1. Field of the Invention
The present invention relates to an image forming apparatus including a double-sided printing function.
2. Description of the Related Art
In recent years, image forming apparatuses such as a multifunction printer (MFP) including functions of a printer, a copying machine, FAX, and the like have been in widespread use. The image forming apparatuses generally include almost all functions necessary to complete office work, are compact, do not take up too much space, and are also excellent in terms of costs. Thus, the widespread use of these image forming apparatuses is expected to increase.
In addition, some image forming apparatuses include the double-sided printing function which forms an image on one side of a printing sheet and thereafter forms an image on the reverse side of the printing sheet (for example, see PTL 1). In the double-sided printing, an image is also formed on the reverse side by forming an image on one side of the printing sheet in an image forming section and then feeding and reversing the sheet through a double-sided sheet passing path to feed the sheet again into the image forming section.
Along with a reduction in size and increase in printing speed of such an image forming apparatus, it is expected that sheets are transported on a sheet passing path, continuously. For example, processing is performed in which, while a sheet with an image formed on one side is being transported along a double-sided sheet passing path, an image is formed on another sheet to be transported on the sheet passing path on which image formation is performed (also referred to as interleave processing). When sheets are transported continuously, it is expected that the distance between sheets to be transported on the sheet passing path (that is, the distance between the end of a preceding sheet and the leading end of a subsequent sheet, and hereinafter, referred to as an inter-sheet distance) becomes very short.
In this case, if variations in detection precision of a sensor (for example, a top sensor) that detects the passage of a sheet in the sheet passing path occur, the inter-sheet distance recognized by the image forming apparatus and an actual inter-sheet distance are different from each other, and a paper jam is likely to occur in the sheet passing path placed at a position subsequent to the sensor. For this reason, it is important to keep detection precision in the sensor constant, the sensor detecting the passage of a sheet in the sheet passing path.
The present invention has been made in consideration of the above-described situation, and an object of the invention is to provide an image forming apparatus capable of keeping the detection precision of a sensor constant, the sensor being configured to detect the passage of a sheet in a sheet passing path.
According to an aspect of the invention, there is provided an image forming apparatus that forms an image on one side of a recording medium by an image forming section and then forms an image on another side of the recording medium, the apparatus including: a first sheet passing path that transports the recording medium housed in a sheet-feeding tray to the image forming section; a second sheet passing path that reverses the recording medium with an image formed on one side and causes the recording medium to join the first sheet passing path; a registration sensor that is placed near a joining position of the first sheet passing path and the second sheet passing path and that corrects a leading end position of the recording medium transported; and a top sensor that is placed at a position away from the registration sensor toward a downstream side of a transport direction of the recording medium by a predetermined distance and that specifies a distance between the recording media transported, in which: the second sheet passing path includes: a first interval that transports the recording medium with an image formed on one side, in a substantially horizontal direction; and a second interval that transports the recording medium from an end position of the first interval to the position of the registration sensor; and the first sheet passing path includes: a third interval that transports the recording medium from a first end point at a position where a virtual line of the first interval virtually extended toward an upstream side of the transport direction of the recording medium intersects the first sheet passing path to a second end point at a position away from the registration sensor toward an upstream side of transport direction of the recording medium by a distance between the end position of the first interval and the first end point; and a fourth interval that transports the recording medium from the second end point of the third interval to the position of the top sensor in a substantially horizontal direction, in which a moving trajectory of the second interval is identical to a moving trajectory of the third interval.
According to the invention, it is possible to keep detection precision of a sensor constant, the sensor detecting the passage of a sheet in a sheet passing path.
Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings.
[Configuration of Image Forming Apparatus]
Image forming apparatus 100 takes out a recording medium (hereinafter referred to as “sheet”) housed in cassette (sheet-feeding tray) 10 or multi-purpose tray (MPT) (manual sheet-feeding tray) 20, delivers the recording medium to printing apparatus 30, prints image data on the sheet in printing apparatus 30, and ejects the sheet on which the image data is printed to sheet ejection port 40.
[Configuration of Printing Apparatus 30]
Printing apparatus 30 shown in
Single-sided sheet passing path 31 is a transporting path along which the sheet is transported during single-sided printing or double-sided printing, and is a transporting path along which sheet feeding, image formation, fixation, and sheet ejection are performed.
Double-sided sheet passing path 32 is a sheet passing path along which the sheet is transported during double-sided printing. Double-sided sheet passing path 32 includes sheet passing path 32a for reversing (switchback) sheet, sheet passing path 32b for causing the reversed sheet to join single-sided sheet passing path 31 again, and sheet passing path 32c for feeding the sheet into sheet passing path 32b from single-sided sheet passing path 31.
MPT sheet passing path 33 is a transporting path along which the sheet is transported from MPT 20 to single-sided sheet passing path 31.
Top sensor 301 has a detection arm portion which rotates around an axis, and the detection arm portion is provided so as to protrude inward of single-sided sheet passing path 31. Top sensor 301 detects whether or not a sheet is passing over top sensor 301 (whether or not a sheet comes into contact with the detection arm portion). Specifically, top sensor 301 generates an OFF signal when no sheet is passing over top sensor 301 and generates an ON signal when a sheet is passing over top sensor 301.
Image forming section 302 includes transfer roller 302a, OPC (Organic Photo Conductor) 302b, developing roller 302c, and supply roller 302d. Image forming section 302 transfers a toner image according to image data to the transported sheet, thereby forming an image on the sheet.
Fixing section 303 includes pressing roller 303a and heating roller 303b. Fixing section 303 fixes the toner image transferred to the sheet.
