The present invention relates to an image forming unit and an image forming apparatus.
An electrophotographic image forming apparatus generally includes an image forming unit. The image forming unit is configured as an integral unit including a photosensitive drum, a charging roller, a developing roller, a supplying roller and a cleaning roller. The image forming unit further includes a detachable toner reserving container.
A toner (developer) stored in the toner reserving container is supplied to a toner hopper in the image forming unit via a toner replenishing opening. The toner supplied to the toner hopper is agitated by an agitating member, and is supplied to the developing roller by the supplying roller. The toner supplied to the developing roller is used for developing a latent image formed on the photosensitive drum (see, for example, Japanese Laid-open Patent Publication No. 2007-101718).
However, in the general image forming apparatus, the toner starts to be supplied to the toner hopper immediately after the toner reserving container is mounted to a main body of the image forming unit. Therefore, the toner may remain in the toner hopper for a long time period while being agitated. This may cause deterioration of the toner.
An aspect of the present invention is intended to prevent deterioration of a developer.
According to an aspect of the present invention, there is provided an image forming unit including an image bearing body, a developer bearing body that supplies a developer to the image bearing body, a developer storage portion for storing the developer to be supplied to the developer bearing body, a developer reserving portion that reserves the developer to be supplied to the developer storage portion, a replenishing member that replenishes the developer from the developer reserving portion to the developer storage portion, a guide member provided between the replenishing member and the developer bearing body and configured to temporarily hold the developer replenished by the replenishing member and regulate falling of the developer, a conveying member that conveys the developer held by the guide member in an axial direction of the developer bearing body along the guide member, and a detecting portion provided between the guide member and the developer bearing body. The detecting portion is provided for detecting the developer. The replenishing member replenishes the developer to the developer storage portion based on a result of detection using the detecting portion.
Since the replenishing member replenishes the developer to the developer storage portion based on the result of detection using the detecting portion, the toner is prevented from remaining in the developer storage portion for a long time period. Therefore, deterioration of the developer can be prevented, and image quality can be enhanced.
According to another aspect of the present invention, there is provided an image forming apparatus including the image forming unit.
Further scope of applicability of the present invention will become apparent from the detailed description given hereinafter. However, it should be understood that the detailed description and specific embodiments, while indicating preferred embodiments of the invention, are given by way of illustration only, since various changes and modifications within the spirit and scope of the invention will become apparent to those skilled in the art from this detailed description.
In the attached drawings:
Hereinafter, embodiments of the present invention will be described with reference to drawings. The drawings are provided for illustrative purpose and are not intended to limit the scope of the present invention.
The image forming units 11a, 11b, 11c and 11d respectively include photosensitive drums 13a, 13b, 13c and 13d as latent image bearing bodies (or image bearing bodies) that rotate clockwise in
Further, supplying rollers 33a, 33b, 33c and 33d (i.e., developer supplying members) and developing blades 34a, 34b, 34c and 34d (i.e., developer layer forming members) are respectively provided so as to contact surfaces of the developing rollers 31a, 31b, 31c and 31d. The supplying rollers 33a, 33b, 33c and 33d are respectively configured to supply the toners to the developing rollers 31a, 31b, 31c and 31d. The developing blades 34a, 34b, 34c and 34d are respectively configured to regulate thicknesses of toner layers (i.e., developer layers) on the surfaces of the developing rollers 31a, 31b, 31c and 31d.
The image forming units 11a, 11b, 11c and 11d respectively include toner reserving containers 30a, 30b, 30c and 30d (i.e., developer reserving portions) that respectively reserve black, cyan, magenta and yellow toners (i.e., developers).
Exposure heads 14a, 14b, 14c and 14d are respectively provided above the photosensitive drums 13a, 13b, 13c and 13d. The exposure heads 14a, 14b, 14c and 14d face the photosensitive drums 13a, 13b, 13c and 13d with constant gaps. The exposure heads 14a, 14b, 14c and 14d are configured as, for example, LED (Light Emitting Diode) arrays.
