1. Field of the Invention
The present invention relates to an image forming apparatus including multiple optical heads and an image displacement correction method therefor.
2. Description of the Related Art
Japanese Patent Application Publication No. 2011-194684 discloses an electrophotographic image forming apparatus including first and second print heads arranged so that their end portions overlap each other in a main scanning direction, and being capable of printing an image on a wide recording medium. This image forming apparatus calculates a displacement amount between the first and second print heads based on density of a pattern image formed on a photosensitive drum and predetermined reference density data, and corrects displacement between the first and second print heads based on the calculated displacement amount.
Japanese Patent Application Publication No. 2001-134041 discloses an electrophotographic image forming apparatus including multiple printing units along a conveyance path for a recording medium, and being capable of color printing. This image forming apparatus detects color displacement amounts in a conveyance direction of the recording medium from detection pattern images printed by the multiple printing units, and corrects printing positions of the printing units in the conveyance direction of the recording medium based on the detected color displacement amounts.
It is desirable that image displacement be corrected in a short time.
An aspect of the present invention is intended to provide an image forming apparatus and an image displacement correction method capable of correcting image displacement in a short time.
According to an aspect of the present invention, there is provided an image forming apparatus including: a first optical head group and a second optical head group that form electrostatic latent images on at least one image carrier, the first optical head group including a plurality of first optical heads arranged in a sub-scanning direction, the second optical head group including a plurality of second optical heads arranged in the sub-scanning direction, the first optical head group and the second optical head group overlapping each other in a main scanning direction; a detector that is disposed to correspond to a region where the first optical head group and the second optical head group overlap each other and that detects displacement amounts between the first optical heads and the second optical heads; and a controller that performs registration by controlling light emission of the plurality of first optical heads and the plurality of second optical heads based on the detection by the detector, wherein the controller performs, with one of the first optical heads in the first optical head group as a reference, registration on the other first optical heads in the first optical head group based on the detection by the detector, performs, with one of the second optical heads in the second optical head group as a reference, registration on the other second optical heads in the second optical head group based on the detection by the detector, and performs registration between the first optical head group and the second optical head group based on a displacement amount between one of the first optical heads in the first optical head group and one of the second optical heads in the second optical head group.
According to another aspect of the present invention, there is provided an image forming apparatus including:
a first optical head unit and a second optical head unit that form electrostatic latent images on at least one image carrier, the first optical head unit including a plurality of optical heads arranged in a main scanning direction to overlap each other in the main scanning direction, the second optical head unit including a plurality of optical heads arranged in the main scanning direction to overlap each other in the main scanning direction; a detector that is disposed to correspond to a region where the optical heads overlap each other and that detects a displacement amount of each of the optical heads; and a controller that performs registration by controlling light emission of the optical heads based on the detection by the detector, wherein, in the registration, the controller performs, with one of the plurality of optical heads in the first optical head unit as a reference, registration on the other optical heads in the first optical head unit based on the detection by the detector, performs, with one of the plurality of optical heads in the second optical head unit as a reference, registration on the other optical heads in the second optical head unit based on the detection by the detector, and performs registration between the first optical head unit and the second optical head unit based on a displacement amount between one of the plurality of optical heads in the first optical head unit and one of the plurality of optical heads in the second optical head unit.
In the attached drawings:
<1-1> Configuration of First Embodiment
As illustrated in
The medium supply unit 10 includes a medium cassette (paper sheet cassette) 11 that stores recording media 13 and a paper feed roller (hopping roller) 12 that feeds one by one the recording media 13 stacked in the medium cassette 11. The medium cassette 11 is detachably installed in the housing 2 of the image forming apparatus 1. The recording media 13 stacked in the medium cassette 11 are picked up one by one by the paper feed roller 12, and the picked-up recording medium 13 is conveyed by pairs of conveyance rollers 41 and 42 of the conveyance unit 40 to pass through a medium conveyance path between the image forming units 20K, 20Y, 20M, and 20C and the transfer rollers 50K, 50Y, 50M, and 50C.
The conveyance unit 40 includes a conveyance belt 43 as an endless belt movably supported, a drive roller 45 that drives the conveyance belt 43, a tension roller (driven roller) 44 that stretches the conveyance belt 43 together with the drive roller 45, a cleaning blade 46 that cleans the conveyance belt 43 by scraping off toner remaining on the conveyance belt 43, and a waste toner tank 47 that stores the toner scraped off by the cleaning blade 46. The conveyance unit 40 also includes a mechanism that rotates the drive roller 45 The mechanism includes, for example, a driving force source (a drive roller driver 45a in
The image forming units 20K, 20Y, 20M, and 20C are arranged side by side (in tandem) along the medium conveyance path in a medium conveyance direction, i.e., a traveling direction (direction D1 in
When performing normal printing operation, the image forming units 20K, 20Y, 20M, and 20C respectively form a toner image of black (K), a toner image of yellow (Y), a toner image of magenta (M), and a toner image of cyan (C) on the recording medium 13 conveyed in the traveling direction D1.
