This application claims the priority, under 35 U.S.C. §119, of German Patent Application DE 10 2015 212 757.5, filed Jul. 8, 2015; the prior application is herewith incorporated by reference in its entirety.
The invention relates to a device for printing on multidimensional objects, the device including an object carrier for holding and moving the object to be printed on, a tool carrier for receiving stationary processing tools, and a frame to which the tool carrier is fixed.
Devices that guide the object to be printed on or that guide the print heads by using multi-axis robots, also known as articulated robots, are known in the art for printing on objects. Such a device is described, for instance, in German Patent Application DE 10 2010 004 496 A1. A disadvantage of those devices is their lack of rigidity, which involves a risk of motion errors due to static deformation and vibration. Another disadvantage is that the motion inaccuracies of the drives of the articulated robot accumulate and thus increase. All drives of the robot need to be actuated and moved in exact synchronism with one another even when the head of the articulated robot is merely to be moved at a continuous speed over a linear path. Even small errors of only one drive accumulate to a large total error, which means that the requirements in terms of the accuracy of movement required for high-precision prints are no longer met.
On the other hand, devices are known wherein a rotation-symmetric object to be printed on is rotated by an object carrier and a print head is moved relative to the object. Such a device is described, for instance, in U.S. Pat. No. 7,819,055 B2. A disadvantage of the described device is that on one hand, the movement of the print head requires a complex bearing and a complex ink supply to the print head. On the other hand, the versatility of the device is limited because it is only capable of printing on very compact objects.
It is accordingly an object of the invention to provide a device for printing on multi-dimensional objects, which overcomes or at least reduces the herein aforementioned disadvantages of the heretofore-known devices of this general type and which allows a large variety of objects to be printed on with a high degree of accuracy.
With the foregoing and other objects in view there is provided, in accordance with the invention, a device for printing on multi-dimensional, namely three-dimensional spatial objects, comprising an object carrier for holding and moving the object to be printed on, for instance a sphere, a cylinder, or a cuboid, a tool carrier for receiving multiple processing tools that are stationary during the processing operation, and a frame, in particular a gantry-shaped frame, on which the tool carrier is mounted, i.e. suspended. In accordance with the invention, the object carrier has three guide tracks and three carriages movable thereon. The guide tracks are perpendicular or orthogonal to one another and each of them is oriented along a respective axis of movement. Each guide track is assigned a carriage for a translatory movement of the object relative to the stationary processing tools during the processing operation. For instance, the construction is such that a second guide track is disposed on the first carriage and a third guide track is disposed on the second carriage. An object carrier for gripping or clamping an object or holding it by suction may be disposed on the third carriage. Linear direct drives or spindle units may be provided as drives for the carriages along the guide tracks.
In accordance with another advantageous feature of the printing device of the invention, a first guide track has two guide rails that are oriented to be parallel to one another and are in particular horizontal guide rails disposed in a horizontal plane. A respective guide rail of the first guide track may be disposed on a respective side wall in a position to be elevated relative to the foundation or a base plate of the printing device. This allows the objects to be printed to be loaded into the device in an easy, ergonomic way and provides a way of lowering the object further down along the vertical guide track.
In accordance with a further particularly advantageous and thus preferred feature of the printing device of the invention, the two side walls are interconnected and the two side walls form or represent the arms of a U profile. Thus a particularly rigid and thus stable construction of the device is achieved. In accordance with an advantageous further feature, the U profile may extend beyond the frame. The U profile may be of unipartite construction or may preferably be composed of at least three elements or modules of identical construction. In this way, it is possible to process even especially long objects and to implement an automated supply and removal of the objects.
In accordance with an added advantageous feature of the printing device of the invention, the first guide track is embodied as a gantry carriage having a gantry drive, and two separate motors move the object along the first axis of movement due to an angle-synchronous actuation, allowing the object to move along the first axis of movement without jamming. The motors that are used for this purpose are in particular linear servomotors.
In accordance with an additional feature of the printing device of the invention, at least one print head, in particular an inkjet print head, is provided as a processing tool of the device. Optionally, a pre-coat device, a plasma treatment device, a laser engraving device and/or a drier may be provided as further processing tools. For multicolor printing, a plurality of print heads is provided in a corresponding way. In accordance with a particularly advantageous embodiment, a pre-coat device, an inkjet print head, and a drier are provided at a minimum.
In accordance with yet another advantageous feature of the printing device of the invention, the height of the tool carrier is adjustable and the tool carrier is movable along substantially vertical supports of the frame and lockable in position, allowing an adaptation to objects of varying sizes. In accordance with an advantageous further development, the tool carrier has a recess for every processing tool to receive the processing tool. The recess is constructed to allow the respective processing tool to be inserted in two alternative positions that are offset by an angle of 90° relative to one another. A first position is advantageously oriented to be parallel to the first axis of movement and a second position is preferably oriented to be parallel to the second axis of movement. Thus the orientation of the processing tools may be selected as a function of the object to be printed on and of the image to be printed. It is additionally advantageous if every recess is capable of locking a respective tool in both a lower operating position and in an upper standby position. Alternatively, there may be an operating position inside an operating region and a standby position outside an operating region, both positions being located in a horizontal plane.
