The present application claims priority to and incorporates by reference the entire contents of Japanese priority document, 2007-006896 filed in Japan on Jan. 16, 2007.
1. Field of the Invention
The present invention relates to a powder container for collecting and accumulating powder such as waste toner, and an image forming apparatus including the powder container.
2. Description of the Related Art
In image forming apparatuses such as a copier, toner that has not been transferred and remains on a photosensitive drum or an intermediate transfer belt that transfers a toner image to a recording medium or intermediate transfer body is eliminated by a cleaning mechanism, collected, and accumulated in a powder collecting box.
The powder collecting box includes a toner entrance connected to the cleaning mechanism, a toner conveyor that transports toner charged in the box, and a toner detector that detects the degree of storage (filling rate) of the toner in the box. When it is detected by the toner detector that the box is full of toner, the powder collecting box is replaced.
To enhance user's convenience, the number of replacing the powder collecting box is desirably as small as possible and the capacity of the box is thus as large as possible. As is commonly known, in the image forming apparatuses, compactness and cost reduction have progressed. Actually, the box cannot be enlarged only to improve the powder collecting capability.
The powder collecting box is usually placed in a so-called dead space such as between a feeding unit placed at the bottom of the image forming apparatus main body and an image forming unit placed above the feeding unit.
If there is not much room for the image forming apparatus main body in the height direction because of its compactness, the powder collecting box needs to be made to be extend in the longitudinal and transverse directions (X and Y directions) and reduced in the height direction (Z direction). The powder collecting box thus tends to be made in a flat box shape that extends in the horizontal direction and has a low height.
It is significantly difficult to accumulate toner uniformly in the flat box. The toner can be accumulated in a partially solidified state. If the solidified toner is accumulated near the toner detector, the full state of the box is detected despite the box is not full. The box that does not reach its full state is required to be replaced earlier, resulting in a decrease in user's convenience.
A conveyor that transports and equalizes toner needs to be provided in the powder collecting box and toner cartridges having such conveyor are disclosed (see, for example, Japanese Patent Application Laid-open No. H11-2947). In the toner cartridge disclosed in Japanese Patent Application Laid-open No. H11-2947, an eccentric cam is provided at the shaft of a screw for supplying toner externally, a plate is reciprocated by the eccentric cam in the horizontal direction, and toner is conveyed by internally directed protrusions with truncated V-shaped configurations that are integrally formed at the plate. The cartridge is provided to supply toner efficiently to the last while preventing aggregation of the accumulated toner. While the conveying directions of the protrusions that are placed in the truncated V-shaped configuration and serve as conveying members are crossing with each other and different as shown in
However, flow and pulsation of the accumulated toner are generated by the internal conveyor in the toner cartridge with the above configuration. The sensor that detects the amount of toner can be also affected thereby, and detection accuracy is significantly decreased.
It is an object of the present invention to at least partially solve the problems in the conventional technology.
According to an aspect of the present invention, there is provided a powder container includes a powder containing chamber including a powder inlet; a powder conveying unit that conveys powder input from the powder inlet of the powder containing chamber into the powder containing chamber; and a powder detecting unit that detects a full state of the powder conveyed by the powder conveying unit in the powder containing chamber. A sensor chamber is provided outside the powder containing chamber connected with each other. The powder detecting unit is provided in the sensor chamber, a bottom surface of the sensor chamber is at higher level than a bottom surface of the powder containing chamber, and the bottom surface of the sensor chamber is inclined downward toward the powder containing chamber.
Furthermore, according to another aspect of the present invention, there is provided an image forming apparatus that forms an image on a recording medium in an electrophotographic manner. The image forming apparatus includes a powder container including a powder containing chamber including a powder inlet, a powder conveying unit that conveys powder input from the powder inlet of the powder containing chamber into the powder containing chamber, and a powder detecting unit that detects a full state of the powder conveyed by the powder conveying unit in the powder containing chamber. A sensor chamber is provided outside the powder containing chamber connected with each other. The powder detecting unit is provided in the sensor chamber, a bottom surface of the sensor chamber is at higher level than a bottom surface of the powder containing chamber, and the bottom surface of the sensor chamber is inclined downward toward the powder containing chamber.
The above and other objects, features, advantages and technical and industrial significance of this invention will be better understood by reading the following detailed description of presently preferred embodiments of the invention, when considered in connection with the accompanying drawings.
Exemplary embodiments of the present invention will be explained below in detail with reference to the accompanying drawings.
