Image forming apparatus, droplet discharge control method, and storage medium

US11633950B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-11633950-B2
Application numberUS-202117188703-A
CountryUS
Kind codeB2
Filing dateMar 1, 2021
Priority dateMar 4, 2020
Publication dateApr 25, 2023
Grant dateApr 25, 2023

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An image forming apparatus includes: a piezoelectric element with a common electrode on one side and an individual electrode on another side; a nozzle; and circuitry. The circuitry selects one from drive signals and supplies the one drive signal to the piezoelectric element via the individual electrode, to discharge a droplet through the nozzle to form an image. Each drive signal includes waveform pulses including a main pulse that rises in a slope shape during a rising time and finishes rising at an end time. The circuitry generates the drive signals so that the end time of a less influential drive signal other than a most influential drive signal falls within a range of the rising time of the main pulse of the most influential drive signal; selects the one drive signal based on an image to be formed; and supplies the one drive signal to the piezoelectric element.

First claim

Opening claim text (preview).

The invention claimed is: 1. An image forming apparatus, comprising: piezoelectric elements each with a common electrode on one side and an individual electrode on another side; nozzles configured to discharge droplets; and circuitry configured to determine driven piezoelectric elements to be driven among the piezoelectric elements at a print timing based on image information to be printed, select a drive signal from a plurality of drive signals per driven piezoelectric element at the print timing, and simultaneously supply the selected drive signal to individual ones of the driven piezoelectric elements via the individual electrode to discharge the droplets through the nozzles to form an image, the drive signals each comprise a different pulse waveform having a main pulse that rises in a slope shape during a rising time and finishes rising at an end time, the circuitry further configured to: generate the plurality of drive signals so that end times of a group of less influential drive signals other than a most influential drive signal among the plurality of drive signals fall within a range defined as being within a threshold amount of time of an end of the rising time of the main pulse of the most influential drive signal, and the end times are staggered across the range; and select the selected drive signal from the plurality of drive signals per driven piezoelectric element at the print timing based on the image information. 2. The image forming apparatus according to claim 1 , wherein the main pulse is a pulse that causes a largest width of potential variation in the common electrode among a plurality of pulses in a drive signal. 3. An image forming apparatus, comprising: piezoelectric elements each with a common electrode on one side and an individual electrode on another side; nozzles configured to discharge droplets; and circuitry configured to determine driven piezoelectric elements to be driven among the piezoelectric elements at a print timing based on image information to be printed, select a drive signal from a plurality of drive signals per driven piezoelectric element at the print timing, and simultaneously supply the selected drive signal to individual ones of the driven piezoelectric elements via the individual electrode to discharge the droplets through the nozzles to form an image, the drive signals each comprise a different pulse waveform having a main pulse that rises in a slope shape during a rising time and finishes rising at an end time, the circuitry further configured to: generate the plurality of drive signals so that end times of a group of drive signals other than a reference drive signal that drives a largest number of the driven piezoelectric elements among the plurality of drive signals fall within a range defined as being within a threshold amount of time of an end of the rising time of the main pulse of the reference drive signal, and the end times are staggered across the range; and select the selected drive signal from the plurality of drive signals per driven piezoelectric element at the print timing based on the image information. 4. The image forming apparatus according to claim 3 , wherein the main pulse is a pulse that causes a largest width of potential variation in the common electrode among a plurality of pulses in a drive signal. 5. A non-transitory storage medium storing computer-readable program code for causing an image forming apparatus including piezoelectric elements each with a common electrode on one side and an individual electrode on another side and nozzles configured to discharge droplets, to execute a droplet discharge control method: the method comprising: determining driven piezoelectric elements to be driven among the piezoelectric elements at a print timing based on image information to be printed; selecting a drive signal from a plurality of drive signals per driven piezoelectric element at the print timing; and simultaneously supplying the selected drive signal to individual ones of the driven piezoelectric elements via the individual electrode to discharge the droplets through the nozzles to form an image, wherein the drive signals each comprise a different pulse waveform having a main pulse that rises in a slope shape during a rising time and finishes rising at an end time; wherein the method further comprises generating the plurality of drive signals so that end times of a group of less influential drive signals other than a most influential drive signal among the plurality of drive signals fall within a range defined as being within a threshold amount of time of an end of the rising time of the main pulse of the most influential drive signal, and the end times are staggered across the range; wherein selecting the selected drive signal comprises selecting the selected drive signal from the plurality of drive signals per driven piezoelectric element at the print timing based on the image information. 6. The non-transitory storage medium according to claim 5 , wherein the main pulse is a pulse that causes a largest width of potential variation in the common electrode among a plurality of pulses in a drive signal. 7. The image forming apparatus according to claim 1 , wherein pulse waveforms of the plurality of drive signals each include a sub-pulse prior to the main pulse, and the sub-pulse rises in a slope shape, and end times of sub-pulses of the less influential drive signals are different from an end time of a sub-pulse of the most influential drive signal. 8. The image forming apparatus according to claim 1 , wherein the threshold amount of time comprises a time from a start of the slope of the rising edge of the main pulse to an end of the slope.

Assignees

Inventors

Classifications

  • using a specific waveform · CPC title

  • Timing; Delays · CPC title

  • controlling heads based on piezoelectric elements · CPC title

  • Control according to number of actuators used simultaneously · CPC title

  • Dot-size modulation by changing the number of drops per dot · CPC title

Patent family

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Frequently asked questions

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What does patent US11633950B2 cover?
An image forming apparatus includes: a piezoelectric element with a common electrode on one side and an individual electrode on another side; a nozzle; and circuitry. The circuitry selects one from drive signals and supplies the one drive signal to the piezoelectric element via the individual electrode, to discharge a droplet through the nozzle to form an image. Each drive signal includes wavef…
Who is the assignee on this patent?
Iwata Junichi, Ricoh Co Ltd
What technology area does this patent fall under?
Primary CPC classification B41J2/04581. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Apr 25 2023 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 3 related publications on this page (citations in our corpus or others sharing the same primary CPC).