WINCH PROVIDED WITH ADJUSTABLE SELF-TAILING AND RELATIVE OPERATION
20180186609 ยท 2018-07-05
Inventors
Cpc classification
International classification
Abstract
The invention describes a winch for nautical use or for devices for lifting and lowering on a rope, comprising a fixed stator body and a rotor body fixedly connected to the stator body. The rotor body is able to rotate around a longitudinal axis to wind a rope on its outer surface. The winch is provided with a self-tailing device in turn comprising two half-pulleys, a lower half-pulley and an upper half-pulley, mounted opposite one another and coaxial to the rotor body. The two half-pulleys, at the upper portion of the outer surface of the rotor body, define a circumferential throat intended to at least partially house a winding of the rope. One half-pulley is fixed with respect to the rotor body and the other half-pulley is moveable parallel to the longitudinal axis to vary the dimensions of the circumferential throat. Advantageously, the winch comprises a device for adjusting the position of the mobile half-pulley along the longitudinal axis; the adjustment device is able to be activated by the user in real time and in all conditions of use of the winch.
Claims
1. Nautical winch (1) comprising: a) a fixed stator body (2); b) a rotor body (3) coupled to the stator body (2), said rotor body, (3) being able to rotate around a longitudinal axis (A-A) to wind a rope (4) on its outer surface; c) a self-tailing device (6) in turn comprising two half-pulleys (61, 62), a lower half-pulley (61) and an upper half-pulley (62), mounted opposite one another and coaxial to the rotor body (3), said half-pulleys (61, 62) defining, at the upper portion of the outer surface of the rotor body (3), a circumferential throat (63) intended to at least partially house a winding (41) of said rope (4), wherein one half-pulley (62) is fixed with respect to said rotor body (3) and the other half-pulley (61) is moveable parallel to said longitudinal axis (A-A) to vary the dimensions of said circumferential throat (63); d) a device (8-11) for adjusting the position of the mobile half-pulley (61) along said longitudinal axis (A-A), the adjustment device (8-11) being able to be activated by the user in all conditions of use of the winch (1).
2.-12. (canceled)
13. Method for manoeuvring a rope (4) by means of a winch (1) according to claim 1, the method comprising the steps of: e) winding the rope on the rotor body of the winch (1) and inserting it into the circumferential throat (63) of the relative self-tailing device (6); f) applying a tension on the rope (4) setting the rotor body (3) and the self-tailing device of the winch (6) in rotation; g) acting upon said adjustment device (11) to take the mobile half-pulley (61) away from the fixed half-pulley (62), increasing the wheelbase of said circumferential throat (63), and surging at least one section of said rope (4) without it completely disengaging said self-tailing device (6).
14. (canceled)
Description
DESCRIPTION OF THE DRAWINGS
[0064] Further characteristics and advantages of the present invention will become clearer from the following detailed description of some preferred embodiments thereof, made with reference to the attached drawings. In such drawings,
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DETAILED DESCRIPTION OF AN EMBODIMENT
[0072]
[0073] Preferably, as shown in the enclosed figures, the rotor body 2 is a winding drum on which a rope, or a cable, 4 can be wound in many concentric coils or windings 5. The surface of the winding drum 2 preferably has shaped recesses formed on it, the shape of which contributes to thrusting the windings 5 of the rope 4 upwards.
[0074] On top of the winding drum 2 the winch 1 comprises a device 6 for holding back the rope 4, i.e. a self-tailing device.
[0075]
[0076] The self-tailing device 6 comprises a lower half-pulley 61 and an upper half-pulley 62, arranged coaxial to one another and both coaxial to the winding drum 2, thus such as to rotate around the longitudinal axis A-A. The half-pulleys 61 and 62 are arranged opposing one another to define a circumferential throat 63 for receiving the last winding 41 of the rope 4.
[0077] Preferably, the self-tailing device comprises a bracket 64 for extracting the rope from the circumferential throat 63.
[0078] Preferably, as shown in
[0079] In general, one of the two half-pulleys 61 or 62 is moveable parallel to the longitudinal axis A-A, and the other half-pulley is fixed with respect to this axis. Preferably, both of the half-pulleys 61 and 62, like in the case shown in the attached figures, rotate as a unit with the winding drum 2.
[0080]
[0081] In particular,
[0082] The upper half-pulley 62 is fixed with respect to the winding drum 3 of the winch 1; the lower half-pulley 61 is fixedly connected to the winding drum 3 so as to rotate as a unit with it and at the same time be moveable parallel to the longitudinal axis A-A. This is obtained by mounting the lower half-pulley 61 sliding on vertical pins, parallel to the axis A-A, projecting at the top from the winding drum 3.
