The present application claims priority under 35 U.S.C. § 119 to Japanese Patent Application No. 2017-104351, filed on May 26, 2017. The contents of this application are incorporated herein by reference in their entirety.
The present disclosure relates to a decurling device and an inkjet recording apparatus.
There is a known inkjet recording apparatus that forms an image on a recording medium (a sheet) using a water-based ink. When an image is formed using a water-based ink, a main surface of the recording medium on which the image is formed may extend with a result that the recording medium curls. Some inkjet recording apparatus for example inhibits a lift (curl) of a recording medium by pressing the recording medium from above with a pressing member.
A decurling device according to a first aspect of the present disclosure includes a first conveyance path, a second conveyance path, a first switch, a decurler, and a controller. A sheet is conveyed along the first conveyance path or the second conveyance path. The first switch switches a route of conveyance of the sheet to the first conveyance path or the second conveyance path. The sheet has a first main surface and a second main surface. The decurler is located in the second conveyance path. The decurler corrects curl of the sheet. In a situation in which a weight per unit area of the sheet is smaller than a first threshold value, the controller controls the first switch such that the sheet is conveyed along the second conveyance path.
An inkjet recording apparatus according to a second aspect of the present disclosure includes the decurling device according to the first aspect and an image forming device. The image forming device forms an image on the sheet by ejecting an ink thereto.
The following describes an embodiment of the present disclosure with reference to the drawings. However, the present disclosure is not limited to the embodiment described below. In the drawings, elements that are the same or equivalent are labelled using the same reference signs, and explanation of which will not be repeated. Although some overlapping explanations may be omitted as appropriate, such omission does not limit the gist of the present disclosure.
The following describes an inkjet recording apparatus 1 according to an embodiment with reference to
The following describes the main body 10. The main body 10 includes a conveyance section 100, a cassette 110, an image forming device 120, a controller 130, and a first exit tray 140. The controller 130 is a central processing unit (CPU), for example. The controller 130 controls operation of the main body 10.
The cassette 110 accommodates sheets S. The sheets S are for example plain paper, thick paper, overhead projector (OHP) sheets, envelopes, post cards, or invoice sheets. Each sheet S has a first main surface and a second main surface. The cassette 110 includes a first cassette 111 and a second cassette 112. A sheet S accommodated in the first cassette 111 and a sheet S accommodated in the second cassette 112 differ from each other in weight per unit area thereof. In the present embodiment, the first cassette 111 accommodates a sheet S that has a weight per unit area equal to or greater than a first threshold value. The second cassette 112 accommodates a sheet S that has a weight per unit area smaller than the first threshold value. The first threshold value is set by a user in advance. The first threshold value will be described later.
The conveyance section 100 conveys each sheet S in a conveyance direction A thereof. First, the conveyance section 100 conveys the sheet S accommodated in the cassette 110 toward the image forming device 120. The image forming device 120 forms an image on the sheet S by ejecting an ink thereto.
When an image is formed only on a first main surface of the sheet S, the conveyance section 100 conveys the sheet S with the image formed thereon toward the decurling device 20 or the first exit tray 140. By contrast, when an image is to be formed on each of the first main surface and a second main surface of the sheet S, the conveyance section 100 guides the sheet S with an image formed on the first main surface thereof to the image forming device 120 again. Then, the image forming device 120 forms an image on the second main surface of the sheet S. The conveyance section 100 conveys the sheet S with the image formed on the second main surface thereof toward the decurling device 20 or the first exit tray 140.
When a specific post-printing processing is to be performed on the sheet S, the conveyance section 100 conveys the sheet S toward the decurling device 20. By contrast, when no post-printing processing is to be performed on the sheet S, the conveyance section 100 conveys the sheet S toward the first exit tray 140 for ejection of the sheet S onto the first exit tray 140.
Next, the decurling device 20 will be described. The decurling device 20 corrects (i.e., removes or decurls) curl of the sheet S. The decurling device 20 includes a first conveyance path 210, a second conveyance path 220, a first switch 250, a decurler 280, and a controller 290. The sheet S is conveyed along the first conveyance path 210 or the second conveyance path 220. The first switch 250 is located in the first conveyance path 210. The first switch 250 switches a route of conveyance of the sheet S to the first conveyance path 210 or the second conveyance path 220. The decurler 280 is located in the second conveyance path 220. The decurler 280 corrects curl of the sheet S.
The controller 290 is a CPU, for example. The controller 290 controls operation of the decurling device 20. In a situation in which the weight per unit area of the sheet S is smaller than the first threshold value, the controller 290 controls the first switch 250 such that the sheet S is conveyed along the second conveyance path 220. By contrast, in a situation in which the weight per unit area of the sheet S is equal to or greater than the first threshold value, the controller 290 controls the first switch 250 such that the sheet S is conveyed along the first conveyance path 210. That is, the sheet S accommodated in the first cassette 111 is conveyed along the first conveyance path 210 in the present embodiment. The sheet S accommodated in the second cassette 112 is conveyed along the second conveyance path 220 in the present embodiment.
