IP Library Granted Patent US 10,737,502
Granted Patent B2
US 10,737,502 · App. 16/104,735 · Granted Aug 11, 2020

Fluid circulation apparatus and fluid ejection apparatus

Inventors: Taiki Goto (Mishima Shizuoka, JP); Kazuhiro Hara (Numazu Shizuoka, JP)
Assignee: TOSHIBA TEC KABUSHIKI KAISHA
B41J2/17566B41J2/175B41J2/17596B41J2/18B41J29/38B41J2002/17576
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Quick Facts
Patent No.
US 10,737,502
App. No.
16/104,735
Granted
Aug 11, 2020
Kind
B2
Abstract

According to one embodiment, a fluid circulation apparatus includes a first tank to store fluid to be supplied to a fluid ejection head, a circulation path including a first flow path portion to provide fluid from the first tank to a supply port of the fluid ejection head, and a second flow path portion to return fluid from a collection port of the fluid ejection head to the first tank, a bypass flow path to connect the supply port to the collection port outside of the fluid ejection head, and a pressure sensor configured to measure pressure of the bypass flow path.

Claims (54)

1. A fluid circulation apparatus, comprising:

a first tank to store fluid to be supplied to a fluid ejection head;

a circulation path including a first flow path portion to provide fluid from the first tank to a supply port of the fluid ejection head, and a second flow path portion to return fluid from a collection port of the fluid ejection head to the first tank;

a bypass flow path to connect the supply port to the collection port outside of the fluid ejection head;

a pressure sensor configured to measure pressure of the bypass flow path;

a bypass tank at the midpoint of the length of the bypass flow path; and

an opening/closing valve connected to an air chamber of the bypass tank and configured to selectively open the air chamber to the atmosphere, wherein

the pressure sensor measures pressure in the air chamber of the bypass tank.

2. The fluid circulation apparatus according to claim 1 , further comprising:

a controller configured to adjust pressure of the circulation path based on the pressure of the bypass flow path as measured by the pressure sensor.

3. The fluid circulation apparatus according to claim 2 , wherein

the controller is configured to selectively open the first tank to adjust the pressure of the circulation path.

4. The fluid circulation apparatus according to claim 1 , wherein

the bypass flow path comprises a first bypass flow path portion fluidly connecting the first flow path portion to the bypass tank and a second bypass flow path portion fluidly connecting the bypass tank to the second flow path portion, and

the first bypass flow path portion and the second bypass flow path portion are identical to each other in length and in a flow path cross-sectional area, which is less than a flow path cross-sectional area of the circulation path.

5. The fluid circulation apparatus according to claim 1 , further comprising:

a circulation pump in the circulation path between the first tank and the fluid ejection head, the circulation pump being configured to send the fluid from the first tank toward the fluid ejection head; and

a processor configured to adjust fluid output rates of the circulation pump based on pressure in the air chamber of the bypass tank as measured by the pressure sensor.

6. A fluid ejection apparatus, comprising:

a fluid ejection head having a nozzle;

a first tank to store fluid to be supplied to the fluid ejection head;

a second tank to store fluid collected from the fluid ejection head;

a circulation path including a first flow path portion to provide fluid from the first tank to a supply port of the fluid ejection head, a second flow path portion to return fluid from a collection port of the fluid ejection head to the second tank, and a third flow path portion fluidly connecting the second tank to the first tank;

a bypass flow path fluidly connecting the first flow path portion to the second flow path portion;

a pressure sensor configured to measure pressure of the bypass flow path;

a bypass tank in the bypass flow path; and

an opening/closing valve connected to an air chamber of the bypass tank and configured to selectively open the air chamber to the atmosphere, wherein

the pressure sensor measures pressure in the air chamber of the bypass tank.

7. The fluid ejection apparatus according to claim 6 , further comprising:

a controller configured to adjust pressure of the circulation path based on the pressure of the bypass flow path as measured by the pressure sensor.

8. The fluid ejection apparatus according to claim 7 , wherein

the controller is configured to selectively open the first and second tanks to adjust the pressure of the circulation path.

9. The fluid ejection apparatus according to claim 6 , wherein

the bypass flow path comprises a first bypass flow path portion fluidly connecting the first flow path portion to the bypass tank and a second bypass flow path portion fluidly connecting the bypass tank to the second flow path portion, and

the first bypass flow path portion and the second bypass flow path portion are identical to each other in length and in a flow path cross-sectional area, which is less than a flow path cross-sectional area of the circulation path.

10. The fluid ejection apparatus according to claim 6 , further comprising:

a circulation pump in the circulation path between the first tank and the second tanks, the circulation pump being configured to send the fluid from the second tank toward the first tank; and

a processor configured to adjust fluid output rates of the circulation pump based on pressure of the air chamber of the bypass tank as measured by the pressure sensor.

11. A fluid ejection apparatus, comprising:

a fluid ejection head having a nozzle;

a first tank to store fluid to be supplied to the fluid ejection head;

a circulation path including a first flow path portion to provide fluid from the first tank to a supply port of the fluid ejection head, and a second flow path portion to return fluid from a collection port of the fluid ejection head to the first tank;

a bypass flow path fluidly connecting the supply port to the collection port outside of the fluid ejection head and the circulation path;

a pressure sensor configured to measure pressure of the bypass flow path:

a bypass tank in the bypass flow path; and

an opening/closing valve connected to an air chamber of the bypass tank and configured to selectively open the air chamber to the atmosphere, wherein

the pressure sensor measures pressure in the air chamber of the bypass tank.

12. The fluid ejection apparatus according to claim 11 , further comprising:

a controller configured to adjust pressure of the circulation path based on the pressure of the bypass flow path as measured by the pressure sensor.

13. The fluid ejection apparatus according to claim 12 , wherein

the controller is configured to selectively open the first tank to adjust the pressure of the circulation path.

14. The fluid ejection apparatus according to claim 11 , wherein

the bypass flow path comprises a first bypass flow path portion fluidly connecting the first flow path portion to the bypass tank and a second bypass flow path portion fluidly connecting the bypass tank to the second flow path portion, and

the first bypass flow path portion and the second bypass flow path portion are identical to each other in length and in a flow path cross-sectional area, which is less than a flow path cross-sectional area of the circulation path.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 7, 2024
From: TOSHIBA TEC KABUSHIKI KAISHA
To: RISO TECHNOLOGIES CORPORATION
Reel/Frame 068493/0970 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 16, 2018
From: GOTO, TAIKI; HARA, KAZUHIRO
To: TOSHIBA TEC KABUSHIKI KAISHA
Reel/Frame 047526/0528 →
Priority Claims (1)
JP 2017-183714 · Sep 25, 2017 · national
Continuity (1)
Related Publication 20190092034A1 · Mar 28, 2019