1. Field of the Invention
The present invention relates to an imaging apparatus, and, more particularly, to an imaging apparatus having a print media dam in association with an automatic sheet feeder mechanism.
2. Description of the Related Art
An imaging apparatus typically includes an automatic sheet feeder (ASF) including a media tray and a sheet picking mechanism. The automatic sheet feeder automatically supplies a sheet of print media from a stack of print media positioned in the media tray to the print engine. During the loading of the media tray of the automatic sheet feeder, however, some of the print media may be pushed down into the automatic sheet feeder too far, resulting in simultaneous multiple sheet feeds, and may ultimately result in a media jam.
What is needed in the art is an imaging apparatus that reduces the occurrence of multiple media picks due to faulty loading of the automatic sheet feeder mechanism.
The present invention provides an imaging apparatus that reduces the occurrence of multiple media picks due to faulty loading of the automatic sheet feeder mechanism.
The present invention, in one form thereof, relates to an imaging apparatus having a sheet feed path. The imaging apparatus includes an automatic sheet feeder having a media tray for supporting a stack of print media, and a sheet picking mechanism for picking a sheet from the stack of print media. A sheet picking mechanism drive unit includes a sheet pick gear train for driving the sheet picking mechanism to transport the sheet from the stack of print media along the sheet feed path. A print media dam is pivotably coupled at an axis to the imaging apparatus. The print media dam has at least one dam member and a first gear. Each dam member has a media engaging surface. A drive mechanism is drivably coupled between the sheet picking drive mechanism and the first gear to move the dam member between an extended position and a retracted position. When the dam member is in the extended position, the media engaging surface is positioned to interrupt the sheet feed path. When the dam member is in the retracted position, the media engaging surface is positioned to not interrupt the sheet feed path.
In another form thereof, the present invention relates to a method for operating an imaging apparatus having a sheet feed path, and includes engaging a sheet pick gear train to pick a sheet from a stack of print media; when the sheet pick gear train is engaged, driving a pivoting print media dam to a retracted position to clear the sheet feed path; disengaging the sheet pick gear train such that no sheet of print media is being picked; and when the sheet pick gear train is disengaged, driving the pivoting print media dam to an extended position to interrupt the sheet feed path.
An advantage of the present invention is that it provides a positive stop that reduces the likelihood of the print media being pushed too far into the media tray.
Another advantage of the present invention is that it reduces the likelihood of simultaneous picking of multiple sheets of print media caused from pushing the print media too far into the media tray.
Still another advantage of the present invention is that it effects a straightening of the stack of print media each time the pivoting print media dam is returned to the extended position, e.g., each time the sheet pick gear train is disengaged.
The above-mentioned and other features and advantages of this invention, and the manner of attaining them, will become more apparent and the invention will be better understood by reference to the following description of an embodiment of the invention taken in conjunction with the accompanying drawings, wherein:
Corresponding reference characters indicate corresponding parts throughout the several views. The exemplifications set out herein illustrate an exemplary embodiment of the invention, and such exemplifications are not to be construed as limiting the scope of the invention in any manner.
Referring now to the drawings and particularly to
Imaging apparatus 10 may be, for example, a printer or a multifunction unit. Such a multifunction unit may be configured to perform standalone functions, such as copying or facsimile receipt and transmission, in addition to printing. As shown, imaging apparatus 10 may include, for example, an ink jet print engine 12, which includes, for example, a reciprocating printhead carrier 14 which is transported along a bi-directional scan path 15.
Imaging apparatus 10 further includes a housing 16, and an automatic sheet feeder 18, a media tray 20 with a sheet support surface 22 for supporting a stack of print media 24, and a sheet picking mechanism 26.
Sheet picking mechanism 26 retrieves, i.e., picks, individual sheets from the stack of print media 24, and transports a sheet 28 along a sheet feed path 30 to a feed roller 32, shown in
As shown in
In the present embodiment, sheet separation surface 36, including individual sheet separating pads 36a, 36b and 36c, is formed by a plurality of elongated bars having high friction characteristics, each of which extends along substantially horizontal plane 38, and which collectively extend along bi-directional scan path 15. Accordingly, the friction generated between separation surface 36 and the stack of print media 24 when a top sheet 28 of the stack of print media 24 is engaged by sheet pick roller 34 tends to cause a single sheet of the stack of print media 24 to be picked.
