1. Field of the Invention
This invention relates to an image forming apparatus such as a printer, a facsimile, or a copier using electrophotography for forming a toner image on a record material of paper, etc., and more particularly to an art of forming a toner image (patch image) of a predetermined pattern on the surface of a toner image support to adjust the density (and gradation) of a toner image and measuring the density with a density sensor (patch sensor).
2. Description of the Related Art
In an image forming apparatus in a related art, a patch image is formed on the surface of a belt-like image support for supporting a toner image on the surface and is detected with a patch sensor placed facing a placing part on a roller for stretching the belt-like image support. (Refer to Japanese Patent Publication JP-A-2002-214854.)
According to the configuration, it can be expected that it will be made possible to detect the patch image on the surface of the belt-like image support with good accuracy in the placing part on the roller where a flutter does not occur on the belt.
On the function of the patch sensor, the distance and the angle relative to a measured object largely affect the sensing performance of the patch sensor. Particularly, if the measured object is a curved surface, the angle accuracy needs to be managed strictly.
The image forming apparatus in the related art described above is not provided with an adjustment mechanism of the angle which the patch sensor forms with the measured object (patch image on the image support), and the position of the patch sensor is guaranteed by the parts accuracy.
Thus, in the image forming apparatus in the related art, variations in patch sensor attachment angle easily occur, resulting in large density variations after sensing; this is a problem.
It is an object of the invention to provide an image forming apparatus capable of detecting the density of a patch image on the surface of an image support with good accuracy.
According to the invention, there is provided an image forming apparatus where in a patch image is formed on the surface of a belt-like image support for supporting a toner image on the surface and is detected with a patch sensor placed facing a placing part on a roller for stretching the belt-like image support, characterized by
According to the configuration, the patch image on the surface of the belt-like image support can be detected in the placing part on the roller where a flutter does not occur on the belt and it is made possible to adjust the angle of the patch sensor relative to the patch image on the image support, so that it is made possible to detect the density of the patch image on the surface of the image support with good accuracy.
Preferably, the angle adjustment mechanism is an angle adjustment mechanism for rotating the patch sensor with the intersection point of the optical axis of the patch sensor and a sensing face as the center for adjusting the attachment angle of the patch sensor.
According to the configuration, it is made possible to adjust the angle without changing the distance between the patch sensor and the sensing face (patch image on the surface of the image support), so that it is made possible to detect the density of the patch image on the surface of the image support with better accuracy.
To the end, according to the invention, there is provided an image forming apparatus wherein a patch image is formed on the surface of an image support for supporting a toner image on the surface and is detected with a patch sensor, characterized by
According to the configuration, it is made possible to adjust the angle of the patch sensor relative to the patch image on the image support, so that it is made possible to detect the density of the patch image on the surface of the image support with good accuracy.
Moreover, it is made possible to adjust the angle without changing the distance between the patch sensor and the sensing face (patch image on the surface of the image support), so that it is made possible to detect the density of the patch image on the surface of the image support with better accuracy.
Preferably, the patch sensor is attached to one member for forming a part of a support frame of the image support and the attachment angle of the one member is adjusted, whereby the attachment angle of the patch sensor is adjusted.
In doing so, the angle adjustment mechanism can be formed without increasing the number of parts. Moreover, assuming that the patch sensor is placed on a different member from the member forming a part of the support frame of the image support, it becomes difficult to make high-accuracy angle adjustment of the patch sensor relative to the surface of the image support. However, the patch sensor is attached to the one member forming a part of the support frame of the image support, whereby it becomes easy to make high-accuracy angle adjustment of the patch sensor relative to the surface of the image support. Further, the image support, the support frame thereof, and the patch sensor can be put into a unit, so that angle adjustment of the patch sensor in the single unit is made possible. Therefore, the need for adjusting the angle of the patch sensor after the image support and the patch sensor are separately built in the image forming apparatus is eliminated.
Preferably, a cleaning mechanism for cleaning the sensor face of the patch sensor is attached to the one member.
In doing so, it is made possible to clean the sensor face of the patch sensor by the cleaning mechanism. At the same time, when the angle of the patch sensor is adjusted, the cleaning mechanism also rotates in a similar manner, so that the relative position between the patch sensor and its cleaning mechanism can also be prevented from getting dislocated as the angle of the patch sensor is adjusted.