In the first embodiment, when performing a process according to the image displacement correction method, the image forming units 20K, 20Y, 20M, and 20C respectively form a toner image of black (K), a toner image of yellow (Y), a toner image of magenta (M), and a toner image of cyan (C) on the conveyance belt 43 traveling in the traveling direction D1. The toner images of the respective colors formed on the conveyance belt 43 are detected by optical sensors (optical sensors 28a, 28b, and 28c in
The image forming units 20K, 20Y, 20M, and 20C respectively include head units 23K, 23Y, 23M, and 23C, which are exposure devices for the respective colors. The head units 23K, 23Y, 23M, and 23C are attached to an inner surface (a lower surface in
The image forming units 20K, 20Y, 20M, and 20C respectively include the photosensitive drums 21K, 21Y, 21M, and 21C as image carriers supported rotatably about their rotational axes, and charging rollers 22K, 22Y, 22M, and 22C as charging members that uniformly charge surfaces of the photosensitive drums 21K, 21Y, 21M, and 21C. The image forming units 20K, 20Y, 20M, and 20C also include developing units (developing devices) 24K, 24Y, 24M, and 24C that form toner images (developer images) corresponding to electrostatic latent images formed on the surfaces of the photosensitive drums 21K, 21Y, 21M, and 21C by exposure by means of the head units 23K, 23Y, 23M, and 23C by supplying the toner to the surfaces of the photosensitive drums 21K, 21Y, 21M, and 21C, respectively. The developing units 24K, 24Y, 24M, and 24C include developing rollers 26K, 26Y, 26M, and 26C as developer carriers, supply rollers 25K, 25Y, 25M, and 25C as supply members that supply toner onto the developing rollers 26K, 26Y, 26M, and 26C, and toner cartridges 27K, 27Y, 27M, and 27C as containers that contain toner, respectively.
The photosensitive drums 21K, 21Y, 21M, and 21C include a pipe-shaped (or cylindrical) conductive support made of metal, such as aluminum, and a photoconductive layer over a surface of the conductive support. The photosensitive drums 21K, 21Y, 21M, and 21C are rotated about their rotational axes in directions of arrows in
The transfer rollers 50K, 50Y, 50M, and 50C are disposed opposite the photosensitive drums 21K, 21Y, 21M, and 21C of the image forming units 20K, 20Y, 20M, and 20C with the conveyance belt 43 therebetween. The transfer rollers 50K, 50Y, 50M, and 50C sequentially transfer the developer images (toner images) formed on the surfaces of the photosensitive drums 21K, 21Y, 21M, and 21C of the image forming units 20K, 20Y, 20M, and 20C, onto an upper surface of the recording medium 13 conveyed in the traveling direction D1 along the medium conveyance path or an upper surface of the conveyance belt 43, to form a color image in which the multiple toner images (transferred developer images) are superimposed.
As illustrated in
The medium discharging unit 70 includes pairs of conveyance rollers 71, 72, and 73 each consisting of two rollers in pressure contact with each other. The rollers constituting the pairs of conveyance rollers 71, 72, and 73 are connected to a drive unit including a motor and a power transmission mechanism consisting of gears or the like for transmitting rotational driving force, and rotated to convey the recording medium 13. The configuration of the medium discharging unit 70 is not limited to the example of
The configuration of the image forming apparatus 1 is not limited to the example of
The controller 81 forms detection pattern images (transferred developer images) for the image displacement correction process on the conveyance belt 43, and performs control of light emission times of the optical heads 23Ka, 23Kb, 23Ya, 23Yb, 23Ma, 23Mb, 23Ca, and 23Cb based on the detection by the detector 28, and control of light emission positions in the main scanning direction of the optical heads 23Ka, 23Kb, 23Ya, 23Yb, 23Ma, 23Mb, 23Ca, and 23Cb in the head units 23K, 23Y, 23M, and 23C.
The image forming apparatus according to the first embodiment includes a first optical head group 23a and a second optical head group 23b that form electrostatic latent images on the photosensitive drums 21K, 21Y, 21M, and 21C as the image carriers. The first optical head group 23a includes the multiple first optical heads 23Ka, 23Ya, 23Ma, and 23Ca arranged in a sub-scanning direction. The second optical head group 23b includes the multiple second optical heads 23Kb, 23Yb, 23Mb, and 23Cb arranged in the sub-scanning direction. The first optical head group 23a and the second optical head group 23b are disposed to overlap each other in the main scanning direction. The image forming apparatus according to the first embodiment includes the detector 28 and controller 81. The detector 28 is disposed to correspond to a region where the first optical head group 23a and the second optical head group 23b overlap each other, and detects displacement amounts between the first optical heads and the second optical heads. The controller 81 performs registration (or position adjustment) by controlling light emission of the multiple first optical heads 23Ka, 23Ya, 23Ma, and 23Ca and the multiple second optical heads 23Kb, 23Yb, 23Mb, and 23Cb based on the detection by the detector 28. The controller 81 performs, with one of the first optical heads in the first optical head group 23a as a reference, registration on the other first optical heads in the first optical head group 23a based on the detection by the detector 28. The controller 81 performs, with one of the second optical heads in the second optical head group 23b as a reference, registration on the other second optical heads in the second optical head group 23b based on the detection by the detector 28. The controller 81 performs registration between the first optical head group 23a and the second optical head group 23b based on a displacement amount between one of the first optical heads in the first optical head group 23a and one of the second optical heads in the second optical head group 23b.
