Device for adjusting the inter-flange space of a bobbin
09926168 ยท 2018-03-27
Assignee
Inventors
Cpc classification
B65H75/145
PERFORMING OPERATIONS; TRANSPORTING
B65H2701/32
PERFORMING OPERATIONS; TRANSPORTING
B65H75/24
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention concerns a bobbin (1) for winding and unwinding a link such as a cable or similar, comprising: a central mandrel (10) comprising two opposing faces (11, 12) perpendicular to a rotational axis (13) of the bobbin (1), two sets of arms (21) each mounted on a respective opposing face of the central mandrel (10), each arm being in contact with an intermediate support positioned between the two ends of same, characterized in that the bobbin comprises a plurality of adjustment elements (30) each associated with a respective arm, the actuation of an adjustment element resulting in a force being applied to the associated arm of same through the intermediate support, the application of said force tending to vary the inclination of said arm around the intermediate support in such a way as to adjust the position of said arm in a plane essentially parallel to the rotational axis of the bobbin.
Claims
1. A bobbin for winding and unwinding a link such as a cable or the like onto the bobbin, including: a central mandrel including two opposite faces perpendicular to an axis of rotation of the bobbin, two sets of arms, each of the two sets of arms being mounted on a respective opposite face of the central mandrel, each arm being provided with a proximal end near the central mandrel, and a distal end opposite the proximal end, each arm being in contact with an intermediate support positioned between the proximal end and the distal end of the arm, wherein the bobbin includes a plurality of adjustment elements, each adjustment element being connected to a respective arm, an actuation of the adjustment element inducing the application of a force to the respective arm by leverage about the intermediate support, the application of the force tending to cause variation of the inclination of the respective arm in a plane essentially parallel to the axis of rotation of the bobbin so as to adjust the position of the arm in the plane.
2. The bobbin of claim 1, wherein each of the adjustment elements is connected to both the central mandrel and a respective arm, so as to maintain the arm on the mandrel.
3. The bobbin of claim 1, wherein each adjustment element includes: a movable body, and an enclosure integral with the body and designed to accommodate a portion of the respective arm, the enclosure being arranged so as to apply on the respective arm: a force in a first direction when the adjustment element is displaced in the first direction, a force in a second direction when the adjustment element is displaced in the second direction, wherein the first and second directions are substantially parallel to the axis of rotation of the bobbin.
4. The bobbin of claim 3, wherein the body includes two opposite bases, the enclosure extending over one of the opposite bases of the body.
5. The bobbin of claim 4, wherein the portion of the respective arm designed to enter the enclosure includes a notch.
6. The bobbin of claim 4, wherein the portion of the respective arm designed to enter the enclosure of the adjustment element includes the proximal end of the respective arm.
7. The bobbin of claim 6, wherein the contact between the intermediate support and a respective arm is positioned at a distance from the adjustment element associated with the arm that is less than half of the length of the arm.
8. The bobbin of claim 3, wherein the enclosure includes at least two facing walls, the walls delimiting a volume designed to accommodate a portion of the respective arm.
9. The bobbin of claim 3, wherein the shape of the enclosure is axially symmetric.
10. The bobbin of claim 3, wherein the enclosure includes a pin including a groove designed to accommodate a portion of the respective arm.
11. The bobbin of claim 3, wherein each adjustment element includes a threaded axial bore passing through the body and the enclosure to allow mounting the adjustment element to a threaded rod or the like.
12. The bobbin of claim 1, further including a support for the turns of the link, the support extending between the two sets of arms and constituting the intermediate support of each respective arm.
13. The bobbin of claim 12, wherein the support is dissociated from the mandrel and surrounds it.
14. The bobbin of claim 1, wherein the support includes a plurality of ferrules each including a face shaped as a portion of a cylinder, the ferrules being fixed to the sets of arms so as to form a cylindrical support.
