood that used expressions and terminology have only descriptive, and therefore non limiting, purpose.