This invention relates in general to an image forming apparatus, and more particularly, to an image forming apparatus employing a transport module that can be configured in two ways for use in two different places in a parallel printing system.
Modularity in reproduction machines has been used previously. For example, a plural mode modular reproduction apparatus is disclosed in U.S. Pat. No. 5,850,581 for selective different sheet printing modes with a common shared base frame unit having integral module mounting guides. Xerographic, as well as, ink jet printing engine modules are accommodated. Xerographic print engines with interchangeable developer units having different color toners, interchangeable into the same machine locations are disclosed in U.S. Pat. No. 5,144,369. Also, modular paper drawers, fusers, document handlers, etc. For example, U.S. Pat. No. 4,873,554 wherein the copy sheet system is a removable module. In U.S. Pat. No. 7,093,831 plural or multiple stacked paper handling modules are shown with different input and output paths. The reuse of ‘common modules’ can reduce development, manufacturing and service costs. Sheet transport modules in tandem parallel printing engines often have a degree of similarity with the exception of sheet entry and/or exit paths from the sheet handling module to print engine module and minor variations in similar modules may frustrate commonality.
Hence, there is a need for a sheet transport module that will accommodate variations in sheet entry and/or exit paths across architectures that direct sheets to an image marking engine for imaging and thereby increase module production volume and lower manufacturing cost for modular commonality focused architectures.
Accordingly, an improved transport module is disclosed for use in a tightly integrated parallel printer which includes a single reconfigurable baffle that accepts sheets from above at a 12 o'clock position when in a first configuration and accepts sheets from a 6 o'clock position when the baffle is repositioned in a second configuration. The two orientations of the baffle are established to permit one common media entry transport to be mounted in either of two positions, each satisfying one of the desired configurations. Additionally, the improved transport module could be reconfigurable based on the exit path of sheets or both entry and exit sheet paths, if desired.
The disclosed architecture may be operated by and controlled by appropriate operation of conventional control systems. It is well known and preferable to program and execute imaging, printing, paper handling, and other control functions and logic with software instructions for conventional or general purpose microprocessors, as taught by numerous prior patents and commercial products. Such programming or software may, of course, vary depending on the particular functions, software type, and microprocessor or other computer system utilized, but will be available to, or readily programmable without undue experimentation from, functional descriptions, such as, those provided herein, and/or prior knowledge of functions which are conventional, together with general knowledge in the software of computer arts. Alternatively, any disclosed control system or method may be implemented partially or fully in hardware, using standard logic circuits or single chip VLSI designs.
The term ‘printer’ or ‘reproduction apparatus’ as used herein broadly encompasses various printers, copiers or multifunction machines or systems, xerographic or otherwise, unless otherwise defined in a claim. The term ‘sheet’ herein refers to any flimsy physical sheet or paper, plastic, or other useable physical substrate for printing images thereon, whether precut or initially web fed. A compiled collated set of printed output sheets may be alternatively referred to as a document, booklet, or the like. It is also known to use interposers or inserters to add covers or other inserts to the compiled sets.
As to specific components of the subject apparatus or methods, or alternatives therefor, it will be appreciated that, as normally is the case, some such components are known per se' in other apparatus or applications, which may be additionally or alternatively used herein, including those from art cited herein. For example, it will be appreciated by respective engineers and others that many of the particular components mountings, component actuations, or component drive systems illustrated herein are merely exemplary, and that the same novel motions and functions can be provided by many other known or readily available alternatives. All cited references, and their references, are incorporated by reference herein where appropriate for teachings of additional or alternative details, features, and/or technical background. What is well known to those skilled in the art need not be described herein.
Various of the above-mentioned and further features and advantages will be apparent to those skilled in the art from the specific apparatus and its operation or methods described in the example(s) below, and the claims. Thus, they will be better understood from this description of these specific embodiment(s), including the drawing figures (which are approximately to scale) wherein:
For color image duplexing, sheets can be fed from feeder module 11 through diverter system 58, into color electronic printer 14 and downward along vertical transport 16 to lower media path module 30 and on to transfer station 50 to receive images on a first side thereof from IME 15 that includes cyan, magenta, yellow and black developer housings. Afterwards, the sheets are forwarded through fuser 52 and into inverter 54. The sheets leave inverter 54 trail edge first and are fed upwards along media transport path 56 and into media path highway 57, through diverter gate systems 55 and 58 and eventually downward along vertical transport 16 and back to lower media path module 30 and again through transfer station 50 to receive images onto a second side of the sheets. The sheets are then fused at fuser 52 and transported upward along media path 56, through diverter gate system 55 and out through decurler 40 and into finisher F. For monochrome image duplexing, sheets can be fed from feeder module 11 through diverter gate system 58, into monochrome electronic printer 12 and into the media path module 20 and on to transfer station 17 to receive monochrome images on a first side thereof from IME 13 that includes a black developer housing only. Afterwards, the sheets are forwarded through fuser 18 and into inverter 53. The sheets leave inverter 53 trail edge first and are fed downwards along media transport path 19, through diverter gate system 55 and into media path highway 57, through diverter gate system 58 and back to upper media path module 20 and again through transfer station 17 to receive monochrome images onto a second side of the sheets. The sheets are then fused at fuser 18 and transported downward along media path 19, through diverter gate system 55 and out through decurler 40 and into finisher F. Or alternatingly, combinations of one side monochrome and one side color imaged duplexed sheets can be produced by using these same media path elements in the appropriate sequences.
In
Thus, a sheet transport module has been disclosed that can be configured in two ways for use in two places in a parallel printing system. In one configuration, sheets are accepted from above (12 o'clock) while the other accepts paper from below (6 o'clock). The sheet transport module can be mounted in either of two positions while allowing one common sheet entry point made possible by a curved media entry transport that is pivotally mounted and may be rotated and secured into either of two positions, discharging sheets into the same interface at a 3 o'clock position.
Alternatively or in addition, reconfigurable transports could be vertical modules with 9 o'clock and 3 o'clock sheet entry positions along baffles 71 and 73 that pivot about pivot point 80 as shown in
Another alternative embodiment comprises an additional print engine(s) located to the right of the color print engine. In this embodiment, all print engines can supply document sheets cooperatively to finisher F. Additionally, the first and second print engine can supply documents to each other for single pass duplex printing.
The claims, as originally presented and as they may be amended, encompass variations, alternatives, modifications, improvements, equivalents, and substantial equivalents of the embodiments and teachings disclosed herein, including those that are presently unforeseen or unappreciated, and that, for example, may arise from applicants/patentees and others. Unless specifically recited in a claim, steps or components of claims should not be implied or imported from the specification or any other claims as to any particular order, number, position, size, shape, angle, color, or material.
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Number | Date | Country | |
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20100067966 A1 | Mar 2010 | US |