Pivoting print media dam 40 includes a central beam 44 that extends along an axis 46. Spaced at intervals along beam 44 is a plurality of dam members 48a, 48b, and 48c. Dam members 48a, 48b, 48c include proximal ends 50a, 50b, 50c; distal ends 52a, 52b, 52c; and media engaging surfaces 54a, 54b, 54c. Proximal ends 50a, 50b, 50c of dam members 48a, 48b, 48c are attached to beam 44. Dam members 48a, 48b, 48c extend from proximal ends 50a, 50b, 50c toward distal ends 52a, 52b, 52c in a direction 56 that is substantially perpendicular to axis 46.
Pivoting print media dam 40 may be pivotably coupled to imaging apparatus 10 via an axle 58, such as a rod or pins, positioned to correspond to axis 46, and which engages corresponding openings (not shown) in imaging apparatus 10. Pivoting print media dam 40 further includes an extension member 60 having an opening 61 which defines a curved internal gear rack 62. The curved internal gear rack 62 is formed at a radius 64 with respect to axis 46. In the embodiment shown, extension member 60 is attached to beam 44, and extends from beam 44 in a direction 66 generally opposite to the extent of dam members 48a, 48b, 48c.
Drive mechanism 42 includes a frame 68, a drive shaft 70, a drive gear 72, a drive gear 74, and spring 76. Drive shaft 70 is rotatably coupled to frame 68. Drive gears 72 and 74 are spaced apart and attached to drive shaft 70 for rotation therewith. Spring 76 is connected between frame 68 and extension member 60 of pivoting print media dam 40. Drive shaft 70 is positioned to extend through opening 61 of extension member 60, and drive gear 74 is positioned to mesh with the curved internal gear rack 62. Accordingly, when drive shaft 70 is rotated in rotation direction 78, e.g., clockwise as shown, then drive gear 74 sequentially engages the teeth of curved internal gear rack 62 to effect a corresponding pivot of pivoting print media dam 40 in rotation direction 80, e.g., also clockwise as shown. Spring 76 is extended as pivoting print media dam 40 pivots in rotation direction 80, and in turn applies a biasing force to extension member 60 to cause a reverse pivot of pivoting print media dam 40 in rotation direction 81 when drive shaft 70 is no longer driven.
A sheet pick gear train 82 drives sheet picking mechanism 26. Drive shaft 70 of drive mechanism 42 is also driven by sheet pick gear train 82 via at least one intermediate gear 84. Intermediate gear 84 is positioned to mesh with drive gear 72. Accordingly, when sheet pick gear train 82 is engaged so as to permit the picking of sheet 28 from the stack of print media 24, for example, the pivoting print media dam 40 is pivoted in rotation direction 80 to be in a retracted position 86, as shown in
Referring again to
Referring also to
Further, while it may be preferred to include at least two dam members in implementing the present invention, it is contemplated that the present invention may be practiced using a single dam member, located centrally with respect to the leading edges, i.e., downstream end, of the stack of print media 24.
In summary, pivoting print media dam 40 is drivably moveable to pivot with respect to axis 46 between an extended position 88 (see
Referring to
Controller 102 may be formed as an application specific integrated circuit (ASIC), and includes processing capability, which may be in the form of a microprocessor having an associated random access memory (RAM) and read only memory (ROM). Controller 102 executes program instructions to effect the picking of sheet 28 from the stack of print media 24, the transporting of sheet 28 along sheet feed path 30, and the printing of an image on sheet 28.
During operation, referring also to
When sheet pick gear train 82 is engaged, i.e., sheet 28 is picked from stack of print media 24, then pivoting print media dam 40 is driven by the rotation of drive shaft 70 to the retracted position 86, and accordingly, the media engaging surfaces 54a, 54b, 54c of pivoting print media dam 40 are parallel to and slightly lower than sheet separation surface 36 (see
When sheet pick gear train 82 is disengaged, i.e., no sheet of print media is being picked, spring 76 drives the pivoting print media dam 40 to the extended position 88, wherein the media engaging surfaces 54a, 54b, 54c of pivoting print media dam 40 are non-parallel to sheet separation surface 36, and more particularly, are substantially perpendicular to sheet support surface 22 of media tray 20 (see
Accordingly, the configuration of the present invention advantageously will effect a straightening of the stack of print media 24 each time pivoting print media dam 40 is returned to the extended position 88, e.g., each time sheet pick gear train 82 is disengaged.
While this invention has been described with respect to an exemplary embodiment, the present invention may be further modified within the spirit and scope of this application. This application is therefore intended to cover any variations, uses, or adaptations of the invention using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains and which fall within the limits of the appended claims.
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Number | Date | Country | |
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20060103067 A1 | May 2006 | US |