A medium tray 15 is detachably mounted to a lower part of the image forming apparatus 1. The medium tray 15 stores media 16 such as printing sheets. A feeding roller 17 (i.e., a feeding mechanism) is provided above the medium tray 15. The feeding roller 17 is configured to separate the media 18 in the medium tray 15, and feed each medium 18 into a conveying path. A pair of conveying rollers 18 (i.e., a conveying mechanism) are provided along the conveying path of the medium 16 fed by the feeding roller 17. The conveying rollers 18 are configured to convey the medium 16 toward the image forming units 11a, 11b, 11c and 11d.
A transfer belt 19 is provided below the image forming units 11a, 11b, 11c and 11d. The transfer belt 19 is provided for transferring the toner images from the photosensitive drums 13a, 13b, 13c and 13d to the medium 16. Transfer rollers 12a, 12b, 12c and 12d (i.e., transfer members) are provided so as to face the photosensitive drums 13a, 13b, 13c and 13d via the transfer belt 19.
The transfer belt 19 is stretched around a driving roller 191 and a tensioning roller 192. The transfer belt 19 rotates by a rotation of the driving roller 191. The transfer belt 19 holds the medium 16 (conveyed by the conveying rollers 18) using electrostatic force, and conveys the medium 16 along the image forming units 11a, 11b, 11c and 11d.
A fixing unit 20 is provided on a downstream side of the image forming units 11a, 11b, 11c and 11d along the conveying path of the medium 16. The fixing unit 20 is provided for fixing the toner image to the medium 16.
The fixing unit 20 includes, for example, a fixing roller 201, a stretching roller 202, a fixing belt 203, and a pressing roller 204. The fixing roller 201 has an internal heater as a heat source. The stretching roller 202 is provided so as to face the fixing roller 201. The fixing belt 203 is stretched around the fixing roller 201 and the stretching roller 202. The pressing roller 204 is pressed against the fixing roller 201 via the fixing belt 203. The fixing unit 20 is configured to heat and press the medium 16 at a nip portion between the fixing roller 201 and the pressing roller 204 to fix the toner image to the medium 16.
In this regard, the fixing unit 20 is not limited to the above described type. The fixing unit 20 can be of a type that heats and presses the medium 16 at a nip portion between the fixing roller and the pressing roller without using the fixing belt.
Two pairs of ejection rollers 21 and 22 (i.e., an ejection mechanism) are provided on a downstream side of the fixing unit 20. The ejection rollers 21 and 22 are configured to eject the medium 16 (to which the toner image is fixed) to a stacker portion 23.
The image forming units 11a, 11b, 11c and 11d and the medium tray 15 are detachably mounted to a main body of the image forming apparatus 1. A part of the image forming apparatus 1 except the image forming units 11a, 11b, 11c and 11d and the medium tray 15 is referred to as a main body 1A of the image forming apparatus 1. The main body 1A of the image forming apparatus 1 is also referred to as an apparatus main body 1A.
The image forming units 11a, 11b, 11c and 11d will be herein described. The image forming units 11a, 11b, 11c and 11d have the same configuration except the toners. Therefore, the image forming units 11a, 11b, 11c and 11d are referred to as the image forming units 11. Components (for example, the developing rollers 31a, 31b, 31c and 31d) of the image forming units 11 are referred to with symbols “a”, “b”, “c” and “d” omitted.
The toner reserving container 30 is a container in which a toner 35 (i.e., a developer) is stored. The toner reserving container 30 includes an agitating member 41 therein. The agitating member 41 is configured to agitate the toner 35. The agitating member 41 is in the form of, for example, a crank bar. The agitating member 41 rotates in a direction shown by an arrow 41r (clockwise) to agitate the toner 35 in the toner reserving container 30.
