Objects of the Invention
It is an object of the invention to provide an improved copying machine.
Another object is to provide an improved optical system in a copying machine.
Another object is to provide an improved magnetic brush.
Another object is to provide an improved optical scanning system and scanning mechanism combination.
Another object is to provide an improved drum and photo sensitive carrier.
Another object is to provide an improved toner brush in a copying machine.
Another object is to provide an improved paper cutoff in a copying machine.
With the above and other objects in view, the present invention consists of the combination and arrangement of parts hereinafter more fully described, illustrated in the accompanying drawings and more particularly pointed out in the appended claims, it being understood that changes may be made in the form, size, proportions, and minor details of construction without departing from the spirit or sacrificing any of the advantages of the invention.
General Description of Drawings
FIG. 1 is a side view showing the mechanism carrying frame moved partly out of the cabinet as for servicing.
FIG. 2 is a front view of the xerographic copying machine according to the invention.
FIG. 3 is a longitudinal cross sectional view of the chassis removed from the machine.
FIG. 4 is an isometric view of the scanning mechanism.
FIG. 5 is a side view of the lens system shown in FIG. 4, plus other system components (elements).
FIG. 6 is schematic view of the scanning mechanism showing the light path through the lens system with copying the top or bottom of a page.
FIG. 7 is a view similar to FIG. 6 showing when copying the center of a page.
FIG. 8 is a side schematic view of the drum and paper transport mechanism.
FIG. 9 is a partial top view of the paper clutch part.
FIG. 10 is a partial cross sectional view showing the paper clutch air supply.
FIG. 11 is a cross sectional view of the toner brush.
FIG. 12 is an enlarged partial view of the drum cover and scanning clutch.
FIG. 13 is a partial end view of the magnetic toner brush.
FIG. 14 is a top view of the paper transport.
Detailed Description of Drawing
Now with more particular reference to the drawings a machine has a frame 10 housed in cabinet 1 (FIGS. 1-3). Cabinet 1 has the size and configuration of a three-drawer legal size office filing cabinet of a type familiar to those skilled in the art. The cabinet 1 has sides 2 and 3, bottom 4, rear end 5, top 6, and open front 7. The frame 10 is supported on rollers 8 which are rotatably supported between sides 2 and 3. The rollers 8 are received in the channel shaped tracks 9 which are fixed to the sides of the frame, and the frame 10 can be pulled in and out of the cabinet for a convenience of sevicing the machine. The front of the cabinet frame 10 has suitable handle A fixed to it by which the mechanism can be pulled in and out, and the control mechanisms and dials can be supported on the front of the mechanism frame 10. A document support 13 is supported on the top 6 of the cabinet.
A document to be copied, such as a book or a letter, can be laid on the document support 13 for copying.
The frame 10 supports a drum 11 on shaft 110 which will be carried on suitable bearings on the frame 10. The drum 11 may be made of a hollow tubular section having closed ends attached to the shaft 110, and a photo-sensitive cover 12 is wrapped around the drum and held in place by the double sided adhesive strips 46 (FIG. 12) which adhere to the outer periphery of the drum and to the inner ends of the photo-sensitive sheet material 12. The photo-sensitive sheet material 12 may be any of the photo-sensitive sheets that are familiar to those skilled in the art of xerographic copying machines.
The function of the aperture stop 124 (FIGS. 4, 6, and 7) is to slightly increase the focal depth of the field, which in turn relaxes the requirement on the mechanical tolerance, a major cost consideration. The advantages of the system over conventional systems are, (a) simple and low cost, (b) no scanning mirror or rotating mirror required, (c) no fixed mirror required, (d) only two optical parts to align and maintain in alignment, (e) relaxed mechanical tolerance requirements, (f) self-compensating for the varying distance from the copy on support 13 to the photoconductor supported on drum 11.
The lens system (FIGS. 4-7) includes lenses 24 and 25. The first lens 24 is supported on the first lens frame 23, and the second lens 25 is supported on the second lens frame 22. The lower end of the lens support 23 is pivoted at 27 to the mechanism frame 10 on a line passing through the photoconductor 12 on drum 11. The second lens support 22 is slidably supported on bearings 30 that are carried on tracks 31, and tracks 31 are fixed to the sides of the mechanism frame 10. The ends of the tracks 31 are received in holes in blocks 32 and 33, which are fixed to the frame 10.
The early method for providing a photo-sensitive surface in xerographic type machines was to deposit or plate the photo-sensitive surface directly on the drum. Later the photo conductor surface was put on a sheet which was rolled in the form of a scroll, and the intermediate part of the scroll was wrapped around the drum. Photoconductive surface coverings for the drum in xerographic copying machines have become quite common. The covering is now normally provided on a roll somewhat like a photographic film roll. The source roll and the take up roll are both located inside the drum on this type of machine. A length of photoconductor surface is unrolled and drawn around the drum, the long path between the source and the pickup roll. This length of photoconductive surface is retained in that position for a pre-determined number of copies. Then an automatic system causes the length of photoconductor to move into the position outside of the drum. The mechanisms to record the number of copies made on the exposed surface and then cause the rewinding operation to take place are quite expensive. Furthermore, the storage of a large quantity of photoconductive surface in the machine represents a considerable expense that the machine owner invested for an extended period of time. The new method disclosed herein proposes a simple solution that is economical and overcomes all the objections involving cost and complexity of structure of the present practice. The drum shown in the drawing (FIG. 12) has a strip of double sided masking tape 46 to secure one end to the photo-conductive surface. The drum is rotated and the photo conductor is wrapped around the drum until the second end of the photo conductor can be secured to the double sided tape.
