IP Library › Granted Patent US 12,643,330
Granted Patent B2
US 12,643,330 · App. 18/515,545 · Granted Jun 2, 2026

Ink jet recording method and ink jet recording apparatus

Inventors: Masaya Asao (Kanagawa, JP); Minako Kawabe (Tokyo, JP)
Assignee: Canon Kabushiki Kaisha
B41J2/18B41M3/001
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Quick Facts
Patent No.
US 12,643,330
App. No.
18/515,545
Granted
Jun 2, 2026
Kind
B2
Abstract

Provided is an ink jet recording method including using an aqueous ink and a reaction liquid, in which ejection stability of the reaction liquid is excellent and a high-quality image can be recorded. Specifically, provided is an ink jet recording method including recording an image on a recording medium with an aqueous ink and an aqueous reaction liquid. The ink jet recording method includes a reaction liquid applying step and an ink applying step. An ejection head includes: an ejection element substrate including an ejection orifice configured to eject the reaction liquid; and a circulation flow path configured to circulate the reaction liquid between an inside and an outside of the ejection element substrate.

Claims (33)

1 . A method for suppressing a physical property change of a reaction liquid in an ink jet recording apparatus for recording an image on a recording medium with an aqueous ink and an aqueous reaction liquid containing a reactant that reacts with the aqueous ink, the recording apparatus comprising an

ejection head of an ink jet system including:

an ejection element substrate including a liquid chamber having an ejection orifice configured to eject the reaction liquid filled inside thereof; and

a circulation flow path configured to circulate the reaction liquid between an inside and an outside of the liquid chamber going through the liquid chamber, and

wherein the circulation flow path comprises:

an inflow portion configured to flow the reaction liquid into the ejection element substrate;

an outflow portion configured to flow the reaction liquid out of the ejection element substrate;

a first reaction liquid flow path that is connected from the inflow portion to the outflow portion going through the liquid chamber; and

a second reaction liquid flow path that is branched from the first reaction liquid flow path and is connected from the inflow portion to the outflow portion without going through the liquid chamber,

wherein the method comprises:

a reaction liquid applying step of applying the reaction liquid to the recording medium by ejecting the reaction liquid from the ejection head;

an ink applying step of applying the aqueous ink to the recording medium so that a region to which the aqueous ink is applied and a region to which the reaction liquid is applied at least partially overlap on the recording medium; and

a circulation step of circulating the reaction liquid in the circulation flow path of the ejection head, including joining the reaction liquid flowing out from the first reaction liquid flow path and the reaction liquid flowing out from the second reaction liquid flow path.

2 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the reaction liquid that flows in the first reaction liquid flow path has a higher pressure than a pressure of the reaction liquid that flows in the second reaction liquid flow path.

3 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the reaction liquid that flows in the first reaction liquid flow path has a flow rate of 0.1 mm/s or more to 100.0 mm/s or less.

4 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the reactant is a component that is solid at 25° C.

5 . The method for suppressing a physical property change of a reaction liquid according to claim 4 , wherein a content (% by mass) of the reactant in the reaction liquid is 10.0% by mass or more with respect to a total mass of the reaction liquid.

6 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein a content (% by mass) of a component that is solid at 25° C. in the reaction liquid is 20.0% by mass or more with respect to a total mass of the reaction liquid.

7 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the ejection head is a line type ejection head.

8 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the first reaction liquid flow path merges with the second reaction liquid flow path downstream of the liquid chamber and is connected to the outflow portion.

9 . The method for suppressing a physical property change of a reaction liquid according to claim 1 , wherein the reaction liquid that flows in the ejection head has a temperature of 30° C. or more to 50° C. or less.

10 . An ink jet recording method for recording an image on a recording medium with an aqueous ink and an aqueous reaction liquid containing a reactant that reacts with the aqueous ink, the method comprising:

a reaction liquid applying step of applying the reaction liquid to the recording medium by ejecting the reaction liquid from an ejection head of an ink jet system; and

an ink applying step of applying the aqueous ink to the recording medium so that a region to which the aqueous ink is applied and a region to which the reaction liquid is applied at least partially overlap on the recording medium,

wherein the ejection head comprises:

an ejection element substrate including a liquid chamber having an ejection orifice configured to eject the reaction liquid filled inside thereof, and

a circulation flow path configured to circulate the reaction liquid between an inside and an outside of the liquid chamber going through the liquid chamber, and

wherein the circulation flow path comprises:

an inflow portion configured to flow the reaction liquid into the ejection element substrate;

an outflow portion configured to flow the reaction liquid out of the ejection element substrate;

a first reaction liquid flow path that is connected from the inflow portion to the outflow portion going through the liquid chamber; and

a second reaction liquid flow path that is branched from the first reaction liquid flow path and is connected from the inflow portion to the outflow portion without going through the liquid chamber,

whereby a physical property change of the reaction liquid is suppressed.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 10, 2024
From: ASAO, MASAYA; KAWABE, MINAKO
To: CANON KABUSHIKI KAISHA
Reel/Frame 066072/0664 →
Priority Claims (2)
JP 2022-188250 · Nov 25, 2022 · national
JP 2023-191906 · Nov 10, 2023 · national
Continuity (1)
Related Publication 20240173993A1 · May 30, 2024
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