This application is based upon and claims the benefit of priority from the corresponding Japanese Patent Application No. 2010-60526 filed on Mar. 17, 2010, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a toner dispersing mechanism, and a developing device and an image forming apparatus provided therewith, the toner dispersing mechanism being mounted to an electrophotographic image forming apparatus such as a copier, a printer, and a facsimile, and dispersing toner replenished from a toner storage container such as a hopper and a container into a developing device.
2. Description of Related Art
Conventionally, for facilitation of the maintenance, a predetermined amount of toner is filled in advance into the developing device mounted to the image forming apparatus, and the developing device itself is replaced when the toner is depleted. However, the developing device cannot be frequently replaced from an economic viewpoint, and a toner capacity of the developing device is inevitably increased for performing image formation on many sheets to some extent. Thus, the above-mentioned developing device is difficult to downsize. Under the circumstance, in order to achieve downsizing of the developing device, there has been proposed a developing device of a type to which toner is supplied from outside.
In the developing device of the toner supply type, a lump of toner is sometimes replenished into the developing device when toner fluidity is reduced owing to use environments and the like. Thus, there is a risk that the mixing property of the lump of toner and developer existing in the developing device are deteriorated and a developer thin layer formed on a developing roller is disturbed, with the result that image failures such as an image density unevenness and fogging occur.
Under the circumstance, there have been proposed various technologies for suppressing occurrence of the image failures by preceding dispersion of the toner replenished into the developing device. For example, as disclosed in the first related art, there has been known a developing device in which a matrix member (mesh) and a brush-like developer supply roller are arranged between a developer carrier and a developer storage portion. Further, as disclosed in the second related art, there has been known a developing device provided with a toner-replenishing-port stirring member for stirring toner in a toner replenishing port of a toner hopper. Still further, as disclosed in the third related art, there has been known a method in which a toner dispersing member constituted by a core and a cylindrical foam member is arranged so as to close a replenishing port of a toner bottle, and toner is dropped little by little into a developing device by rotation of the toner dispersing member.
Meanwhile, as disclosed in the fourth related art, there has been known an image forming apparatus which includes an auxiliary stirring container for separately receiving toner replenished from a toner replenishing container and carrier replenished from a carrier replenishing container and sufficiently mix and stir the toner and the carrier with use of a stirring/conveying member having a screw-like shape, and in which developer preliminarily mixed in the auxiliary stirring container and having a stable charging property is supplied to the developing device.
An object of the present invention is to provide a toner dispersing mechanism for causing toner replenished from a toner storage container to enter a dispersed state with a simple structure and supplying the toner into a developing device, and a developing device provided therewith. Further, another object of the present invention is to provide an image forming apparatus in which image failures such as density unevenness and fogging can be effectively suppressed with the toner dispersing mechanism and the developing device.
The toner dispersing mechanism according to one aspect of the present invention is a toner dispersing mechanism arranged between the toner storage container and the developing device and dispersing toner replenished from the toner storage container, the toner dispersing mechanism including a housing provided with a toner filling port communicating to the toner storage container and a toner discharge port communicating to the developing device, and a dispersing member consists of a rotary shaft rotatably supported in the housing and a large number of dispersing protrusions formed of an elastic material on an outer peripheral surface of the rotary shaft.
Further features and advantages of the present invention will become apparent from the description of embodiments given below.
In the following, description is made of embodiments of the present invention with reference to the figures.
The sheet feeding cassette 2 is provided with a sheet stacking plate 12 rotationally supported with respect to the sheet feeding cassette 2 by a rotation fulcrum 12a provided at a rear end portion in a sheet conveying direction. The sheets stacked on the sheet stacking plate 12 are pressed by the pick-up roller 5. Further, on a front side of the sheet feeding cassette 2, a retard roller 13 is arranged in press contact with the feed roller 6. When a plurality of sheets are simultaneously fed by the pick-up roller 5, the sheets are fanned by the feed roller 6 and the retard roller 13 so that only an uppermost one of the sheets is conveyed.