The controller 81 may be implemented using one or more circuits, such as hard-wired circuits or programmable processors. For example, the controller 81 includes a memory that stores instructions, and a processor that executes the instructions to perform the functions of the controller 81.
The image forming unit 20K includes the head unit 23K including the optical head (first optical head) 23Ka that forms an electrostatic latent image on the photosensitive drum 21K in a first region Ra in the main scanning direction D2 and the optical head (second optical head) 23Kb that forms an electrostatic latent image on the photosensitive drum 21K in a second region Rb in the main scanning direction D2. The image forming unit 20Y includes the head unit 23Y including the optical head (first optical head) 23Ya that forms an electrostatic latent image on the photosensitive drum 21Y in the first region Ra in the main scanning direction D2 and the optical head (second optical head) 23Yb that forms an electrostatic latent image on the photosensitive drum 21Y in the second region Rb in the main scanning direction D2. The image forming unit 20M includes the head unit 23M including the optical head (first optical head) 23Ma that forms an electrostatic latent image on the photosensitive drum 21M in the first region Ra in the main scanning direction D2 and the optical head (second optical head) 23Mb that forms an electrostatic latent image on the photosensitive drum 21M in the second region Rb in the main scanning direction D2. The image forming unit 20C includes the head unit 23C including the optical head (first optical head) 23Ca that forms an electrostatic latent image on the photosensitive drum 21C in the first region Ra in the main scanning direction D2 and the optical head (second optical head) 23Cb that forms an electrostatic latent image on the photosensitive drum 21C in the second region Rb in the main scanning direction D2.
As illustrated in
The first optical heads 23Ka, 23Ya, 23Ma, and 23Ca in the image forming units 20K, 20Y, 20M, and 20C constitute the first optical head group 23a. The second optical heads 23Kb, 23Yb, 23Mb, and 23Cb in the image forming units 20K, 20Y, 20M, and 20C constitute the second optical head group 23b.
The detector 28 includes the first optical sensor 28a, second optical sensor 28b, and third optical sensor 28c. The first optical sensor 28a is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43 developer images formed by exposure of the first optical heads 23Ka, 23Ya, 23Ma, and 23Ca and development of the developing units 24K, 24Y, 24M, and 24C. The second optical sensor 28b is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43 developer images formed by exposure of the optical heads 23Ka, 23Kb, 23Ya, 23Yb, 23Ma, 23Mb, 23Ca, and 23Cb and development of the developing units 24K, 24Y, 24M, and 24C in a region corresponding to the overlap portion Xa. The third optical sensor 28c is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43 developer images formed by exposure of the second optical heads 23Kb, 23Yb, 23Mb, and 23Cb and development of the developing units 24K, 24Y, 24M, and 24C. The first optical sensor 28a, second optical sensor 28b, and third optical sensor 28c can detect difference in reflectance between an area in which a detection pattern image, which is a transferred developer image, is formed on the conveyance belt 43 and an area in which no detection pattern image is formed on the conveyance belt 43, difference in reflectance due to the colors of transferred developer images, or the like. The diameter Y of a light receiving spot of the second optical sensor 28b is preferably smaller than the width of the overlap portion Xa.
<1-2> Operation of First Embodiment
In step S1, the controller 81 acquires, based on the detection by the optical sensors 28a and 28b, one or more first color displacement amounts (first displacement amounts) between a position of a first transferred developer image and positions of one or more second transferred developer images. The first transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference first optical head (for example, the first optical head 23Ka) that is one of the multiple first optical heads 23Ka, 23Ya, 23Ma, and 23Ca in the first optical head group 23a. The second transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more first optical heads (for example, the first optical heads 23Ya, 23Ma, and 23Ca) other than the reference first optical head in the first optical head group 23a. Specifically, each of the one or more first color displacement amounts includes a displacement amount (or component) Δvc1 in the traveling direction D1 and a displacement amount (or component) Δhc1 in the main scanning direction D2 between the first transferred developer image and the second transferred developer image. For each of the one or more first optical heads other than the reference first optical head, the controller 81 acquires the displacement amounts Δvc1 and Δhc1. However, the controller 81 may acquire one of the displacement amounts Δvc1 and Δhc1.
