Method and apparatus for winding a continuous flexible elongated element
10046943 ยท 2018-08-14
Assignee
Inventors
Cpc classification
B65H2301/5151
PERFORMING OPERATIONS; TRANSPORTING
B65H19/28
PERFORMING OPERATIONS; TRANSPORTING
B65H2301/41428
PERFORMING OPERATIONS; TRANSPORTING
B65H2301/41422
PERFORMING OPERATIONS; TRANSPORTING
B65H65/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
An apparatus for winding a continuous flexible elongated element, preferably made of plastic material, around a spool including a drive means configured for rotating a spool around a winding axis. The spool is provided with a winding core extending along the winding axis. Delivery means are configured for delivering an elongated retaining element, preferably a retaining film, at the spool. Winding means are configured for at least partially winding the elongated retaining element around the winding core so as to retain a free end of the continuous flexible elongated element on the winding core.
Claims
1. A method for winding a continuous flexible elongated element around a spool, comprising steps as follows: providing a spool including a winding core, providing an elongated retaining element, at least partially winding the elongated retaining element around the winding core, winding the continuous flexible elongated element around the winding core in rotation around a winding axis, starting from a free end of the continuous flexible elongated element, wherein the step of at least partially winding the elongated retaining element around the winding core is includes retaining the free end of the continuous flexible elongated element on the winding core; wherein the step of at least partially winding the elongated retaining element around the winding core includes locking a flap of the elongated retaining element with respect to the spool using a locking device including a clamp attached to the spool to rotate with the spool around the winding axis.
2. The method of claim 1, wherein the step of at least partially winding the elongated retaining element around the winding core comprises a first winding step wherein the elongated retaining element is at least partially wound onto the winding core before the step of winding the continuous flexible elongated element, and a second winding step wherein the elongated retaining element is at least partially wound onto the winding core and onto the continuous flexible elongated element starting from the free end to retain the continuous flexible elongated element on the winding core.
3. The method according to claim 2, wherein the first winding step includes generating at least one turn of the elongated retaining element around the winding core, by a relative roto-translatory motion between the elongated retaining element and the winding core.
4. The method according to claim 2, and further comprising a step of cutting the elongated retaining element when the continuous flexible elongated element is retained on the winding core by the elongated retaining element.
5. The method according to claim 4, wherein the step of cutting is performed at an end of the second winding step when the continuous flexible elongated element is retained on the winding core by the elongated retaining element.
6. The method according to claim 2, wherein the locking the flap is executed at a shoulder of the spool or externally to an overall radial dimension of the spool; and the step of at least partial winding the elongated retaining element includes the step of setting the spool in rotation around the winding axis.
7. The method according to claim 6, and further comprising a step of unlocking the flap at an end of the first winding.
8. The method according to claim 2, and further comprising, before the continuous flexible elongated element is retained on the winding core by the elongated retaining element, a step of thrusting the continuous flexible elongated element towards the winding core.
9. The method according to claim 2, wherein the step of winding the continuous flexible elongated element around the winding core in rotation comprises an initial winding step wherein the continuous flexible elongated element is thrust towards the winding core and a subsequent winding step wherein the continuous flexible elongated element is dragged by the spool being retained on the winding core by the elongated retaining element.
10. The method according to claim 1, wherein the step of providing the elongated retaining element comprises a step of unwinding the elongated retaining element from a coil arranged with an axis of the coil parallel to the winding axis.
11. The method according to claim 1, wherein the step of providing the elongated retaining element includes by dropping from above the flap of the elongated retaining element towards the winding core.
12. An apparatus for winding a continuous flexible elongated element around a spool, comprising: a drive mechanism including a motor for setting the spool in rotation around a winding axis, the spool including a winding core extending along the winding axis, a delivery mechanism including a motor for delivering an elongated retaining element at the spool, the delivery mechanism, the delivery mechanism being translationally movable along the winding axis, a winding mechanism including the drive mechanism for at least partially winding the elongated retaining element around the winding core to retain a free end of the continuous flexible elongated element on the winding core, wherein the winding mechanism further comprises a locking device for locking a flap of the elongated retaining element with respect to the spool, and wherein the locking device includes a clamp for locking a flap of the elongated retaining element with respect to the spool, the clamp being attached to the spool to rotate with the spool around the winding axis.
