The invention generally pertains to imaging devices, and more specifically, to transparency imaging systems and methods.
Imaging devices, such as scanners, copiers, facsimile machines, and multipurpose machines, are readily commercially available for converting tangible images (e.g., documents, photographs) or images of objects (e.g., the cover of a book) into electronic images. These imaging devices operate by generating light from a light source in the imaging device and reflecting this light off of the surface of the tangible image or object. The reflected light is collected on an array of photosensitive elements (e.g., a charge coupled device (CCD)), which convert the reflected light into electronic signals representing the image.
Imaging devices, such as the type described above, may be provided with external media adaptors that can be attached to the imaging devices and adapt the imaging device for use with different types of media. For example, back lighting (e.g., cathode fluorescent light bulbs) may be provided to back light semi-transparent images, such as overhead transparencies and film negatives. Other types of media adapters may also be provided, for example, having mirrors, lenses and/or other optics for transferring the image to the photosensitive elements.
In order to use the media adapter, the user is typically required to raise the cover of the imaging device to expose the platen. The media adapter can then be mounted so that it is adjacent the surface of the platen. The cover of the imaging device must be held open or otherwise secured in an open position to accommodate the media adapter on the platen.
Alternatively, the cover may be removed entirely. However, the user must then reassemble the cover on the imaging device before it can be used again without the media adapter.
A transparency imaging system may comprise an imaging surface and a cover mounted adjacent the imaging surface. A media adapter is provided as part of the cover, and a chamber is formed in the media adapter. At least one template is receivable within the chamber formed in the media adapter, the at least one template loading the transparency media in the media adapter adjacent the imaging surface for an imaging operation.
A method of imaging transparency media may comprise: retaining transparency media in a template, loading the template into a media slot formed in a cover of an imaging device regardless of the cover position, and backlighting the transparency media for an imaging operation.
Illustrative and presently preferred embodiments of the invention are shown in the drawings, in which:
a) is a top plan view of an exemplary template that may be used with the transparency imaging system;
b) is a top plan view of another exemplary template that may be used with the transparency imaging system;
c) is a top plan view of another exemplary template that may be used with the transparency imaging system;
a)-(c) illustrate an embodiment of a method of loading templates into the media adapter.
According to one exemplary embodiment, transparency imaging system 100 may comprise an imaging device 101, such as the flatbed scanner shown in
Imaging device 101 is shown in
Imaging device 101 may also comprise a light source 140 (
It will be readily appreciated that imaging device 101, such as the flatbed scanner shown in
The foregoing description of imaging device 101, and the flatbed scanner in particular, is provided as an illustration of one embodiment of an environment in which the invention may be implemented. It should be understood, however, that the present invention may be used in conjunction with any of a wide range of other types and configurations of imaging devices that are now known or that may be developed in the future.
Transparency imaging system 100 may be provided with a media adapter 150 for imaging transparent or semi-transparent media (hereinafter, transparency media), such as overhead transparencies, film negatives, or 35 mm slides, to name only a few. According to one embodiment, media adapter 150 may be provided as part of the cover 130 of imaging device 101 (e.g., as an integral component), as shown in
Briefly, embodiments of media adapter 150 may include, internally, a light source (e.g., a fluorescent or other white light source, not shown) for backlighting transparency media received in the media adapter 150. Media adapter 150 may also house a diffuser (e.g., frosted glass, not shown) provided between the light source and transparency media. Diffusers for use with media adapters generally function to diffuse light emanating from the light source and distribute the light evenly over transparency media received in the media adapter 150.
Media adapter 150 may also include a window (e.g., an opening, not shown) arranged between the light source and transparency media received in the media adapter 150 so that light is projected onto the transparency media. Optionally, window may be covered with a transparent material (e.g., glass or clear plastic).
In operation, light originating at the light source in media adapter 150 is projected through the diffuser and the window and onto the transparency media to backlight the image thereof. The backlit image is projected onto the imaging surface 120 of the imaging device 101. Light projected from the backlit image passes through the imaging surface 120 and onto photosensitive elements (e.g., provided on the carriage 145). These photosensitive elements are the same as those which already exist on conventional carriages 145 for receiving light reflected off of an opaque object being imaged on the imaging surface 120. An arrangement of optional lenses and mirrors may be provided to focus the light onto the photosensitive elements.
Operation of media adapters in general is understood and therefore further description is not necessary for a full understanding of, or to practice the invention.
