IP Library Granted Patent US 7,806,493
Granted Patent B2
US 7,806,493 · App. 10/579,502 · Granted Oct 5, 2010

Robot for large-format, three dimensional digital printing on a fixed surface and printing method involving at least one such robot

Assignees: Centre National de la Recherche Scientifique (CNRS); Universite de Poitiers
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Quick Facts
Patent No.
US 7,806,493
App. No.
10/579,502
Granted
Oct 5, 2010
Kind
B2
Abstract

The invention relates to a robot for large-format, three-dimensional printing on a fixed surface, using five powered spindles. The inventive robot comprises an inkjet printing block, means for moving and orienting said printing assembly along several axes, at least one unit for controlling said means and a device for drying the ink sprayed onto the surface. According to the invention, the aforementioned movement and orientation means comprise: a support having three degrees of freedom in translation, which is used to position the printing assembly by enabling translational movements along horizontal, vertical and depth axes; and a wrist having two degrees of freedom in rotation, which is used to position and orient the printing assembly by enabling same to rotate in relation to two perpendicular axes. The invention also relates to a method of using said robot.

Claims (70)

1. A print robot for large format three-dimensional printing on a fixed surface, comprising an inkjet printing assembly, means for displacing and orientating this printing assembly along several axes, at least one control unit controlling these means and a drying device for the ink sprayed onto said surface, wherein said robot is a print robot with five motorized axes and wherein the displacement and orientation means comprise:

a carrier with three degrees of freedom in translation, which ensures positioning of the printing assembly allowing its horizontal, vertical and depth translation, wherein the carrier comprises:

a first mobile carriage provided with a driving system moving on two horizontal rails,

a beam fixed perpendicular to the first mobile carriage, a second mobile carriage provided with a driving system moving on two vertical rails mounted on this beam, and

a slide fixed perpendicular to the second mobile carriage, a mobile platform moving along this slide; and

a wrist with two degrees of freedom in rotation which supports and ensures the orientation of the printing assembly allowing its rotations (Rx, Ry) along two perpendicular axes.

2. A robot as claimed in claim 1 , wherein the wrist comprises two identical systems screws/rods/cranks each linked to a mobile carriage.

3. A robot as claimed in claim 2 , wherein the wrist supports the ink drying device.

4. A robot as claimed in claim 3 , comprising five servomotors respectively associated with the five axes of this robot.

5. A robot as claimed in claim 4 , which as input comprises:

several optical sensors to measure the distance between the printing assembly and the surface to be printed,

five encoders for the motor axes to determine the displacement of the servomotors,

two end-of-travel sensors and one start point sensor respectively associated with each axis of the robot.

6. A robot as claimed in claim 5 , comprising a real-time control device which comprises:

a central unit module,

at least one module to control the axes,

a digital input-output module.

7. A robot as claimed in claim 6 , comprising a general control device which includes:

a real-time control module,

a sensor signal interfacing/relay and packaging module,

a supply/instrumentation module,

a brake feed module,

a safety management module,

a ventilation assembly,

five digital motor speed controllers.

8. A robot as claimed in claim 7 , comprising:

a first computer terminal dedicated to control of the movements of this robot,

a second computer terminal dedicated to monitoring the robot, including:

coordination between displacement of the robot and the printing operation,

processing the digital image to be printed,

man-machine interfacing.

9. A robot as claimed in claim 1 , wherein the printing assembly comprises at least one printing block provided with several printing heads using inks of different colors.

10. A robot as claimed in claim 9 , wherein each printing block comprises four printheads respectively using yellow, cyan, magenta and black inks.

11. A robot as claimed in claim 9 , wherein the inks are ultraviolet drying inks.

12. A printing process, which after a prior step to digitize the image and divide it into strips of determined width, comprises the following steps:

positioning a medium with respect to at least one robot as claimed in claim 1 ,

initial setting of said at least one robot and positioning its/their head(s) with respect to the surface of the medium, at the point where printing of the image is to start,

printing the image on said surface with successive printing of the different vertical strips forming the image,

return to a rest configuration.

13. A process as claimed in claim 12 , which comprises a prior surface preparation step so as to make it clean and uniformly white.

14. A process as claimed in claim 12 , wherein printing starts at the lower left-hand corner of the surface.

15. A process as claimed in claim 12 , wherein the width of the vertical strips is approximately 7 cm.

16. A print robot for large format three-dimensional printing on a fixed surface, comprising an inkjet printing assembly, means for displacing and orientating this printing assembly along several axes, at least one control unit controlling these means and a drying device for the ink sprayed onto said surface, wherein said robot is a print robot with five motorized axes and wherein the displacement and orientation means comprise:

a carrier with three degrees of freedom in translation, which ensures positioning of the printing assembly allowing its horizontal, vertical and depth translation,

a wrist with two degrees of freedom in rotation which supports and ensures the orientation of the printing assembly allowing its rotations (Rx, Ry) along two perpendicular axes,

wherein the wrist comprises two identical systems screws/rods/cranks each linked to a mobile carriage,

wherein the wrist supports the ink drying device,

said robot comprising five servomotors respectively associated with the five axes of this robot,

said robot comprising as input:

several optical sensors to measure the distance between the printing assembly and the surface to be printed,

five encoders for the motor axes to determine the displacement of the servomotors,

two end-of-travel sensors and one start point sensor respectively associated with each axis of the robot.

17. A robot as claimed in claim 16 , comprising a real-time control device which comprises:

a central unit module,

at least one module to control the axes,

a digital input-output module.

18. A robot as claimed in claim 17 , comprising a general control device which includes:

a real-time control module,

a sensor signal interfacing/relay and packaging module,

a supply/instrumentation module,

a brake feed module,

a safety management module,

a ventilation assembly,

five digital motor speed controllers.

19. A robot as claimed in claim 18 , comprising:

a first computer terminal dedicated to control of the movements of this robot,

a second computer terminal dedicated to monitoring the robot, including:

coordination between displacement of the robot and the printing operation,

processing the digital image to be printed,

man-machine interfacing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2006
From: GAZEAU, JEAN-PIERRE; LALLEMAND, JEAN-PAUL; RAMIREZ TORRES, JOSE GABRIEL; ZEGHLOUL, SAID
To: CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE; UNIVERSITE DE POITIERS
Reel/Frame 018425/0486 →
Priority Claims (1)
FR 03 50891 · Nov 24, 2003 · national
Continuity (1)
Related Publication 20070062383A1 · Mar 22, 2007