In accordance with a first alternative embodiment of the device of the invention, the object carrier has a first axis of rotation for rotating the object, the first axis of rotation is oriented to be parallel to the first guide track and to the first axis of movement. In accordance with a further alternative embodiment, the object carrier of the device additionally has a second axis of rotation for rotating the object, the second axis of rotation is oriented to be parallel to the first guide track and to the second axis of movement. In accordance with a third alternative embodiment, the object carrier of the device additionally has a third axis of rotation for rotating the object, the third axis of rotation is oriented to be parallel to the third guide track and to the third axis of movement. Thus the device has a modular construction. The basic module, which has three axes of translatory movement as described above, may be enhanced by one, two, or three additional axes of rotation as a function of the object to be printed on and of the image to be printed. Since the deviations of the individual servo-electric drives from their target movements add up to a total error of the desired movement between the object to be printed on and the processing tool, the provision of the lowest possible number of axes of rotation may keep the deviation on a low level. A modular construction of the printing device including one, two, or three axes of rotation allows the required number of axes of rotation to be easily selected as a function of the object to be printed on.
As far as it makes sense from a technical point of view, combinations of the invention as described above and of the advantageous further developments of the invention likewise form advantageous further developments of the invention.
Other features which are considered as characteristic for the invention are set forth in the appended claims. Further advantages and embodiments of the invention that are advantageous in structural and functional terms will become apparent from the dependent claims and the description of exemplary embodiments with reference to the appended figures.
Although the invention is illustrated and described herein as embodied in a device for printing on multi-dimensional objects, it is nevertheless not intended to be limited to the details shown, since various modifications and structural changes may be made therein without departing from the spirit of the invention and within the scope and range of equivalents of the claims.
The construction and method of operation of the invention, however, together with additional objects and advantages thereof will be best understood from the following description of specific embodiments when read in connection with the accompanying drawings.
Referring now in detail to the figures of the drawings which are not drawn to scale and in which elements and components that correspond to one another have the same reference symbol and first, particularly, to
In accordance with the invention, the construction of the object carrier 10 is as follows:
A gantry carriage 19 having a gantry drive is fixed to a U-shaped U profile element 18 having two side walls 17. The gantry carriage 19, which provides a jam-free movement in an x direction, forms a first axis of movement 21 in the x direction. A second axis of movement 22 in the Y direction is disposed at a right angle relative thereto and a third axis of rotation 23 in a Z direction is disposed at a right angle relative thereto. The axes form the axes of movement of the object carrier 10, allowing a non-illustrated object that is to be printed on and is held by the object carrier 10 to be moved along any desired path of movement b relative to the tool carrier 11, which is stationary during the processing operation.
As is apparent from
In order to be able to adapt the printing device 100 to objects to be printed of varying sizes in a flexible way, and to allow the objects 1000 to be printed on to be automatically supplied to and removed from the object carrier 10, the possible displacement path of the first guide track with the guide carriage 31 in or against the x direction may be increased by extending the U profile 18 located underneath the tool carrier 11 with further U profile elements 18 as shown in
As will be explained in more detail based on
In accordance with a first enhancement shown in
In accordance with an enhancement of the printing device 100 as shown in
The axes of rotation 41, 42 and the rotation drives 51, 52 are supported on forks. An exterior fork which has end points that carry the second rotation servo drive 52 is fixed to the third guide track with the guide carriage 33 and receives an interior fork, at the center of which the first rotation servo drive 51 is disposed. A drive shaft of this first rotation servo drive 51 in turn carries the object 1000 to be printed on. Thus the second rotation servo drive 52 may rotate the interior fork and the first rotation servo drive 51 may rotate the object 1000 to be printed on.
The object 1000 to be printed on is advantageously mounted to the object carrier 10 in such a way that existing axes of symmetry of the object 1000 to be printed on coincide with the axes of rotation 41, 42. Thus the required movement of the object 1000 to be printed on during the printing operation may be minimized. It is further advantageous if an object 1000 to be printed on is mounted to the object carrier 10 in such a way that the center of gravity S of the object 1000 to be printed on is located at the intersection of the first axis of rotation 41 and the second axis of rotation 42. In this case, the rotation servo drives 51, 52 do not need to apply any holding torque.
These rules for mounting an object 1000 to be printed on to the object carrier 10 also apply to an enhanced printing device 100 including a third axis of rotation 43 as shown in
In the embodiment disclosed with reference to
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20170008304 A1 | Jan 2017 | US |