The toner reserving container 30 includes a toner supplying opening 38 and a shutter (not shown) for opening and closing the toner supplying opening 38. When the toner reserving container 30 is mounted to the image forming unit main body 10, the shutter opens the toner supply opening 38 to allow the toner 35 to be supplied to the image forming unit main body 10.
The image forming unit main body 10 of the image forming unit 11 includes a toner hopper 37 (i.e., a developer storage portion) for storing the toner 35 replenished by the toner reserving container 30. An upper part of the toner hopper 37 is covered with a cover 36. The cover 36 has a replenishing opening 42 through which the toner 35 is replenished from the toner reserving container 30 to the toner hopper 37. The replenishing opening 42 is provided so as to face the toner supplying opening 38 of the toner reserving container 30.
The photosensitive drum 13, the developing roller 31 and the supplying roller 33 have rotation axes which are mutually parallel. The image forming unit 11 has an elongated shape in a direction of the rotation axes of the photosensitive drum 13, the developing roller 31 and the supplying roller 33. Also, the toner hopper 37 has an elongated shape in the direction of the rotation axes of the photosensitive drum 13, the developing roller 31 and the supplying roller 33.
The outer circumference of the replenishing member 43 faces the replenishing opening 42 with a gap ΔT1 on one side (i.e., the left side in
Referring back to
In this specification, the term “below” is not only limited to “vertically below”, but also includes “obliquely below”. For example, when it is described that the conveying member 44 is provided below the replenishing member 43, it means that the conveying member 44 and the replenishing member 43 are in a positional relationship in which the toner 35 falls from the replenishing member 43 can reach the conveying member 44. Similarly, the term “above” is not only limited to “vertically above”, but also includes “obliquely above”.
A protruding portion 443 is formed between the spiral portions 441 and 442 of the conveying member 44. The protruding portion 443 extends in a direction parallel to the shaft 440. Additionally, protruding portions 444 and 445 are formed on both sides of the spiral portions 441 and 442 of the conveying member 44 in the axial direction. The protruding portions 444 and 445 extend in the direction parallel to the shaft 440. The protruding portions 443, 444 and 445 have a function to push the toner 35 in a rotating direction (i.e., a circumferential direction) of the conveying member 44.
Referring back to
An opening 56 is formed between the guide member 50 and the wall portion W of the toner hopper 37. The opening 56 faces the replenishing opening 42. The toner 35 replenished from the replenishing opening 42 by the replenishing member 43 falls into a region inside the guide member 50 (i.e., a region between the guide member 50 and the wall portion W). A conveying region is formed inside the guide member 50 where the toner 35 (replenished from the replenishing opening 42) is conveyed by the conveying member 44.
As shown in
In
With such a configuration, as schematically shown in
Referring back to
A rotation member 53 is provided in the vicinity of an end portion of the shaft 450 of the remaining amount detecting member 45. The rotation member 53 is provided for causing the remaining amount detecting member 45 to rotate. The rotation member 53 is rotated by a motor 62 (
The other end of the shaft 450 of the remaining amount detecting member 45 protrudes outside the toner hopper 37 through the wall portion of the toner hopper 37 (see
A gravity center of a whole body of the remaining amount detecting member 45 including the shaft 450, the blade portion 452 and the reflection plate 451 is shifted toward a tip of the blade portion 452 with respect to the rotation axis of the shaft 450. Therefore, when no force is applied to the remaining amount detecting member 45, the remaining amount detecting member 45 is in a rotational position where the blade portion 452 is directed downward due to gravity. In this state, the reflection plate 451 is in a bottom dead point.
A remaining amount detecting sensor 52 (
Referring back to
A detection region is formed on the regulating member 51. In the detection region, the toner 35 is agitated by the remaining amount detecting member 45, and the remaining amount of the toner 35 is measured using a method described later. As was described with reference to
Agitating members 46 and 47 are provided in the toner hopper 37. The agitating members 46 and 47 are located above and in the vicinity of the supplying roller 33. The agitating members 46 and 47 are in the form of crank bars which are parallel to each other. The agitating members 46 and 47 are driven to rotate in the same direction shown by arrows 46r and 47r to agitate the toner 35. The agitating members 46 and 47 have a function to reduce agglomeration of the toner 35 so that the toner 35 is smoothly supplied to the supplying roller 33.