[0083] The translating movement of the lower half-pulley 61 is counteracted by a plurality of helical springs 7, preferably fitted onto the aforementioned pins and more preferably arranged diametrically opposite with respect to the axis A-A. The springs 7 are preferably preloaded in the assembly step of the winch 1 and they constantly exert a thrust that tends to take the lower half-pulley 61 back into proximal position with respect to the upper half-pulley 62 following a displacement parallel to the axis A-A. The springs 7 shown in
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[0085] The comparison between
[0086] In general, the winch 1 comprises means for counteracting the springs 7 the function of which is to control the displacement of the lower half-pulley 61 away from the upper half-pulley 62, in distal position.
[0087] In the embodiment shown in the attached figures, the counteraction means comprise an annular element 9, arranged in abutment against the upper surface of the lower half-pulley 61, on the opposite side with respect to the springs 7 and coaxial with the same half-pulley 61, a bushing 9, arranged in engagement with the annular element 9, and a pin 8 able to rotate on the longitudinal axis A-A.
[0088] The bushing 9 and the rotary pin 8 are fixedly connected by means of a cam and cam-follower coupling, for which reason the rotary movements given to the rotary pin 8 cause corresponding translation movements of the bushing 9 parallel to the longitudinal axis A-A.
[0089] The winch 1 is provided with means for adjusting the position of the lower half-pulley 61, which in the embodiment shown in
[0090] In the winch shown in the figures, the adjustment means consist of a hand grip 11 arranged on top of the self-tailing device 6, fixed to the rotary pin 8, for example with a screw, and able to be rotated by the user even with a single hand.
[0091] From the configuration shown in
[0092] The counteraction of the springs 7, and therefore the consequent lowered positioning of the lower half-pulley 61, lasts as long as the user keeps the hand grip 11 rotated with respect to the initial position. When the user lets go of the hand grip 11, the springs 7 autonomously thrust the lower half-pulley 61 towards the upper half-pulley 62, once again clamping the rope 41 present in the circumferential throat 63; the hand grip 11 rotates in its initial position under the thrust of the rotary pin 8, in turn set in rotation by the bushing 9 and by the annular element 10. The winch goes back into the configuration shown in
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[0096] The bushing 9 is provided with a plurality of arms 92, projecting in the radial direction, which transmit the vertical movement to the annular element 10, which in turn thrusts the lower half-pulley 61 parallel to the axis A-A.
[0097] Clearly, the user can partially rotate the hand grip 11 (thus not for the entire available stroke) to take the projection 81 into an intermediate position with respect to the positions shown in
[0098] A great advantage offered by the winch 1 is therefore the possibility of unwinding the rope 4 from the winding drum 3 in a controlled manner; by opening the self-tailing device 6 the windings 5 can be left to slip out still keeping the number of the windings 5 themselves unchanged and keeping the winding 41 in the circumferential throat of the self-tailing device 6. In this way the safety of the user is maximised during the manoeuvres to release the rope 4 under tension.
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[0100] The winch 1 comprises, in addition to the relative self-tailing device 6, a containment case 12, mobile parallel to the longitudinal axis A-A, the function of which is to laterally close the circumferential throat 63 to avoid the rope 41 coming out.
[0101] With reference to
[0102] In normal conditions the containment case 12 laterally intercepts the circumferential throat 63 and prevents the rope from disengaging in the radial direction, perpendicular to the axis A-A. The user can intervene manually directly on the case 12 or on a suitable control member, for example the hand grip 11 for adjusting the axial position of the mobile half-pulley, to axially lift the case itself and gain access to the throat 63 for the insertion of the rope 41. For example, the hand grip 11 rotates in the clockwise direction to control the axial movement of the mobile half-pulley 62 and rotates in the anti-clockwise direction to control the axial movement of the containment case 12; alternatively, the axial movement of the containment case 12 is controlled by the hand grip 11 that rotates in the clockwise direction beyond the limit corresponding to the maximum opening of the self-tailing device 6. In
[0103] In the winch 1 the mobile half-pulley is the upper one 62, which is able to translate parallel to the axis A-A, and the fixed half-pulley is the lower one 61, which is screwed into the winding drum 3.
[0104] In particular,
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[0107] The operation of the winch 1 is analogous to the operation of the winch 1 and shares the same advantages.