IP Library Granted Patent US 10,377,143
Granted Patent B2
US 10,377,143 · App. 15/876,849 · Granted Aug 13, 2019

Circulator and liquid ejector

Inventor: Kazuhiro Hara (Numazu Shizuoka, JP)
Assignee: Toshiba TEC Kabushiki Kaisha
B41J2/17556B41J2/175B41J2/17506B41J2/18
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Quick Facts
Patent No.
US 10,377,143
App. No.
15/876,849
Granted
Aug 13, 2019
Kind
B2
Abstract

A liquid circulator includes an upstream tank having a first pressure sensor, an intermediate tank, a downstream tank having a second pressure sensor, a circulation route for circulating liquid through an liquid ejecting head, the downstream tank, the intermediate tank, and the upstream tank, a first pump on the circulation route between the intermediate tank and the upstream tank, a second pump on the circulation route between the downstream tank and the intermediate tank, a first drive circuit configured to apply a first driving pulse to the first pump, a second drive circuit configured to apply a second driving pulse to the second pump, a controlling unit configured to calculate a pressure fluctuation value of the circulation route based on pressure values measured by the first and second pressure sensors, and adjust a phase difference between the first and second driving pulses as to minimize the pressure fluctuation value.

Claims (109)

1. A liquid circulator, comprising:

an upstream tank having a first pressure sensor;

a downstream tank having a second pressure sensor;

an intermediate tank connected to the upstream tank and the downstream tank via a circulation route for circulating liquid through an liquid ejecting head, the downstream tank, the intermediate tank, and the upstream tank;

a first pump on the circulation route between the intermediate tank and the upstream tank;

a second pump on the circulation route between the downstream tank and the intermediate tank;

a first drive circuit configured to apply a first driving pulse to the first pump;

a second drive circuit configured to apply a second driving pulse to the second pump;

a controlling unit configured to:

calculate a pressure fluctuation value of the circulation route based on pressure values measured by the first pressure sensor and the second pressure sensor; and

adjust a phase difference between the first driving pulse and the second driving pulse as to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are alternating current (AC) pulses.

2. The liquid circulator according to claim 1 , wherein the controlling unit is configured to, when adjusting the phase difference:

change a value of the phase difference between the first driving pulse and the second driving pulse at a predetermined interval for a predetermined number of times;

calculate a pressure fluctuation value for each value of the phase difference;

determine a value of the phase difference corresponding to a minimum fluctuation value among the calculated fluctuation values as an optimum phase difference; and

set the optimum phase difference as the phase difference between the first driving pulse and the second driving pulse.

3. The liquid circulator according to claim 1 , wherein the first and the second pumps are piezoelectric pumps.

4. The liquid circulator according to claim 1 , further comprising:

a cartridge for storing liquid and including a chamber which is open to the atmosphere;

a supply route via which the cartridge is fluidly connected to the intermediate tank; and

a replenishing pump on the supply route outside of the circulation route, wherein

the controlling unit is configured to drive the replenishing pump to:

send liquid to the intermediate tank when a liquid level of the intermediate tank is lower than a first predetermined level, and

stop sending liquid to the intermediate tank when the liquid level of the intermediate tank is higher than a second predetermined level.

5. The liquid circulator according to claim 1 , wherein the intermediate tank is a cartridge including a chamber which is open to the atmosphere.

6. The liquid circulator according to claim 1 , further comprising:

a first diaphragm at a liquid surface of the upstream tank; and

a second diaphragm at a liquid surface of the downstream tank, wherein

the first pressure sensor measures the pressure value inside the upstream tank above the first diaphragm, and

the second pressure sensor measures the pressure value inside the downstream tank above the second diaphragm.

7. A liquid circulator, comprising:

an upstream tank having a first pressure sensor;

a downstream tank having a second pressure sensor;

an intermediate tank connected to the upstream tank and the downstream tank via a circulation route for circulating liquid through an liquid ejecting head, the downstream tank, the intermediate tank, and the upstream tank;

a first pump on the circulation route between the intermediate tank and the upstream tank;

a second pump on the circulation route between the downstream tank and the intermediate tank;

a first drive circuit configured to apply a first driving pulse to the first pump;

a second drive circuit configured to apply a second driving pulse to the second pump;

a controlling unit configured to:

calculate a pressure fluctuation value of the circulation route based on pressure values measured by the first pressure sensor and the second pressure sensor; and

adjust a phase difference between the first driving pulse and the second driving pulse as to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are direct current (DC) pulses applied at different timings having a difference corresponding to the adjusted phase difference.

8. A liquid ejector, comprising:

an ink ejecting head configured to eject ink onto recording medium, the ink ejecting head having a supply port for receiving ink and a recovery port for removing ink;

an upstream tank having a first pressure sensor;

a downstream tank having a second pressure sensor;

an intermediate tank connected to the upstream tank and the downstream tank via a circulation route through which ink circulates through the ink ejecting head, the downstream tank, the intermediate tank, and the upstream tank;

a first pump on the circulation route between the intermediate tank and the upstream tank;

a second pump on the circulation route between the downstream tank and the intermediate tank;

a first drive circuit configured to apply a first driving pulse to the first pump;

a second drive circuit configured to apply a second driving pulse to the second pump; and

a controlling unit configured to:

calculate a pressure fluctuation value of the circulation route based on pressure values measured by the first pressure sensor and the second pressure sensor; and

adjust a phase difference between the first driving pulse and the second driving pulse as to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are alternating current (AC) pulses.

