This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2016-064661 filed on Mar. 28, 2016, the entire contents of which are incorporated herein by reference.
The technology of the present disclosure relates to an optical scanning device and an image forming apparatus including the same.
An image forming apparatus employing an electrophotographic system such as a copy machine and a printer includes an optical scanning device that emits light for forming an electrostatic latent image on a photoreceptor, and a developing device for developing the electrostatic latent image formed on the photoreceptor as a toner image.
The optical scanning device has a housing that receives a polygon mirror, an image forming lens and the like. The housing is formed with light emitting ports that emit light. The light emitting port includes an opening extending in a predetermined direction. The light emitting port is closed by a transparent cover such as a dustproof glass.
When dirt, dust and the like due to toner and the like are attached to the surface of the dustproof glass, there is a problem that the optical characteristics of the optical scanning device are deteriorated and thus image failure occurs. In this regard, there has been proposed a cleaning mechanism that regularly cleans the surface of the dustproof glass.
The cleaning mechanism has a screw shaft extending in the same direction as the extension direction of the dustproof glass, and a holding member that holds a cleaning member by engaging with the screw shaft.
The holding member has a cylindrical part fitted to the screw shaft, and an arm part that extends from the cylindrical part in a direction crossing the screw shaft and holds the cleaning member. The cylindrical part is provided on the inner peripheral surface thereof with a spiral protrusion portion (an engagement portion) that engages with a groove formed on the outer peripheral surface of the screw shaft. The groove of the outer peripheral surface of the screw shaft and the protrusion portion of the inner peripheral surface of the cylindrical part engage with each other and the screw shaft is rotated, so that the holding member moves along the screw shaft. The holding member reciprocally moves along a predetermined movement path when a motor is rotated forward and backward. By so doing, the cleaning member reciprocally moves while abutting the surface of the transparent cover, so that the surface of the transparent cover is cleaned by the cleaning member.
An optical scanning device according to one aspect of the present disclosure includes a housing, a transparent cover, a screw shaft, a holding member, and a cleaning member. The housing has light emitting ports extending in a predetermined direction. The transparent cover closes the aforementioned light emitting ports. The screw shaft is arranged so as to extend in the predetermined direction along the transparent cover. The screw shaft is formed on a peripheral surface thereof with a spiral groove. The holding member is provided with an engaging part engaged with the groove of the screw shaft. The holding member reciprocally moves along a predetermined movement path along the screw shaft according to rotation of the screw shaft. The cleaning member is held to the holing member. The cleaning member cleans a surface of the transparent cover according to movement of the holing member.
The holing member is configured such that one side end portion in a direction perpendicular to the screw shaft is positioned at a front side in a progress direction as compared with the other side end portion when the holing member moves along an intermediate part except for both end portions of the aforementioned predetermined movement path. An abutting fulcrum is provided at an end of the aforementioned predetermined movement path. The abutting fulcrum abuts a predetermined place of a surface of a front side in the progress direction of the holing member, thereby allowing the holing member to rotate by employing an abutting part of the holding member with the abutting fulcrum as a fulcrum and reducing a position shift amount between the one side end portion and the other side end portion of the holing member in the aforementioned progress direction.
Hereinafter, embodiments of the present invention will be described in detail on the basis of the drawings. It is noted that the present invention is not limited to the following embodiments.
The image forming apparatus 1 is a tandem type color printer and includes an image forming unit 3 in a box-like casing 2. The image forming unit 3 transfers an image to a recording paper P and forms the image on the recording paper P on the basis of image data transmitted from an external device such as a computer subjected to network connection and the like. Below the image forming unit 3, an optical scanning device 4 is arranged to irradiate laser light, and above the image forming unit 3, a transfer belt 5 is arranged. Below the optical scanning device 4, a paper storage unit 6 is arranged to store the recording paper P, and at the left side of the paper storage unit 6, a manual paper feeding unit 7 is arranged. At a right upper part of the transfer belt 5, a fixing unit 8 is arranged to perform a fixing process on the image transferred to and formed on the recording paper P. A reference numeral 9 indicates a paper discharge unit arranged at an upper portion of the casing 2 to discharge the recording paper P subjected to the fixing process in the fixing unit 8.