Sheet ejection sensor 304 detects whether or not a sheet is passing over sheet ejection sensor 304. Specifically, similarly to top sensor 301, sheet ejection sensor 304 generates an OFF signal when no sheet is passing over sheet ejection sensor 304 and generates an ON signal when a sheet is passing over sheet ejection sensor 304.
Sheet ejection roller 305 is placed at a position subsequent to fixing section 303 and transports the transported sheet in the direction of switching lever 306.
Switching lever 306 is a switching lever configured to turn around an axis and including a guide extending from the axis toward image forming section 302 and switches the transportation destination of the sheet transported by sheet ejection roller 305 to any one of single-sided sheet passing path 31 and double-sided sheet passing path 32. In a state where switching lever 306 is at position 306a, the sheet is transported in the direction of ejection section 307 on sheet passing path 32c. On the other hand, in a state where switching lever 306 is at position 306b, the sheet is transported in the direction of ejection section 307 on single-sided sheet passing path 31.
Ejection section 307 includes rollers 307a, 307b, and 307c placed in proximity to sheet ejection port 40. Rollers 307a and roller 307b constitute an ejection roller that ejects a sheet transported on single-sided sheet passing path 31 to sheet ejection port 40. Additionally, roller 307b and roller 307c constitute a reverse roller (switchback roller) that reverses the transport direction of the sheet transported on double-sided sheet passing path 32 (sheet passing path 32a). That is, roller 307b, which is a roller in a set of ejection rollers, is shared as a roller in a set of reverse rollers. Furthermore, the ejection rollers and the reverse rollers include three rollers 307a, 307b, and 307c, and the reverse rollers are placed above the ejection rollers.
In the following description, the rotation processing of rollers 307a, 307b, and 307c when the sheet transported on single-sided sheet passing path 31 is ejected to sheet ejection port 40 is referred to as “forward rotation processing,” and rotation processing reverse to “forward rotation processing” is referred to as “reverse rotation processing.” That is, in the forward rotation processing, a sheet on single-sided sheet passing path 31 is transported by roller 307a and roller 307b in the direction in which the sheet is ejected to sheet ejection port 40, and a sheet on sheet passing path 32a is transported by roller 307b and roller 307c in the direction of sheet passing path 32b. On the other hand, in the reverse rotation processing, sheet on sheet passing path 32a is transported by roller 307b and roller 307c in the direction in which the sheet is ejected to sheet ejection port 40.
That is, during the double-sided printing, first, ejection section 307 pulls the sheet transported on sheet passing path 32c to sheet passing path 32a by the reverse rotation processing of the reverse rollers (rollers 307b and 307c). Next, ejection section 307 transports the sheet on sheet passing path 32a in the direction of sheet passing path 32b by the forward rotation processing of the reverse rollers.
ADU (Automatic Duplex Unit) transport roller 308 and ADU transport roller 309 transport the sheet transported from ejection section 307 to sheet passing path 32b in the direction of single-sided sheet passing path 31. Since the two sides of the sheet that has joined single-sided sheet passing path 31 from sheet passing path 32b have been reversed, the double-sided printing is enabled in printing apparatus 30. ADU sensor 310 detects whether or not a sheet has passed over ADU sensor 310, thereby detecting that the sheet is being transported along sheet passing path 32b.
Pick roller 311a and separation roller 311b take out sheets one by one from cassette 10, and feed roller 312 delivers the taken-out sheet to single-sided sheet passing path 31. Pickup sensor 313 detects whether or not the sheet has passed over pickup sensor 313, thereby detecting that the sheet is taken out from cassette 10.
MPT pick roller 314a and MPT transport roller 314b take out sheets one by one from MPT 20, and delivers the taken-out sheet from MPT sheet passing path 33 to single-sided sheet passing path 31.
Registration sensor 315 detects whether or not a sheet has passed over registration sensor 315. Registration roller 316 corrects the leading end position of the sheet to be transported on the basis of a position detected by registration sensor 315. This causes an image to be printed and a fed sheet to be synchronized with each other.
[Configuration of Sheet Passing Path Along which Sheet is Transported to Top Sensor 301]
Single-sided sheet passing path 31 shown in
Specifically, as shown in
Point B (one end point of the second interval) represents the placement position of registration sensor 315. In the example of
In the example shown in
Trajectory 32′ (dotted line) shown in
That is, in
As described above, in
For example,
In contrast, in this embodiment, it is assumed that the moving trajectories of sheets in the curved sheet passing paths of single-sided sheet passing path 31 and double-sided sheet passing path 32 before transportation to top sensor 301 are substantially the same. In this way, a sheet having a similar bending tendency (for example, either
Thus, according to this embodiment, in image forming apparatus 100, it is possible to suppress variations in detection precision of top sensor 301 which detects the passage of a sheet and to keep detection precision constant.
Accordingly, in image forming apparatus 100, it is possible to accurately specify the inter-sheet distance between the sheets which pass through top sensor 301. For example, even when the inter-sheet distance is expected to be very short in image forming apparatus 100, an accurate inter-sheet distance is specified, whereby it is possible to suppress the occurrence of a paper jam due to erroneous recognition of the inter-sheet distance. For example, image forming apparatus 100 can perform processing (image formation, jam detection, and the like) which is performed using the detection result of top sensor 301 or other sensors, with high precision.
In the foregoing embodiment, although a case where a sheet is used as a recording medium has been described, the recording medium is not limited to a sheet, and any recording medium may be used insofar as the double-sided printing is possible.
The present invention is useful for an image forming apparatus which can perform double-sided printing.
The present application claims priority from Japanese application JP 2013-045232 filed on Mar. 7, 2013, the content of which is hereby incorporated by reference into this application.
Number | Date | Country | Kind |
---|---|---|---|
2013-045232 | Mar 2013 | JP | national |