Moreover, in step S1, the controller 81 acquires, based on the detection by the optical sensors 28b and 28c, one or more second color displacement amounts (second displacement amounts) between a position of a third transferred developer image and positions of one or more fourth transferred developer images. The third transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference second optical head (for example, the second optical head 23Kb) that is one of the multiple second optical heads 23Kb, 23Yb, 23Mb, and 23Cb in the second optical head group 23b. The fourth transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more second optical heads (for example, the second optical heads 23Yb, 23Mb, and 23Cb) other than the reference second optical head in the second optical head group 23b. Specifically, each of the one or more second color displacement amounts includes a displacement amount (or component) Δvc2 in the traveling direction D1 and a displacement amount (or component) Δhc2 in the main scanning direction D2 between the third transferred developer image and the fourth transferred developer image. For each of the one or more second optical heads other than the reference second optical head, the controller 81 acquires the displacement amounts Δvc2 and Δhc2. However, the controller 81 may acquire one of the displacement amounts Δvc2 and Δhc2.
In step S2, the controller 81 sets, based on the first color displacement amounts in the first optical head group 23a, conditions for formation of electrostatic latent images by the first optical head group 23a so that the position of the first transferred developer image and the positions of the second transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple first optical heads in the first optical head group 23a. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S3, the controller 81 sets, based on the second color displacement amounts in the second optical head group 23b, conditions for formation of electrostatic latent images by the second optical head group 23b so that the position of the third transferred developer image and the positions of the fourth transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple second optical heads in the second optical head group 23b. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S4, the controller 81 acquires, based on the detection by the second optical sensor 28b, a first joint displacement amount that is a displacement amount between an end portion of a fifth transferred developer image and an end portion of a sixth transferred developer image. The fifth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple first optical heads in the first optical head group 23a. The sixth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple second optical heads in the second optical head group 23b. Specifically, the first joint displacement amount includes a displacement amount (or component) Δvj1 in the traveling direction D1 and a displacement amount (or component) Δhj1 in the main scanning direction D2 between the end portion of the fifth transferred developer image and the end portion of the sixth transferred developer image. The controller 81 acquires the displacement amounts Δvj1 and Δhj1. However, the controller 81 may acquire one of the displacement amounts Δvj1 and Δhj1.
In step S5, the controller 81 sets, based on the first joint displacement amount, conditions for formation of electrostatic latent images by the first optical head group 23a and conditions for formation of electrostatic latent images by the second optical head group 23b so that the end portion of the fifth transferred developer image and the end portion of the sixth transferred developer image approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple first optical heads in the first optical head group 23a and the multiple second optical heads in the second optical head group 23b. Thereby, the controller 81 corrects joint displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct joint displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
The order of steps S1 to S5 in
Images P1 illustrated in
In the transferred developer images P1 illustrated in
Images P2 in
<1-3> Measurement of Joint Displacement Amount
Next, a method of measuring the joint displacement amount between the first optical head 23Ca and the second optical head 23Kb in step S4 of
Next, measurement of the displacement amount in the main scanning direction D2 will be described.
As described above, the displacement amounts Δvj1 and Δhj1 between the first optical head 23Ca and the second optical head 23Kb are acquired. Here, in the first optical head group 23a and the second optical head group 23b, correction of color displacement has been performed for each of the optical heads. Thus, for example, by performing correction on the second optical heads in the second optical head group 23b based on the displacement amounts Δvj1 and Δhj1 with the first optical head 23Ca as a reference (or by performing correction on the first optical heads in the first optical head group 23a based on the displacement amounts Δvj1 and Δhj1 with the second optical head 23Kb as a reference), the joint displacement between the first optical head group 23a and the second optical head group 23b can be eliminated.
<1-4> Advantages
As described above, in the image displacement correction process of the image forming apparatus 1 according to the first embodiment, detection pattern images need to be formed when color displacements of detection pattern images formed by the first optical heads in the first optical head group 23a are acquired and color displacements of detection pattern images formed by the second optical heads in the second optical head group 23b are acquired (step S1), and when a color displacement of detection pattern images formed by one of the first optical heads in the first optical head group 23a and one of the second optical heads in the second optical head group 23b is acquired (step S4). In step S4 of the first embodiment, it is sufficient to acquire the joint displacement (Δvj1, Δhj1) between a detection pattern image formed by one of the first optical heads in the first optical head group 23a and a detection pattern image formed by one of the second optical heads in the second optical head group 23b. Thus, it is possible to reduce the time required for the image displacement correction process, as compared with a method of acquiring a displacement (joint displacement) between detection pattern images for each combination of one of the multiple first optical heads in the first optical head group 23a and one of the multiple second optical heads in the second optical head group 23b.