15. The bobbin of claim 1, further including a hoop fixed to the distal ends of the arms of a set of arms.
16. The bobbin of claim 15, wherein each hoop consists of at least two sectors shaped as a portion of a circle.
Description
BRIEF DESCRIPTION OF THE FIGURES
(1) Other features, aims and advantages of the present invention will still be revealed by the description that follows, which is purely illustrative and not limiting and must be read with reference to the appended drawings wherein:
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION
(6) With reference to
(7) The bobbin also includes a support 40 extending between the sets of side arms 20 to form a surface bearing the link.
(8) Mandrel
(9) The mandrel 10 includes two opposite circular faces 11, 12 and a side face. In the embodiment illustrated in
(10) The mandrel 10 can comprise a tube extending along its axis of revolution and forming the axis of rotation 13 of the bobbin 1.
(11) As illustrated in
(12) Set of Arms
(13) Each set of arms 20 comprises a plurality of arms 21 extending radially from the mandrel 10. These arms 21 are of metal for example. In the embodiment illustrated in
(14) Each arm 21 includes a proximal end 22 near the mandrel 10 and a distal end 23 remote from the mandrel 10.
(15) The arms 21 are coupled to the mandrel 10 by their proximal ends 22 using a respective adjustment element 30 which will be described in more detail hereafter.
(16) Each arm is also in contact with an intermediate support. The distance between this intermediate support and the adjustment element associated with an arm is preferably less than half the length of said arm. This intermediate support can consist of a single support part in contact with all the arms of a set of arms. As a variant, this intermediate support can consist of a plurality of members, each member being in contact with one or more arms of a set of arms. The intermediate support can be integrated into the mandrel or be remote therefrom.
(17) As shown in
(18) The distal ends 23 of the arms 21 of each set of arms 20 are fixed to a respective hoop 26 illustrated in
(19) Each hoop 26 can consist of two semicircular sectors or of more than two sectors shaped as portions of a circle and the juxtaposing whereof makes it possible to obtain the hoop 26. The fact that the hoop 26 consists of several juxtaposable sectors makes it possible to reduce the bulk of the bobbin once it is disassembled.
(20) With reference to
(21) Support
(22) The bobbin 1 also includes a support 40 forming a surface bearing the link, and more precisely: the inner turn of the link in the case of a single-turn bobbin, or the inner turns of the link in the case of a multi-turn bobbin.
(23) This support 40 can be: integrated with the mandrel (in this case it corresponds to the side face of the mandrel), or separated from the mandrel, as illustrated in
(24) This support can constitute the intermediate support described above, or not.
(25) The support 40 can include a smooth cylindrical sheet metal part for accommodating the turns of the link. As a variant, the support 40 can consist of a plurality of smooth segments shaped like portions of a cylinder and the juxtaposing whereof allows the formation of a cylinder.
(26) Referring to
(27) When the support constitutes the intermediate support, this distance 27 is preferably greater than half the total length of an arm 21. In the example illustrated in
(28) Each ferrule consists of a sheet-metal part in the shape of a portion of a cylinder. juxtaposing the ferrules makes is possible to form a cylinder defining a smooth bearing surface on which will be positioned the inner turns of the link intended to be wound on the bobbin 1.
(29) Adjustment Elements
(30) With reference to
(31) Each adjustment element 30 includes a body 31, a peripheral circumferential enclosure 32 and a threaded bore 36 passing axially through the body 31.
(32) The body 31 is designed to cooperate with a complementary tool to induce the movement of the adjustment element. The body 31 includes two opposite bases and a peripheral face the shape whereof is complementary to that of a tightening tool of the adjustment element 30. The peripheral face is hexagonal, for example.
(33) The enclosure 32 is designed to receive a portion 24 of a respective arm 21 (see
(34) As described in more detail hereafter with reference to
(35) The application of this force F, F to the arm 21 brings about a displacement R or R of the arm 21 about its connection with the support 40. Thus it is possible to adjust the positions of the arms 21 of the sets of side arms 20 so that: each set of arms has a rotational symmetry about the axis of rotation 13 of the bobbin, the distance between the proximal ends (i.e. near the mandrel) of the sets of arms is constant, and the distance between the distal ends (i.e. remote from the mandrel) of the sets of arms is constant.
(36) For example, it is possible to make the arms 21 of the sets of side arms 20 coplanar in their region located radially outside the mandrel.
