US3638611A - Electroded development device - Google Patents

Electroded development device Download PDF

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Publication number
US3638611A
US3638611A US838818A US3638611DA US3638611A US 3638611 A US3638611 A US 3638611A US 838818 A US838818 A US 838818A US 3638611D A US3638611D A US 3638611DA US 3638611 A US3638611 A US 3638611A
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United States
Prior art keywords
electrode
development zone
image
flow
developer material
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Expired - Lifetime
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US838818A
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English (en)
Inventor
Ernest A Weiler
Frederick W Hudson
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Xerox Corp
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Xerox Corp
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    • GPHYSICS
    • G03PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
    • G03GELECTROGRAPHY; ELECTROPHOTOGRAPHY; MAGNETOGRAPHY
    • G03G15/00Apparatus for electrographic processes using a charge pattern
    • G03G15/06Apparatus for electrographic processes using a charge pattern for developing
    • G03G15/08Apparatus for electrographic processes using a charge pattern for developing using a solid developer, e.g. powder developer
    • G03G15/0801Apparatus for electrographic processes using a charge pattern for developing using a solid developer, e.g. powder developer for cascading

Definitions

  • ABSTRACT A development system is herein disclosed for making visible a latent electrostatic image supported on an image retaining member.
  • the apparatus includes an elongated biased electrode positioned in close parallel relation to the image-retaining member to form an enclosed development zone in which a flow of two component developer material is maintained.
  • a series of pins are mounted on the electrode and extend into the development zone to disperse the developer material while the material is under the influence of an electroded force field wherein the concentration of toner in the flow stream is controlled.
  • This invention relates to apparatus for developing a latent electrostatic image and, in particular, to an electroded development system for making visible a latent electrostatic image supported on an image-retaining member.
  • this invention relates to a xerographic developing apparatus in which a sensitive control is afforded over the developer material during the image developing process.
  • a xerographic plate generally comprising a photoconductive surface placed over a conductive backing, is first charged uniformly and then exposed to a light image of an original to be reproduced. Under the influence of the light image, the photoconductive surface is selectively discharged to form what is known as a latent electrostatic image.
  • the latent image is developed by contacting the charged image areas with an oppositely charged toner material which has been specifically developed for this purpose. The oppositely charged toner particles are electrostatically attracted into the charged image areas thus making the latent image visible.
  • areas of greater charge concentration should be developed as areas of high toner density while areas of lesser charge concentration should be proportionally less dense.
  • Large, solid, areas of charge concentration supported on a surface, such as a photoconductive plate exhibit a nonuniformity of development when contacted with a toner material. It is believed that the flux density of the electrostatic force field associated with the solid areas varies with the stronger forces located along the fringes or edges of the images. The edge areas, therefore, develop at a faster rate than the interior areas although both are similarily charged. Because of the phenomena, solid areas which must be developed within a relatively short time period, as in automatic xerographic machines, appear washed out or underdeveloped.
  • a further object of this invention is to enhance the solid area developing a capability of a xerographic developing apparatus.
  • Yet a further object of this invention is to improve automatic xerography by providing a developing apparatus capable of providing a sensitive control over the developer material whereby images of varying sizes are developed at a constant rate.
  • a biased electrode which is positioned in close parallel relation to a latent image bearing member to form an extended, substantially enclosed, development zone therebetween which is capable of supporting a continuous flow of two component developer material, means to continually maintain a flow of developer material through theenclosed development zone whereby developer material is brought into contact with a latent image supported upon the member, and flow disrupting means positioned within the enclosed development zone to disperse the developer material moving between the member and the electrode wherein charged toner particles moving throughthe Zone are readily positionable as they move through the electroded zone.
  • FIG. I is a schematic view of an automatic xerographic reproducing machine employing the developing apparatus of the present invention.
  • FIG. 2 is an enlarged partial perspective view showing the developing apparatus of the present invention illustrated in FIG. I.
  • FIG. 1 There is illustrated schematically in FIG. 1 a continuous xerographic apparatus for the purpose of showing a suitable environment for the xerographic developing system having mounted therein an electroded development zone in accordance with the present invention.
  • the xerographic apparatus comprises a xerographic plate including a photoconductive layer or light receiving surface placed on a conductive backing and formed in the shape of a drum, generally designated by numeral 10, which is mounted upon shaft 11 joumaled in the frame (not shown) to rotate in the direction indicated by the arrow to cause the drum to pass sequentially through plurality of xerographic processing stations.
  • Drum 10 is rotated at a constant rate through the drive action of a synchronous motor 12.
  • a charging station A at which a uniform electrostatic charge is deposited on the photoconductive layer of the'drum surface by means of a corona discharge device 13 of the'type disclosed by Walkup in US. Pat. No. 2,777,957", 7
  • an exposure station B at which a light or radiation pattern of an original to be reproduced is projected onto the drum surface to dissipate the charge found thereon in the exposed areas thereby forming a latent electrostatic image thereon, the exposure station being positioned adjacent to the charging station in the direction-of drum travel;