<2-1>Configuration of Second Embodiment
An image forming apparatus according to a second embodiment will be described below. In the above first embodiment, each of the head units includes two optical heads (first optical head and second optical head). In the second embodiment, each head unit includes three optical heads (a first optical head, a second optical head, and a third optical head). Except for this, the image forming apparatus according to the second embodiment is the same as the image forming apparatus 1 according to the first embodiment. Thus, the image forming apparatus according to the second embodiment will be described with reference to
The image forming unit 120K includes a head unit 123K including an optical head (first optical head) 123Ka that forms an electrostatic latent image on the photosensitive drum 21Ka in a first region Ra in the main scanning direction D2, an optical head (second optical head) 123Kb that forms an electrostatic latent image on the photosensitive drum 21Ka in a second region Rb in the main scanning direction D2, and an optical head (third optical head) 123Kc that forms an electrostatic latent image on the photosensitive drum 21Ka in a third region Rc in the main scanning direction D2. The image forming unit 120Y includes a head unit 123Y including an optical head (first optical head) 123Ya that forms an electrostatic latent image on the photosensitive drum 21Ya in the first region Ra in the main scanning direction D2, an optical head (second optical head) 123Yb that forms an electrostatic latent image on the photosensitive drum 21Ya in the second region Rb in the main scanning direction D2, and an optical head (third optical head) 123Yc that forms an electrostatic latent image on the photosensitive drum 21Ya in the third region Rc in the main scanning direction D2. The image forming unit 120M includes a head unit 123M including an optical head (first optical head) 123Ma that forms an electrostatic latent image on the photosensitive drum 21Ma in the first region Ra in the main scanning direction D2, an optical head (second optical head) 123Mb that forms an electrostatic latent image on the photosensitive drum 21Ma in the second region Rb in the main scanning direction D2, and an optical head (third optical head) 123Mc that forms an electrostatic latent image on the photosensitive drum 21Ma in the third region Rc in the main scanning direction D2. The image forming unit 120C includes a head unit 123C including an optical head (first optical head) 123Ca that forms an electrostatic latent image on the photosensitive drum 21Ca in the first region Ra in the main scanning direction D2, an optical head (second optical head) 123Cb that forms an electrostatic latent image on the photosensitive drum 21Ca in the second region Rb in the main scanning direction D2, and an optical head (third optical head) 123Cc that forms an electrostatic latent image on the photosensitive drum 21Ca in the third region Rc in the main scanning direction D2.
As illustrated in
The first optical heads 123Ka, 123Ya, 123Ma, and 123Ca in the image forming units 120K, 120Y, 120M, and 120C constitute a first optical head group 123a. The second optical heads 123Kb, 123Yb, 123Mb, and 123Cb in the image forming units 120K, 120Y, 120M, and 120C constitute a second optical head group 123b. The third optical heads 123Kc, 123Yc, 123Mc, and 123Cc in the image forming units 120K, 120Y, 120M, and 120C constitute a third optical head group 123c.
The detector 128 includes the first optical sensor 128a, second optical sensor 128b, third optical sensor 128c, and fourth optical sensor 128d. The first optical sensor 128a is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43a developer images formed by exposure of the first optical heads 123Ka, 123Ya, 123Ma, and 123Ca and development of the developing units 24K, 24Y, 24M, and 24C. The second optical sensor 128b is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43a developer images formed by exposure of the optical heads 123Ka, 123Kb, 123Ya, 123Yb, 123Ma, 123Mb, 123Ca, and 123Cb and development of the developing units 24K, 24Y, 24M, and 24C in a region corresponding to the overlap portion Xa. The third optical sensor 128c is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43a developer images formed by exposure of the optical heads 123Kb, 123Kc, 123Yb, 123Yc, 123Mb, 123Mc, 123Cb, and 123Cc and development of the developing units 24K, 24Y, 24M, and 24C. The fourth optical sensor 128d is used to detect positions of transferred developer images formed by transferring onto the conveyance belt 43a developer images formed by exposure of the third optical heads 123Kc, 123Yc, 123Mc, and 123Cc and development of the developing units 24K, 24Y, 24M, and 24C. The first optical sensor 128a, second optical sensor 128b, third optical sensor 128c, and fourth optical sensor 128d can detect difference in reflectance between an area in which a detection pattern image, which is a transferred developer image, is formed on the conveyance belt 43a and an area in which no detection pattern image is formed on the conveyance belt 43a, difference in reflectance due to the colors of transferred developer images, or the like. The diameter Y of light receiving spots of the second optical sensor 128b and third optical sensor 128c is preferably smaller than the length of the overlap portions Xa and Xb.
