This application claims the priority, under 35 U.S.C. § 119, of European Patent Application EP 18 163 049.2, filed Mar. 21, 2018; the prior application is herewith incorporated by reference in its entirety.
The present invention relates to a compensation coupling including a first coupling half and a second coupling half, in which the coupling halves may be fitted into one another under elastic deformation. The invention also relates to a print bar for inkjet printing having the compensation coupling.
German Patent DE 38 43 825 C1, corresponding to U.S. Pat. No. 5,073,145, discloses a joint that is movable in all directions for linkages and Cardan shafts. The joint is formed of two parts of identical construction made from an elastically deformable plastic, wherein the coupling members of identical construction may be fitted into one another at a 90° angle while elastic deformation occurs. That joint is usable as a quick-acting coupling in linkages or the like, in particular if such linkages require a joint that is movable in all directions to compensate for deflection. Among other applications, the joint is usable in printing machinery.
An unfavorable aspect of the joint is that due to the angular offset of 90°, the coupling members may be inserted into one another in only few angular positions relative to one another.
Thus, that prior art coupling is not suitable for use in a digital printing machine that has a print bar having an adjustment device which includes components that need to be coupled to one another in a large variety of different angular positions relative to one another. Those components include, for instance, a screw and a shaft for rotating the screw.
It is accordingly an object of the invention to provide a compensation coupling and a print bar with the compensation coupling, which overcome the hereinafore-mentioned disadvantages of the heretofore-known devices of this general type and in which the coupling halves thereof may be coupled in more angular positions relative to one another.
With the foregoing and other objects in view there is provided, in accordance with the invention, a compensation coupling, comprising a first coupling half and a second coupling half which may be fitted into one another under elastic deformation, the first coupling half having spring claws, the second coupling half having a toothing and the spring claws having a different pitch than the toothing.
An additional advantage of the invention is that it minimizes play in the compensation coupling.
Various further developments of the compensation coupling of the invention are possible:
With the objects of the invention in view, there is also provided a print bar for inkjet printing, comprising print heads in a row, adjustment devices for adjusting the print heads relative to one another, each adjustment device including at least one screw and at least one shaft for rotating the screw, and the screw and the shaft being connected to one another by the compensation coupling of the invention or by one of the further developments thereof. The compensation coupling of the print bar of the invention thus includes the first coupling half and the second coupling half which may be fitted into one another under elastic deformation, the first coupling half having the spring claws and the second coupling half having the toothing, and the spring claws having a different pitch than the toothing.
Various further developments of the print bar of the invention are possible:
Other features which are considered as characteristic for the invention are set forth in the appended claims.
Although the invention is illustrated and described herein as embodied in a compensation coupling and a print bar with the compensation coupling, 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, in which mutually corresponding components and elements have the same reference symbol, and first, particularly, to
Every print bar 13 carries a row 24 of print heads 9 (see
Apart from the stop 15, the screw 11 has further portions, namely fittings 19 as journal bearings and an external thread 20. The stop 15 is located between the fittings 19. The fittings 19 are disposed for sliding movement in one or more components 21. The component 21 has an internal thread 22 into which the external thread 20 is screwed. Together, the screw 11 and the component 21 form a worm gearing for a translatory adjustment of the stop 15 in a direction x. The direction x corresponds to the axis of rotation of the screw 11.
Together with the stop 15, the print head 9 or the mount 18 thereof forms a wedge-type gearing that converts the movement of the stop 15 in the x direction into a movement of the print head 9 in a y direction perpendicular to the x direction. In accordance with
Through the use of the compensation coupling 3, the motor M rotates the screw 11, screwing it a little further into the component 21 or a little further out of the latter as a function of the direction of the adjustment. The compensation coupling 3 connects the screw 11 to a shaft 12, which is the motor shaft of the motor M if a motor-driven adjustment of the screw 11 is envisaged like in the example provided herein. However, manual adjustment of the screw 11 would likewise be possible. For this purpose, a handle such as a knob would be attached to the shaft 12 instead of the motor M. The compensation coupling 3 includes a first coupling half 1 and a second coupling half 2. In the coupled state, the two coupling halves 1, 2 are connected for co-rotation.
The first coupling half 1 may be fixed to the shaft 12 or formed thereon. The second coupling half 2 may be fixed on the screw 11 or formed thereon. The second coupling half 2 may form a head at the end of the screw 11.
The second coupling half 2 is a gear with a toothing 5 on its outer circumference, specifically a spur gear. As viewed from the axial direction, the second coupling half 2 has the shape of a star. The compensation coupling 3 acts as a quick-acting coupling: an operator fits the first coupling half 1 onto the second coupling half 2 without any tools to connect the screw 11 with the motor M. The spring claws 4 are radially flexible and move slightly away from one another when being fitted together. The toothing 5 has teeth 7 with a length L that is greater than a maximum adjustment distance of the screw 11 between its lowest and highest screw positions or end positions. Thus, the spring claws 4 will remain engaged with the toothing 5 regardless of the screw position of the screw 11, providing compensation for any axial displacement of one coupling half 1, 2 relative to the other.
In all of the exemplary embodiments shown in
A flank angle α of the spring claws 4 may be provided in such a way as to ensure that when torque is transmitted, a self-locking action is in effect due to flank friction between the spring claws 4 and the teeth 7 to prevent the spring claws 4 from moving out of engagement due to centrifugal forces.
The following is a summary list of reference numerals and the corresponding structure used in the above description of the invention:
Number | Date | Country | Kind |
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18163049 | Mar 2018 | EP | regional |
Number | Name | Date | Kind |
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3385407 | Kleinhans et al. | May 1968 | A |
5000721 | Williams | Mar 1991 | A |
5073145 | Ratzokwski et al. | Dec 1991 | A |
7397493 | Chee | Jul 2008 | B2 |
20090244124 | Kondo | Oct 2009 | A1 |
Number | Date | Country |
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3843825 | Feb 1990 | DE |
102011084748 | May 2012 | DE |
102011015642 | Oct 2012 | DE |
102011018319 | Oct 2012 | DE |
Number | Date | Country | |
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20190293127 A1 | Sep 2019 | US |