IP Library Granted Patent US 11,685,157
Granted Patent B2
US 11,685,157 · App. 17/373,622 · Granted Jun 27, 2023

Upwards jetting digital printing platform

Inventors: Eduardo Bueno Espinal (Almazora, ES); Juan Escudero Gonzalez (Almazora, ES)
Assignee: ELECTRONICS FOR IMAGING, INC.
B41J2/07B41J2/04B41J2/1707B41J3/407B41J3/60B41J2002/1437B41J2202/11
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Quick Facts
Patent No.
US 11,685,157
App. No.
17/373,622
Granted
Jun 27, 2023
Kind
B2
Abstract

A printing platform includes a printing engine with one or more printheads arranged such that the ink drops are jetted vertically upwards against the action of gravity; and a substrate transportation system where the normal to the surface in contact with the substrate is parallel and with opposite direction to the travelling direction of the jetted ink drops. It is necessary to counteract the weight of the substrate during the printing process to avoid it from falling under the action of gravity. This is achieved through any of a mechanical element that interferes with the falling of the substrate and that keeps it in place; or a system that generates adhesion forces between the element that transmits the motion to the substrate, typically a conveyor belt, and the substrate through the action of electrostatic forces, an air pressure differential between both faces of the substrate, or any other suitable mechanism.

Claims (68)

1. An apparatus, comprising:

a digital printing engine having one or more printheads arranged to jet ink drops vertically upwards to a downward facing printing surface of a sheet against the action of gravity; and

a sheet transportation system where normal to a surface thereof that is in contact with each sheet is parallel, and with opposite direction, to the traveling direction of the jetted ink drops, said sheet transportation system conveying said downward facing printing surface of said sheet past said digital printing engine, wherein said digital printing engine forms an image on said downward facing printing surface of said sheet by jetting said ink drops vertically upwards thereto;

wherein said one or more printheads comprise:

a modification of any of the printhead, ink delivery system operating conditions, and substrate properties to ensure that the drop ejection process and deposition takes place against the action of gravity,

wherein the modification comprises any of the following aspects:

adjustments to ink delivery system setpoints that set ink temperature and viscosity, pressure within the one or more printheads, and a flow rate across the one or more printheads,

adjustments to a driving voltage signal that excites printhead actuators to effect ink drop ejection, and

adjustments to surface properties of the sheet; and

wherein the adjustments achieve an optimal convex meniscus shape by modifying ink pressure at a meniscus at a nozzle of the printhead, wherein the ink delivery system setpoints are modified to make pressure at the meniscus slightly above atmospheric one, thereby counteracting an effect of gravity and ensuring optimal meniscus shape for drop formation.

2. The apparatus of claim 1 , further comprising:

a sheet fabricator that produces individual sheets having a downward facing printing surface;

wherein said sheet fabricator produces corrugated cardboard sheets.

3. The apparatus of claim 1 , wherein said sheet transportation system conveys said sheet safely to avoid said sheet from falling under the action of gravity.

4. The apparatus of claim 3 , said sheet transportation system further comprising:

a mechanism counteracting sheet weight during conveyance of said sheet, said counteracting mechanism comprising any of:

a mechanical element that interferes with the falling of the sheet to keep the sheet in contact against as conveyance member of the sheet transportation system; and

a system that generates adhesion forces between the conveyance member of the sheet transportation system and the sheet through action of any of electrostatic forces or application of an air pressure differential between both faces of the sheet.

5. The apparatus of claim 1 , wherein said modification further comprises any of the following aspects:

the impact of gravity on the meniscus at the printhead nozzles;

the effect of gravity on ink drop formation;

the effect of gravity on a trajectory of jetted ink drops; and

the interaction of the ink drops with the sheet upon landing on the sheet.

6. The apparatus of claim 1 , wherein an increase in meniscus pressure is in the range of 3 to 10 kPa.

7. The apparatus of claim 1 , wherein said adjustments comprise a combination of a modification of the ink properties, including ink viscosity through ink heating/cooling, and a waveform of the driving voltage signal.

8. The apparatus of claim 7 , wherein a procedure to tune said waveform is performed in an experimental set-up in which parameters comprising voltage levels, duration of the voltage pulses, and spacing between the pulses is changed to achieve a desired drop characteristics and long-term jetting sustainability.

9. The apparatus of claim 1 , wherein higher power is applied for drop ejection due to gravity acting against the drop detachment from the ink ligament generated by action of the printhead actuator.

10. The apparatus of claim 1 , wherein adjustments to surface properties of the sheet comprise a primer agent that is applied to the sheet to increase surface energy of an ink-receiving surface to enhance its wettability.

11. The apparatus of claim 1 , further comprising:

a second digital printing engine having one or more printheads arranged to jet ink drops vertically downwards to an upward facing printing surface of said sheet.

12. A digital printer for printing on individual sheets having a downward facing printing surface, the digital printer comprising:

a digital print engine comprising one or more printheads arranged to jet ink drops vertically upwards to said downward facing printing surface of a sheet against the action of gravity;

wherein said print engine is configured to ensure that a drop ejection process and deposition takes place against the action of gravity;

wherein said configuring is performed with respect to any of the impact of gravity on an ink meniscus at nozzles of the one or more printheads, the effect of gravity on ink drop formation, the effect of gravity on a trajectory of the jetted ink drops, and the interaction of the jetted ink drops with the sheet upon landing on the sheet; and

wherein said configuring comprises any of:

adjustments to ink delivery system setpoints that set ink temperature and viscosity, pressure within the one or more printheads, and a flow rate across the one or more printheads;

adjustments to a driving voltage signal that excites printhead actuators to effect ink drop ejection; and

adjustments to surface properties of the sheet;

wherein said adjustments achieve an optimal convex meniscus shape by modifying ink pressure at the ink meniscus, wherein ink delivery system setpoints are modified to make pressure at the ink meniscus slightly above atmospheric one, thereby counteracting an effect of gravity and ensuring optimal meniscus shape for drop formation; and

a sheet transportation system where normal to a surface thereof that is in contact with each sheet is parallel, and with opposite direction, to the traveling direction of the jetted ink drops, said sheet transportation system conveying said downward facing printing surface of said sheet past said digital printing engine, wherein said digital printing engine forms an image on said downward facing printing surface of said sheet by jetting said ink drops vertically upwards thereto.