<2-2> Operation of Second Embodiment
In step S11, the controller 81 acquires, based on the detection by the optical sensors 128a and 128b, one or more first color displacement amounts (first displacement amounts) between a position of a first transferred developer image and positions of one or more second transferred developer images. The first transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference first optical head (for example, the first optical head 123Ka) that is one of the multiple first optical heads 123Ka, 123Ya, 123Ma, and 123Ca in the first optical head group 123a. The second transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more first optical heads (for example, the first optical heads 123Ya, 123Ma, and 123Ca) other than the reference first optical head in the first optical head group 123a. Specifically, each of the one or more first color displacement amounts includes a displacement amount (or component) Δvc1 in the traveling direction D1 and a displacement amount (or component) Δhc1 in the main scanning direction D2 between the first transferred developer image and the second transferred developer image. For each of the one or more first optical heads other than the reference first optical head, the controller 81 acquires the displacement amounts Δvc1 and Δhc1. However, the controller 81 may acquire one of the displacement amounts Δvc1 and Δhc1.
In step S11, the controller 81 also acquires, based on the detection by the optical sensors 128b and 128c, one or more second color displacement amounts (second displacement amounts) between a position of a third transferred developer image and positions of one or more fourth transferred developer images. The third transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference second optical head (for example, the second optical head 123Kb) that is one of the multiple second optical heads 123Kb, 123Yb, 123Mb, and 123Cb in the second optical head group 123b. The fourth transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more second optical heads (for example, the second optical heads 123Yb, 123Mb, and 123Cb) other than the reference second optical head in the second optical head group 123b. Specifically, each of the one or more second color displacement amounts includes a displacement amount (or component) Δvc2 in the traveling direction D1 and a displacement amount (or component) Δhc2 in the main scanning direction D2 between the third transferred developer image and the fourth transferred developer image. For each of the one or more second optical heads other than the reference second optical head, the controller 81 acquires the displacement amounts Δvc2 and Δhc2. However, the controller 81 may acquire one of the displacement amounts Δvc2 and Δhc2.
In step S11, the controller 81 also acquires, based on the detection by the optical sensors 128c and 128d, one or more third color displacement amounts (third displacement amounts) between a position of a seventh transferred developer image and positions of one or more eighth transferred developer images. The seventh transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference third optical head (for example, the third optical head 123Kc) that is one of the multiple third optical heads 123Kc, 123Yc, 123Mc, and 123Cc in the third optical head group 123c. The eighth transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more third optical heads (for example, the third optical heads 123Yc, 123Mc, and 123Cc) other than the reference third optical head in the third optical head group 123c. Specifically, each of the one or more third color displacement amounts includes a displacement amount (or component) Δvc3 in the traveling direction D1 and a displacement amount (or component) Δhc3 in the main scanning direction D2 between the seventh transferred developer image and the eighth transferred developer image. For each of the one or more third optical heads other than the reference third optical head, the controller 81 acquires the displacement amounts Δvc3 and Δhc3. However, the controller 81 may acquire one of the displacement amounts Δvc3 and Δhc3.
In step S12, the controller 81 sets, based on the first color displacement amounts in the first optical head group 123a, conditions for formation of electrostatic latent images by the first optical head group 123a so that the position of the first transferred developer image and the positions of the second transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple first optical heads in the first optical head group 123a. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S13, the controller 81 sets, based on the second color displacement amounts in the second optical head group 123b, conditions for formation of electrostatic latent images by the second optical head group 123b so that the position of the third transferred developer image and the positions of the fourth transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple second optical heads in the second optical head group 123b. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S14, the controller 81 sets, based on the third color displacement amounts in the third optical head group 123c, conditions for formation of electrostatic latent images by the third optical head group 123c so that the position of the seventh transferred developer image and the positions of the eighth transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple third optical heads in the third optical head group 123c. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S15, the controller 81 acquires, based on the detection by the second optical sensor 128b, a first joint displacement amount that is a displacement amount between an end portion of a fifth transferred developer image and an end portion of a sixth transferred developer image. The fifth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple first optical heads in the first optical head group 123a. The sixth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple second optical heads in the second optical head group 123b. Specifically, the first joint displacement amount includes a displacement amount (or component) Δvj1 in the traveling direction D1 and a displacement amount (or component) Δhj1 in the main scanning direction D2 between the end portion of the fifth transferred developer image and the end portion of the sixth transferred developer image. The controller 81 acquires the displacement amounts Δvj1 and Δhj1. However, the controller 81 may acquire one of the displacement amounts Δvj1 and Δhj1.
Moreover, the controller 81 acquires, based on the detection by the third optical sensor 128c, a second joint displacement amount that is a displacement amount between an end portion of a ninth transferred developer image and an end portion of a tenth transferred developer image. The ninth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple second optical heads in the second optical head group 123b. The tenth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by one of the multiple third optical heads in the third optical head group 123c. Specifically, the second joint displacement amount includes a displacement amount (or component) Δvj2 in the traveling direction D1 and a displacement amount (or component) Δhj2 in the main scanning direction D2 between the end portion of the ninth transferred developer image and the end portion of the tenth transferred developer image. The controller 81 acquires the displacement amounts Δvj2 and Δhj2. However, the controller 81 may acquire one of the displacement amounts Δvj2 and Δhj2.
