1. Field of the Invention
The present invention relates to a recording-medium-conveying device that conveys a recording medium and performs skew correction, and to a recording apparatus including the recording-medium-conveying device.
2. Description of the Related Art
In recording apparatuses in which images are formed by recording units while recording media are conveyed, various measures have been taken for improving the accuracy in conveyance of the recording media. If a recording medium is gradually deviates from a reference position while being conveyed, an image may not be formed correctly on the recording medium, resulting in image failure due to deviation in print position. To solve such a problem, some measures have been taken in the related art. An exemplary measure will be described below.
In Japanese Patent Laid-Open No. 62-215449, a recording medium is nipped between and is conveyed by a first roller made of an elastic material and a second roller made of a rigid material and facing the first roller. The contact pressure produced at the nip between the first and second rollers is adjustable in such a manner as to vary with the position in the recording-medium-width direction. According to such a configuration, when the contact pressure on one side in the recording-medium-width direction is increased, the first roller, which is an elastic member, is deformed, whereby the radius of the roller that conveys the recording medium is reduced. Therefore, the length of conveyance on the side where the contact pressure has been increased is reduced. Thus, any skew of the recording medium is corrected.
In recent years, however, it has become popular that printing is performed on glossy photo paper so that an image having as high quality as photographic quality can be obtained. Particularly, inkjet recording apparatuses have been desired to be capable of recording dots of microscopic sizes at higher density and with higher definition. Under such circumstances, the accuracy in conveyance of a recording medium needs to be improved dramatically, and the recording medium needs to be treated more carefully when printing is performed than in related-art cases. In this respect, mechanisms and control methods in the related art have faced limits.
Specifically, techniques in the related art have problems described below.
Since the print surface of glossy photo paper is highly specular and vulnerable, if the contact pressure produced at the nip between a pair of conveying rollers is increased, the print surface may have scratches and/or marks due to the increased contact pressure, deteriorating the print quality.
Moreover, since the roller for conveying the recording medium is deformed, the diameter of the roller may change during conveyance, resulting in unstable conveyance accuracy. Even a slight change in the diameter of the roller may lead to a non-negligible error in terms of accuracy in the conveyance of recording media on which high-definition images are to be formed as demanded in recent years.
In some cases, to drive the conveying roller with higher accuracy, a rigid roller made of a metal shaft coated with ceramic is employed. Such a rigid roller, however, is not applicable to the technique of correcting a skew by deforming a roller.
According to an aspect of the present invention, a device includes a conveying roller configured to convey a recording medium, a follower roller configured to press the recording medium against the conveying roller, a detector configured to detect a direction of skew of the conveyed recording medium, and a changer configured to change a state of contact between the recording medium and the conveying roller in accordance with a result of the detection by the skew detector such that a length of a portion of the conveying roller that is in contact with the recording medium in a conveyance direction is larger on a side toward which the recording medium is skewed than on an opposite side.
Further features of the present invention will become apparent from the following description of exemplary embodiments with reference to the attached drawings.
Recording apparatuses including recording-medium-conveying devices according to embodiments of the present invention will now be described with reference to the accompanying drawings.
While the following embodiments concern exemplary recording apparatuses of inkjet type employing serial heads, the embodiments are also applicable to recording apparatuses employing line heads. Herein, recording media in the form of sheets or rolls, such as paper, plastic sheets, and films, are generally referred to as “recording paper”.
Referring to
A discharge roller 5 discharges the recording paper P that has undergone recording. The discharge roller 5 and a discharge pinch roller 6 in combination nip and convey the recording paper P. A cutter 19 cuts the recording paper P that has undergone recording, whereby a portion of the recording paper P, which is continuous-form paper, having an image recorded thereon is separated.
The other end of the pinch roller shaft 30 may be supported by another bearing whose position is fixed, or may be supported by another pinch roller holder 7 that is movable by a motor. If the other end of the pinch roller shaft 30 is configured to be movable, another set of a pinch-roller-holder frame 9, a rack portion 9a, and a pinch roller motor 11 that form a pinch-roller-moving mechanism is also provided at the other end of the pinch roller shaft 30.
The recording head 13 in the first embodiment is of inkjet type in which ink is ejected by utilizing thermal energy. The recording head 13 includes a plurality of electrothermal conversion members that generate thermal energy. Specifically, the electrothermal conversion members generate thermal energy in accordance with a pulse signal applied thereto, whereby film boiling occurs in the ink. With a foaming pressure produced by the film boiling, the ink is ejected from ejection ports, and recording is thus performed.