13. The apparatus according to claim 12, and further comprising a cutting device including a blade for cutting the elongated retaining element, the cutting device being operatively associated with the delivery mechanism.
14. The apparatus according to claim 12, wherein the delivery mechanism further comprises a shaft for rotatably supporting a coil of the elongated retaining element, the shaft being arranged parallel to the winding axis and positioned higher than the winding axis.
15. The apparatus according to claim 12, and further comprising a thrust device for thrusting the continuous flexible elongated element towards the winding core, the thrust device comprising two drive members arranged alongside each other to form an airspace for thrusting and a guide element for guiding the continuous flexible elongated element, the guide element arranged between the two drive members and the spool.
16. The apparatus according to claim 15, wherein the guide element is movable away from and towards the spool.
Description
(1) Further characteristics and advantages of the present invention will become more apparent from the description of a exemplary, but not exclusive, and therefore non-limiting preferred embodiment of an apparatus for winding a continuous flexible elongated element, as illustrated in the appended figures, in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8) With reference to the attached figures, and in particular to
(9) The continuous flexible elongated element 2 is preferably made of plastic and is, for example, a flexible tube or a rubber profile.
(10) The spool 3 comprises a winding core 3a defining a cylindrical surface around which the continuous flexible elongated element 2 is wound. The winding core 3a is internally hollow and extends along a winding axis X.
(11) The spool 3 also comprises two shoulders 3b respectively defined for example by a disk and arranged at the ends of the winding core. For simplicity of illustration, in the accompanying figures the spool/s have been illustrated with only one shoulder 3b to highlight the winding core 3a.
(12) The apparatus 1 comprises drive means 4 configured for rotating the spool 3 around the winding axis X.
(13) In particular, the drive means 4 comprise a motorized shaft 5 adapted to be inserted internally in the spool 3, and in particular in the winding core 3a, so as to drag it in rotation around the winding axis X. The shaft 5 comprises interference means 6 adapted to make the spool 3 integral with the shaft 5 in rotation around the winding axis X.
(14) In accordance with a possible embodiment, the apparatus 1 comprises two shafts 5 arranged at the ends of a rod 7 pivoted centrally in a fulcrum 7a to differentiate a first winding position 8a from a second loading position 8b of an empty spool and lacking the coil formed.
(15) 9 refers to delivery means configured for delivering an elongated retaining element 10 at the spool, located in the first position, for example.
(16) Preferably, the elongated element 10 is realized by means of a stretchable retaining film made of a plastic such as, for example, a linear low-density polyethylene.
(17) According to a possible embodiment, the delivery means 9 comprise at least one axis 11 configured for supporting in rotation a coil 10a of the elongated retaining element 10.
(18) The axis 11 is arranged parallel to the winding axis X of the spool 3. Moreover, the axis 11 is preferably arranged higher than the winding axis X of the spool 3.
(19) According to a possible embodiment, for example illustrated in
(20) According to a possible embodiment, cutting means T are provided, for example a cylinder provided with a cutting blade, for the elongated retaining element. Preferably, the cutting means are operatively associated with the delivery means 9. In particular, the cutting means are arranged on the unit 9a defining the delivery means 9.
(21) The delivery means 9, and in particular the units 9a, are movable along a direction parallel to the winding axis X of the spool 3.
(22) Winding means configured for at least partially winding the elongated retaining element 10 around the winding core 3a so as to retain a free end 2a of the continuous flexible elongated element 2 on the winding core 3.
(23) In particular, the winding means can comprise the drive means 4 and locking means 14 configured for locking a flap 10b of the elongated retaining element 10 with respect to the spool 3. In other words, the locking means 14 are configured for making a flap 10b of the elongated retaining element 10 integral with the spool 3 in its rotation around the axis of winding X to allow the winding of the elongated retaining element 10 around the winding core 3a.
(24) According to a possible embodiment, the locking means 14 comprise at least one clamp 15 configured for locking a flap 10b of the elongated retaining element 10 with respect to the spool 3. The clamp 15 is configured for being integral with the spool 3 in rotation around the winding axis X in use configuration of said apparatus 1.