In step S16, the controller 81 sets, based on the first joint displacement amount, conditions for formation of electrostatic latent images by the first optical head group 123a and conditions for formation of electrostatic latent images by the second optical head group 123b so that the end portion of the fifth transferred developer image and the end portion of the sixth transferred developer image approach (preferably, coincide with) each other or so that the images are correctly aligned. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple first optical heads in the first optical head group 123a and the multiple second optical heads in the second optical head group 123b. Thereby, the controller 81 corrects joint displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct joint displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S17, the controller 81 sets, based on the second joint displacement amount, conditions for formation of electrostatic latent images by the second optical head group 123b and conditions for formation of electrostatic latent images by the third optical head group 123c so that the end portion of the ninth transferred developer image and the end portion of the tenth transferred developer image approach (preferably, coincide with) each other or so that the images are correctly aligned. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple second optical heads in the second optical head group 123b and the multiple third optical heads in the third optical head group 123c. Thereby, the controller 81 corrects joint displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct joint displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
The order of steps S11 to S17 in
Images P10 illustrated in
In the transferred developer images P10 illustrated in
Images P11 in
<2-3> Advantages of Second Embodiment
As described above, in the image displacement correction process of the image forming apparatus according to the second embodiment, detection pattern images need to be formed when the color displacements of detection pattern images formed by the first optical heads in the first optical head group 123a are acquired, the color displacements of detection pattern images formed by the second optical heads in the second optical head group 123b are acquired, and the color displacements of detection pattern images formed by the third optical heads in the third optical head group 123c are acquired (step S11), and when the joint displacement between detection pattern images formed by one of the first optical heads in the first optical head group 123a and one of the second optical heads in the second optical head group 123b is acquired, and the joint displacement between detection pattern images formed by one of the second optical heads in the second optical head group 123b and one of the third optical heads in the third optical head group 123c is acquired (step S15). In step S15 of the second embodiment, it is sufficient to acquire the joint displacement (Δvj1, Δhj1) between a detection pattern image formed by one of the first optical heads in the first optical head group 123a and a detection pattern image formed by one of the second optical heads in the second optical head group 123b and acquire the joint displacement (Δvj2, Δhj2) between a detection pattern image formed by one of the second optical heads in the second optical head group 123b and a detection pattern image formed by one of the third optical heads in the third optical head group 123c. Thus, it is possible to reduce the time required for the image displacement correction process, as compared with a method of acquiring a joint displacement between detection pattern images for each combination of one of the multiple first optical heads in the first optical head group and one of the multiple second optical heads in the second optical head group and for each combination of one of the multiple second optical heads in the second optical head group and one of the multiple third optical heads in the third optical head group. Moreover, in the comparative method, as the number of optical head groups increases, the number of combinations of optical heads increases, and the time required for the image displacement correction process increases. However, according to the image forming apparatus and the image displacement correction method of the second embodiment, the time required for the image displacement correction process can be reduced even if the number of optical head groups increases.
<3-1> Configuration of Third Embodiment
An image forming apparatus according to a third embodiment will be described below. In the above first embodiment, color displacement in each of the first and second optical head groups 23a and 23b is corrected (steps S1 to S3 in
The image forming apparatus according to the third embodiment includes the multiple optical head units 23K, 23Y, 23M, and 23C that form electrostatic latent images on the photosensitive drums 21K, 21Y, 21M, and 21C as image carriers. One of the optical head units 23K, 23Y, 23M, and 23C is a first optical head unit, and another is a second optical head unit. For example, the optical head unit 23K is the first optical head unit, and one of the optical head units 23Y, 23M, and 23C is the second optical head unit. The first optical head unit includes multiple optical heads arranged in the main scanning direction and overlapping each other in the main scanning direction. The second optical head unit includes multiple optical heads arranged in the main scanning direction and overlapping each other in the main scanning direction. The image forming apparatus according to the third embodiment includes the detector 28 that is disposed to correspond to a region where the optical heads overlap each other and that detects a displacement amount of each of the heads, and the controller 81 that performs registration by controlling light emission of the multiple optical heads 23Ka, 23Ya, 23Ma, 23Ca, 23Kb, 23Yb, 23Mb, and 23Cb based on the detection by the detector 28. In the registration, with one of the optical heads in the first optical head unit as a reference, the controller 81 performs registration on the other optical heads in the first optical head unit based on the detection by the detector 28; with one of the optical heads in the second optical head unit as a reference, the controller 81 performs registration on the other optical heads in the second optical head unit based on the detection by the detector 28; the controller 81 performs registration between the first optical head unit and the second optical head unit based on a displacement amount between one of the optical heads in the first optical head unit and one of the optical heads in the second optical head units.