Referring to
A host apparatus 110 is an image source externally connected to the recording apparatus. The host apparatus 110 may be a computer that generates and/or processes data, such as an image, relevant to recording, or a reader intended for image reading. Image data, commands, status signals, and the like supplied from the host apparatus 110 are transmittable to the controller 100 through an interface 112 that allows communication between the host apparatus 110 and the controller 100.
An operation section 120 is a group of switches that accept input instructions made by an operator and includes a power switch 122, a recovery switch 126 that instructs to start recovery by suction, and so forth.
A sensor section 130 is a group of sensors that detect various statuses of the apparatus. In the first embodiment, the sensor section 130 includes the skew sensor 3, a temperature sensor 134 that detects the ambient temperature, and various other sensors.
A head driver 140 drives the recording head 13 in accordance with recording data. The head driver 140 includes a timing setter that appropriately sets the timing of ejection so that the positions of dots to be formed on the recording paper P are adjusted, and so forth.
A sub-heater 142 is provided near the recording head 13. The sub-heater 142 adjusts the temperature of the recording head 13 so that the characteristic of ink ejection is stabilized. The sub-heater 142 may be provided on a substrate of the recording head 13, or on the body of the recording head 13.
A motor driver 170 drives the LF motor 12 and the feed motor 17. When the feed motor 17 is driven, the recording paper P is fed from the roll. When the LF motor 12 is driven, the recording paper P is conveyed toward a print unit. A motor driver 160 drives the pinch roller motor 11. When the pinch roller motor 11 is driven, the position of an end of the pinch roller shaft 30 is changed. In the case where only one end of the pinch roller shaft 30 is movable, one pinch roller motor 11 is provided. In the case where both ends of the pinch roller shaft 30 are movable, two pinch roller motors 11 are provided and are controlled independently of each other. Alternatively, the four pinch rollers 1a to 1d may be supported by four pinch roller holders 7, respectively, and be provided with four pinch-roller-moving mechanisms, respectively, each including a pinch-roller-holder frame 9, a rack portion 9a, and a pinch roller motor 11. In that case, the four pinch roller motors 11 are to be controlled independently of one another.
A correcting operation performed in the recording apparatus having the above configuration when any skew of the recording paper P occurs will now be described.
The length of movement of the follower roller 1 is varied in accordance with the amount of skew detected by the skew sensor 3. In the first embodiment, the length of movement of the follower roller 1 is determined on the basis of a table, shown in
For example, when a skew of 0.3 mm occurs in the positive (+) direction, i.e., in the rightward direction in
The above experimental result was obtained with an LF roller 2 having a diameter of 10 mm and pinch rollers 1a to 1d having a diameter of 7 mm. If the rollers 2 and 1a to 1d have diameters different from the foregoing, experimental values are to be newly obtained.
The amounts of offset are determined with reference to the experimental values, such as those summarized in
The principle of skew correction realized by varying the amount of offset of the follower roller 1 will now be described.
Thus, the pinch-roller-moving mechanisms each function as a contact-state changer that changes the state of contact between the recording paper P and the LF roller 2.
Since skew correction is performed by changing only the amounts of offset for the pinch rollers 1a to 1d, the first embodiment of the present invention is applicable to rollers made of various materials, without limitations such as the use of an elastic roller as required in the related art.
Another exemplary control operation will now be described. As described in the flowchart shown in
In such a control operation, if any skew is detected, the current print job is finished first (step S103). Subsequently, the recording paper P, which is continuous-form paper, is cut by the cutter 19 provided on the downstream side with respect to the discharge roller 5 (step S106), and the remaining portion of the recording paper P is rewound to a position on the upstream side with respect to the follower roller 1 by the LF roller 2 and the feed roller 21 (step S107). In this state where the recording paper P is not nipped between the LF roller 2 and the follower roller 1, the operation proceeds to the next step. In the example shown in
If the skew is not smaller than the specific amount even after the above correcting operation, the pinch rollers 1a to 1d are moved again in accordance with the difference from the specific amount. The lengths of movement are determined taking into consideration the difference between the experimental value and the actually corrected amount of skew.
For example, a case will be considered where a skew of +0.2 mm has occurred after conveyance by 50 mm. To correct this skew, referring to
By producing the state in which the recording paper P is not nipped between the follower roller 1 and the LF roller 2 while the follower roller 1 is offset, skew correction for, for example, very thin recording paper P that is easily wrinkled by the movement of the follower roller 1 is performed without damaging the recording paper P. Skew correction may be performed in different manners for different kinds of paper. That is, skew correction for normal recording paper is performed in accordance with the flowchart shown in
In addition, skew correction for cut paper is performed in accordance with the flowchart shown in
In the first embodiment, the pinch rollers 1a to 1d are arranged in one line along the LF roller 2. The present invention is also applicable to a configuration in which rows of pinch rollers are arranged side by side in the conveyance direction. In that case, the pinch rollers may be moved simultaneously in a specific direction.
