This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2015-104564 filed May 22, 2015.
The present invention relates to a transport member, a powder container, and an image forming apparatus.
According to an aspect of the invention, there is provided a transport member including a shaft portion that extends in one direction and that is disposed in a containing portion, which has a substantially columnar shape extending in the one direction and contains a powder, and a blade portion that includes a body portion having a substantially plate-like shape and a protruding portion having a plate thickness smaller than a plate thickness of the body portion, the body portion having a proximal end, which is fixed to the shaft portion, and a distal end, which is bent by coming into contact with an inner wall of the containing portion, and the protruding portion protruding from the distal end of the body portion.
An exemplary embodiment of the present invention will be described in detail based on the following figures, wherein:
An example of each of a transport member, a powder container, and an image forming apparatus according to an exemplary embodiment of the present invention will be described with reference to
As illustrated in
The accommodating unit 12 includes plural accommodating members 14 in each of which the sheet members P are stacked and delivery rollers 16 that send out the sheet members P, which are stacked in the accommodating members 14, to the transport path 20.
The transport unit 18 includes plural transport rollers 22 each of which transports one of the sheet members P, which has been sent to the transport path 20 by a corresponding one of the delivery rollers 16, to a position downstream in a direction in which the sheet members P are to be transported.
The image forming unit 26 includes an image carrier 28, a charging roller 30 that charges a surface of the image carrier 28, an exposure device 32 that exposes the charged surface of the image carrier 28 to exposure light in such a manner as to form an electrostatic latent image, and a developing device 34 that develops the electrostatic latent image by using a toner T (see
In addition, the image forming unit 26 includes a transfer roller 36 that transfers the toner image, which has been formed on the surface of the image carrier 28, onto one of the sheet members P that is transported along the transport path 20 and a fixing device 38 that fixes the toner image on the sheet member P onto the sheet member P by applying heat and pressure to the toner image.
Furthermore, the image forming unit 26 includes a powder container 40 that includes a containing member 48 (see
In the image forming apparatus 10, an image is formed in the following manner.
First, the charging roller 30, to which a voltage has been applied, uniformly charges the surface of the image carrier 28 to a predetermined potential. Next, the exposure device 32 radiates, on the basis of data input from the outside, the exposure light onto the surface of the image carrier 28, which has been charged, in such a manner as to form an electrostatic latent image.
As a result, an electrostatic latent image corresponding to image data is formed on the surface of the image carrier 28. Then, the developing device 34 develops the electrostatic latent image and visualizes the electrostatic latent image as a toner image.
The image carrier 28 and the transfer roller 36 transport one of the sheet members P, which is sent to the transport path 20 from one of the accommodating members 14 by the corresponding delivery roller 16 and transported by some of the transport rollers 22, by nipping the sheet member P therebetween. As a result, the transfer roller 36 transfers the toner image, which has been formed on the surface of the image carrier 28, onto the sheet member P.
Subsequently, the fixing device 38 fixes the toner image, which has been transferred to the sheet member P, onto the sheet member P. After that, the transport rollers 22 eject the sheet member P, which has the toner image fixed on its surface, to outside the image forming apparatus 10.
The powder container 40 will now be described.
As illustrated in
As illustrated in
As illustrated in
The body member 50 includes a cylinder portion 54 that has a cylindrical shape extending in the apparatus depth direction and a closing portion 56 that closes the cylinder portion 54 on the far side in the apparatus depth direction (the right side in
In addition, a discharge port 54A through which the toner T, which is contained in the containing portion 50A, is discharged to a communication path (not illustrated) that communicates with the developing device 34 (see
An opening and closing lid 58 that opens and closes the discharge port 54A is attached to the discharge port 54A. In the case where the powder container 40 is removed from the apparatus body 10A (see
The closing portion 56 has a circular plate-like shape, and as illustrated in
The closing member 52 has a circular plate-like shape, and a flange is formed over an outer peripheral portion of the closing member 52. The closing member 52 is fixed onto the opening 50B of the body member 50 by a fixing unit (not illustrated). In addition, a through hole 52A extending through the closing member 52 is formed in a portion of the closing member 52 around the center of the closing member 52. An intermediate portion 72C of the shaft portion 72, which will be described below, extends through the through hole 52A, so that the closing member 52 supports the shaft portion 72.
As illustrated in
The shaft portion 72 extends in the apparatus depth direction and is cross-shaped when viewed in cross section. The shaft portion 72 includes a body portion 72A and a distal end portion 72B. The body portion 72A has a constant cross section in the longitudinal direction, and the distal end portion 72B is tapered and formed in a portion of the body portion 72A on the far side in the apparatus depth direction. In addition, the protrusion 73 having a columnar shape is formed on an end of the distal end portion 72B.
The shaft portion 72 further includes the intermediate portion 72C and a proximal end portion 72D. The intermediate portion 72C is formed in a portion of the body portion 72A on the near side in the apparatus depth direction and has an external size smaller than that of the body portion 72A. The proximal end portion 72D is formed in a portion of the intermediate portion 72C on the near side in the apparatus depth direction and has an external size smaller than that of the intermediate portion 72C.