(25) Preferably, the clamp 15 is arranged radially outwardly of the overall radial dimension of the spool 3. Alternatively, the clamp 15 is arranged on a shoulder 3b of the spool 3. In general, the clamp 15 is arranged so as to block a flap 10b of the elongated retaining element 10 with respect to the spool 3 at a shoulder 3b of the spool itself.
(26) According to a possible embodiment, the clamp 15 is integral with the shaft 5 of the drive means 4 by means of, for example, an arm 15a arranged radially with respect to the shaft 5. In use configuration of the apparatus 1, in which the spool 3 is arranged on the shaft 5, the arm 15a is arranged, with reference to a direction parallel to the axis of winding X, externally to the spool 3 while the clamp 15 extends at least partially towards the inside of the spool 3. In use configuration of the apparatus 1, in which the spool 3 is arranged on the shaft 5, the arm 15a extends, with reference to a radial direction with respect to the winding axis X, beyond the radial dimensions of the spool 3.
(27) 16 refers to the thrust means configured for thrusting the continuous flexible elongated element 2 towards the winding core 3a. In accordance with a possible embodiment, the thrust means 16 preferably comprise at least two drive members 17 arranged alongside each other so as to form an airspace 18 for sliding of the continuous flexible elongated element 2. In accordance with a possible embodiment, the thrust means 16 preferably comprise a guide element 19 suitable for being arranged between the drive members 17 and the spool 3. The guide element 19 is movable along a direction parallel to the winding axis X of the spool 3.
(28) Preferably, the thrust means are movable away from and towards the spool 3, in a use configuration of the apparatus. In
(29) In use, the apparatus 1 allows to implement a method for winding the continuous flexible elongated element 2 around the spool 3, according to the present invention.
(30)
(31)
(32) The step of preparing the elongated retaining element 10 comprises a step of unwinding of the elongated retaining element 10 from a coil 10a arranged with axis parallel to the winding axis X of the spool 3. In particular, the step of preparing the elongated retaining element 10 is effected by dropping from above a flap 10b of the elongated retaining element 10 towards the winding core 3a.
(33) The
(34) The elongated retaining element 10 is unwound from the coil 10a and preferably tensioned by the motor means 13.
(35)
(36) In general, the first step of at least partial winding of the elongated retaining element 10 is realized until the same is locked on the winding core 3a, in order to unlock the flap 10b with respect to the spool 3. In particular, the formation of at least one coil 20 or a complete winding of the elongated retaining element 10 around the winding core 3a allows the elongated retaining element 10 to be locked on the winding core 3a.
(37) According to the example shown in
(38) In the transition from the situation of
(39) Preferably at the end of the first step of winding the elongated retaining element 10, the step of winding the continuous flexible elongated element 2 around the winding core 3a in rotation around the winding axis X begins, starting from the free end 2a of the continuous flexible elongated element itself, as shown in
(40) Preferably, the step of at least partial winding of the elongated retaining element 10 around the winding core 3a comprises a first winding step wherein the elongated retaining element 10 is at least partially wound onto the winding core 3a before the step of winding the continuous flexible elongated element 2 (
(41) Preferably, the spool 3 is rotated around the winding axis both in the first step of winding and in the second step of winding. According to an alternative (not shown), the spool 3 is rotated around the winding axis X only in the second step of winding. In this case, to carry out the first winding step, that is, in order to lock the elongated retaining element 10 on the winding core 3a, it can be provided that the spool 3 remains stationary and that the locking means 14, for example the clamp 15, rotate around the winding axis X.
(42) In accordance with a possible embodiment, illustrated for example in
(43) The free end 2a of the continuous flexible elongated element 2 is inserted into a mouth 21 (
(44) It follows that the step of winding said continuous flexible elongated element 2 around the winding core 3a in rotation comprises an initial winding step wherein the continuous flexible elongated element 2 is predominantly thrust towards said winding core 3a (
(45) In the transition from the situation illustrated in
(46) Preferably, the cutting step is realized at the end of the second winding step of the elongated retaining element 10, when the continuous flexible elongated element 2 is held on the winding core by the elongated retaining element 10.