(37) As a variant, it is possible to adjust the positions of the arms so that: the arms of each set of arms are contained in a cone with an axis of symmetry combined with the axis of rotation of the bobbin, the distance between the proximal ends (i.e. near the mandrel) of the sets of arms is constant, for example equal to 54 millimeters, and the distance between the distal ends (i.e. far from the mandrel) of the sets of arms is constant, for example equal to 51 millimeters.
(38) To this end, the adjustment element 30 includes the threaded bore 36 through which it is mounted, by screwing: on a screw (not shown) passing through an opening provided in the mandrel, or on a threaded rod, integral or not with the mandrel.
Principle of Operation
(39) Thanks to the use of an adjustment element such as that illustrated in
(40) Indeed, during assembly of the bobbin 1, one of the operations that are difficult to implement relates to the adjustment of the position of the arms, for example the coplanar positioning of the sets of side arms 20. More precisely, it is necessary to put each arm 21 of a set of arms 20 into a plane parallel to the plane containing the arms 21 of the other set of arms 20 facing it.
(41) The fact that the distances between the sets of side arms 20 are constant at their proximal and distal ends is very important for allowing correct winding/unwinding of the link, particularly in the case of a single-turn bobbin.
(42) The principle of adjustment of a bobbin 1 by actuating the adjustment elements 30 is the following.
(43) Once the arms 21 are fixed to the mandrel 10 and the support 40, the user adjusts the distance between each arm 21 of a set of arms 20 and the arm 21 of the other set of arms 20 facing it so as for example to make the set of arms coplanar in mutually parallel planes.
(44) To do this, the user displaces by screwing the adjustment element 30 of the arm 21 to be adjusted depending on the distance between the facing arms 21.
(45) More precisely: a. If the distance between the distal ends 23 of the facing arms 21 is less than the distance between the proximal ends 22 of the facing arms 21, then the user screws the adjustment element 30 onto the threaded rod 14 mounted on the mandrel 10. This induces a displacement D of the adjustment element 30 toward the mandrel 10. As it is displaced, the enclosure 32 of the adjustment element 30 applies a force F on the proximal end 22 of the arm 21, the direction of this force F being parallel to the axis of rotation of the bobbin 1 and the direction of this force F being the same as the direction of displacement D of the adjustment element 30 (to wit, toward the mandrel). The application of this force F has the effect of pushing the proximal end 22 of the arm 21 toward the mandrel 10, which induces the displacement R of the arm 21 about its contact area with the intermediate support (the support 40 in the example). During the gradual displacement D of the adjustment element 30 toward the mandrel 10, the distal end 23 of the arm 21 separates from the distal end 23 of the facing arm 21. When the distance between the distal ends 23 of the facing arms 21 is equal to the distance between the proximal ends 22 of the facing arms 21, the user stops his action on the adjustment element 30 so as to interrupt its displacement D. The facing arms 21 are then coplanar. b. If, on the other hand, the distance between the distal ends 23 of the facing arms 21 is greater than the distance between the proximal ends 22 of the facing arms 21, then the user unscrews the adjustment element 30. This induces a displacement D of the adjustment element 30, which separates from the mandrel 10. As it is displacing, the enclosure 32 of the adjustment element 30 applies a force F to the proximal end 22 of the arm 21, the direction of this force F being parallel to the axis of rotation of the bobbin 1 and the direction of this force F being the same as the direction of displacement D of the adjustment element 30. The application of this force has the effect of pulling the proximal end 22 of the arm 21, which induces the variation of inclination R of the arm 21 about its contact area with the intermediate support (here, the support 40). During the gradual displacement D of the adjustment element 30 toward the mandrel 10, the distal end 23 of the arm 21 approaches the distal end 23 of the facing arm 21. When the distance between the distal ends 23 of the facing arms 21 is equal to the distance between the proximal ends 22 of the facing arms 21, the user stops his action on the adjustment element so as to interrupt its displacement. The facing arms are then parallel. Thus the adjustment of the bobbin 1 is facilitated for the user, who does not need to manipulate several parts with difficult access to make the sets of arms 21 coplanar, in parallel planes.