This application is based upon, and claims the benefit of priority from, corresponding Japanese Patent Application No. 2015-139324 filed in the Japan Patent Office on Jul. 13, 2015, the entire contents of which are incorporated herein by reference.
Unless otherwise indicated herein, the description in this section is not prior art to the claims in this application and is not admitted to be prior art by inclusion in this section.
There is provided a typical image forming apparatus that includes: a drum unit (image carrier unit) with a photoreceptor drum (image carrier) onto which an electrostatic latent image is formed; a developing device, which includes a developing roller (developer carrier) supplying toner to the photoreceptor drum, located adjacent to the drum unit; and an intermediate transfer belt (intermediate transfer body) onto which a toner image developed on the photoreceptor drum is transferred.
This type of image forming apparatuses require replacement of a drum unit including a photoreceptor drum when a count of printed sheets reaches a predetermined number of sheets (for example, several tens of thousands of sheets), due to the life of the photoreceptor drum. Sliding the drum unit in a rotation shaft direction of the photoreceptor drum mounts or removes the drum unit with respect to the image forming apparatus body.
There is an image forming apparatus where sliding a drum unit in a rotation shaft direction of a photoreceptor drum mounts or removes the drum unit with respect to the image forming apparatus body.
An image forming apparatus according to one aspect of the disclosure includes an image carrier unit, a developing device, and an intermediate transfer body. The image carrier unit includes an image carrier on which an electrostatic latent image is formed. The image carrier unit is removably mountable with respect to an image forming apparatus body by sliding in a rotation shaft direction of the image carrier. The developing device includes a developer carrier that supplies the image carrier with toner, the developing device being located adjacent to the image carrier unit. A toner image developed on the image carrier by the developing device is transferred on to the intermediate transfer body. An end portion of the image carrier unit in a mounting direction to the image forming apparatus body includes a positioning pin protruding in the mounting direction. The image forming apparatus body includes a positioning member having a positioning hole for inserting the positioning pin in the mounting direction and a guiding member including a guide rail portion for guiding the image carrier unit when mounting and removing the image carrier unit. The image carrier unit includes a sliding portion that slides with respect to the guide rail portion. When the image carrier unit is extracted from a mounted state where the image carrier unit is mounted to the image forming apparatus body, the sliding portion is drawn by a predetermined distance in parallel with the rotation shaft direction and then moves in a direction where the image carrier retreats from the developer carrier and the intermediate transfer body, along the guide rail portion.
These as well as other aspects, advantages, and alternatives will become apparent to those of ordinary skill in the art by reading the following detailed description with reference where appropriate to the accompanying drawings. Further, it should be understood that the description provided in this summary section and elsewhere in this document is intended to illustrate the claimed subject matter by way of example and not by way of limitation.
Example apparatuses are described herein. Other example embodiments or features may further be utilized, and other changes may be made, without departing from the spirit or scope of the subject matter presented herein. In the following detailed description, reference is made to the accompanying drawings, which form a part thereof.
The example embodiments described herein are not meant to be limiting. It will be readily understood that the aspects of the present disclosure, as generally described herein, and illustrated in the drawings, can be located, substituted, combined, separated, and designed in a wide variety of different configurations, all of which are explicitly contemplated herein.
The following describes an embodiment of the disclosure with reference to the accompanying drawings.
Referring to
The image forming apparatus 100 (here, a color printer) is a quadruplicate tandem color printer, which performs image formation with four parallel located photoreceptor drums (image carriers) 1a, 1b, 1c, and 1d corresponding to four different colors (yellow, cyan, magenta, and black) in this embodiment.
The image forming apparatus 100 includes four image forming units Pa, Pb, Pc, and Pd in this order from the left side in
These image forming units Pa to Pd include the photoreceptor drums 1a to 1d, which carry visible images (toner images) of respective colors. Additionally, an intermediate transfer belt (intermediate transfer body) 8, which rotates counterclockwise in
The paper sheets P, on which toner images are to be transferred, are housed in a paper sheet cassette 16 located in the lower portion of the apparatus, and are conveyed to the secondary transfer roller 9 via a feed roller 12a and a registration roller pair 12b. A belt drive motor (not illustrated) rotationally drives the intermediate transfer belt 8 and the secondary transfer roller 9 at a linear velocity identical to a linear velocity of the photoreceptor drums 1a to 1d. A blade-shaped belt cleaner 17 is located for removing residual toner or similar matter on the surface of the intermediate transfer belt 8, in the downstream side in the rotation direction of the intermediate transfer belt 8 with respect to the secondary transfer roller 9.