The agitating members 46 and 47 are separated (partitioned) from the remaining amount detecting member 45 by the regulating member 51. Therefore, the toner 35 in the detection region (i.e., on the regulating member 51) is prevented from being influenced by rotations of the agitating members 46 and 47. Therefore, the toner 35 on the regulating member 51 is agitated only by the rotation of the remaining amount detecting member 45.
Referring back to
The control unit 60 is connected to the remaining amount detecting sensor 52. A detection signal from the remaining amount detecting sensor 52 is inputted to the control unit 60. The control unit 60 is connected to a memory portion 61 that stores time information (i.e., threshold) described later. The control unit 60 determines whether the remaining amount of the toner 35 in the toner hopper 37 is smaller than a reference value or not based on the detection signal from the remaining amount detecting sensor 52 with reference to the time information stored in the memory portion 61.
Next, an entire operation of the image forming apparatus 1 will be described with reference to
The control unit 60 starts rotation of the motor 62 (
At the same time, the rotation of the developing roller 31 is also transmitted to the agitating members 46 and 47. The agitating members 46 and 47 rotate in directions shown by the arrows 46r and 47r, and agitate the toner 35 around the supplying roller 33.
The toner 35 agitated by the agitating members 46 and 47 is supplied to the developing roller 31 by the supplying roller 33. The toner supplied to the developing roller 31 forms a toner thin layer (i.e., a developer layer). The thickness of the toner thin layer is regulated by the developing blade 34. In this process, the toner is charged by friction.
As the photosensitive drum 13 rotates in the direction shown by the arrow 13r, the surface of the photosensitive drum 13 is uniformly charged by the charging roller 32, and then irradiated with light emitted by the exposure head 14 based on the image data. An electric potential of an exposed part of the surface of the photosensitive drum 13 decreases to 0V. In contrast, an electric potential of a non-exposed part of the surface of the photosensitive drum 13 does not decrease. Therefore, a latent image is formed on the surface of the photosensitive drum 13. The toner on the surface of the developing roller 31 adheres to the latent image on the surface of the photosensitive drum 13. In other words, the latent image is developed with the toner, and a toner image is formed.
The toner image on the surface of the photosensitive drum 13 is transferred to the medium 16 by the transfer belt 19 and the transfer roller 12. After the transferring of the toner image, a residual toner remaining on the surface of the photosensitive drum 13 is scraped off by the cleaning blade 39. The waste toner is collected by the waste toner conveying member 40, and is conveyed outside the image forming unit 11.
The medium 16 to which the toner image is transferred is conveyed to the fixing unit 20. The fixing unit 20 fixes the toner image to the medium 16 by application of heat and pressure. The medium 16 is then ejected by the ejection rollers 21 and 22 to the stacker portion 23. With this, an image forming operation is completed.
When the image forming unit 11 is performing an image forming operation, the remaining amount detecting member 45 rotates in a direction shown by an arrow 45r by being pushed by the protruding portion 531 (
When the remaining amount of the toner 35 is small, the remaining amount detecting member 45 passes a top dead point (i.e., an uppermost position of a rotational area), then rotates downward (i.e., falls) by gravity separately from the protruding portion 531 of the rotation member 53, and reaches the bottom dead point. In other words, the remaining amount detecting member 45 reaches the bottom dead point before the protruding portion 531 of the rotation member 53 reaches the bottom dead point. The remaining amount detecting sensor 52 is located at a position corresponding to the bottom dead point of the reflection plate 451 of the remaining amount detecting member 45. The control unit 60 measures a staying time of the remaining amount detecting member 45 at the bottom dead point based on the detection signal of the remaining amount detecting sensor 52.
