Scanners, such as flatbed scanners, may have a platen where a user can place an object to be scanned. Once the object is placed on the platen, a scanner module may move underneath the platen to scan and read the object through the platen. Flatbed scanners may also have automatic document feeder (ADF) that moves the media past a smaller ADF scan window. Such flatbed scanners may be configured as a standalone device or may be integrated into a multi-function printer (MFP) or a copier.
Examples are described in the following detailed description and in reference to the drawings, in which:
Multifunction machines may include an upper unit having a scanner function that may be rotatably attached to a main body having a printer function. The upper unit may be disposed on the main body to expose and cover an access opening formed in an upper surface of the main body. The upper unit can be rotated to an open position relative to the main body to expose the access opening, thereby enabling services such as removing a cartridge or a small size paper (e.g., jammed paper) from, or inserting a cartridge into the main body. The upper unit may include a scanner assembly (e.g., an integrated scanner assembly (ISA)) including a platen on which a document can be placed and a cover member (e.g., an automatic document feeder (ADF)) that covers the platen. The cover member may be pivoted to an open position to expose the platen (e.g., to place a document on the platen) and to a closed position to cover the platen. The ISA may be designed to be compact and low cost. Therefore, the ISA may have a significantly thin material thickness, for instance, of about 2 mm.
Such scanner assemblies may include a scanner module having an optical sensor and a transmission mechanism. The scanner module may be used to capture an image of an object to be scanned. When a scan is completed, the scanner module may be returned to a home position. In some examples, in an image forming apparatus that optically reads a print medium placed on a platen and converts into electronic data, a sheet member may be provided with a mark for detecting the home position and adjusting a positional deviation. In such scenarios, when the home position is adjusted, the optical sensor may detect the position by reading the mark provided on the sheet member and adjust the scanner module position.
In some other examples, a hole/slit corresponding to the above- mentioned mark may be provided in a sheet member. When adjusting the home position, the black position detected when reading the hole portion may be used to determine the home position. In order to clarify the density difference between the mark portion provided on the sheet member and the other portion, the portion detected by the optical sensor through the mark or hole may have to be processed to print the mark portion or through hole portion in black. However, providing the mark or hole on the sheet member may affect the aesthetic appearance of the scanner assemblies as the mark or hole can be visible when the sheet member is in the open position.
Examples described herein may provide a scanner assembly having a platen and a bezel adhered to the platen. The bezel may include a bottom surface having an inclined notch. The inclined notch may refer to an opening defined by side surfaces and an inclined bottom surface. The inclined bottom surface may have a thickness that varies from a first end to a second end. Further, the scanner assembly may include a scanner module (e.g., a contact image sensor (CIS) scanner module) movably disposed below the platen. The scanner module may be in an optical communication with the inclined notch to detect a home position of the scanner module.
In the examples described herein, the inclined notch provided on the bottom surface of the bezel may not be exposed, and hence can enhance the aesthetic appearance of the scanner assembly. Further, the bezel may have a significantly thin material thickness, for instance, of about 2 mm. However, the notch may need a depth of about 1.4 mm in order to detect the home position. In this example, the inclined bottom surface may have a thickness of about 1 mm at one side, which may be significant to reduce moulding and cosmetic issues of the bezel. Further, the inclined notch may have a depth of about 1.4 mm at another side, which may facilitate the inclined notch functionality to detect the home position. Thus, the inclined notch described herein may balance the material thickness while facilitating the notch function.
In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the present techniques. It will be apparent, however, to one skilled in the art that the present apparatus, devices, and systems may be practiced without these specific details. Reference in the specification to “an example” or similar language means that a particular feature, structure, or characteristic described may be included in at least that one example, but not necessarily in other examples.
Referring now to the figures,
Further, housing 102 may include a bezel 112 adhered to top surface 108 of platen 106 to cover an edge region 120 of top surface 108. For example, bezel 112 may be adhered to top surface 108 of platen 106 to cover at least one edge region using glue, epoxy, or double-sided tape.
Furthermore, bezel 112 may include a bottom surface 114 having inclined notch 116. As shown in
Further, as shown in
Furthermore, scanner module 118 may include an optical sensor 154 to detect reflected light from the medium and then detect a shadow (i.e., a reflected light) of an end portion of inclined notch 116 projected by the light emitted from light source 152 based on the reflected light. In one example, optical sensor 154 may detect a reflection state of light by the medium based on the received light. That is, optical sensor 154 may detect a color of a specific portion on the medium, and can detect a state in which the portion is printed in black or printed in red. In other examples, optical sensor 154 may be a sensor that can detect a density of the medium and can detect white, black, or any intermediate colors thereof.
In some examples, light source 152 and optical sensor 154 may be arranged side by side in a scanning direction. In other examples, scanner assembly 100 may include a driving unit or a carriage to move scanner module 118 in the scanning direction, Also, scanner module 118 may include a control unit 156 to determine the home position based on a position of the shadow of an end of inclined notch 116 detected by optical sensor 154. In one example, control unit 156 may be implemented as an engine or a module including any combination of hardware and programming to implement the functionalities described herein.