Next, the image forming units Pa to Pd will be described. The following devices are located around and below the rotatably located photoreceptor drums 1a to 1d: charging apparatuses 2a, 2b, 2c, and 2d, which respectively charge the photoreceptor drums 1a to 1d; an exposure unit 5, which respectively performs exposure based on image data for the respective photoreceptor drums 1a to 1d; developing devices 3a, 3b, 3c, and 3d, which respectively develop electrostatic latent images formed on the photoreceptor drums 1a to 1d by toner; and cleaning apparatuses 7a, 7b, 7c and 7d, which respectively recover and remove the developer (toner) remaining on the photoreceptor drums 1a to 1d after the transfer of the toner image.
When image data is input from a host apparatus such as a personal computer, first, the charging apparatuses 2a to 2d evenly charge the surfaces of the corresponding photoreceptor drums 1a to 1d, respectively, and then the exposure unit 5 irradiates the photoreceptor drums 1a to 1d with light on the basis of the image data to respectively form electrostatic latent images corresponding to the image data on the photoreceptor drums 1a to 1d. The developing devices 3a to 3d include developing rollers (developer carrier) 30 located opposed to the photoreceptor drums 1a to 1d and are filled with predetermined amounts of two-component developers including toners of respective colors of yellow, cyan, magenta, and black, respectively.
When proportions of toners in the two-component developers filled in the respective developing devices 3a to 3d become less than a specified value due to toner image formation described below, corresponding toner containers 4a to 4d respectively replenish the developing devices 3a to 3d with toners. The toners are supplied and electrostatically attached onto the corresponding photoreceptor drums 1a to 1d by the developing devices 3a to 3d. This forms the toner images corresponding to the electrostatic latent images formed by the exposure by the exposure unit 5.
Then, primary transfer rollers 6a to 6d apply electric fields at predetermined transfer voltages between the primary transfer rollers 6a to 6d and the corresponding photoreceptor drums 1a to 1d, and the toner images of yellow, cyan, magenta, and black on the photoreceptor drums 1a to 1d are primarily transferred onto the intermediate transfer belt 8. These four-color images are formed with a predetermined positional relationship for a predetermined full-color image formation. Subsequently, to prepare for new electrostatic latent image formation to be continuously performed, the cleaning apparatuses 7a to 7d respectively remove the toners remained on the corresponding surfaces of the photoreceptor drums 1a to 1d.
When the intermediate transfer belt 8, which is extended between a driven roller 10 and a drive roller 11, starts to rotate counterclockwise in association with the rotation of the drive roller 11 by the belt drive motor, the registration roller pair 12b conveys the paper sheet P to a nip portion (secondary transfer nip portion), which is formed between the secondary transfer roller 9 located adjacent to the intermediate transfer belt 8 and the intermediate transfer belt 8, at a predetermined timing. This secondarily transfers a full-color image on the paper sheet P at the nip portion. The paper sheet P, on which the toner image has been transferred, is conveyed to the fixing unit 13.
The paper sheet P conveyed to the fixing unit 13 is heated and pressured when passing through a fixing nip portion of a fixing roller pair 13a constituted with a heating roller and a pressure roller. This fixes the toner image on the surface of the paper sheet P, and thus forms the predetermined full-color image on the paper sheet P. The paper sheet P, on which the full-color image has been formed, is sorted into a conveyance direction by a branching member 21 located at a branching portion of a paper sheet conveyance passage 18, through a conveyance roller pair 15. Then the paper sheet P is directly (or, after being sent to a duplex conveyance path 22 and undergoing duplex copying) discharged to a discharge tray 20 via a discharge roller pair 19.
The paper sheet conveyance passage 18, specifically, branches into left-and-right directions of fork in the downstream side of the conveyance roller pair 15, and one path (a path branching into the left direction in
Subsequently, reversely rotating the discharge roller pair 19 and approximately horizontally swinging the branching member 21 guide the paper sheet P to the duplex conveyance path 22 along the top surface of the branching member 21 and convey the paper sheet P to the secondary transfer roller 9 again with the image surface inverted. Then, the secondary transfer roller 9 transfers the next image formed on the intermediate transfer belt 8 on the surface, where no image is formed, of the paper sheet P. The paper sheet P is conveyed to the fixing unit 13 and the toner image is fixed on the paper sheet P. Then the paper sheet P is discharged to the discharge tray 20.
Next, the following describes the detail peripheral structure of the photoreceptor drum 1a.