  • a development station C at which a xerographic developing material including toner particles having an electrostatic charge opposite to the electrostatic latent image charge are brought into contact with the image-bearing drum surface whereby the toner particles adhere to the electrostatic latent image in configuration to the original to be reproduced thereby making the latent image visible;
  • a transfer station D at which the xerographic powder image is electrostatically transferred from the drum surface to a final support material 14 by means of a second corona generating device 15 similar to that used in the charging station;
  • a drum cleaning and discharge station E at which the drum surface is brushed by means of a rotating cylindrical brush 16 to remove residual toner particles remaining thereon after image transfer.
  • the final support material I4 is mounted on a supply spool 27 in a web configuration and is transported through heat fuser 17 wherein the developed and transferred powder image on the web surface is permanently affixed thereto.
  • the web is guided by a set of idler rollers 18 and driven through the transfer station in synchronous moving relation with the drum surface by means of synchronous drive motor 19 acting through a takeup spool 20.
  • FIGS. 1 and 2 there is shown a preferred embodiment of a electroded development system constructed in accordance with the present invention.
  • the term two components developer material refers to a material employed to develop latent electrostatic image, the material comprising a relatively large carrier bead to which is bonded electrostatically a quantity of smaller toner particles.
  • the carrier and toner materials are preselected from materials which are triboelectrically remote so that they interact when brought into rubbing contact to charge the materials to opposite potentials. Conventionally, the carrier will assume a positive charge while the toner assumes a negative charge.
  • the toner is loaded on the carrier beads and the beads brought into contact with a latent electrostatic image supported upon a member, such as a xerographic plate, where the toner particles are electrostatically transferred from the bead surface to the more highly charged image areas.
  • One of the most prevalent methods of bringing the developer material into contact with an image-bearing member is to-pour or cascade the developer material over the member and permitting the material to gravity flow downwardly in contact with member for a sufficient period of time to affect development.
  • the carrier beads which have given up their toner material in the development process still retain a charge thereon and act to scavenge or clean unwanted toner particles from the nonimaged or background areas on the plate surface.
  • the developer material is used to both develop and clean the image-bearing plate surface.
  • a two component developer material moving through an enclosed development zone such as between a development electrode and a photoccnductive plate as herein disclosed, after passing through the introductory region tends to become compacted. That is, the particulate material moves in a unitized mass with the particles in contact with each other when flowing through an extended, enclosed, region.
  • the electrode force field not only enhances the image force field but also acts upon the fine toner particles tending to force or move the particles, depending upon the charge relationship involved, to one side or the other of the development zone.
  • the developer mass is highly compacted, the toner particles are afforded little or no room to gravitate from one side of the development zone towards the other.
  • the apparatus of the present invention provides a developing system having means to disperse developer material moving in a restricted flow zone between an electrode and a plate wherein the fine toner particles moving in the electroded zone have sufficient room to move within the flow.
  • a toner gradient can be established in the flow stream to concentrate the toner on one side or the other of the development zone.
  • the developing system shown includes a developer apparatus, generally referred to numerically as 21, which coacts with a cylindrical xerographic drum to form a development area wherein the charged and exposed surface of the drum is capable of being developed to form a visible powder image of the original to be copied.
  • a developer apparatus generally referred to numerically as 21, which coacts with a cylindrical xerographic drum to form a development area wherein the charged and exposed surface of the drum is capable of being developed to form a visible powder image of the original to be copied.
  • a developer housing 22 is mounted adjacent to the xerographic drum as illustrated in FIG. 1.
  • a driven bucket-type conveyor used to transport two component developer material, previously supplied to the developer housing, to the upper portion of the housing where the material is guided through an introductory region into the active development zone 28 by means of an entrance chute 23.
  • a shaped electrode 24 is mounted within the developer housing in spaced parallel relation to the cylindrical drum surface and extends transversely across the drum to form an elongated development zone 28 therebetween.
  • toner particles on the developer material adhere electrostatically to the previously formed latent images on the drum surface and the remaining developer material passes through the bottom opening of the development zone back into the sump or supply area of the developer housing.
  • Toner particles, consumed during the developing operation to form the visible powder images are replenished by means of a toner dispenser 29 mounted on the top portion of the developer housing as shown in FIG. 2.
  • a suitable bucket-type conveyor is used to convey the developer material from the reservoir portion of the developer housing to the upper portion of the developer housing from where the material is gravity fed through the development zone.
  • the bucket-type conveyor consists of a series of parallel spaced buckets 30 secured by rivets or the like to a pair of conveyor belts 32 which are wrapped about conveyor drive pulleys 34 and conveyor idler pulleys 35 secured to drive and idler shafts 36 and 37, respectively.
  • the two shafts 36 and 37 are rotatably supported in parallel relation in bearing blocks 38 (FIG. 2) provided in the parallel opposed sidewalls of the developer housing 22.
  • the drive shaft 36, which is securelyjournaled for rotation within the bearing blocks 38 passes exterior the developer housing and is operatively connected to motor 45 wherein the bucket conveyor moves in predetermined timed relation with the xerographic drum surface in the direction indicated.
  • an input chute 23 is secured as by welding the end flanges (not shown) of the chute to the sidewalls of the developer housing.