The memory portion 61 stores a setting time Ts (i.e., threshold) which is previously determined. The control unit 60 compares the staying time of the remaining amount detecting member 45 at the bottom dead point (measured based on the detection signal of the remaining amount detecting sensor 52) with the setting time Ts. If the staying time of the remaining amount detecting member 45 at the bottom dead point is longer than the setting time Ts, the control unit 60 determines that the remaining amount of the toner 35 is smaller than a reference amount.
In this case, the control unit 60 drives the motor 63 to cause the agitating member 41 and the replenishing member 43 to rotate.
As shown in
The toner 35 replenished to the toner hopper 37 falls into the conveying region inside the guide member 50. In the conveying region, the conveying member 44 rotates in a direction shown by an arrow 44r. The spiral portions 441 and 442 convey the toner 35 toward both ends of the conveying member 44 as shown by arrows 44A and 44B in
As shown in
The toner 35 reaching both ends of the conveying member 44 is pushed by the protruding portions 444 and 445 of the conveying member 44 in the rotating direction. Then, the toner 35 is fed through the ejection openings 502 and 503 of the guide member 50 in a direction shown by arrows 44D toward the remaining amount detecting member 45. In this regard, the protruding portions 444 and 445 are located at both end portions of the conveying member 44, and the ejection openings 502 and 503 are located at both end portions of the guide member 50 as described above.
The toner 35 fed out through the ejection openings 501, 502 and 503 of the guide member 50 is accumulated on the regulating member 51 as shown by a mark 35b in
While the remaining amount detecting member 45 is rotating, the control unit 60 continuously measures the staying time of the remaining amount detecting member 45 at the bottom dead point based on the detection signal of the remaining amount detecting sensor 52, and compares the staying time with the setting time Ts.
When the remaining amount of the toner 35 increases as shown in
When the staying time becomes shorter than the setting time Ts (i.e., when the remaining amount of the toner 35 reaches the reference amount), the control unit 60 stops the motor 63 to stop the rotations of the agitating member 41 and the replenishing member 43. In other words, the control unit 60 stops replenishing of the toner 35 to the toner hopper 37.
Further, the control unit 60 causes the replenishing member 43 and the agitating member 41 to rotate in synchronization with each other based on the detection result of the remaining amount of the toner 35. That is, the control unit 60 starts rotations of the replenishing member 43 and the agitating member 41 when the remaining amount of the toner 35 is smaller than the reference amount. The control unit 60 stops rotations of the replenishing member 43 and the agitating member 41 when the remaining amount of the toner 35 reaches the reference amount.
As shown in
As described above, according to the first embodiment of the present invention, the toner 35 is replenished from the toner reserving container 30 to the toner hopper 37 only when the remaining amount of the toner 35 in the toner hopper 37 is smaller than the reference amount. Therefore, the toner 35 is prevented from remaining in the toner hopper 37 for a long time period, i.e., prevented from being agitated by the agitating members 46 and 47 for a long time period. Accordingly, deterioration of the toner can be prevented. As a result, degradation of image quality due to the deterioration of the toner can be prevented, and excellent image quality can be maintained for a long time period.
Further, the toner 35 replenished to the toner hopper 37 via the replenishing opening 42 is conveyed by the conveying member 44 in the longitudinal direction of the toner hopper 37 and is agitated by the remaining amount detecting member 45 so that the toner 35 is uniformly distributed. Therefore, the toner 35 can be uniformly distributed in the longitudinal direction of the toner hopper 37 (i.e., the longitudinal direction of the remaining amount detecting member 45).
Furthermore, the toner 35 is uniformly fed from the ejection openings 501, 502 and 503 of the guide member 50 into the detection region around the remaining amount detecting member (i.e., the region on the regulating member 51). Therefore, the toner 35 is uniformly distributed in the longitudinal direction of the toner hopper 37 (i.e., in the longitudinal direction of the remaining amount detecting member 45), with the result that the remaining amount of the toner 35 can be accurately detected.