A powder containing chamber 20 is formed in the powder collecting box 14 and a powder conveying unit 21 is placed in the powder containing chamber 20. The powder conveying unit 21 includes a stirring/conveying plate 24 that is supported by a plurality of support protrusions 22 provided on a bottom surface 17a of the lower case 17 at its lower surface on the distal end side and that is placed to substantially reciprocate along the horizontal directions as indicated by the arrows in
The camshaft 25 is rotatably supported by a plurality of supporting pieces 30 integrally formed with the lower case 17, cut on the drive gear 26 side, and connected together by a coupling 31.
The powder-full detecting unit 18 is placed to be opposed substantially diagonally to the powder inlet 15 of the powder collecting box 14 and includes a sensor 32 serving as a powder detecting unit in a sensor chamber 33. As shown in
Further, the bottom surface 33a of the sensor chamber 33 is formed to be inclined downward toward the powder containing chamber 20. Toner pulsates by the substantial reciprocating movement of the stirring/conveying plate 24 to be transported in a mass at a time, so that the toner level is increased and the toner enters the sensor chamber 33. The toner then slides down the inclined surface to be returned to the average inclined surface level of toner. The full state is thus detected at the more accurate amount of toner. An inclined angle θ of the bottom surface 33a of the sensor chamber 33 is larger than a resting angle of the toner stored in the powder containing chamber 20 as shown in
The sensor 32 is placed in the sensor chamber 33 that is separate from the powder containing chamber 20 to be far from the powder conveying unit 21 placed in the powder containing chamber 20. The sensor 32 is thus not affected by the toner flow and pulsation caused by the powder conveying unit 21. Unlike conventional cases that the sensor is provided in the powder containing chamber, a significant decrease in detection accuracy due to the toner flow and pulsation by the powder conveying unit 21 does not occur.
Further, as shown in
In addition to the partitions 36 and 37 separately provided, the partition is provided by making the bottom surface of the powder containing chamber 20 convex like a convex portion 38 shown in
As shown in
The distances between the shuttering boards for pushing and moving toner used for the conveyors 40 are different, so that the amounts of toner moving in the conveyors 40 are different. As the distance between the shuttering boards becomes wider, the number of the shuttering boards in the conveyors 40 is reduced and the amount of toner moved by the conveyors 40 is also reduced. A partition 42 extending in the direction orthogonal to the camshaft 25 is formed integrally to extend between the upper and lower surfaces of the conveyors 40M and 40L on the side of the conveyor 40J. That is, the partition 42 regulates upper and lower flows of powder between the conveyor 40J side and the conveyors 40M and 40N side and their amounts. The partition 42 prevents the conveyed toner from flowing from the powder containing chamber 20 to the toner storing/accumulating chamber 35 before the powder containing chamber 20 becomes full. The partition 42 is thus placed to abut against the toner flow caused by the conveyor 40J, as shown in
In other words, while the heights of the partitions 36 and 37 need to be increased to enhance their effects (or when the heights of the partitions are not high sufficiently), the space for the stirring/conveying plate 24 to reciprocate substantially is required. The heights of the partitions thus should be determined not to reach the space. As shown in
As shown in
As shown in
The operation of the embodiment is explained next. The drive gear 26 is driven by the drive source of the image forming apparatus and the camshaft 25 is rotated. The stirring/conveying plate 24 then reciprocates substantially in the horizontal direction as shown in
The toner conveyed to the space immediately below the conveyor 40L flows over the partition 36 for shuttering toner into the toner storing/accumulating chamber 35 surrounded by the partitions 36 and 37 and then is accumulated therein. The toner flown into the toner storing/accumulating chamber 35 and accumulated therein is conveyed gradually toward the front of the toner storing/accumulating chamber 35 and enters the sensor chamber 33 communicating with the toner storing/accumulating chamber 35. Namely, when the regions 1 and 2 shown in
When the sensor chamber 33 is almost filled with toner, the sensor 32 detects such state and informs that the powder collecting box 14 becomes full by appropriate methods. Based on the information, users replace the powder collecting box with a new one.
According to the present embodiment, when the camshaft 25 is rotated, the stirring/conveying plates 24 and 24b reciprocate in opposite directions as indicated by the arrows in
Because a plurality of the stirring/conveying plates 24 and 24b are used, toner is stirred more efficiently and conveyed while equalized slowly. Further, a single unit of the camshaft 25 reciprocating in the substantially horizontal direction will suffice and the configuration is not complicated. Therefore, an increase in manufacturing costs can be avoided.