  • an arcuate-shaped electrode 24, extending longitudinally across the drum surface, is slideably supported in close parallel relation to the drum surface 10 to establish therebetween an elongated development zone 28 capable of supporting a flow of two component developer material.
  • the development zone extends from the upper portion of drum down into the inverted drum region such that the developer material is caused to move in contact with the drum surface for relatively long period of time.
  • the developer to drum access time afforded by this system is considerably longer than that provided by a conventional cascade development system.
  • a developer material introduced into the development zone moves downwardly in contact with the moving drum surface through the development zone and is eventually discharged back into the reservoir of the developer housing where it once again reused in a development process.
  • the electrode as illustrated in FIG. 2, is supported in a slide member 46 formed of an insulating material and secured to the sidewalls of the developer housing.
  • the electrode is capable of being moved in a lateral direction substantially perpendicular to the developer flow and is electrostatically isolated from the developer housing.
  • a biasing means 26 is electrically connected to the electrode and electrically biases the electrode to a predetermined potential and magnitude to control the positioning and concentration of toner within the flow stream.
  • a series of pinlike members 25 Mounted upon the electrode and extending substantially perpendicular from the electrode into the development zone are a series of pinlike members 25.
  • the pins are positioned to contact the developer material moving through the development zone to disperse and scatter the particulate material within a flow stream.
  • the pins impact or collide with the carri er beads to scatter the beads throughout the development zone.
  • toner material is dislodged from the beads surface to form an airborne toner cloud. It should be noted, that while carrier beads are scattered throughout the development zone, and the toner dislodged from the beads, the entire developer mass is flowing in a stream downwardly through the development zone.
  • the electroded force field more readily act upon the charged toner particles to control the concentration of toner within the flow stream.
  • the toner particles are triboelectrically charged to a negative potential and a highly negative charge is placed upon the electrode to establish a force field in the development zone to place a high percentage of the available toner in contact with the image-bearing drum surface where it is readily available for use in a development process.
  • the solid area force fields are also enhanced by the electrode, the toner made available at the plate surface is rapidly attracted to the charged image areas thus rapidly and efficiently developing the image regardless of the image surface area.
  • the pins are mounted equally spaced in parallel rows with the pins in each successive row being offset so that the developer material is caused to follow a relatively torturous path through the development zone. In this manner, the maximum number of bead impacts possible are maintained as the material moves through the development zone.
  • the pins can be constructed of either a conductive material or an insulating material. Conductive pins act much in the same manner as small individual point source electrodes to produce strong force fields about the pin capable of affecting image development. In practice, it has been found that the conductive pins cause the imaged drum surface to experience a history of unidirectional toning causing a discernible series of dark lines or streaks to be produced thereon due to the pins bringing a localized force field close to the plate surface.
  • electrode 24 is slideably mounted in a nonconductive supporting member 46 and adapted to oscillate longitudinally across the drum surface transverse to the direction of developer flow.
  • a motor MOT-l is mounted in a support housing 39 and the support housing secured to the side wall of the developer housing by means of screws or the like.
  • An eccentric disc 40 is keyed to the motor shaft and has a drive pin 41 staked therein.
  • the drive pin extends perpendicular to the disc and passes through an elongated aperture 43 formed in one end of drive arm 42.
  • Arm 42 which is also formed of an insulating material, passes through an opening provided in the developer housing wall and is secured at the opposite end to the electrode.
  • a suitable seal encloses the opening in the developer housing through which arm 43 passes and acts to prevent developer material from escaping from the developer housing.
  • the apparatus of the present invention now makes it possible to fully utilize a development electrode in a manner heretofore unknown in the art.
  • a development electrode By scattering the developer material moving through a restricted electroded development zone, in the manner herein disclosed, compacting of the developer material is prevented while at the same time toner is freed from the carrier beads.
  • the developer material is thus placed in a condition such that the fine toner particles are freely moved by the electroded force field wherein the toner is concentrated on one side of the developer flow stream.
  • the electrode is placed at a potential similar to the toner charge potential and having a magnitude sufficient to force a heavy concentration of toner into contact with the latent image-bearing member. Because the electrode also strengthens the image force components, the total effect of the electrode on the developability of the system is such that image areas of various sizes are rapidly and efficiently developed.
  • Apparatus to develop a latent electrostatic image supported upon an image retaining member including:
  • a biased electrode positioned in spaced parallel relation to the image-retaining member to form an extended, substantially enclosed, development zone being capable of supporting a flow of developer material
  • said last-mentioned means comprising a series of pins supported by said electrode and extending into the development zone substantially perpendicular to said electrode wherein the pins impact the developer material in the flow stream, said pins being equally spaced in parallel rows with each successive row being laterally offset from the previous row, and
  • Apparatus to develop a latent electrostatic image sup ported upon a image-retaining member including:
  • a rotatably supported drum for retaining a latent electrostatic image mounted upon a horizontal axis
  • an electrically isolated electrode placed in spaced parallel relation with the drum surface and extending downwardly to form an elongated enclosed development zone capable of supporting a flow of two component developer material
  • electrical biasing means operatively connected to said electrode to place said electrode at a predetermined potential