As illustrated in
The rotation shaft 41 of the photoreceptor drum 1a protrudes from an end portion of the drum unit 40 in a mounting direction side (an arrow A direction) to the apparatus main body, toward the mounting direction. This rotation shaft 41 serves as a positioning pin when positioning the drum unit 40 with respect to the apparatus main body.
As illustrated in
As illustrated in
As illustrated in
Next, the following further describes the structures of the rotation shaft 41 of the drum unit 40, the sliding portion 42, and the guide rail portion 61 in detail.
The rotation shaft 41, as illustrated in
The sliding portion 42, as illustrated in
A length in a width direction (a direction perpendicular to the arrow AA′ direction, an arrow BB′ direction) of the distal end portion 42a is formed to be a little shorter than a length in the width direction of an internal space of the guide rail portion 61. A length in the width direction of the center portion 42b is formed to be further shorter than the length in the width direction of the distal end portion 42a. A side surface of the center portion 42b, which is an opposite side (an arrow B direction) to the developing device 3a, is formed not to protrude (here, on a flush surface) in the arrow B direction with respect a side surface of the distal end portion 42a, which is the opposite side (the arrow B direction) to the developing device 3a.
The guide rail portion 61 is formed to extend in the mounting/removing direction (the arrow AA′ direction) of the drum unit 40, and has a side surface (one side surface) 62 and a side surface (the other side surface) 63, which sandwich the sliding portion 42 in the width direction, and a bottom surface 64 located under the sliding portion 42.
The side surface 62 includes a first straight portion 62a, a first inclined portion 62b, and a third straight portion 62c. The first straight portion 62a is located at the end portion in the mounting direction (the arrow A direction) and also extends in parallel with the rotation shaft direction (the arrow AA′ direction). The first inclined portion 62b extends in the direction intersecting with the first straight portion 62a from the first straight portion 62a so as to move away from the developing device 3a. The third straight portion 62c extends in parallel with rotation shaft direction (the arrow AA′ direction) from the first inclined portion 62b toward a drawing direction (an arrow A′ direction). The first straight portion 62a is located opposed to the distal end portion 42a of the sliding portion 42 when the drum unit 40 is in the mounted state (the state in
A distance L62a (see
In view of this, drawing the drum unit 40 from the mounted state draws the sliding portion 42 by a predetermined distance (the distance L62a) in parallel with the rotation shaft direction (the arrow AA′ direction) along the first straight portion 62a and a second straight portion 63a, which will be described later, and draws the rotation shaft 41 by the identical distance (the length L41a) from the positioning hole 51a in parallel with the rotation shaft direction (the arrow AA′ direction). Subsequently, the sliding portion 42 moves in a direction (a lower-right oblique direction in
The sliding portion 42 and the bottom surface 64 of the guide rail portion 61 forms a clearance in the mounted state (the state in
Subsequently, the sliding portion 42 is drawn in parallel with the rotation shaft direction (the arrow AA′ direction) along the third straight portion 62c of the guide rail portion 61 and a fourth straight portion 63c, which will be described later.
The side surface 63, as illustrated in
A length L63b (see
In view of this, mounting the drum unit 40 to the apparatus main body moves the sliding portion 42 in the mounting direction (the arrow A direction) in parallel with the rotation shaft direction (the arrow AA′ direction) along the fourth straight portion 63c and the third straight portion 62c. Subsequently, the sliding portion 42 moves in a direction (an upper-left oblique direction in
As illustrated in
Subsequently, the sliding portion 42 is inserted by the predetermined distance (the distance L62a) in parallel with the rotation shaft direction (the arrow AA′ direction) along the second straight portion 63a and the first straight portion 62a, and the rotation shaft 41 is inserted into the positioning hole 51a by the identical distance (the length L41a) in parallel with the rotation shaft direction (the arrow AA′ direction). Consequently, the drum unit 40 is mounted to the apparatus main body.
In the embodiment, as described above, drawing the drum unit 40 from the mounted state, where the drum unit 40 is mounted to the apparatus main body, draws the sliding portion 42 by the predetermined distance in parallel with the rotation shaft direction (the arrow AA′ direction), and then moves the sliding portion 42 in the direction where the photoreceptor drums 1a to 1d retreat from the developing rollers 30 and the intermediate transfer belt 8 along the guide rail portion 61. This ensures avoiding the drum unit 40 from contacting the developing roller 30 and the intermediate transfer belt 8 when the drum unit 40 is extracted from the apparatus main body. Consequently, this ensures prevention of damage on the surfaces of the photoreceptor drums 1a to 1d, the developing rollers 30, or the intermediate transfer belt 8.
