The present invention relates to a sheet size detecting mechanism, and more particularly to a sheet size detecting mechanism for use in an automatic document feeder.
With the maturity of automatic sheet feeding technologies, automatic document feeders are widely used in a diversity of document processing machines such as printers, copiers and multifunction peripherals. An automatic document feeder is used for successively feeding a stack of sheet-like documents into the inner portion of the document processing machine so as to implement associated operations and achieve the labor-saving purpose.
For processing sheet-like documents of various sizes, the automatic document feeder has a sheet size detecting mechanism for detecting the size of the document before the document is fed into the inner portion of the document processing machine. Take a copier for example. There are several paper feeding cassettes accommodating blank paper sheets of various sizes (A3, A4, B4, B5, . . . , etc). For example, in a case that an A4-sized document is selected to be copied by the copier, the sheet size detecting mechanism will detect the size of document in advance and issue a corresponding detecting signal to the copier. In response to the detecting signal, an A4-sized blank paper sheet is automatically provided by the copier, and a copying operation is performed on the A4-sized blank paper sheet.
For solving the above drawbacks, a sheet size detecting mechanism for saving space of the sheet input tray is disclosed in for example U.S. Pat. No. 6,070,048.
The present invention relates to a sheet size detecting mechanism, and more particularly to a sheet size detecting mechanism for saving space and cost.
In accordance with an aspect of the present invention, there is provided a sheet size detecting mechanism for use in a sheet input tray of an automatic document feeder. The sheet size detecting mechanism includes an adjustable module, a sensing module and a controlling unit. The adjustable module is disposed on the sheet input tray. The adjustable module includes a first sheet guide, a second sheet guide, an adjustable part and a circular gear. The first sheet guide arranged at a first side of the adjustable module. The second sheet guide arranged at a second side of the adjustable module. The adjustable part includes a rack member. The rack member is a moved to a position where the first sheet guide and the second sheet guide are respectively in contact with two parallel edge sides of a sheet. The circular gear is engaged with the rack member and rotated as the adjustable part is moved. The sensing module is used for sensing a rotating angle of the circular gear. The sensing module includes a sustaining element and a circuit board. The sustaining element is disposed under the circular gear, and synchronously rotated with the circular gear. The circuit board includes a circular sensing part with plural sensing regions, which are discretely arranged around the circular sensing part. When the circular gear is rotated by an angle, the sustaining element is in contact with a specified one of the plural sensing regions, so that the circuit board generates a corresponding sensing signal. The controlling unit is used for receiving the sensing signal and acquiring a distance between the two parallel edge sides of the sheet according to the sensing signal.
In an embodiment, the sensing signal is a current value.
In an embodiment, the sustaining element includes a first pin and a second pin, the circular sensing part further includes an annular region, and the controlling unit provides a voltage to the circuit board. When the first pin is in contact with the annular region and the second pin is in contact with the specified one of the plural sensing regions, the circular sensing part provides a resistance value, so that the circuit board generates a corresponding current value.
In an embodiment, the sustaining element is made of elastomeric material, so that the first pin and the second pin are elastically sustained against the annular region and the specified one of the plural sensing regions, respectively.
In an embodiment, the rack member includes a first rack and a second rack. The first rack is connected to the first sheet guide. The second rack is connected to the second sheet guide, and in parallel with the first rack. The circular gear is arranged between the first rack and the second rack, and engaged with the first rack and the second rack. When the first rack is moved in a direction, the circular gear is driven to rotate. In response to rotation of the circular gear, the second rack is moved in another direction reverse to the first rack.
In an embodiment, the sheet size detecting mechanism further includes a sensor. The sensor is disposed on the sheet input tray for detecting whether the other two parallel edge sides of the sheet is greater than a predetermined length.
The above objects and advantages of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
Since the circular gear 214 is rotated with movement of the first sheet guide 211 or the second sheet guide 212, the rotating amount of the circular gear 214 is in direct proportion to the shift amount of the first sheet guide 211 or the second sheet guide 212. According to the proportional relationship between the rotating amount of the circular gear 214 and the shift amount of the first sheet guide 211 or the second sheet guide 212, the distance between the two parallel edge sides P1 and P2 of the sheet P could be deduced.
Moreover, regardless of the rotating amount of the circular gear 214, the first pin 2211 is continuously in contact with the annular region 22212. According to the rotating amount of the circular gear 214, the second pin 2212 is in contact with a specified one of the plural sensing regions 22211. In this embodiment, the circular sensing part 2221 comprises nine sensing regions A1-A9. In a case that the first sheet guide 211 and the second sheet guide 212 are spaced from each other by the maximum distance, an initial position is defined. Meanwhile, the first pin 2211 is in contact with the region B1 of the annular region 22212, and the second pin 2212 is contact with the sensing region A1. By moving the first sheet guide 211 toward the second sheet guide 212, the first sheet guide 211 and the second sheet guide 212 are close to each other. At the same time, the sustaining element 221 is synchronously rotated with the circular gear 214. Upon rotation of the sustaining element 221, the second pin 2212 is no longer in contact with the sensing region A1. Until the circular gear 214 stops rotation, the second pin 2212 is in contact with one of the sensing region A2, A3, . . . , and A9 according to the rotating amount of the circular gear 214. In a case that the first sheet guide 211 and the second sheet guide 212 are spaced from each other by the minimum distance, the first pin 2211 is in contact with the region B2 of the annular region 22212 and the second pin 2212 is in contact with the sensing region A9.
Please refer to
From the above description, the sheet size detecting mechanism 2 of the present invention is capable of measuring the size of the sheet P. As the first sheet guide 211 and second sheet guide 212 are close to or far from each other, the circular gear 214 is correspondingly rotated. According to the rotating amount of the circular gear 214, the shift amount of the first sheet guide 211 and second sheet guide 212 is obtained and thus the size of the sheet P is measured. Moreover, if different rotating amount of the circular gear 214 are generated, the sustaining element 221 under the circular gear 214 is in contact with different sensing regions 22211. In different situations, different current values are received by the controlling unit 23. According to the current values, the distance between the two parallel edge sides P1 and P2 of the sheet P could be deduced. Since no variable resistor is used, the sheet size detecting mechanism 2 of the present invention is more cost-effective.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
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