Further, scanner assembly 100 may include a control panel 164 to control various aspects of scanning, copying, printing, and/or other functions. For example, control panel 164 may include a button such as a start button to initiate the scanning or copying operation. Also, as shown in
Also, as shown in
Further, scanner assembly 200 may include a scanner module 218 movably disposed in housing 202 below platen 206. In one example, scanner module 218 may include an image sensor 220 to continuously capture images including an image of inclined notch 216 as scanner module 218 moves along a scanning path (e.g., a horizontal direction as shown by an arrow 226). Scanner module 218 may be movable in a direction of arrow 226 or in an opposite direction to arrow 226.
Also, scanner assembly 200 may include a controller 222, coupled to scanner module 218, to determine a home position of scanner module 218 based on the captured images. In one example, controller 222 may determine the home position of scanner module 218 by identifying the image of inclined notch 216 from the captured images (e.g., by processing the captured images). For example, processing the captured images may include comparing the captured images with a stored image of inclined notch 216 (e.g., a black-white transition) to determine whether a match has been identified.
In some examples, inclined notch 216 may be formed in an area outside a flatbed scanning window of scanner assembly 200. In an example operation, inclined notch 216 may be scanned to obtain an image. Further, controller 222 may identify whether the image includes a home position pattern (i.e., a shadow or a black portion detected when reading inclined notch 216). When the image is determined to include the home position pattern, then controller 222 may set a scan initial line according to the image and adjust scanner module 218 to the scan initial line.
Further, as shown in
As shown in
For example, printer assembly 302 may be provided with an ink-jet printer. Scanner assembly 304 may include a flatbed scanner (e.g., a platen 310 on which a document can be placed and a scanner module 322 that reads images from the document). Further, an access opening for maintenance may be formed on an upper surface of printer assembly 302.
Further, image forming apparatus 300 may include a hinge assembly to pivotably connect scanner assembly 304 to printer assembly 302 between a closed position and an open position. scanner assembly 304 can be opened to access the access opening, for instance, to replace a cartridge.
As shown in
In one example, scanner housing 306 may include a bezel 316 adhered to top surface 312 of platen 310 to cover an edge region of top surface 312. In other examples, a portion of bezel 316 may divide platen 310 into two sections (i.e., a flatbed window and an Automatic Document Feeder (ADF) window) and may be adhered to top surface 312 of platen 310. In this example, platen 310 may be a single sheet of material and bezel 316 may cover top surface 312 of at least one edge of platen 310. Further, bezel 316 may include a bottom surface 318 having an inclined notch 320.
Further, scanner assembly 304 may include scanner module 322 movably disposed in scanner housing 306 below platen 310. In one example, scanner module 322 may be in an optical communication with inclined notch 320 to detect a home position.
Further, as shown in
For example, bezel 316 may have a thickness of about 2 mm. In this example, the depth range may vary from about 1.4 mm at the first end to about 1 mm at the second end that is opposite to the first end. In other words, inclined bottom surface 364 may have a thickness that varies from about 0.6 mm at the first end to about 1 mm at the second end that is opposite to the first end. In this example, the depth of about 1.4 mm at the first end may facilitate the inclined notch functionality to detect the home position and the depth of about 1 mm at the second end may reduce moulding and cosmetic issues of bezel 316.
Further, scanner module 322 may include a light source 356 to emit light through platen 310 into inclined notch 320 while scanner module 322 moves along a scanning path. Furthermore, scanner module 322 may include an optical sensor 358 to detect a shadow of an end portion of inclined notch 320 projected by the light emitted from light source 356. In addition, scanner module 322 may include a control unit 360 to detect the home position based on the detected shadow.
For example, cover member 352 and a calibration sheet of cover member 352 may be formed in white. When light source 356 irradiates the calibration sheet with light, cover member 352 and the calibration sheet may be detected in white. However, as shown in
In some examples, a size of the shadow may be determined by the depth of inclined notch 320. Therefore, by comparing the position and size of the shadow with a preset reference, relative positioning between scanner module 322, cover member 352, the calibration sheet, and platen 310 may be determined, and then the position can be specified and adjusted.
The above-described examples of the present solution are for the purpose of illustration. Although the solution has been described in conjunction with a specific example thereof, numerous modifications may be possible without materially departing from the teachings and advantages of the subject matter described herein. Other substitutions, modifications and changes may be made without departing from the spirit of the present solution. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and/or all of the steps of any method or process so disclosed, may be combined in any combination, except combinations where at least some of such features and/or steps are mutually exclusive.
The terms “include,” “have,” and variations thereof, as used herein, have the same meaning as the term “comprise” or appropriate variation thereof. Furthermore, the term “based on,” as used herein, means “based at least in part on.” Thus, a feature that is described as based on some stimulus can be based on the stimulus or a combination of stimuli including the stimulus.
The present description has been shown and described with reference to the foregoing examples. It is understood, however, that other forms, details, and examples can be made without departing from the spirit and scope of the present subject matter that is defined in the following claims.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2020/073156 | 1/20/2020 | WO |