Automatic handling and transport device for printing sleeves
09662924 · 2017-05-30
Assignee
Inventors
- Luis Antonio Ruiz Suesa (Barcelona, ES)
- Jordi Puig Vila (Bescanó, ES)
- Adelbert Lucas Schoonman (Canet d'Adri, ES)
- Antonio Garrido Fernández (Cassàde la Selva, ES)
Cpc classification
B41P2227/21
PERFORMING OPERATIONS; TRANSPORTING
B41F27/105
PERFORMING OPERATIONS; TRANSPORTING
B41N6/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41F30/04
PERFORMING OPERATIONS; TRANSPORTING
B41N6/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An automatic handling and transport device for printing sleeves that includes a holding support (10) for printing sleeves (60) and a clamping carriage (20) connected to a motorized carriage (30) for a guided movement of the clamping carriage (20) between a gripping position for gripping sleeves (60) and a transport position, and a mobile handling unit (90) carrying the holding support (10). The holding support (10) has an inner core (12) attached to the mobile handling unit (90), and the holding support (10) is coupled to the core (12) or to the mobile handling unit (90) through adaptable support means (40), which provide a relative movement with respect to the core (12) to at least one of the two ends of the holding support (10). The connection of the clamping carriage (20) to the motorized carriage (30) comprises adaptable means (49) that allow a relative movement between the clamping carriage (20) and the motorized carriage (30).
Claims
1. An automatic handling and transport device for printing sleeve comprising: a holding support for printing sleeve that can be positioned in proximity with a sleeve-bearing shaft, axially co-aligning a printing sleeve axis with said sleeve-bearing shaft or with a centering member of a storage area; a clamping carriage equipped with gripping member and connected to a motorized carriage for a guided movement of said clamping carriage along said holding support between a gripping position in which said gripping member interact with said sleeve to hold or release said sleeve, and a transport position in which said holding support is partly or completely inserted into said sleeve; and a mobile handling unit carrying said holding support and prepared for spatial orientation and positioning thereof in relation to said sleeve-bearing shaft or in relation to said centering member of the storage area; wherein the holding support has at least one supporting inner core, which is firmly attached by one of its ends to a head of said mobile handling unit; and the holding support is coupled to said supporting inner core or to the body of said mobile handling unit through elastic or compressible adaptable support means, which provide relative movement of at least one of the two ends of said holding support with respect to the supporting inner core in at least a two-dimensional plane.
2. The device according to claim 1, wherein said elastic or compressible adaptable support means provide a relative movement of both ends of said holding support with respect to the supporting inner core in three dimensions.
3. The device according to claim 2, wherein said elastic or compressible adaptable support means include a part located at a proximal end of said holding support, and a part located at a distal end of said holding support.
4. The device according to claim 3, wherein said part of the elastic or compressible adaptable support means located at a proximal end of said holding support adapted to act in a plane perpendicular to the holding support, and adapted to act in the longitudinal direction of the holding support.
5. The device according to claim 4, wherein said part of the elastic or compressible adaptable support means located at a proximal end of said holding support acting in the longitudinal direction of the holding support are associated with a spherical body arranged between said part of the elastic or compressible adaptable support means and a concave body attached to the holding support, said spherical body being pressed against said concave body with enough force so that the holding support is maintained in a rest position with respect to the supporting inner core as long as force applied on the holding support does not exceed the force produced by weight of the sleeve.
6. The device according to claim 5 further comprising gripping member for holding an annular handle of said sleeve on an accessible head thereof.
7. The device according to claim 3, wherein said part of the elastic or compressible adaptable support means located at a distal end of said holding support adapted to act in a plane perpendicular to the holding support, and adapted to act in the longitudinal direction of the holding support.
8. The device according to claim 1, wherein said clamping carriage is connected to the motorized carriage through elastic or compressible member that allow at least a two-dimensional relative movement between the clamping carriage and the motorized carriage.
9. The device according to claim 8, wherein said motorized carriage is attached to the clamping carriage and also mechanically connected with at least one screw spindle by arms passing through longitudinal openings of the walls of said holding support, said screw spindle being coupled to the mobile handling unit and arranged inside the holding support.