According to another aspect of the invention, there is provided an adjusting method of a patch sensor in an image forming apparatus, wherein the patch sensor is opposed to a roller for stretching an image support on which a toner image is supported, the method comprising the steps of:
Preferably, the patch sensor maybe adjusted by the angle adjustment jig so that the optical axis of the patch sensor passes through the center of the roller.
Further, according to the invention, a reference base for resetting the gage attached to the angle adjustment jig is provided with a pair of reference bosses provided at opposite ends thereof corresponding to the bosses of the roller and a reference face provided between the reference bosses corresponding to the attachment face; and
Referring now to the accompanying drawings, there are shown preferred embodiments of the invention.
The image forming apparatus is a color image forming apparatus capable of transporting A3-size or smaller-size paper (record material) in a portrait feed state and A4-size or smaller-size paper in a landscape feed state and forming a full-color image on both sides of the paper.
The image forming apparatus includes a case 10 and an image support unit 20, an exposure unit 30 as exposure device, a developing machine 40 as developing device, an intermediate transfer body unit 50, and a fixing unit (fixer) 60 as fixing device, which are housed in the case 10.
The case 10 is provided with a main unit frame 11 of an apparatus main unit (see
The image support unit 20 has a photosensitive body 21 having a photosensitive layer on the outer peripheral surface and a corona charger (scorotron charger) 22 as charging device for uniformly charging the outer peripheral surface of the photosensitive body 21. The outer peripheral surface of the photosensitive body 21 uniformly charged by the corona charger 22 is selectively exposed to laser light L from the exposure unit 30 to form an electrostatic latent image, toner of a developer is given to the electrostatic latent image in the developing machine 40 to form a visible image (toner image), and the toner image is primarily transferred to an intermediate transfer belt 51 of an intermediate transfer body (image support) of the intermediate transfer body unit 50 in a primary transfer part T1 and further is secondarily transferred to paper in a secondary transfer part T2.
The image support unit 20 is provided with a cleaning device (cleaning blade) 23 for removing the toner remaining on the surface of the photosensitive body 21 after the primary transfer and a waste toner storage section 24 as a waste toner reservoir section for storing the waste toner removed by the cleaning device 23.
The case 10 contains a transport passage 16 for transporting the paper having the toner image formed on one side by the secondary transfer part T2 described above to a paper discharge section (paper discharge tray section) 15 on the top of the case 10 and a return passage 17 for switching back the paper transported to the secondary transfer part T2 on the transport passage 16 and returning the paper to the secondary transfer part T2 to also form an image on an opposite side.
A paper feed tray 18 for stacking and holding a plurality of sheets of paper and a paper feed roller 19 for feeding the paper one sheet at a time to the secondary transfer part T2 are provided in the lower part of the case 10.
The developing machine 40 is a rotary developing machine and has a plurality of developing machine cartridges each storing toner detachably attached to a rotation body main unit 41. In the embodiment, a yellow developing machine cartridge 42Y, a magenta developing machine cartridge 42M, a cyan developing machine cartridge 42C, and a black developing machine cartridge 42K are provided and the rotation body main unit 41 rotates at 90-degree pitches in the arrow direction in
The exposure unit 30 applies the laser light L through an exposure window 31 to the photosensitive body 21.
The intermediate transfer body unit 50 includes a unit frame 70 (see
The secondary transfer roller 10b can be brought into and out of contact with the drive roller 54 (therefore the intermediate transfer belt 51). When the secondary transfer roller 10b comes in contact with the drive roller 54, the secondary transfer part T2 is formed.
Therefore, to form a color image, toner images of a plurality of colors are superposed on each other with the secondary transfer roller 10b out of contact with the intermediate transfer belt 51 to form a color image and then the secondary transfer roller 10b comes in contact with the intermediate transfer belt 51 and paper is supplied to the contact part (secondary transfer part T2) at the timing controlled in a gate roller pair 10g, whereby the color image (toner image) is transferred to the paper.
The paper to which the toner image has been transferred passes through a heating roller pair 61 of the fixing unit 60, whereby the toner image is fused and fixed and the paper is ejected to the paper discharge section 15.
In the image forming apparatus, a patch image of a predetermined pattern (not shown) is formed on the surface of the intermediate transfer belt 51 to adjust the density (and gradation) of an image formed on the intermediate transfer belt 51 of an image support as described above and the density is measured with a patch sensor 80 placed facing a placing part on the roller 55 for stretching the intermediate transfer belt 51.