The surface, when in place, is restrained by the tape for making copies except that the photoconductor surface must be electrically connected to the drum, which is in turn tied in electrically to the equipment frame ground. Two grounding straps 125 are shown electrically connecting the photo conducting surface to the drum. When the grounding straps 125 are in place, a grounding path is provided from the photo conductive surface to the drum.
A resurfacing kit could include a single length of drum cover, a piece of double sided tape having pressure sensitive adhesive on it and one or two grounding straps. An alternte method of surface attachment involves a permanent adhesive region at each end of the length of drum covering and a removable tear strip to expose the adhesive coated surface.
The following advantages relate to the above system:
a. simplicity and inexpensive method of attachment,
b. need not remove drum from machine to resurface,
c. the gears normally used to advance the surface are eliminated,
d. it is not necessary to store a large amount of expensive resurfacing material in the machine.
The magnetic brush while applies the powder material to the charge photoconductive surface 12 is shown in FIGS. 8, 11, and 13. The magnetic brush 139 is rotatably supported in the hopper 310 by means of the bearings 311, which form the closure for the ends of hollow non-magnetic cylinder 139. The hollow non-magnetic cylinder has closed ends with the bearings which are hollow bosses 311, extending outwardly from the ends thereof. A shaft 313 is received in the hollow 314 of the members 311. A crank arm 314' is fixed to the shaft 313 and prevents the shaft 313 from rotating. A permanent magnet 315 is fixed to the shaft 313 and extends outwardly therefrom. The magnet 315 rests on this shaft 313, which is made of magnetic material, and projects a field outwardly through the magnetic rubber 317. The magnetic rubber is polarized as shown in FIG. 13 so that fields 320 project outwardly from the magnetic rubber around the outer periphery thereof. Thus, as the bosses 311 rotate, driven by a suitable driving mechanism, the magnetic rubber covering on the brush 139 rotates in the hopper and picks up the magnetic particles having the toner material fixed thereto, and this material is attracted to the drum by a tribo-electric effect familiar to those skilled in the art. Additional toner may be introduced into the hopper 321, which will be sifted down into the hopper 322 by an agitating member 323. This will, in turn, be dropped onto the space around the magnetic brush and baffle 38. The surplus magnetic particles will be doctored by the blade 326 so that they will fall down into the hopper 310, or magnetic rubber 317 will pick up additional magnetic particles from hopper 310 to the toner material thereon.
It is important that the lenses on frames 22 and 23 move in synchronism with rotation of the drum so that an inch of travel along the document support 13 will take place in exactly the same time that an inch of movement of the periphery of drum 11 takes place. This is accomplished by belt 410 (FIG. 5), which passes around pulleys 49 at the top of the machine and passes around the pulley 411 which rotates on to the drum shaft 110. The clutch mechanism (FIG. 12), which includes solenoid 433, is fixed to the pulley 411, and when a copy of a document on support 13 is to be made pin 413 is moved down into hole 429 in bushing 431. Bushing 431 is keyed to shaft 110. Set screw 432 locks bushing 431 to the shaft and moves the scanning frame 22, 23 to the end of its travel in one direction. A stop engages a suitable switch 70 causing it again to actuate solenoid 433. Thus, when pin 413 is in slot 429 pulley 411 rotates with shaft 110. When frame 22-23 comes to the end of its scan a limit switch 70, 73 (FIG. 4) causes solenoid 433 to retract pin 413.
The cut paper from supply roll 40 (FIG. 5) falls down chute 19 onto belts 41; air from jets 42 in air pipe 55 (FIG. 9) holds the paper to the belts and this carries it to drum 11. Drum 11 pulls the paper over nylon threads 43 (FIGS. 5, 8 and 14) which are held by bars 54 and 56 and over corona charger 20, which transfers toner powder from the drum to the paper. Corona charger 39 charges the photoconductor. Light projecting onto the photoconductor 12 at exposure slot E fixes the electrostatic image of the document onto the photoconductor. Toner is applied by brush 139 and transferred to the sheet of paper by corona charger 20. The sheet proceeds by second conveyor 43 to fuser 21, where the toner is melted to the paper.
Air Clutch
When a copy of a document is to be made, a length of paper is cut from the paper supply roll 40 and the cut piece of paper falls down the chute 19 onto belt 41. Air from jets 42 in the air pipe 55 holds the paper to the belt, and the paper is carried by the belt to the drum 11.
The air is then directed to the lower pipe 52, lifting the paper from the belt until the drum rotates to the starting position for making the copy, where it is then directed from the upper pipe 55 onto the paper, again, holding it to the belt which moves the paper between the drum 11 and the coronation 20 where the toner is transferred from the photo-conductor 12 to the paper. Coincidence of holes in 514 and 515 (FIG. 10) allows air from the four jets to be directed at one side of the paper. Similarly, coincidence of holes in 512 and 513 allows jets of air to be directed on the other side of the paper. Lateral motion of one member is shown by arrows in FIG. 9. Either the jet from members 514, 515 or from members 512, 513, but not from both at the same time, may be selected. Thus, a slight lateral shift of the tubes causes the jets to be directed down from 55 to press the paper onto the moving conveyor 41 or to be directed up from 52 to lift the paper from the conveyor 41. The paper then moves on below the fusing mechanism 21 where the toner is melted and is thereby caused to adhere to the paper.
The foregoing specification sets forth the invention in its preferred practical forms, but the structure shown is capable of modification within a range of equivalents without departing from the invention which is to be understood is broadly novel as is commensurate with the appended claims.