In this configuration, in a state where the transport member 70 is disposed in the containing member 48, the transport member 70 is supported by the containing member 48 in such a manner as to be rotatable while the shaft portion 72 is serving as the rotation axis of the transport member 70 as a result of the protrusion 73 being received in the recess 56A, and as a result of the intermediate portion 72C extending through the through hole 52A.
Note that a seal member (not illustrated) is provided in order to prevent the toner T from leaking to outside the containing member 48 from a gap between the intermediate portion 72C and the edge of the through hole 52A.
The blade portion 82 includes a body portion 84 that has a plate-like shape or a substantially plate-like shape (see
In a state (free state) where the transport member 70 is not disposed in the containing member 48, the body portion 84 has a rectangular shape extending in the apparatus depth direction (an axial direction of the shaft portion 72), and a plate surface of the body portion 84 is oriented in the circumferential direction of the shaft portion 72. In addition, slits 92, which will be described later, are formed in the body portion 84 (blade portion 82).
In the present exemplary embodiment, the plate thickness (thickness T1 in
As illustrated in
The plate thickness (thickness T3 in
The length (length L1 in
When the protruding portion 90 is viewed from the plate thickness direction of the blade portion 82, an end edge 90A of the protruding portion 90 has a wave-like shape or a substantially wave-like shape as illustrated in
Note that the dimensions and the shape of the protruding portion 90 may be measured by using, for example, a measuring microscope manufactured by Mitutoyo Corporation.
As illustrated in
More specifically, the slits 92 include slits 92A and a slit 92B. In a state where the transport member 70 is disposed in the containing member 48, the slits 92A are positioned on the near side in the apparatus depth direction with respect to the discharge port 54A, and the slit 92B is positioned on the far side in the apparatus depth direction with respect to the discharge port 54A.
The plural slits 92A are formed at a predetermined pitch in the apparatus depth direction, and each of the slits 92A is inclined in such a manner that the distal end of the slit 92A (an end of the slits 92A that is farther from the shaft portion 72) is positioned further than the proximal end of the slit 92A (an end of the slit 92A that is closer to the shaft portion 72) toward the far side in the apparatus depth direction. On the other hand, the slit 92B is inclined in such a manner that the distal end of the slit 92B is positioned further than the proximal end of the slit 92B toward the near side in the apparatus depth direction.
Slits 94 extending in the radial direction of the shaft portion 72 are formed in such a manner that an end of one of the slits 92A that is positioned further than the rest of the slits 92A toward the far side in the apparatus depth direction and an end of the slit 92B are each connected to a corresponding one of the slits 94.
In this configuration, as illustrated in
As illustrated in
In this configuration, in a state where the powder container 40 is mounted in the apparatus body 10A, the gear 96 and a gear (not illustrated) that is disposed in the apparatus body 10A engage with each other. Then, a force that causes the transport member 70 to rotate is transmitted from a driving source (not illustrated) to the transport member 70 via the gear 96, and the transport member 70 rotates.
Effects of the powder container 40 will now be described by describing an operation of transporting the toner T contained in the containing portion 50A toward the discharge port 54A.
Once the force that causes the transport member 70 to rotate has been transmitted from the driving source (not illustrated) to the transport member 70 via the gear 96, as illustrated in
Here, the protruding portion 90 is formed on the distal end 84B of the body portion 84. Thus, as illustrated in
When the protruding portion 90 is viewed from the plate thickness direction of the blade portion 82, the end edge 90A of the protruding portion 90 has a wave-like shape or a substantially wave-like shape (see
In the powder container 40, the protruding portion 90 protrudes from the downstream portion of the distal end 84B of the body portion 84 in the direction of rotation of the transport member 70 (see
Note that although a specific exemplary embodiment of the present invention has been described in detail, the present invention is not limited to the exemplary embodiment, and it is obvious to those skilled in the art that the present invention may employ other various exemplary embodiments within the scope of the present invention. For example, when the protruding portion 90 is viewed from the plate thickness direction of the blade portion 82, although the end edge 90A of the protruding portion 90 has a wave-like shape or a substantially wave-like shape in the above-described exemplary embodiment, the end edge 90A of the protruding portion 90 may have a linear shape. However, in this case, the effect achieved by forming the end edge 90A of the protruding portion 90 into a wave-like shape or a substantially wave-like shape will not occur.
In addition, although the protruding portion 90 protrudes from the downstream portion of the distal end 84B of the body portion 84 in the direction of rotation of the transport member 70 in the above-described exemplary embodiment, the protruding portion 90 may protrude from, for example, an upstream portion of the distal end 84B of the body portion 84 in the direction of rotation of the transport member 70. However, in this case, the effect achieved by forming the protruding portion 90 such that the protruding portion 90 protrudes from the downstream portion of the distal end 84B of the body portion 84 in the direction of rotation of the transport member 70 will not occur.
Furthermore, although the gear 96 is disposed on the near side in the apparatus depth direction with respect to the containing member 48 in the above-described exemplary embodiment, the gear 96 may be disposed on the far side in the apparatus depth direction with respect to the containing member 48.
The foregoing description of the exemplary embodiment of the present invention has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The embodiment was chosen and described in order to best explain the principles of the invention and its practical applications, thereby enabling others skilled in the art to understand the invention for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the following claims and their equivalents.
Number | Date | Country | Kind |
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2015-104564 | May 2015 | JP | national |