Locating the guide rail portion 61, which guides the sliding portion 42 of the drum unit 40, automatically retreats the photoreceptor drums 1a to 1d from the developing rollers 30 and the intermediate transfer belt 8, simply by an operator's sliding drum unit 40 in the rotation shaft direction (the arrow AA′ direction) of the photoreceptor drums 1a to 1d. This ensures prevention of reduction of replacement workability of the drum unit 40.
In the cylindrical portion 41a, as described above, the length L41a of the portion that is protruded from the positioning hole 51a is formed to have the approximately identical size as the distance L62a, by which the sliding portion 42 moves in the rotation shaft direction (the arrow AA′ direction) along the first straight portion 62a when the drum unit 40 is drawn from the mounted state. Further, the length L41b of the tapered portion 41b in the rotation shaft direction and the inclination angle of the tapered portion 41b relative to the cylindrical portion 41a are formed to have the approximately identical as the length L62b of the first inclined portion 62b in the rotation shaft direction and the inclination angle of the first inclined portion 62b relative to the first straight portion 62a, respectively. This ensures that the rotation shaft 41 and the sliding portion 42 moves in parallel with the rotation shaft direction until the drum unit 40 is extracted by the predetermined distance (the length L41a, the distance L62a) from the mounted state. Subsequently, the tapered portion 41b of the rotation shaft 41 moves along the positioning hole 51a, and the sliding portion 42 moves along the first inclined portion 62b. Consequently, the photoreceptor drums 1a to 1d move in the direction where the photoreceptor drums 1a to 1d retreat from the developing rollers 30 and the intermediate transfer belt 8. This easily ensures preventing the drum unit 40 from contacting the developing roller 30 and the intermediate transfer belt 8 when the drum unit 40 is drawn from the apparatus main body.
Further, the relatively short stroke (the length L41a+L41b) ensures retreating of the photoreceptor drums 1a to 1d from the developing rollers 30 and the intermediate transfer belt 8.
Further, as described above, the length L63b of the second inclined portion 63b of the guide rail portion 61 in the rotation shaft direction (the arrow AA′ direction) is formed to have the approximately identical size as the length L62b of the first inclined portion 62b in the rotation shaft direction. This ensures easy mounting of the drum unit 40 to the apparatus main body when mounting the drum unit 40 to the apparatus main body because the sliding portion 42 moves reversely an identical path as the path at the time of the drawing.
Additionally, as described above, the length L41c of one of the inclined surface 41c of the tapered portion 41b in the vertical direction is larger than the length L61 between the sliding portion 42 and the bottom surface 64 of the guide rail portion 61 in the mounted state. This ensures that mounting the drum unit 40 to the apparatus main body moves the sliding portion 42 in the mounting direction with the sliding portion 42 contacting the bottom surface 64 of the guide rail portion 61, and then lifts the rotation shaft 41 and the sliding portion 42 by the inclined surface 41c running upon the peripheral edge portion of the positioning hole 51a. This ensures easy mounting of the drum unit 40 to the apparatus main body even when the bottom surface 64 of the guide rail portion 61 is a flat surface.
It should be understood that the embodiment disclosed herein is exemplary in all aspects and is not restrictive. The range of the disclosure is indicated not by the description of the embodiment described above but by the claims, and further includes all modifications that has equivalent meaning with the claims and is within the range of the claims.
For example, the disclosure has been exemplified in the application to the color printer; however, the disclosure is not limited to this. It is needless to say that the disclosure is applicable to various kinds of image forming apparatuses that include image carrier units, such as a monochrome printer, a color copier, a monochrome copier, a digital multi-functional peripheral, and a facsimile.
The embodiment has exemplified a flat surface for the bottom surface 64 of the guide rail portion 61; however, the disclosure is not limited to this. For example, the bottom surface 64 may be formed to be an inclined surface for lifting the sliding portion 42 upward at the time of mounting the drum unit 40.
While various aspects and embodiments have been disclosed herein, other aspects and embodiments will be apparent to those skilled in the art. The various aspects and embodiments disclosed herein are for purposes of illustration and are not intended to be limiting, with the true scope and spirit being indicated by the following claims.
Number | Date | Country | Kind |
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2015-139324 | Jul 2015 | JP | national |
Number | Name | Date | Kind |
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20040184835 | Park | Sep 2004 | A1 |
20050220481 | Yamaguchi et al. | Oct 2005 | A1 |
Number | Date | Country |
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1431837 | Jun 2004 | EP |
2008-009295 | Jan 2008 | JP |
Number | Date | Country | |
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20170017191 A1 | Jan 2017 | US |