The patch sensor 80 contains a light projection element and a light reception element (not shown) and is a reflection optical sensor for projecting light onto the patch image (surface of the intermediate transfer belt 51) through a light projection window 81 (see
In
As shown in
As shown in
As seen from the description made above, in the image forming apparatus, the patch sensor 80 is attached to the horizontal frame 72 of one member forming a part of the unit frame 70 of the intermediate transfer belt 51 of the image support and the attachment angle of the horizontal frame 72 of the one member is adjusted, whereby the attachment angle of the patch sensor 80 can be adjusted.
That is, in the embodiment, the side frames 71 and the horizontal frame 72 supported on the side frames 71 for rotation to which the patch sensor 80 is attached make up an angle adjustment mechanism for adjusting the attachment angle of the patch sensor 80.
In
As shown in
Therefore, the patch sensor 80 can rotate on the intersection point O1.
The arm part 73 and the tongue piece 74 are formed with a hole 73a and a hole 74a for allowing the fixing screws 76 to pass through and the inner diameter of each hole is larger than the outer diameter of the fixing screw 76, so that the horizontal frame 72 (therefore, the patch sensor 80) can be rotated in the range in which the hole 73a, 74a can move relatively to the fixing screw 76.
When the angle of the patch sensor 80 is adjusted to a proper angle as described below, the optical axis 83 of the patch sensor 80 passes through a center O2 of the roller 55 on which the intermediate transfer belt 51 is placed, as shown in
The attachment angle of the patch sensor 80 is adjusted as follows:
The reference base 110 has a pair of reference bosses 111 provided at both ends and a reference face 112 provided between the reference bosses 111. The pair of reference bosses 111 corresponds to a pair of bosses 55b (only one is shown in
The jig 120 has a pair of arms 121 provided at both ends and a reference terminal 122 provided between the arms 121. The pair of arms 121 is formed at the tip with reference holes 123 fitted into the reference bosses 111 of the reference base 110 and the pair of bosses 55b on the same axis as the roller 55.
A dial gage 130 is attached to the jig 120.
(iii) As shown in
(iv) The jig 120 is detached from the reference base 110 and as shown in
Here, if the measurement value of the dial gage 130 is not 0, the horizontal frame 72 (therefore, the patch sensor 80) is rotated around the axis 75 so that the measurement value becomes 0. At the position where the measurement value of the dial gage 130 becomes 0, the fixing screws 76 are fastened for fixing the horizontal frame 72 to the side frames 71.
Accordingly, the patch sensor 80 is attached in a state in which the attachment angle of the patch sensor 80 is adjusted to the proper angle previously described with reference to
When the horizontal frame 72 is rotated around the axis 75, the jig 120 is rotated around the bosses 55b following rotation of the horizontal frame 72.
According to the image forming apparatus as described above, the following advantages can be provided:
(a) The image forming apparatus is an image forming apparatus wherein a patch image is formed on the surface of the belt-like image support 51 for supporting a toner image on the surface and is detected with the patch sensor 80 placed facing the placing part on the roller 55 for stretching the belt-like image support 51, and includes the angle adjustment mechanism for adjusting the attachment angle of the patch sensor 80. Thus, according to the image forming apparatus, the following advantage can be provided:
The patch image on the surface of the belt-like image support 51 can be detected with the patch sensor 80 in the placing part on the roller 55 where a flutter does not occur on the belt-like image support 51 and it is made possible to adjust the angle of the patch sensor 80 relative to the patch image on the image support 51, so that it is made possible to detect the density of the patch image on the surface of the image support with good accuracy.
(b) The angle adjustment mechanism is designed for rotating the patch sensor 80 with the intersection point O1 of the optical axis 83 of the patch sensor 80 and the sensing face (the surface of the intermediate transfer belt 51 and the patch image formed on the surface) as the center for adjusting the attachment angle of the patch sensor, so that it is made possible to adjust the angle without changing the distance between the patch sensor 80 and the sensing face.
Therefore, it is made possible to detect the density of the patch image on the surface of the image support with better accuracy at the proper distance and at the proper angle.