Next, the post-printing processing device 30 will be described. The post-printing processing device 30 performs a specific post-printing processing on the sheet S. The specific post-printing processing is a punching processing, for example. The punching processing is a processing by which a punch hole is formed through the sheet S. The post-printing processing device 30 includes a punching section 310 and a second exit tray 320. The punching section 310 performs the punching processing on the sheet S having been conveyed thereto. The sheet S subjected to the punching processing is ejected onto the second exit tray 320.
As described above with reference to
In a situation in which the weight per unit area of the sheet S is equal to or greater than the first threshold value, the first switch 250 is controlled such that the sheet S is conveyed along the first conveyance path 210 in the present embodiment. Therefore, curl correction is not performed on the sheet S in a situation in which the weight per unit area of the sheet S is equal to or greater than the first threshold value. Thus, it can be prevented that curl correction is unnecessarily performed on the sheet S.
Further, the sheet S having been conveyed through the decurling device 20 is conveyed to the post-printing processing device 30 in the present embodiment. Therefore, curl correction has been performed on the sheet S conveyed to the post-printing processing device 30. As a result, the post-printing processing can be performed more accurately on the sheet S by the post-printing processing device 30.
Next, the decurling device 20 will be described in detail with reference to
The housing 200 has an insertion port 200a and an exit port 200b. The sheet S having been conveyed from the main body 10 is inserted into the insertion port 200a (see
The decurler 280 includes a first decurler 281, a second decurler 282, and a heater 283. The heater 283 is located upstream of the first decurler 281 in the conveyance direction A of the sheet S. The first decurler 281 is located between the heater 283 and the second decurler 282 in the conveyance direction A of the sheet S. The second decurler 282 is located downstream of the first decurler 281 in the conveyance direction A of the sheet S. The heater 283 heats the sheet S. The first decurler 281 and the second decurler 282 each press the sheet S.
The second switch 260 and the third switch 270 are both located in the second conveyance path 220. Specifically, the second switch 260 is located upstream of the first decurler 281 in the conveyance direction A of the sheet S. The third switch 270 is located downstream of the first decurler 281 and upstream of the second decurler 282 in the conveyance direction A of the sheet S.
The third conveyance path 230 and the fourth conveyance path 240 each are a path along which the sheet S is conveyed. The third conveyance path 230 extends from the second switch 260 to a first position P1. The first position P1 is located downstream of the first decurler 281 and upstream of the third switch 270 in the conveyance direction A of the sheet S. The fourth conveyance path 240 extends from the third switch 270 to a second position P2. The second position P2 is located downstream of the second decurler 282 in the conveyance direction A of the sheet S.
The second switch 260 switches the route of conveyance of the sheet S to the second conveyance path 220 or the third conveyance path 230. The third switch 270 switches the route of conveyance of the sheet S to the second conveyance path 220 or the fourth conveyance path 240.
Description will be continued about details of the heater 283, the first decurler 281, and the second decurler 282 with reference to
The first decurler 281 includes a first roller 281a and a first belt 281b. The first roller 281a is supported in a rotatable manner, and the first belt 281b is supported in a circulatable manner. The first belt 281b is an endless belt. The first roller 281a and the first belt 281b convey the sheet S by rotation or circulation with the sheet S sandwiched therebetween. In the above configuration, in a situation in which an image is formed only on the first main surface of the sheet S, curl of the sheet S in a direction from the second main surface toward the first main surface thereof is corrected by the first decurler 281. In a situation in which an image is formed on each of the first main surface and the second main surface of the sheet S, curl of the sheet S in a direction from the first main surface toward the second main surface is corrected by the first decurler 281. Note that curl of the sheet S in the direction from the second main surface toward the first main surface thereof refers to convex curl of the sheet S as seen from the second main surface thereof. Curl of the sheet S in the direction from the first main surface toward the second main surface thereof refers to convex curl of the sheet S as seen from the first main surface thereof.
The second decurler 282 includes a second roller 282a and a second belt 282b. The second roller 282a is supported in a rotatable manner, and the second belt 282b is supported in a circulatable manner. The second belt 282b is an endless belt. The second roller 282a and the second belt 282b convey the sheet S by rotation or circulation with the sheet S sandwiched therebetween. In the above configuration, in a situation in which an image is formed on each of the first main surface and the second main surface of the sheet S, curl of the sheet S in a direction from the second main surface toward the first main surface is corrected by the second decurler 282.
As described above with reference to
Further, the first roller 281a and the first belt 281b convey the sheet S by rotation or circulation with the sheet S sandwiched therebetween in the present embodiment. In the above configuration, part of the sheet S sandwiched between the first roller 281a and the first belt 281b is flattened. Through the above, curl of the sheet S is corrected.
Further, the second roller 282a and the second belt 282b convey the sheet S by rotation or circulation with the sheet S sandwiched therebetween in the present embodiment. In the above configuration, part of the sheet S sandwiched between the second roller 282a and the second belt 282b is flattened. Through the above, curl of the sheet S is corrected.