<3-2> Operation of Third Embodiment
As illustrated in
In step S22, for each of the head units 23K, 23Y, 23M, and 23C of the multiple image forming units 20K, 20Y, 20M, and 20C, the controller 81 sets, based on the joint displacement amount, conditions for formation of an electrostatic latent image by the first optical head and conditions for formation of an electrostatic latent image by the second optical head so that the end portion of the first transferred developer image and the end portion of the second transferred developer image approach (preferably, coincide with) each other or so that the images are correctly aligned. That is, the controller 81 corrects the joint displacement. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the first optical head and the second optical head. Thereby, the controller 81 corrects joint displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct joint displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
In step S23, the controller 81 acquires one or more displacement amounts between a position of a third transferred developer image and positions of one or more fourth transferred developer images. The third transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference first optical head that is one of the multiple first optical heads in the first optical head group 23a. The fourth transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more first optical heads other than the reference first optical head in the first optical head group 23a. Specifically, each of the one or more displacement amounts includes a displacement amount (or component) Δvc in the traveling direction D1 and a displacement amount (or component) Δhc in the main scanning direction D2 between the third transferred developer image and the fourth transferred developer image. For each of the one or more first optical heads other than the reference first optical head, the controller 81 acquires the displacement amounts Δvc and Δhc. However, the controller 81 may acquire one of the displacement amounts Δvc and Δhc.
Alternatively, the controller 81 may acquire one or more displacement amounts between a position of a fifth transferred developer image and positions of one or more sixth transferred developer images. The fifth transferred developer image is a transferred developer image corresponding to an electrostatic latent image formed by a reference second optical head that is one of the multiple second optical heads in the second optical head group 23b. The sixth transferred developer images are transferred developer images corresponding to electrostatic latent images formed by one or more second optical heads other than the reference second optical head in the second optical head group 23b. Specifically, each of the one or more displacement amounts includes a displacement amount (or component) Δvc in the traveling direction D1 and a displacement amount (or component) Δhc in the main scanning direction D2 between the fifth transferred developer image and the sixth transferred developer image. For each of the one or more second optical heads other than the reference second optical head, the controller 81 acquires the displacement amounts Δvc and Δhc. However, the controller 81 may acquire one of the displacement amounts Δvc and Δhc.
In step S24, based on the displacement amounts acquired in step S23, the controller 81 performs a process of setting conditions for formation of electrostatic latent images by the first optical head group 23a so that the position of the third transferred developer image and the positions of the fourth transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple first optical heads in the first optical head group 23a. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
Moreover, in step S24, based on the displacement amounts acquired in step S23, the controller 81 performs a process of setting conditions for formation of electrostatic latent images by the second optical head group 23b so that the position of the fifth transferred developer image and the positions of the sixth transferred developer images approach (preferably, coincide with) each other. Specifically, the controller 81 sets light emission times and light emission positions in the main scanning direction D2 of the multiple second optical heads in the second optical head group 23b. Thereby, the controller 81 corrects color displacement (or displacement) in the traveling direction D1 and main scanning direction D2. However, the controller 81 may set one of the light emission times and light emission positions. The controller 81 may correct color displacement (or displacement) in one of the traveling direction D1 and main scanning direction D2.
Images P20 illustrated in
In the transferred developer images P20 illustrated in
Images P21 in
<3-3> Advantages of Third Embodiment
As described above, in the image displacement correction process of the image forming apparatus according to the third embodiment, detection pattern images need to be formed when the joint displacement between the optical heads is acquired for each of the head units (step S21), and when the color displacements between the detection pattern images formed by the first optical heads in the first optical head group 23a (or the color displacements between the detection pattern images formed by the second optical heads in the second optical head group 23b) are acquired (step S23). Thus, it is possible to reduce the time required for the image displacement correction process, as compared with a method of acquiring a displacement (joint displacement) between detection pattern images for each combination of one of the multiple first optical heads in the first optical head group 23a and one of the multiple second optical heads in the second optical head group 23b.
In this specification, the term “displacement” may be replaced with the term “misalignment” or “misregistration”.
The present invention is not limited to the embodiments described above; it can be practiced in various other aspects without departing from the invention scope.
Number | Date | Country | Kind |
---|---|---|---|
2015-192653 | Sep 2015 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
6160610 | Toda | Dec 2000 | A |
20100080594 | Sowa | Apr 2010 | A1 |
20140321889 | Kosasa | Oct 2014 | A1 |
20150212449 | Yokoi | Jul 2015 | A1 |
Number | Date | Country |
---|---|---|
2549334 | Jan 2013 | EP |
2001-134041 | May 2001 | JP |
2002-052757 | Feb 2002 | JP |
2011-194684 | Oct 2011 | JP |
Number | Date | Country | |
---|---|---|---|
20170090337 A1 | Mar 2017 | US |