IP Library Patent Application 18789992
Patent Application
App. No. 18/789,992

SYSTEM AND METHOD FOR ELECTROSTATICALLY ASSISTING INK DRYING IN AN AQUEOUS INKJET PRINTER

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Quick Facts
Patent No.
US None
App. No.
18/789,992
Filed
Jul 31, 2024
Art Unit
2853
USPC
347/102
Abstract

An inkjet printer includes one or more devices to increase evaporation rates within one or more dryers in the inkjet printer. An electrostatic charge generator can be positioned before a dryer to charge media and liquid materials ejected onto the media before the media enters the dryer to increase evaporation rates. An electric field generator within the dryer can be operated to generate an electric field that is directed toward the media to increase the movement of the vapor cloud away from the media being carried by a media transport within the dryer. Additionally, a corona generator can be coupled to an AC high frequency current to generate a corona wind to increase evaporation rates within the dryer.

Claims (44)

1 . An inkjet printer comprising:

a media transport configured to move media through the inkjet printer in a process direction; and

an electrostatic charge generator positioned to direct electrostatic charge toward the media being moved by the media transport to improve an evaporation rate in material applied to the media being moved by the media transport.

2 . The inkjet printer of claim 1 further comprising:

an applicator configured to apply the material to the media being moved by the media transport before the media is printed; and

the electrostatic charge generator being positioned to direct the electrostatic charge toward the media being moved by the media transport after the applicator has applied the material to the media and before the material has dried.

3 . The inkjet printer of claim 1 further comprising:

at least one printhead positioned opposite the media transport, the at least one printhead being configured to eject drops of ink onto the media being moved by the media transport; and

the electrostatic charge generator being positioned to direct the electrostatic charge toward the media being moved by the media transport after the at least one printhead has ejected drops of ink onto the media being moved by the media transport.

4 . The inkjet printer of claim 3 wherein the electrostatic charge generator is one of a DC scorotron and an AC discorotron.

5 . The inkjet printer of claim 3 further comprising:

a dryer configured to direct heat toward the media as the media transport moves the media through the dryer; and

an electric field generator positioned within the dryer to direct an electric field perpendicular to the media passing through the dryer.

6 . The inkjet printer of claim 5 , the electric field generator further comprising:

a perforated electrode that is coupled to a voltage supply to generate the electric field to move charged evaporated material away from the media within the dryer, through the perforated electrode, and out of the dryer.

7 . The inkjet printer of claim 3 , the dryer further comprising:

a dryer configured to direct heat toward the media as the media transport moves the media through the dryer; and

a corona generator positioned within the dryer to direct a corona wind toward media passing through the dryer.

8 . The inkjet printer of claim 7 wherein the corona generator is a coronode.

9 . The inkjet printer of claim 7 wherein the coronode is an electrically conductive wire.

10 . The inkjet printer of claim 9 wherein the electrically conductive wire has a diameter of 75 microns.

11 . A method for drying ink in an inkjet printer comprising:

operating a media transport to move media through the inkjet printer in a process direction; and

operating an electrostatic charge generator to direct electrostatic charge toward the media being moved by the media transport to improve an evaporation rate in material applied to the media being moved by the media transport.

12 . The method of claim 11 further comprising:

applying the material to the media being moved by the media transport before the media is printed; and

operating the electrostatic charge generator to direct the electrostatic charge toward the media being moved by the media transport after the applicator has applied the material to the media and before the material has dried.

13 . The method of claim 11 further comprising:

operating at least one printhead to eject drops of ink onto the media being moved by the media transport; and

operating the electrostatic charge generator to direct the electrostatic charge toward the media being moved by the media transport after the at least one printhead has ejected drops of ink onto the media being moved by the media transport.

14 . The method of claim 13 wherein the operation of the electrostatic charge generator includes operating one of a DC scorotron and an AC scorotron.

15 . The method of claim 13 further comprising:

operating a dryer to direct heat toward the media as the media transport moves the media through the dryer; and

operating an electric field generator within the dryer to direct an electric field perpendicular to the media within the dryer.

16 . The method of claim 15 , the operation of the electric field generator further comprising:

coupling a perforated electrode to a voltage supply to generate the electric field to move charged evaporated material away from the media within the dryer, through the perforated electrode, and out of the dryer.

17 . The method of claim 13 further comprising:

operating a dryer to direct heat toward the media as the media transport moves the media through the dryer; and

operating a corona generator within the dryer to direct a corona wind toward media within the dryer.

18 . The method of claim 17 , the operation of the corona generator further comprising:

coupling a coronode to an electrical voltage.

19 . The method of claim 18 , the coupling of the coronode further comprising:

coupling an electrically conductive wire to the electrical voltage.

20 . The method of claim 19 wherein the electrically conductive wire has a diameter of 75 microns.

Assignments (5)
SECOND LIEN NOTES PATENT SECURITY AGREEMENT Recorded Jul 2, 2025
From: XEROX CORPORATION
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 071785/0550 →
SECURITY INTEREST Recorded Apr 11, 2025
From: XEROX CORPORATION
To: JEFFERIES FINANCE LLC, AS COLLATERAL AGENT
Reel/Frame 070821/0219 →
SECURITY INTEREST Recorded Apr 11, 2025
From: XEROX CORPORATION
To: CITIBANK, N.A., AS COLLATERAL AGENT
Reel/Frame 070821/0240 →
FIRST LIEN NOTES PATENT SECURITY AGREEMENT Recorded Apr 11, 2025
From: XEROX CORPORATION
To: U.S. BANK TRUST COMPANY, NATIONAL ASSOCIATION, AS COLLATERAL AGENT
Reel/Frame 070824/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 15, 2024
From: RAMESH, PALGHAT S.; RUIZ, ERWIN; ZIELENSKI, MEGAN; PIETRANTONI, NICOLAS C.; KUHL, SAMUEL E.
To: XEROX CORPORATION
Reel/Frame 068301/0274 →