13. The digital printer of claim 12 , wherein an increase in meniscus pressure is in the range of 3 to 10 kPa.

14. The digital printer of claim 12 , wherein said adjustments comprise a combination of a modification of the ink properties, including ink viscosity through ink heating/cooling, and a waveform of the driving voltage signal.

15. The digital printer of claim 14 , wherein a procedure to tune said waveform is performed in an experimental set-up in which parameters comprising voltage levels, duration of the voltage pulses, and spacing between the pulses is changed to achieve a desired drop characteristics and long-term jetting sustainability.

16. The digital printer of claim 12 , wherein higher power is applied for drop ejection due to gravity acting against the drop detachment from the ink ligament generated by action of the printhead actuator.

17. The digital printer of claim 12 , said sheet transportation system further comprising:

a mechanism counteracting sheet weight during conveyance of said sheet, said counteracting mechanism comprising any of:

a mechanical element that interferes with the falling of the sheet to keep the sheet in contact against as conveyance member of the sheet transportation system; and

a system that generates adhesion forces between the conveyance member of the sheet transportation system and the sheet through action of any of electrostatic forces or application of an air pressure differential between both faces of the sheet.

18. A method for printing on individual sheets having a downward facing printing surface, comprising:

in a digital print engine, arranging one or more printheads to jet ink drops vertically upwards to said downward facing printing surface of a sheet against the action of gravity;

configuring said digital print engine to ensure that a drop ejection process and deposition takes place against the action of gravity;

performing said configuring with respect to any of the impact of gravity on an ink meniscus at nozzles of the one or more printheads, the effect of gravity on ink drop formation, the effect of gravity on a trajectory of the jetted ink drops, and the interaction of the ink drops with the sheet upon landing on the sheet; and

wherein said configuring comprises any of:

adjusting ink delivery system setpoints that set ink temperature and viscosity, pressure within the one or more printheads, and a flow rate across the one or more printheads;

adjusting a driving voltage signal that excites printhead actuators to effect ink drop ejection; and

adjusting surface properties of the sheet;

providing a sheet transportation system where normal to a surface thereof that is in contact with each sheet is parallel, and with opposite direction, to the traveling direction of the jetted ink drops, said sheet transportation system conveying said downward facing printing surface of said sheet past said digital printing engine, wherein said digital printing engine forms an image on said downward facing printing surface of said sheet by jetting said ink drops vertically upwards thereto; and

achieving an optimal convex meniscus shape by modifying ink pressure at the ink meniscus, wherein ink delivery system setpoints are modified to make pressure at the ink meniscus slightly above atmospheric one, thereby counteracting an effect of gravity and ensuring optimal meniscus shape for drop formation.

19. The method of claim 18 , wherein an increase in meniscus pressure is in the range of 3 to 10 kPa.

20. The method of claim 18 , wherein said adjusting comprises a combination of modifying the ink properties, including ink viscosity through ink heating/cooling, and modifying a waveform of the driving voltage signal.

21. The method of claim 18 , further comprising:

performing a procedure to tune said in an experimental set-up in which parameters comprising voltage levels, duration of the voltage pulses, and spacing between the pulses is changed to achieve a desired drop characteristics and long-term jetting sustainability.

22. The method of claim 18 , further comprising:

applying higher power for drop ejection due to gravity acting against the drop detachment from the ink ligament generated by action of the printhead actuator.

23. The apparatus of claim 18 , further comprising:

providing a mechanism counteracting sheet weight during conveyance of said sheet, said counteracting mechanism comprising any of:

with a mechanical element, interfering with the falling of the sheet to keep the sheet in contact against as conveyance member of the sheet transportation system; and

generating adhesion forces between the conveyance member of the sheet transportation system and the sheet through action of any of electrostatic forces or application of an air pressure differential between both faces of the sheet.

Assignments (4)
RELEASE OF PATENT SECURITY INTEREST Recorded Dec 3, 2024
From: CERBERUS BUSINESS FINANCE AGENCY, LLC
To: ELECTRONICS FOR IMAGING, INC.; FIERY, LLC
Reel/Frame 069477/0479 →
SECURITY INTEREST Recorded Mar 12, 2024
From: ELECTRONICS FOR IMAGING, INC.; FIERY, LLC
To: CERBERUS BUSINESS FINANCE AGENCY, LLC
Reel/Frame 066794/0315 →
SECURITY INTEREST Recorded Mar 8, 2024
From: ELECTRONICS FOR IMAGING, INC.
To: ROYAL BANK OF CANADA
Reel/Frame 066771/0475 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 4, 2022
From: BUENO ESPINAL, EDUARDO; ESCUDERO GONZALEZ, JUAN, DR.
To: ELECTRONICS FOR IMAGING, INC.
Reel/Frame 058886/0557 →
Continuity (1)
Related Publication 20230008164A1 · Jan 12, 2023