Moreover, the remaining amount detecting member 45 is separated from the agitating members 46 and 47 by the regulating member 51, and therefore the remaining amount of the toner 35 can be accurately detected while suppressing influence of agitating motions of the agitating members 46 and 47.
In addition, the toner 35 in the detection region around the remaining amount detecting member 45 is held on the regulating member 51 until the toner 35 around the agitating members 46 and 47 is consumed, and therefore the toner 35 is prevented from being agitated by the agitating members 46 and 47 for a long time period. Accordingly, deterioration of the toner 35 is more surely prevented.
The second embodiment of the present invention will be described. The second embodiment is different from the first embodiment in a controlling system for a toner replenishing operation and timing of the toner replenishing operation.
In the second embodiment, as shown in
As shown in
Further, the control unit 60 causes the agitating member 41, the replenishing member 43 and the conveying member 44 to rotate in synchronization with each other based on the detection result of the remaining amount of the toner 35 described in the first embodiment. More specifically, the control unit 60 starts rotating the agitating member 41, the replenishing member 43 and the conveying member 44 when the remaining amount of the toner 35 is smaller than the reference amount. The control unit 60 stops the rotation of the agitating member 41, the replenishing member 43 and the conveying member 44 when the remaining amount of the toner 35 reaches the reference amount.
The developing roller 31 and the remaining amount detecting member 45 (i.e., the group S1) which are driven in synchronization with each other can be driven by a common driving source (in this example, the motor 62). The agitating member 41, the replenishing member 43 and the conveying member 44 (i.e., the group S2) which are driven in synchronization with each other can be driven by another common driving source (in this example, the motor 63).
In the above described first embodiment, the replenishing member 43 and the conveying member 44 are driven in synchronization with each other. That is, the conveying member 44 continues to rotate after the replenishing member 43 stops rotating. Therefore, after the replenishing member 43 stops rotating, almost all of the toner 35 existing in the conveying region is fed out of the conveying region via the ejection openings 501, 502 and 503. When the replenishing member 43 restarts rotating to thereby replenish the toner 35 to the conveying region, the newly replenished toner 35 is first conveyed by the conveying member 44 from the center portion to both end portions of the guide member 50, and then is fed toward the remaining amount detecting member 45 via the ejection openings 502 and 503. Accordingly, it takes time for the toner to reach the detection region around the remaining amount detecting member 45.
In contrast, according to the second embodiment, the replenishing member 43 and the conveying member 44 are driven in synchronization with each other, and therefore the conveying member 44 stops rotating when the replenishing member 43 stops rotating. That is, even after the replenishing member 43 stops rotating, the toner 35 remains in the conveying region inside the guide member 50. When the replenishing member 43 restarts rotating to thereby replenish the toner 35 to the conveying region, the toner 35 is immediately fed toward the remaining amount detecting member 45 via the ejection openings 502 and 503. Accordingly, the time for the toner 35 to reach the detection region around the remaining amount detecting member 45 can be shortened.
As described above, according to the second embodiment, the following advantage is obtained in addition to the advantages described in the first embodiment. That is, if the conveying member 44 and/or the remaining amount detecting member 45 are small in size or if the toner 35 has high viscosity (due to surrounding environment or manufacturing variations or the like), there may be cases where it takes relatively long time to uniformly distribute the toner 35 by agitation. According to the second embodiment, the remaining amount detecting member 45 starts agitating the toner 35 at earlier timing, and therefore the time required for the toner 35 to be uniformly accumulated can be shortened. This is advantageous in maintaining high image quality.