That is, the image forming apparatus is an image forming apparatus wherein a patch image is formed on the surface of the image support 51 for supporting a toner image on the surface and is detected with the patch sensor, and wherein the patch sensor 80 is rotated with the intersection point O1 of the optical axis 83 of the patch sensor 80 and the sensing face as the center for adjusting the attachment angle of the patch sensor 80. Thus, it is made possible to adjust the angle without changing the distance between the patch sensor 80 and the sensing face and it is made possible to detect the density of the patch image on the surface of the image support with very good accuracy.
(c) The patch sensor 80 is attached to the horizontal frame 72 of one member forming a part of the support frame 70 of the image support 51 and the attachment angle of the one member 72 is adjusted, whereby the attachment angle of the patch sensor 80 is adjusted. Thus, the angle adjustment mechanism can be formed without increasing the number of parts. Moreover, assuming that the patch sensor 80 is placed on a different member from the member 72 forming a part of the support frame 70 of the image support 51, it becomes difficult to make high-accuracy angle adjustment of the patch sensor relative to the surface of the image support. However, the patch sensor 80 is attached to the one member 72 forming a part of the support frame 70 of the image support 51, whereby it becomes easy to make high-accuracy angle adjustment of the patch sensor relative to the surface of the image support. Further, the image support 51, the support frame 70 thereof, and the patch sensor 80 can be put into a unit (see
<Another Embodiment>
The embodiment differs from the above-described embodiment in that the cleaning mechanism 90 for cleaning the sensor face (light projection window 81 and light reception window 82) of the patch sensor 80 is provided on the horizontal frame 72 of the attachment member of the patch sensor 80.
The cleaning mechanism 90 is made up of a cleaning member (for example, sponge, felt, raised material, etc.,) 91 for scrubbing the sensor face of the patch sensor 80, a retention member 92 for retaining the cleaning member 91, and a guide member 93 for guiding slide of the retention member 92 (see
The retention member 92 is joined to an operation lever 95 by a rod 94, as shown in
The operation lever 95 has one end 95a supported by a shaft 96a of a support plate 96 attached to a main unit frame 11 (see
Therefore, when the operation lever 95 rotates in the arrow A1, A2 direction, the rod 94 and the retention member 92 (therefore, the cleaning member 91) slide in the arrow B1, B2 direction (as shown in
As shown in
Therefore, if the horizontal frame 72 and the cleaning mechanism 90 rotate as the attachment angle of the patch sensor 80 is adjusted, a torsional force does not occur on the rod 94 and thus the positional relationship between the cleaning mechanism 91 and the retention member 92 and the sensor face of the patch sensor 80 does not get dislocated.
A torsion spring 97 is provided around the shaft 96a for urging the operation lever 95 at all times in the arrow A2 direction, but the user can rotate the operation lever 95 in the arrow A1 direction by pressing an operation part 95c of the operation lever 95 with a finger.
In the embodiment, an open-close cover (side cover) (not shown) is provided on a side of the image forming apparatus (front face in
The side cover is opened and closed when a developing machine cartridge 42 (Y, K, C, M) or an image support unit 20 is replaced (detached and attached).
Therefore, in the embodiment, whenever the side cover is opened and closed (on a regular basis to some extent) to replace the cartridge or the unit, the cleaning member 91 slides as shown in
The retention member 92 is provided with an opening (window) 92a as shown in
When the operation lever 95 is rotated in the arrow A1 direction in
In this state, the opening 92a of the retention member 92 opens the sensor face of the patch sensor 80 as shown in
According to the embodiment, the cleaning mechanism 90 for cleaning the sensor face of the patch sensor 80 is attached to the horizontal frame 72, so that it is made possible to clean the sensor face of the patch sensor 80 by the cleaning mechanism 90. At the same time, when the angle of the patch sensor 80 is adjusted, the cleaning mechanism 90 also rotates in a similar manner, so that the relative position between the patch sensor 80 and its cleaning mechanism 90 can also be prevented from getting dislocated as the angle of the patch sensor 80 is adjusted.
Although the embodiments of the invention have been described, it is to be understood that the invention is not limited to the specific embodiments thereof and various modifications and changes may be made without departing from the spirit and the scope of the invention.
For example, in the description of the embodiments, the image support is an intermediate transfer body, but the invention can also be applied to the case where the image support is a photosensitive body.
Number | Date | Country | Kind |
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P2004-089841 | Mar 2004 | JP | national |