According to one embodiment of transparency imaging system 100, the media adapter 150 comprises a housing 160 with a chamber or media slot 180 formed therein. Although media slot 180 is shown formed through front side portion 170 of housing 160, media slot 180 may be formed through any side of the housing 160, and can even be formed through the top side of housing 160 (e.g., so that the media can be “dropped” into the media adapter 150).
Media slot 180 is configured to receive the transparency media (e.g., a 35 mm slide, film negative, overhead transparency) within the media adapter 150 without having to raise the cover 130. In one such embodiment, media slot 180 may comprise a shelf 190 with a lip or guide rails 191, 192. Shelf 190 may be provided to align and guide transparency media into the media slot 180, as will be described in more detail below. In addition, shelf 190 may also retain the transparency media received therein even when the cover 130 is raised (e.g., in the position shown in
The invention is not limited to the structural arrangement of media slot 180 shown in
Transparency media may be received in media slot 180 of media adapter 150 in any suitable manner. For example, transparency media may be inserted directly into media slot 180. Transparency media is often very thin, making it difficult to handle and susceptible to damage, for example, by tearing or creasing. Fingerprints can also damage the image on the transparency media. Therefore, according to another embodiment, transparency media is positioned in the media slot 180 using templates, as shown according to one embodiment in
According to the embodiment shown in
Embodiments of transparency imaging system 100 may also include optional storage for the templates 400. In the embodiment of imaging device 101 shown in
Exemplary templates 410, 420, and 430 that may be used with embodiments of transparency imaging system 100 are shown for purposes of illustration in
The first exemplary template is a filler template 410, shown in
Filler template 410 is configured to be received in the media slot 180 of media adapter 150 (
Another exemplary template 420 is shown in
Transparency media can be loaded into template 420 as illustrated in more detail in
Still another exemplary template 430 is shown in
Exemplary templates 410, 420, and 430 are shown and described herein merely for purposes of illustration and are not intended to limit the scope of the invention thereto. Other embodiments of templates are also contemplated within the scope of the invention and can be readily provided by one having ordinary skill in the art based upon various design considerations (e.g., the type of transparency media) after having become familiar with the teachings of the present invention. For example, templates can be readily provided for retaining overhead transparencies for use with transparency imaging system 100. In addition, the templates are not limited to any particular size or arrangement for retaining transparency media.
Referring again to
Position indicators may be better understood with reference to
In the embodiment shown in
The invention, however, is not limited to any particular embodiment of position indicators 455(a), 455(b), 455(c) (or mating position indicators 701, 702, 703). Other embodiments of position indicators may include for example, but are not limited to, protuberances formed as part of the template, or tabs mounted on the template. Furthermore, the position indicators are not limited to mechanical embodiments, such as those described above. For example, electronic, optical, or opto-electronic position indicators (e.g., radio frequency or infrared circuitry) may also be used according to the teachings of the invention to indicate to the user the position of the template in the media slot. Alternatively, the position indicators may comprise various indicia to indicate position, such as etchings, colorations, or alpha numeric markings.
Having described embodiments of transparency imaging system 100, embodiments of a method for using the transparency imaging system 100 will now be described with reference to
In use, a user may load transparency media (e.g., one or more 35 mm slides) into the template 430, as described above with reference to
In
In
In
After the template 430 is loaded into media slot 180 of the media adapter 150 at the desired position (e.g., the positions shown in
In one embodiment, the imaging device 101 may be configured so that when it is operated in a transparency imaging mode, the image capture function is only performed to selectively capture images projected onto a predetermined area on the imaging surface 120. This embodiment may be implemented in any of a variety of different ways. For example, the carriage 145 may only be moved within a predetermined range beneath the imaging surface 120. Alternatively, the photosensitive elements may only record images when the carriage 145 is within the predetermined range or for a predetermined time during the imaging operation. In yet other embodiments, software may be provided to automatically write image data to an image file which corresponds to a predetermined area on the imaging surface 120. Electronic circuitry, optics, and associated software (or firmware) are also available for automatically detecting the position of an image on imaging surfaces. Other implementations of selectively imaging a predetermined area on the imaging surface, which are now known or may be later developed, are also contemplated as being within the scope of the invention.
In any event, such an embodiment may be used in combination with the method illustrated in
Having herein set forth preferred embodiments of the present invention, it is anticipated that suitable modifications can be made thereto which will nonetheless remain within the scope of the present invention.
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