In the above described first and second embodiments, the replenishing opening 42 and the replenishing member 43 are located at higher positions than the developing roller 31. However, for example, the replenishing opening 42 and the replenishing member 43 can be located at a substantially horizontal position relative to the developing roller 31 as shown in
In a configuration shown in
In the toner hopper 37, the toner 35 is agitated by the agitating members 46 and 47, is supplied to the developing roller 31 by the supplying roller 33, and is used for development of the latent image on the photosensitive drum 13. In this regard, it is also possible to further provide the regulating member 51 (see
The third embodiment of the present invention will be described.
In the above described first embodiment, the guide member 50 has a constant height and has ejection openings 501, 502 and 503 at the center portion and both end portions (see
To be more specific, the wall surface portion 50a is so shaped that heights at both end portions in the longitudinal direction of the guide member 50 (i.e., in the axial direction of the developing roller 31) are lower than the height at the center portion in the same direction. More specifically, the height of the guide member 50 is the highest at the center portion and gradually decreases toward both end portions. That is, the wall surface portion 50a has inclined portions which are inclined from the center portion to both end portions.
In other words, the guide member 50 of the third embodiment is configured to allow the toner 35 to climb over portions of the guide member 50 with low heights. In this regard, the guide member 50 of the third embodiment does not have the ejection openings 501, 502 and 503 (see
In the above described first embodiment, the conveying member 44 has the protruding portions 444 and 445 at both ends in the longitudinal direction (see
In the above described first embodiment, almost all of the toner 35 replenished by the replenishing member 43 falls into the conveying region inside the conveying member 44 (see
For this purpose, the guide member 50 is located vertically below the replenishing opening 43. The conveying member 44 is located at a position laterally shifted from a position vertically below the replenishing opening 43. An opening 57 is formed by the guide member 50 and an upper surface 58 of the toner hopper 37. The opening 57 opens toward the replenishing member 43.
As described above, the guide member 50 of the third embodiment has the wall surface portion 50a whose height decreases from the center portion toward both end portions in the longitudinal direction of the guide member 50. Among the toner 35 replenished by the replenishing member 43, a part of the toner 35 falls into the conveying region inside the guide member 50 and is conveyed by the conveying member 44 to both ends in the longitudinal direction. Such toner 35 climbs over the portions of the guide member 50 with low heights, and falls into the detection region around the remaining amount detecting member 45 (i.e., the region on the regulating member 51).
Further, among the toner 35 replenished by the replenishing member 43, another part of the toner 35 does not fall into the conveying region inside the guide member 50, but falls into a center portion of the detection region around the remaining amount detecting member 45. Angles of the inclined portions of the guide member 50 are so determined that the toner 35 accumulated in the detection region around the remaining amount detecting member 45 (i.e., on the regulating member 51) is uniformly distributed in the longitudinal direction of the remaining amount detecting member 45.
The remaining amount of the toner 35 is detected using the remaining amount detecting member 45 in a similar manner as described in the first embodiment. As shown in
Among the toner 35 replenished into the toner hopper 37 by the replenishing member 43, a part of the toner 35 falls into the conveying region inside the guide member 50 as shown in
Further, among the toner 35 replenished into the toner hopper 37 by the replenishing member 43, another part of the toner 35 does not fall into the conveying region inside the guide member 50, but falls into the detection region around the remaining amount detecting member 45 (i.e., the region on the regulating member 51) at the center portion in the longitudinal direction.
Accordingly, the toner 35 is accumulated in the detection region around the remaining amount detecting member 45, and is uniformly distributed in the longitudinal direction of the remaining amount detecting member 45. Further, since the remaining amount detecting member 45 agitates the toner 35 in the detection region, the toner 35 is further uniformly distributed.
When the amount of the toner 35 exceeds the predetermined amount (i.e., the reference amount), the control unit 60 stops the rotations of the agitating member 41, the replenishing member 43 and the conveying member 44 to thereby stop replenishing of the toner 35 to the toner hopper 37.
