IP Library Granted Patent US 9,266,322
Granted Patent B2
US 9,266,322 · App. 14/325,327 · Granted Feb 23, 2016

Liquid ejecting apparatus and method of controlling liquid ejecting apparatus

Inventor: Kinya Ozawa (Shiojiri, JP)
Assignee: Seiko Epson Corporation
B41J2/04563B41J2/04573B41J2/04581B41J2/04588
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Quick Facts
Patent No.
US 9,266,322
App. No.
14/325,327
Granted
Feb 23, 2016
Kind
B2
Abstract

Disclosed is a liquid ejecting apparatus, and a method of controlling the liquid ejecting apparatus, whereby at a timing at which temperature detection and ejection pulse change are subsequently performed, a frequency of execution of temperature detection and driving pulse change differs according to whether temperature detected by the temperature sensor is in a first temperature range in which a degree of change in viscosity of ink for change in temperature is relatively high or in a second temperature range in which the degree of the change in viscosity for the change in temperature is relative stable. More specifically, in the first temperature range, the frequency of execution of temperature detection and driving pulse change is high compared to the second temperature range.

Claims (17)

1. A liquid ejecting apparatus comprising:

a liquid ejecting head that comprises nozzles which eject liquid, a pressure generation section which generates pressure variation in the liquid within a liquid flow channel for communicating with the nozzles, and a temperature detection section, and that ejects the liquid from the nozzles by driving the pressure generation section;

a scan section that performs scanning by causing the liquid ejecting head to relatively move with respect to a landing target back and forth between a printing area in which the liquid ejecting head relatively moves on the landing target, and a non-printing area in which the liquid ejecting head is not on the landing target; and

a driving waveform generation section that generates a driving waveform which drives the pressure generation section based on temperature detected by the temperature detection section,

wherein the temperature detection section detects the temperature while the liquid ejecting head is in the printing area,

and wherein a change in the driving waveform is performed by the driving waveform generation section while the liquid ejecting head is in the non-printing area.

2. The liquid ejecting apparatus according to claim 1 , wherein the driving waveform generation section changes a driving voltage of the driving waveform based on the temperature detected by the temperature detection section.

3. The liquid ejecting apparatus according to claim 1 , wherein the driving waveform generation section changes widths of some waveform elements, which are included in the driving waveform, based on the temperature detected by the temperature detection section.

4. The liquid ejecting apparatus according to claim 1 , wherein the change in the viscosity of the liquid is equal to or higher than 0.1 mPa·s/° C. under an environment which is equal to or higher than 10° C.

5. The liquid ejecting apparatus according to claim 1 , wherein a frequency of change in the driving waveform performed by the driving waveform generation section differs between a first temperature range in which a degree of change in viscosity of the liquid is relatively large and a second temperature range in which the degree of the change in the viscosity of the liquid is relatively small.

6. The liquid ejecting apparatus according to claim 5 , wherein the frequency of change in the driving waveform in the first temperature range is higher than the frequency of change in the driving waveform in the second temperature range.

7. A method of controlling a liquid ejecting apparatus which comprises a liquid ejecting head that comprises nozzles which eject liquid, a pressure generation section which generates pressure variation in the liquid within a liquid flow channel for communicating with the nozzles, and a temperature detection section, and that ejects the liquid from the nozzles by driving the pressure generation section; a scan section that performs scanning by causing the liquid ejecting head to relatively move with respect to a landing target back and forth between a printing area in which the liquid ejecting head relatively moves on the landing target, and a non-printing area in which the liquid ejecting head is not on the landing target; and a driving waveform generation section, the method comprising:

detecting the temperature with the temperature detection section while the liquid ejecting head is in the printing area;

generating a driving waveform from the driving waveform generation section based on the temperature detected by the temperature detection section;

changing the driving waveform by the driving waveform generation section while the liquid ejecting head is in the non-printing area; and

driving the pressure generation section with the driving waveform.

8. The method according to claim 7 , wherein a frequency of change in the driving waveform performed by the driving waveform generation section differs between a first temperature range in which a degree of change in viscosity of the liquid is relatively large and a second temperature range in which the degree of the change in the viscosity of the liquid is relatively small.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 7, 2014
From: OZAWA, KINYA
To: SEIKO EPSON CORPORATION
Reel/Frame 033255/0131 →
Priority Claims (1)
JP 2013-143290 · Jul 9, 2013 · national
Continuity (1)
Related Publication 20150015630A1 · Jan 15, 2015