The recording head 13 described above is a serial head that performs printing by moving back and forth. Alternatively, the recording head 13 may be a line head including a plurality of recording heads provided side by side in the conveyance direction.
According to the first embodiment of the present invention, skew correction is performed assuredly without deforming the conveying roller and deteriorating the conveyance accuracy or without damaging the recording medium with scratches and/or marks, regardless of the material of the conveying roller. Consequently, highly accurate conveyance of the recording medium is realized. Thus, the occurrence of deviation in image position due to a skew of the recording medium is prevented, and a high-quality printed image is output.
Referring to
The other elements are the same as those in the recording apparatus shown in
The skew-correcting operation will now be described with reference to
In step S302, if any skew of a specific amount or larger is detected by the skew sensor 3 during the conveyance of the recording paper P, the operation proceeds to step S303, where skew correction is performed. In step S303, one of the ends 18a and 18b of the paper-path-adjusting roller 18 on the side toward which the recording paper P is skewed is lowered by a specific length by the position-changing mechanism. When a skew is detected, the paper-path-adjusting roller 18 is moved such that the ends 18a and 18b thereof in the paper width direction are positioned at different levels, whereby the paper path is changed in the paper width direction. Thus, as in the first embodiment, the length by which the recording paper P is in contact with the LF roller 2 is varied in the paper width direction between that on the right side and that on the left side. Thus, the skew of the recording paper P is corrected.
An exemplary case will now be considered where the recording paper P is skewed in the leftward direction as shown in
The lengths by which the ends 18a and 18b of the paper-path-adjusting roller 18 are to be lowered are determined on the basis of a table, shown in
If the amount of skew correction is larger or smaller than expected, the end 18a or 18b of the paper-path-adjusting roller 18 is lowered again in accordance with the difference from the expected amount of skew correction (step S304). By repeating this step, the amount of skew is adjusted to be constantly within a specific range.
Thus, unlike in the first embodiment, skew correction is performed by varying the levels of the right and left ends 18a and 18b of the paper-path-adjusting roller 18 provided on the upstream side with respect to the LF roller 2.
The recording head 13 described above is a serial head that performs printing by moving back and forth. Alternatively, the recording head 13 may be a line head including a plurality of recording heads provided side by side in the conveyance direction.
According to the second embodiment, skew correction is performed assuredly without damaging the recording medium with scratches and/or marks, regardless of the material of the conveying roller. Consequently, highly accurate conveyance of the recording medium is realized. Thus, the occurrence of deviation in image position due to a skew of the recording medium is prevented, and a high-quality printed image is output. Even in a case where the pinch roller cannot be moved because of limitations of the recording apparatus, skew correction is possible according to the second embodiment. If the configuration permits, the first and second embodiments may be applied simultaneously. In that case, it is possible to correct larger skews.
A third embodiment of the present invention will now be described.
As described in the first embodiment, in the case where rows of pinch rollers are arranged side by side in the conveyance direction, skew correction is possible by moving the pinch rollers simultaneously in a specific direction. Referring to
If any skew of a specific amount or larger is detected in step S402, the pinch rollers 1a to 1h are moved in step S403. For example,
Thus, skew correction is possible in the configuration in which two rows of pinch rollers are arranged side by side in the conveyance direction. By arranging pinch rollers in two rows, the recording paper P partially runs along the LF roller 2 even though skew correction is not performed. Therefore, the recording paper P has an increased strength for overcoming disturbances such as back tension, and the conveyance accuracy is expected to be further improved. Since skew correction is of course possible in such a configuration, more accurate conveyance of the recording medium is realized. Thus, the occurrence of deviation in image position due to a skew of the recording medium is prevented, and a high-quality printed image is output.
The recording head 13 described in each of the above embodiments is a serial head that performs printing by moving back and forth. Alternatively, the recording head 13 may be a line head in which a plurality of recording heads having ink ejection ports covering the entire width of the recording paper P are provided side by side in the conveyance direction.
The LF roller 2 described in each of the above embodiments may be a rigid roller made of a metal shaft coated with ceramic. By employing a rigid, high-accuracy conveying roller, errors in conveyance are reduced as much as possible, and skew correction is performed assuredly without damaging the recording medium with scratches and/or marks. Consequently, highly accurate conveyance of the recording medium is realized. Thus, a high-quality printed image is output.
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2009-279915 filed Dec. 9, 2009, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2009-279915 | Dec 2009 | JP | national |