Patent classifications
B41J2/155
Liquid discharging head
A liquid discharging head is provided with: individual channels; a first common channel; and a second common channel. The individual channels include: first individual channels which have first pressure chambers and which are aligned in a second direction to form a first individual channel array, and second individual channels which have second pressure chambers and which are aligned in the second direction to form a second individual channel array; the first individual channel array and the second individual channel array are arranged in a third direction. The first common channel communicates with both of the first individual channels and the second individual channels; and the first pressure chambers and the second pressure chambers do not overlap with the second common channel in a first direction, and do not overlap with each other in the second direction.
SELECTIVE ASSIGNMENT OF PRINT DATA TO CALIBRATION TABLES IN ACCORDANCE WITH SUBSTRATE ADVANCEMENT SKEW
Print data is organized over rows and columns. The columns of each row are selectively assigned to calibration tables respectively corresponding to printheads of a pagewide array in accordance with a substrate advancement skew relative to the pagewide array. The calibration tables are applied to the columns of each row respectively assigned to the calibration tables. The columns of each row to which the calibration tables have been applied are printed using the printheads respectively corresponding to the calibration tables.
SELECTIVE ASSIGNMENT OF PRINT DATA TO CALIBRATION TABLES IN ACCORDANCE WITH SUBSTRATE ADVANCEMENT SKEW
Print data is organized over rows and columns. The columns of each row are selectively assigned to calibration tables respectively corresponding to printheads of a pagewide array in accordance with a substrate advancement skew relative to the pagewide array. The calibration tables are applied to the columns of each row respectively assigned to the calibration tables. The columns of each row to which the calibration tables have been applied are printed using the printheads respectively corresponding to the calibration tables.
LIQUID EJECTING APPARATUS AND LIQUID EJECTING HEAD
A liquid ejecting apparatus includes a liquid ejecting head that has an ejection surface including a first nozzle row configured to eject a first ink and a second nozzle row configured to eject a second ink. The liquid ejecting head is configured to be held in an inclined posture in which the ejection surface is inclined with respect to a horizontal plane. The viscosity of the first ink is lower than the viscosity of the second ink, and in the inclined posture, the first nozzle row is positioned above the second nozzle row with respect to a gravity direction.
IMAGE FORMING APPARATUS
In image forming apparatus, a recording head is configured to eject ink corresponding to an image to be printed, using arranged nozzles. A control unit is configured to determine nozzles corresponding to the image to be printed, correspondingly to a position of a print sheet, and cause the recording head to eject ink from the nozzles. A correction processing unit is configured to perform a correction process corresponding to each of the plural ink ejection malfunction positions in the image. A head cleaning processing unit is configured to perform head cleaning for the recording head. Further, if the number of the detected ink ejection malfunction positions exceeds a predetermined upperlimit value when using a predetermined ink droplet size, the correction processing unit causes the head cleaning processing unit to perform head cleaning for the recording head and thereby decreases the number of the ink ejection malfunction positions.
IMAGE FORMING APPARATUS
In image forming apparatus, a recording head is configured to eject ink corresponding to an image to be printed, using arranged nozzles. A control unit is configured to determine nozzles corresponding to the image to be printed, correspondingly to a position of a print sheet, and cause the recording head to eject ink from the nozzles. A correction processing unit is configured to perform a correction process corresponding to each of the plural ink ejection malfunction positions in the image. A head cleaning processing unit is configured to perform head cleaning for the recording head. Further, if the number of the detected ink ejection malfunction positions exceeds a predetermined upperlimit value when using a predetermined ink droplet size, the correction processing unit causes the head cleaning processing unit to perform head cleaning for the recording head and thereby decreases the number of the ink ejection malfunction positions.
Method for preparing fluorescent polarizing film based on directional arrangement of quantum rods
A method for preparing a fluorescent polarizing film based on directional arrangement of quantum rods. In the method, an inkjet printing technology is used for printing quantum-rod ink having proper viscosity and surface tension on a substrate according to a preset pattern, and directionally arranging quantum rods to obtain a fluorescent polarizing film. The diameter and spacing of fluorescent lines obtained by the method can be controlled and adjusted according to parameter conditions such as a needle aperture, a printing speed, and a preset pattern. The prepared transparent fluorescent film with directionally arranged quantum rods has a high degree of polarization, can be prepared on a flexible substrate in a normal temperature environment, and has wide applicability.
Method for preparing fluorescent polarizing film based on directional arrangement of quantum rods
A method for preparing a fluorescent polarizing film based on directional arrangement of quantum rods. In the method, an inkjet printing technology is used for printing quantum-rod ink having proper viscosity and surface tension on a substrate according to a preset pattern, and directionally arranging quantum rods to obtain a fluorescent polarizing film. The diameter and spacing of fluorescent lines obtained by the method can be controlled and adjusted according to parameter conditions such as a needle aperture, a printing speed, and a preset pattern. The prepared transparent fluorescent film with directionally arranged quantum rods has a high degree of polarization, can be prepared on a flexible substrate in a normal temperature environment, and has wide applicability.
Liquid ejecting apparatus
A liquid ejecting apparatus includes a first head having a first channel pipe, a channel member having a second channel pipe, and a first tube that communicates the first channel pipe with the second channel pipe and that has flexibility. The first tube has a first end portion and a second end portion that is opposite to the first end portion. The first tube is coupled to the first channel pipe in such a manner that the first end portion covers an outer periphery of the first channel pipe. The first tube is also coupled to the second channel pipe in such a manner that the second end portion covers an outer periphery of the second channel pipe. A fixation strength between the first tube and the first channel pipe is greater than a fixation strength between the first tube and the second channel pipe.
Liquid ejecting apparatus
A liquid ejecting apparatus includes a first head having a first channel pipe, a channel member having a second channel pipe, and a first tube that communicates the first channel pipe with the second channel pipe and that has flexibility. The first tube has a first end portion and a second end portion that is opposite to the first end portion. The first tube is coupled to the first channel pipe in such a manner that the first end portion covers an outer periphery of the first channel pipe. The first tube is also coupled to the second channel pipe in such a manner that the second end portion covers an outer periphery of the second channel pipe. A fixation strength between the first tube and the first channel pipe is greater than a fixation strength between the first tube and the second channel pipe.