Then, the sheet fanned by the feed roller 6 and the retard roller 13 is changed in conveying direction by the intermediate conveyance roller 7 to the rear of the apparatus, conveyed to the registration roller pair 8, and fed to the image forming portion 9 after being timed by the registration roller pair 8.
The image forming portion 9 is provided to form a predetermined toner image onto a sheet by an electrophotographic process, and includes a photosensitive drum 14 as an image carrier rotatably and axially supported in a clockwise direction in
The charging device 15 is provided with a conductive rubber roller 15a to which a power source (not shown) is connected, the conductive rubber roller 15a being arranged in contact with the photosensitive drum 14. When the photosensitive drum 14 is rotated, the conductive rubber roller 15a comes into contact with a surface of the photosensitive drum 14 and is rotated in accordance therewith. At this time, by application of a predetermined voltage to the conductive rubber roller 15a, the surface of the photosensitive drum 14 is uniformly charged.
Next, an electrostatic latent image based on input image data is formed on the photosensitive drum 14 by a laser beam from the exposing unit (LSU) 19. Then, toner is adhered to the electrostatic latent image by the developing device 16, and a toner image is formed on the surface of the photosensitive drum 14. The toner image on the surface of the photosensitive drum 14 is transferred by the transfer roller 18 to the sheet fed to a transfer position formed at a nip portion between the photosensitive drum 14 and the transfer roller 18.
The sheet having the toner image transferred thereon is separated from the photosensitive drum 14 and conveyed to the fixing portion 10. The fixing portion 10 is arranged on the downstream side of the sheet conveying direction of the image forming portion 9. The sheet having the toner image transferred thereon at the image forming portion 9 is heated and pressed respectively by a heating roller 22 provided to the fixing portion 10 and a pressure roller 23 to be brought into press contact with the heating roller 22, and the toner image transferred onto the sheet is fixed.
The sheet subjected to the image formation at the image forming portion 9 and the fixing portion 10 is delivered onto the sheet delivery portion 3 by the delivery roller pair 11. Meanwhile, residual toner on the surface of the photosensitive drum 14 after the transfer is removed by the cleaning device 17. Then, the photosensitive drum 14 is recharged by the charging device 15, and image formation is sequentially performed as described above.
Next, with reference to
As illustrated in
An inside of the container main unit 31a is portioned by a partition plate 37 extending in a long side direction into a first storage chamber 38 and a second storage chamber 39. The first stirring/conveying screw 32 is arranged in the first storage chamber 38, and the second stirring/conveying screw 33 is arranged in the second storage chamber 39. Further, as illustrated in
The first stirring/conveying screw 32 and the second stirring/conveying screw 33 are respectively constituted by rotary shafts 32a and 33a and helical blades 32b and 33b formed integrally with outer peripheral surfaces thereof, and rotatably and axially supported in the container main unit 31a so as to be substantially parallel with each other. The first stirring/conveying screw 32 and the second stirring/conveying screw 33 are rotated in predetermined directions so as to convey the developer in the first storage chamber 38 in a direction of an arrow A and convey the developer in the second storage chamber 39 in a direction of an arrow B. Further, in order that toner can be replenished into the container main unit 31a in accordance with detection results of a toner concentration sensor 44 described later, the cover 31b is provided with a toner replenishing port 34 through which toner is supplied from the toner container 20 (refer to
Further, drive input gears 41a and 41b are coupled to the rotary shafts 32a and 33a of the first stirring/conveying screw 32 and the second stirring/conveying screw 33, and a motor 43 is connected to the drive input gears 41a and 41b through intermediation of a drive output gear 42. The drive input gears 41a and 41b, the drive output gear 42, and the motor 43 drive-rotate the first stirring/conveying screw 32 and the second stirring/conveying screw 33 in the predetermined directions. With this, the developer is conveyed in the first storage chamber 38 and the second storage chamber 39, and as described above, circulates in the first storage chamber 38 and the second storage chamber 39 through the paths 40 provided to both the right and left end portions of the container main unit 31a.