In the third embodiment of the present invention, the toner 35 is replenished from the toner reserving container 30 to the toner hopper 37 when the remaining amount of the toner 35 in the toner hopper 37 is smaller than the reference amount as in the first embodiment. Therefore, the toner 35 is prevented from remaining in the toner hopper 37 for a long time period, i.e., prevented from being agitated by the agitating members 46 and 47 for a long time period. Accordingly, deterioration of the toner can be prevented. As a result, degradation of image quality due to the deterioration of the toner can be prevented, and excellent image quality can be maintained for a long time period.
Further, in the third embodiment, the guide member 50 has the wall surface portion 50a having a shape in which the height decreases from the center portion toward both end portions in the longitudinal direction of the guide member 50. Therefore, a part of the toner 35 falls from the replenishing member 43 into the detection region around the remaining amount detecting member 45, and another part of the toner 35 is conveyed by the conveying member 44 and climbs over the portions of the guide member 50 with low heights. Accordingly, the toner 35 is uniformly distributed in the longitudinal direction of the toner hopper 37 (i.e., in the longitudinal direction of the remaining amount detecting member 45). As a result, the remaining amount of the toner 35 can be accurately detected.
Moreover, the remaining amount detecting member 45 is separated from the agitating members 46 and 47 by the regulating member 51 as in the first embodiment, and therefore the remaining amount of the toner 35 can be accurately detected while suppressing influence of agitating motions of the agitating members 46 and 47. Further, the toner 35 in the detection region around the remaining amount detecting member 45 is held on the regulating member 51 until the toner 35 around the agitating members 46 and 47 is consumed, and therefore the toner 35 is prevented from being agitated by the agitating members 46 and 47 for a long time period. Accordingly, deterioration of the toner 35 is more surely prevented.
The fourth embodiment of the present invention will be described. The fourth embodiment is different from the third embodiment in shape of a conveying member 54.
The protruding portions 543 and 544 are not provided on a center portion of the conveying member 54 in the axial direction, but are provided in regions within predetermined ranges from both ends of the conveying member 54. The protruding portion 543 is formed continuously with the spiral portion 541. The protruding portion 544 is formed continuously with the spiral portion 542.
The guide member 50 has the wall surface portion 50a (see
The conveying member 54 of the fourth embodiment is advantageous particularly when the toner 35 has low fluidity. That is, when the toner 35 has low fluidity, mobility of the toner 35 in a radial direction of the conveying member 54 decreases, and therefore the toner 35 tends not to be uniformly distributed. However, according to the fourth embodiment, the conveying member 54 applies a force in the rotating direction to the toner 35 via the protruding portions 543 and 544, and therefore the toner 35 easily climbs over the guide member 50. Accordingly, the toner 35 can be uniformly accumulated even when the toner 35 has low fluidity.
The above described embodiments can be appropriately modified. For example, the modification (
In the above described embodiments, the image forming units of the color printer (as the image forming apparatus) have been described. However, the present invention is also applicable to a copier, an LED printer, a laser beam printer, a facsimile machine, a multifunction peripheral or the like.
While the preferred embodiments of the present invention have been illustrated in detail, it should be apparent that modifications and improvements may be made to the invention without departing from the spirit and scope of the invention as described in the following claims.
Number | Date | Country | Kind |
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2012-039580 | Feb 2012 | JP | national |
Number | Name | Date | Kind |
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20120294632 | Nishikawa | Nov 2012 | A1 |
Number | Date | Country |
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H07-152235 | Jun 1995 | JP |
2005-164999 | Jun 2005 | JP |
2006-072145 | Mar 2006 | JP |
2007-101718 | Apr 2007 | JP |
2011-221351 | Nov 2011 | JP |
Entry |
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Otani (JP 2007-101718), Apr. 2007, JPO Computer Translation. |
Suzuki (JP 2011-221351 A), Nov. 2011, JPO Computer Translation. |
Number | Date | Country | |
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20130223856 A1 | Aug 2013 | US |