Further, in a situation in which an image is formed only on the first main surface of the sheet S, curl of the sheet S in a direction from the second main surface toward the first main surface is corrected in the present embodiment. Thus, curl correction of the sheet S can be performed according to the direction of the curl of the sheet S. As a result, the sheet S can be made flatter.
Further, in a situation in which an image is formed on each of the first main surface and the second main surface of the sheet S, curl of the sheet S in a direction from the first main surface toward the second main surface and curl of the sheet S in a direction from the second main surface toward the first main surface are corrected in the present embodiment. Thus, curl correction of the sheet S can be performed according to the direction of the curl of the sheet S. As a result, the sheet S can be made flatter.
The following describes a first table t1 that shows correspondence between a type of the sheet S and the weight per unit area of the sheet S with reference to
For example, in a situation in which the type of the sheet S is “Light”, the weight per unit area of the sheet S is within a range of from at least 45 g/m2 and to greater than 59 g/m2. In the present embodiment, the first threshold value is 106 g/m2. Accordingly, in a situation in which the type of the sheet S is any of “Light” to “Normal 3”, the sheet S is conveyed along the second conveyance path 220. In a situation in which the type of the sheet S is any of “Heavy 1” to “Heavy 5”, the sheet S is conveyed along the first conveyance path 210.
The following describes conveyance control performed by the controller 290 with reference to
First, the following describes with reference to
As indicated in
In a situation in which the image formed on the first main surface S1 of the sheet S has a high density, the first main surface S1 extends and the sheet S curls. Therefore, in a situation in which the image formed on the first main surface S1 of the sheet S has a high density, the controller 290 controls the second switch 260 such that the sheet S is conveyed along the second conveyance path 220 and controls the third switch 270 such that the sheet S is conveyed along the fourth conveyance path 240. As a result, the sheet S passes through the first decurler 281 and does not pass through the second decurler 282. Through the above, curl of the sheet S in a direction from a second main surface S2 toward the first main surface S1 thereof can be corrected.
The following describes with reference to
As indicated in
In a situation in which the image formed on the first main surface S1 has a low density and the image formed on the second main surface S2 has a high density, the second main surface S2 extends and the sheet S curls. Therefore, in a situation in which the image formed on the first main surface S1 has a low density and the image formed on the second main surface S2 has a high density the controller 290 controls the second switch 260 such that the sheet S is conveyed along the second conveyance path 220 and controls the third switch 270 such that the sheet S is conveyed along the fourth conveyance path 240. As a result, the sheet S passes through the first decurler 281 and does not pass through the second decurler 282. Through the above, curl of the sheet S in a direction from the first main surface S1 toward the second main surface S2 thereof can be corrected.
In a situation in which the image formed on the first main surface S1 has a high density and the image formed on the second main surface S2 has a low density, the first main surface S1 extends and the sheet S curls. Therefore, in a situation in which the image formed on the first main surface S1 has a high density and the image formed on the second main surface S2 has a low density, the controller 290 controls the second switch 260 such that the sheet S is conveyed along the third conveyance path 230 and controls the third switch 270 such that the sheet S is conveyed along the second conveyance path 220. As a result, the sheet S does not pass through the first decurler 281 and passes through the second decurler 282. Through the above, curl of the sheet S in a direction from the second main surface S2 toward the first main surface S1 thereof can be corrected.
In a situation in which the image formed on the first main surface S1 and the image formed on the second main surface S2 each have a high density, the first main surface S1 and the second main surface S2 both extend and the sheet S curls. Therefore, in a situation in which the image formed on the first main surface S1 and the image formed on the second main surface S2 each have a high density, the controller 290 controls the second switch 260 and the third switch 270 such that the sheet S is continuously conveyed along the second conveyance path 220. As a result, the sheet S passes through the first decurler 281 and the second decurler 282. Through the above, curl of the sheet S in a direction from the second main surface S2 toward the first main surface S1 thereof and curl of the sheet S in a direction from the first main surface S1 toward the second main surface S2 can be both corrected.
As described above with reference to
In a situation in which an image having a low density is formed on each of the first main surface S1 and the second main surface S2 of the sheet S, the second switch 260 and the third switch 270 are controlled such that the sheet S is conveyed along the third conveyance path 230 and the fourth conveyance path 240 in the present embodiment. Thus, curl correction of the sheet S can be performed according to the presence or absence of curl of the sheet. As a result, the sheet S can be made flatter.
Through the above, the embodiment of the present disclosure has been described with reference to the drawings (
(1) As described with reference to
(2) As described with reference to
(3) As described with reference to
(4) As described with reference to
(5) As described with reference to
(6) As described with reference to
Number | Date | Country | Kind |
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2017-104351 | May 2017 | JP | national |
Number | Name | Date | Kind |
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20030145967 | Gafner | Aug 2003 | A1 |
20090073211 | Imoto | Mar 2009 | A1 |
20160355029 | Kondo | Dec 2016 | A1 |
Number | Date | Country |
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2013-111785 | Jun 2013 | JP |
Number | Date | Country | |
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20180339527 A1 | Nov 2018 | US |