9. The liquid ejector according to claim 8 , wherein the controlling unit is configured to, when adjusting the phase difference:

change a value of the phase difference between the first driving pulse and the second driving pulse at a predetermined interval for a predetermined number of times;

calculate a pressure fluctuation value for each value of the phase difference;

determine a value of the phase difference corresponding to a minimum fluctuation value among the calculated fluctuation values as an optimum phase difference; and

set the optimum phase difference as the phase difference between the first driving pulse and the second driving pulse.

10. The liquid ejector according to claim 8 , wherein the first and the second pumps are piezoelectric pumps.

11. The liquid ejector according to claim 8 , further comprising:

a cartridge for storing ink and including a chamber which is open to the atmosphere;

a supply route via which the cartridge is fluidly connected to the intermediate tank; and

a replenishing pump on the supply route outside of the circulation route, wherein

the controlling unit is configured to drive the replenishing pump to:

send ink to the intermediate tank when a liquid level of the intermediate tank is lower than a first predetermined level, and

stop sending ink to the intermediate tank when the liquid level of the intermediate tank is higher than a second predetermined level.

12. The liquid ejector according to claim 8 , wherein the intermediate tank is a cartridge including a chamber which is open to the atmosphere.

13. The liquid ejector according to claim 8 , further comprising:

a first diaphragm at a liquid surface of the upstream tank; and

a second diaphragm at a liquid surface of the downstream tank, wherein

the first pressure sensor measures the pressure value inside the upstream tank above the first diaphragm, and

the second pressure sensor measures the pressure value inside the downstream tank above the second diaphragm.

14. A liquid ejector, comprising:

an ink ejecting head configured to eject ink onto recording medium, the ink ejecting head having a supply port for receiving ink and a recovery port for removing ink;

an upstream tank having a first pressure sensor;

a downstream tank having a second pressure sensor;

an intermediate tank connected to the upstream tank and the downstream tank via a circulation route through which ink circulates through the ink ejecting head, the downstream tank, the intermediate tank, and the upstream tank;

a first pump on the circulation route between the intermediate tank and the upstream tank;

a second pump on the circulation route between the downstream tank and the intermediate tank;

a first drive circuit configured to apply a first driving pulse to the first pump;

a second drive circuit configured to apply a second driving pulse to the second pump; and

a controlling unit configured to:

calculate a pressure fluctuation value of the circulation route based on pressure values measured by the first pressure sensor and the second pressure sensor; and

adjust a phase difference between the first driving pulse and the second driving pulse as to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are direct current (DC) pulses applied at different timings having a difference corresponding to the adjusted phase difference.

15. A method for circulating liquid on a circulation route, comprising:

measuring a first pressure value in an upstream tank;

measuring a second pressure value in a downstream tank;

applying a first driving pulse to a first pump to move liquid along a portion of a circulation route between an intermediate tank and the upstream tank;

applying a second driving pulse to a second pump to move liquid along a portion of the circulation route between the downstream tank and the intermediate tank;

calculating a pressure fluctuation value of the liquid in the circulation route based on the first pressure value and the second pressure value; and

adjusting a phase difference between the first driving pulse and the second driving pulse to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are alternating current (AC) pulses.

16. The method for circulating liquid on a circulation route according to claim 15 , wherein adjusting the phase difference comprises:

changing a value of the phase difference between the first driving pulse and the second driving pulse at a predetermined interval for a predetermined number of times;

calculating a pressure fluctuation value for each value of the phase difference;

determining a value of the phase difference corresponding to a minimum fluctuation value among the calculated fluctuation values as an optimum phase difference; and

setting the optimum phase difference as the phase difference between the first driving pulse and the second driving pulse.

17. A method for circulating liquid on a circulation route, comprising:

measuring a first pressure value in an upstream tank;

measuring a second pressure value in a downstream tank;

applying a first driving pulse to a first pump to move liquid along a portion of a circulation route between an intermediate tank and the upstream tank;

applying a second driving pulse to a second pump to move liquid along a portion of the circulation route between the downstream tank and the intermediate tank;

calculating a pressure fluctuation value of the liquid in the circulation route based on the first pressure value and the second pressure value; and

adjusting a phase difference between the first driving pulse and the second driving pulse to minimize the pressure fluctuation value, wherein

the first driving pulse and the second driving pulse are direct current (DC) pulses applied at different timings having a difference corresponding to the adjusted phase difference.

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 Jan 22, 2018
From: HARA, KAZUHIRO
To: TOSHIBA TEC KABUSHIKI KAISHA
Reel/Frame 044690/0908 →
Priority Claims (1)
JP 2017-043657 · Mar 8, 2017 · national
Continuity (1)
Related Publication 20180257384A1 · Sep 13, 2018