The developing roller 35 is rotatably and axially supported in the first storage chamber 38 so as to be substantially parallel with the first stirring/conveying screw 32 and the second stirring/conveying screw 33, and the motor 43 is connected to the developing roller 35 through intermediation of a gear train (not shown). A magnet roller having an inner surface to which a magnetic-field generating member (not shown) constituted by a permanent magnet is fixed is used as the developing roller 35. When the developing roller 35 is rotated in accordance with rotation of the photosensitive drum 14, a magnetic force of the magnetic-field generating member causes the developer to adhere to (be carried by) a surface of the developing roller 35, with the result that a developer layer is formed.
Then, toner in the developer adhering to the developing roller 35 in a predetermined developing region adheres to a photosensitive layer by being caused to fly to the photosensitive drum 14 due to potential difference between a surface potential of the photosensitive drum 14 and a developing bias applied to the developing roller 35. In this manner, a toner image is formed on the surface of the photosensitive drum 14. Note that, a drive means other than the motor 43 may be connected to the developing roller 35 so as to independently drive the developing roller 35.
The regulating blade 36 is provided to regulate an amount of toner supplied to the photosensitive drum 14, that is, a developer adhesion amount with respect to the developing roller 35. For example, the regulating blade 36 is made of a non-magnetic stainless (SUS) such as SUS303, and is arranged so that a predetermined gap is formed between a distal end of the regulating blade 36 and the developing roller 35. The gap between the regulating blade 36 and the developing roller 35 regulates the developer adhesion amount with respect to the developing roller 35, and a thin developer layer having a thickness of several hundred microns is formed on the surface of the developing roller 35.
The toner concentration sensor 44 is arranged on an inner wall surface of the second storage chamber 39. As the toner concentration sensor 44, there is used a magnetic permeability sensor for detecting a magnetic permeability of the two-component developer constituted by toner and a magnetic carrier in the container main unit 31a. Here, a toner density represents a ratio of the toner to the magnetic carrier in the developer. In this embodiment, the toner concentration sensor 44 detects the magnetic permeability of the developer and outputs a voltage value corresponding to a detection result thereof to the control portion 30 (refer to
The sensor output value varies in accordance with the toner density. Specifically, the ratio of the toner to the magnetic carrier becomes higher in proportion to the toner density, and the output value decreases due to an increase in percentage of the non-magnetic toner. Meanwhile, the ratio of the toner to the carrier becomes lower in reverse proportion to the toner density, and the output value increases due to an increase in percentage of the magnetic carrier.
The toner dispersing mechanism 21 is constituted by a housing 24 formed integrally with the cover 31b of the developing device 16, and a dispersing member 25 rotatably supported in the housing 24. A toner filling port 24a is formed in an upper surface of the housing 24, and a toner discharge port 24b communicating to the toner replenishing port 34 of the developing device 16 is formed in a lower surface of the housing 24. When a predetermined amount of toner is injected from the toner filling port 24a into the toner dispersing mechanism 21 in accordance with an output of the toner concentration sensor 44, a lump of the toner is dispersed by rotation of the dispersing member 25 and then discharged from the toner discharge port 24b, with the result of being replenished into the developing device 16 through the toner replenishing port 34.
Note that, the term “dispersion” as used herein represents a state in which the toner is powdered into particles, which is clearly distinguished from “mixture” effected by screws and helixes.
By rotation of the dispersing member 25 timed to injection of toner from the toner container 20 (refer to
In contrast, as illustrated in
With this structure, the toner is replenished over a wide range in the second storage chamber 39, and hence can be quickly mixed with a developer D existing in the second storage chamber 39 by the second stirring/conveying screw 33. The opening width of the toner discharge port 24b can be appropriately set in accordance with toner properties to be used and specifications of the developing device 16 and the like.
Further, as illustrated in
In order to reduce the height of the developer D immediately below the toner discharge port 24b, it is only necessary that a conveying speed of the developer in the second storage chamber 39 be partially changed by variation of the pitch of the helical blade 33b or provision of ribs to the rotary shaft 33a.