The powder collecting box 14 serving as the powder container described in the embodiments is merely a preferred example and it is not intended that other types of containers with different configurations are excluded. The structures and configurations of the stirring/conveying plates 24 and 24b constituting the powder conveying unit are merely examples and any plates can be utilized as long as they can convey toner. Other configurations of the sensor chamber 33 can be also used, and detailed designs of the present invention can be changed and modified within the scope of the appended claims.
Characteristic effects of the present invention are explained below. According to the present invention, the angle at which the bottom surface of the sensor chamber is inclined is larger than the resting angle of powder stored in the powder container. Remaining of excessively flown toner in the sensor chamber is prevented reliably. The prevention of wrong detection of the sensor is further improved.
As described above, according to an aspect of the present invention, the partitions that prevent powder from entering the sensor until the required amount of powder is accumulated in the powder containing chamber are provided in the powder containing chamber near the sensor chamber. The powder pulsation caused by the powder conveying unit and the powder flow toward the sensor chamber are thus shuttered temporarily. The powder flow into the sensor chamber is prevented until a sufficient amount of powder is accumulated in the powder containing chamber. The wrong full state detection of the sensor at low capacity is thus prevented.
Furthermore, according to another aspect of the present invention, the powder conveying unit includes the stirring/conveying plate placed in the powder containing chamber to reciprocate substantially in the horizontal direction. The stirring/conveying plate includes, on its plane, a plurality of the conveyors that transport powder from the entrance toward the sensor chamber by the substantial reciprocating movement and the partition for preventing powder from entering the sensor chamber until the required amount of powder is accumulated in the powder containing chamber. The heights of the partitions provided in the powder containing chamber can be restricted by the powder conveying unit placed above (or below) the partitions and toner may not be shuttered sufficiently. The partition provided in the stirring/conveying plate accomplishes the same effects as the higher partitions. Accordingly, the prevention of the wrong full state detection at low capacity is improved.
Moreover, according to still another aspect of the present invention, the partition is formed by making the bottom surface or a roof of the powder containing chamber convex. Components around the waste toner box (e.g., feed roller) can enter the concave on the outer surface of the powder containing chamber. The apparatus is thus made compact. Alternatively, a powder containing chamber with a larger volume can be formed.
Furthermore, according to still another aspect of the present invention, the conveying force of the powder conveying unit near the sensor chamber is made weaker than in other positions. The powder pulsation caused by the powder conveying unit is thus suppressed and powder hardly enters the sensor chamber excessively. Accordingly, the wrong detection of the sensor is prevented.
Moreover, according to still another aspect of the present invention, a part of conveying force of the powder conveying unit is directed to the opposite direction. The conveying forces are thus offset and the pulsation caused by the reciprocating movement of the conveyor is suppressed. Accordingly, powder hardly enters the sensor chamber excessively, and the wrong detection of the sensor is prevented.
Furthermore, according to still another aspect of the present invention, a plurality of the stirring/conveying plates are provided to be stacked vertically. The stirring/conveying plates adjacent to each other vertically reciprocate substantially in opposite directions to convey powder. Toner is thus stirred more efficiently and conveyed while equalized slowly.
Moreover, according to still another aspect of the present invention, the sensor chamber is not affected by the powder flow and pulsation due to the powder conveying unit, and the wrong full state detection of the sensor at low capacity is prevented. The time when the powder container is replaced is determined more accurately than the conventional cases, resulting in an increase in user's convenience.
Although the invention has been described with respect to specific embodiments for a complete and clear disclosure, the appended claims are not to be thus limited but are to be construed as embodying all modifications and alternative constructions that may occur to one skilled in the art that fairly fall within the basic teaching herein set forth.
Number | Date | Country | Kind |
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2007-006896 | Jan 2007 | JP | national |
Number | Name | Date | Kind |
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6587661 | Shimmura et al. | Jul 2003 | B1 |
Number | Date | Country |
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11-002947 | Jan 1999 | JP |
11-305623 | Nov 1999 | JP |
2000-056648 | Feb 2000 | JP |
2000-075747 | Mar 2000 | JP |
2004-286790 | Oct 2004 | JP |
2005-283626 | Oct 2005 | JP |
2005-352402 | Dec 2005 | JP |
2007-178947 | Jul 2007 | JP |
Number | Date | Country | |
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20080193167 A1 | Aug 2008 | US |