The image forming unit 3 includes four image forming units 10 arranged in a row along the transfer belt 5. Each of the image forming units 10 has a photosensitive drum 11. Directly under each photosensitive drum 11, a charging device 12 is arranged, and at the left side of each photosensitive drum 11, a developing device 13 is arranged. Directly above each photosensitive drum 11, a primary transfer roller 14 is arranged, and at the right side of each photosensitive drum 11, a cleaning unit 15 is arranged to clean the peripheral surface of the photosensitive drum 11.
The peripheral surface of each photosensitive drum 11 is uniformly charged by the charging device 12, and laser light corresponding to each color based on the image data inputted from the aforementioned computer and the like is irradiated to the charged peripheral surface of each photosensitive drum 11 from the optical scanning device 4, so that an electrostatic latent image is formed on the peripheral surface of each photosensitive drum 11. A developer is supplied to the electrostatic latent image from the developing device 13, so that a toner image of yellow, magenta, cyan, or black is formed on the peripheral surface of each photosensitive drum 11. These toner images are respectively superposed on and transferred to the transfer belt 5 by a transfer bias applied to the primary transfer roller 14.
A reference numeral 16 indicates a secondary transfer roller arranged below the fixing unit 8 in the state of abutting the transfer belt 5, wherein the recording paper P conveyed along a paper conveyance path 17 from the paper storage unit 6 or the manual paper feeding unit 7 is interposed between the secondary transfer roller 16 and the transfer belt 5, and the toner images on the transfer belt 5 are transferred to the recording paper P by a transfer bias applied to the secondary transfer roller 16.
The fixing unit 8 includes a heating roller 18 and a pressure roller 19, wherein the recording paper P is interposed by the heating roller 18 and the pressure roller 19 so as to be pressed while being heated, so that the toner images, which have been transferred to the recording paper P, are fixed to the recording paper P. The recording paper P subjected to the fixing process is discharged to the paper discharge unit 9. A reference numeral 20 indicates a reversing conveyance path for reversing the recording paper P discharged from the fixing unit 8 at the time of duplex printing.
—Details of Optical Scanning Device—
As illustrated in
Since the first automatic cleaning part 50A and the second automatic cleaning part 50B have the same configuration, only the second automatic cleaning part 50B will be described with reference to
The second automatic cleaning part 50B has a screw shaft arranged between a pair of light emitting ports 45, a holding member 53 reciprocally driven by the screw shaft 52, and a pair of cleansing members 51 held by the holding member 53.
The screw shaft 52 is arranged so as to extend in the front and rear direction. Both end portions of the screw shaft 52 in an axial direction (the front and rear direction) are supported to be rotatable to a bearing part (not illustrated) formed on the lid member 42 of the housing 40. The screw shaft 52 is mounted at one end portion thereof with a driving gear 55 (illustrated only in
The holding member 53 has a cylindrical nut part 53a fitted to the screw shaft 52, and a first holding plate 53b and a second holding plate 53c connected to the cylindrical nut part 53a.
The cylindrical nut part 53a is formed in an approximately cylindrical shape and is provided on the inner peripheral surface thereof with an engaging protrusion part (an engaging part) 53d engaged with the spiral groove 52a (see
The first holding plate 53b extends leftward (one light emitting port 45 side) from an upper end portion of the cylindrical nut part 53a, and the second holding plate 53c extends rightward (the other light emitting port 45 side) from the upper end portion of the cylindrical nut part 53a. The first holding plate 53b and the second holding plate 53c are arranged on the same straight line extending in the right and left direction when viewed from an upper side. A length from a proximal end to a distal end of the first holding plate 53b is shorter than a length from a proximal end to a distal end of the second holding plate 53c. The first holding plate 53b and the second holding plate 53c are mounted at the lower surfaces thereof with the cleansing members 51, respectively. The first holding plate 53b is mounted at a front side surface and a rear side surface thereof with compression coil springs 60f and 60r (illustrated only in
The each cleansing member 51 is formed by an elastic blade member (for example, a silicon pad). The cleansing members 51 are provided at positions corresponding to a pair of dustproof glasses 46 to be cleaned by the automatic cleaning parts 50A and 50B. That is, each cleansing member 51 is provided at a position overlapping each dustproof glass 46 in a plan view. Each cleansing member 51 is interposed between the holding plates 53b, 53c and the dustproof glass 46 and is compressed with a light load in a thickness direction. By so doing, each cleansing member 51 is pressed to the dustproof glass 46 at a predetermined pressing force.