With this structure, the toner injected from the toner filling port 24a into the housing 24 is conveyed to the dispersing protrusions 25b by rotation of the screw portion 51. After being dispersed to particles by the dispersing protrusions 25b, the toner is supplied from the toner discharge port 24b into the toner replenishing port 34 (refer to
Note that, although description is made of the case where, according to each of the above-mentioned embodiments, the toner discharge port 24b is provided in the lower surface of the housing 24 in the toner dispersing mechanism 21 and the toner dispersing mechanism 21 is arranged immediately above the second storage chamber 39 of the developing device 16, this should not be construed restrictively. For example, as illustrated in
Further, owing to limitation of layout of the image forming apparatus, the toner dispersing mechanism 21 may not be arranged immediately above the developing device 16 in some cases. In such a case, for example, as illustrated in
The present invention is not limited to the above-mentioned embodiments, and various modifications may be made thereto within the spirit of the present invention. For example, the present invention is not limited to the developing device 16 as illustrated in
Note that, in each of the above-mentioned embodiments, the developing device is exemplified, in which the two-component developer including a magnetic carrier and toner is used, however, the present invention is applicable also to a developing device in which a one-component developer constituted only by toner is used. Further, the image forming apparatus of the present invention is not limited to a monochrome printer as illustrated in
An examination of toner charging properties of the developing device of the present invention was carried out. The developing device 16 provided with the toner dispersing mechanism 21 according to the second embodiment as illustrated in
The following examination method was employed: 1.0 g of toner was injected into each of the developing devices of the present invention and Comparison Example, in each of which a two-component developer constituted by a magnetic carrier and toner is filled by a predetermined amount; an output value of the toner concentration sensor 44 after a predetermined aging time period had elapsed was measured; and an output difference (hereinafter, referred to as sensor output difference) between the measured output value and a sensor output value in a stable state was calculated.
An examination of a relation between the opening width of the toner discharge port 24b (refer to
As is apparent from Table 1, the average values of q/d was substantially constant regardless of the opening widths of the toner discharge port 24b. Meanwhile, the percentage of the toner having the charging amount q/d of smaller than 0.2 nC/m was smaller in inverse proportion to the size of the opening width of the toner discharge port 24b. Those results confirmed that, a toner replenishment amount per unit area was reduced in inverse proportion to the size of the opening width of the toner discharge port 24b, and hence the developer in the developing device and the replenished toner were able to be sufficiently mixed with each other, which was advantageous in charging stabilization of the toner.
The present invention is summarized as follows based on each of the above-mentioned embodiments: the toner dispersing mechanism according to one embodiment of the present invention is arranged between a toner storage container and a developing device and dispersing toner replenished from the toner storage container, the toner dispersing mechanism including a housing provided with a toner filling port communicating to the toner storage container and a toner discharge port communicating to the developing device, and a dispersing member consists of a rotary shaft rotatably supported in the housing and a large number of dispersing protrusions formed of an elastic material on an outer peripheral surface of the rotary shaft.
With this structure, the toner replenished from the toner storage container can be effectively dispersed by the dispersing member having the dispersing protrusions formed of an elastic material. Thus, a simple and inexpensive toner dispersing mechanism is provided, in which there is no risk of clogging.
Further, the image forming apparatus according to one embodiment of the present invention is an image forming apparatus to which the toner dispersing mechanism, the developing device, and the toner storage container are mounted, the toner dispersing mechanism being configured as described above, the developing device having an upper portion to which the toner dispersing mechanism is coupled, the toner storage container being detachably arranged above the toner dispersing mechanism, for storing toner which is replenished into the developing device through intermediation of the toner dispersing mechanism.
With this structure, an image forming apparatus is provided in which mixture properties of the toner replenished from the toner storage container and the developer existing in the developing device can be enhanced and in which image failures such as a density unevenness and fogging can be effectively suppressed.
The developing devices according to the embodiments of the present invention are applicable to an image forming apparatus in which toner is replenished from a toner storage container such as a hopper and a container into a developing device. With use of the present invention, an image forming apparatus can be provided in which toner can be replenished into the developing device under a state in which the toner supplied from the toner storage container is sufficiently dispersed, and in which image failures such as a density unevenness and fogging can be effectively suppressed.
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