10. The device according to claim 9, wherein said motorized carriage is connected to said clamping carriage by coupling plates fixed to said arms of the motorized carriage.
11. The device according to claim 9, wherein said supporting inner core comprises equidistant guiding bars integral with the head of said mobile handling unit and surrounding the mentioned screw spindle for the guided movement of the clamping carriage.
12. The device according to claim 11, wherein said motorized carriage is operated by the rotation of said screw spindle.
13. The device according to claim 1, further comprising position sensors that allow knowing relative position between the holding support and the supporting inner core.
14. The device according to claim 1, wherein distal end of the holding support comprises a flared funnel-like configuration that facilitates coupling with an end portion of the sleeve-bearing shaft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing and other features and advantages will become more evident from the following detailed description of an embodiment in reference to the attached drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
DETAILED DESCRIPTION OF AN EMBODIMENT
(16)
(17) Said holding support 10 has at least one supporting inner core 12 which is firmly attached by one of its ends to a head of said mobile handling unit 90 and cantilevered. According to the non-limiting embodiment shown in
(18) The holding support 10 is coupled to said supporting inner core 12 or to the body of said mobile handling unit 90 through adaptable support means 40 which provide at least a two-dimensional relative movement to at least one of the two ends of said holding support 10.
(19) Should any minor misalignment arise between said holding support 10 and the geometric axis of the sleeve 60 it is to receive like a casing as said sleeve 60 is being moved coaxially over the holding support 10, this relative movement allows operating said adaptable support means 40 to self-align said holding support 10 with the axis of the sleeve 60, thus preventing any jam situation from occurring.
(20) In the example described in
(21) Said adaptable proximal means 41 and adaptable distal means 45 provide a relative three-dimensional movement between the holding support 10 and the supporting inner core 12, providing two-dimensional movement in a plane perpendicular to the holding support 10, by means of adaptable proximal radial means 42 and adaptable distal radial means 46. Relative movement in a third axial axis is also achieved as a result of adaptable proximal axial means 43 and adaptable distal axial means 47, thereby achieving an overall relative three-dimensional movement.
(22) In the example shown in
(23) According to one embodiment, the adaptable support means 40 are formed by springs, but other devices could be used instead, such as, for example, gas pistons, hydraulic pistons, elastomers, magnets, or any other material or device that allows attaching two segments, enabling relative movement.
(24) As can be seen in
(25) According to an embodiment shown in
(26) To drive the sleeve 60 along the holding support 10, a clamping carriage 20 equipped with gripping means 21 is connected to a motorized carriage 30, which allows movement between a gripping position (shown in
(27) Given that said clamping carriage 20 runs along the holding support 10 and the latter has a relative three-dimensional movement with respect to the supporting inner core 12 and to the mobile handling unit 90, said clamping carriage 20 also has that relative movement in order to remain aligned with the axis of the holding support 10 at all times.
(28) The embodiment shown in
(29) The combination of said adaptable carriage means 49 (in this example of an elastic nature) with the geometry of said coupling plates 22 allows a relative movement between the motorized carriage 30 and the clamping carriage 20. Therefore by holding an annular grip 61 provided in the accessible head of the sleeve 60, the gripping means 21 can orient the entire clamping carriage 20 with respect to the geometric axis of the sleeve 60 and not with respect to the axis of the holding support 10 on which the clamping carriage 20 is assembled with the possibility of sliding.
(30) Said adaptable carriage means 49 can have second positioning means similar to those described above and located at the proximal end of the holding support 10. Said second positioning means can be calibrated with less tension, for example, than the first positioning means 44.
(31) In an optional and non-limiting manner, the mobile handling unit 90 or the holding support 10 can have sensor means intended for positioning and/or identifying the sleeves and/or their supports, which allows improving automatic self-positioning. It can also have position sensors 99 that detect or allow inferring the relative position between the holding support 10 and the supporting inner core 12 in order to know the existing degree of misalignment, thereby allowing future corrections of the self-positioning.
(32) The method for the automatic handling and transport of sleeves 60 is the same as the one commonly used in other devices of this type, and it can be clearly understood upon analyzing the sequences shown in