When the automatic cleaning mechanism 50 operates, the screw shaft 52 is rotationally driven in both forward and backward directions by the driving motor 60. By so doing, the holding member 53 reciprocally moves along the predetermined movement path A. The movement path A is a linear movement path extending in the front and rear direction.
The movement path A is surrounded by a front sidewall 42a and a rear sidewall 42b facing each other in the front and rear direction (see
Therefore, in the conventional optical scanning device, there is a problem that when the holding member 53 has reached the end of the movement path A, an end portion opposite to a preceding side in the holding member 53 is not able to reach the end portion of the dustproof glass 46. Therefore, since an unwiped region R (see
In the present embodiment, in order to solve this problem, a front side protrusion part 42e and a rear side protrusion part 42f serving as abutting support parts are respectively formed at the front sidewall 42a and the rear sidewall 42b positioned in the end of the movement path A of the holding member 53. Specifically, the front side protrusion part 42e protrudes rearward from a side surface of the front sidewall 42a as illustrated in
Similarly, as illustrated in
In addition, in the present embodiment, the abutting place (the predetermined place) of the holding member 53 with the front side protrusion part 42e or the rear side protrusion part 42f is positioned at a left side of the center position of the holding member 53 in the direction (the right and left direction) perpendicular to the screw shaft 52, that is, a preceding side of both right and left sides of the holding member 53. By so doing, the holding member 53 is easily rotated by employing the front side protrusion part 42e or the rear side protrusion part 42f as a fulcrum. Thus, it is possible to more reliably obtain an inclination correction effect of the holding member 53 by the front side protrusion part 42e and the rear side protrusion part 42f.
Furthermore, the front side protrusion part 42e and the rear side protrusion part 42f are positioned at the left side (the preceding side of both right and left sides of the holding member 53) of the screw shaft 52. According to this, it is possible to reliably convert propulsive force applied to the holding member 53 from the screw shaft 52 into a moment in a direction in which the inclination of the holding member 53 is corrected. Thus, it is possible to enhance an inclination correction effect of the holding member 53 by the front side protrusion part 42e and the rear side protrusion part 42f.
In the aforementioned embodiment, the example, in which the front side protrusion part 42e and the rear side protrusion part 42f are formed in a rectangular column shape, is illustrated; however, the present invention is not limited thereto, and for example, as illustrated in
In the aforementioned embodiment, the front side protrusion part 42e and the rear side protrusion part 42f serving as abutting fulcrums are formed at the front sidewall 42a and the rear sidewall 42b positioned at the end of the movement path A of the holding member 53; however, the present invention is not limited thereto. That is, instead of abolishing the front side protrusion part 42e and the rear side protrusion part 42f, a front side protrusion part 53e and a rear side protrusion part 53f may be respectively formed at the front side surface and the rear side surface of the holding member 53 as abutting fulcrums as illustrated in FIG. 14. It is sufficient if a positional relation of the front side protrusion part 53e and the rear side protrusion part 53f with respect to the screw shaft 52 is similar to the positional relation of the front side protrusion part 42e and the rear side protrusion part 42f in the aforementioned embodiment. By so doing, it is possible to obtain operations and effects similarly to those of the aforementioned embodiment. It is noted that in the case of employing this embodiment, the front side protrusion part 53e and the rear side protrusion part 53f may be formed in a curved shape in which their distal end portions (surfaces facing the front sidewall 42a and the rear sidewall 42b) protrude to the walls 42a and 42b sides (that is, abutted member sides).
Furthermore, the technologies of the present disclosure are not limited to the aforementioned embodiments, and include configurations obtained by appropriately combining the aforementioned embodiments with each other.
Number | Date | Country | Kind |
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2016-064661 | Mar 2016 | JP | national |