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Dry Development In Electrophotography (AREA)
  • Developing For Electrophotography (AREA)
US838818A 1969-07-03 1969-07-03 Electroded development device Expired - Lifetime US3638611A (en)

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US83881869A 1969-07-03 1969-07-03

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US3638611A true US3638611A (en) 1972-02-01

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US838818A Expired - Lifetime US3638611A (en) 1969-07-03 1969-07-03 Electroded development device

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US (1) US3638611A (pl)
JP (1) JPS4824054B1 (pl)
AT (1) AT308537B (pl)
BE (1) BE752936A (pl)
CH (1) CH520961A (pl)
DE (1) DE2032392A1 (pl)
DK (1) DK129305B (pl)
ES (1) ES381383A1 (pl)
FR (1) FR2056397A5 (pl)
GB (1) GB1258738A (pl)
NL (1) NL7009828A (pl)
NO (1) NO130134B (pl)
PL (1) PL81287B1 (pl)
SE (1) SE359386B (pl)
SU (1) SU414818A3 (pl)
ZA (1) ZA704532B (pl)

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3923392A (en) * 1974-01-02 1975-12-02 Itek Corp Electrophotographic copier
US3991712A (en) * 1974-01-02 1976-11-16 Itek Corporation Cascade development station having a roughened development plate for enhancing developer mixture turbulence
US4050413A (en) * 1975-09-22 1977-09-27 Xerox Corporation Magnetic brush crossmixing system
US4195591A (en) * 1977-12-30 1980-04-01 Yorktown Industries, Inc. Cascade assembly and method
GB2171885A (en) * 1985-03-06 1986-09-10 Brown & Williamson Tobacco Improvements relating to smoking article mouthpieces

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5335331Y2 (pl) * 1974-11-05 1978-08-29

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3147147A (en) * 1961-06-05 1964-09-01 Xerox Corp Xerographic developing apparatus and electrode
US3336905A (en) * 1964-12-18 1967-08-22 Xerox Corp Xerographic developer apparatus
US3380437A (en) * 1966-07-21 1968-04-30 Xerox Corp Transversely reciprocating fluidized bed development apparatus

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3147147A (en) * 1961-06-05 1964-09-01 Xerox Corp Xerographic developing apparatus and electrode
US3336905A (en) * 1964-12-18 1967-08-22 Xerox Corp Xerographic developer apparatus
US3380437A (en) * 1966-07-21 1968-04-30 Xerox Corp Transversely reciprocating fluidized bed development apparatus

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3923392A (en) * 1974-01-02 1975-12-02 Itek Corp Electrophotographic copier
US3991712A (en) * 1974-01-02 1976-11-16 Itek Corporation Cascade development station having a roughened development plate for enhancing developer mixture turbulence
US4050413A (en) * 1975-09-22 1977-09-27 Xerox Corporation Magnetic brush crossmixing system
US4195591A (en) * 1977-12-30 1980-04-01 Yorktown Industries, Inc. Cascade assembly and method
GB2171885A (en) * 1985-03-06 1986-09-10 Brown & Williamson Tobacco Improvements relating to smoking article mouthpieces

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Publication number Publication date
AT308537B (de) 1973-07-10
DK129305B (da) 1974-09-23
NL7009828A (pl) 1971-01-05
NO130134B (pl) 1974-07-08
ZA704532B (en) 1971-03-31
DE2032392A1 (de) 1971-01-21
FR2056397A5 (pl) 1971-05-14
ES381383A1 (es) 1972-12-01
PL81287B1 (pl) 1975-08-30
CH520961A (de) 1972-03-31
SE359386B (pl) 1973-08-27
DK129305C (pl) 1975-02-17
GB1258738A (pl) 1971-12-30
BE752936A (fr) 1971-01-04
SU414818A3 (ru) 1974-02-05
JPS4824054B1 (pl) 1973-07-18

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