CN214896218U - Developing unit and supply unit - Google Patents

Developing unit and supply unit Download PDF

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Publication number
CN214896218U
CN214896218U CN202120893843.4U CN202120893843U CN214896218U CN 214896218 U CN214896218 U CN 214896218U CN 202120893843 U CN202120893843 U CN 202120893843U CN 214896218 U CN214896218 U CN 214896218U
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unit
developer
developer storage
storage chamber
bottom plate
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CN202120893843.4U
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Chinese (zh)
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罗琴
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Ninestar Corp
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Ninestar Corp
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Abstract

The utility model discloses a developing unit and a supply unit, wherein the developing unit comprises a box body, a developer storage unit which is arranged on the box body and is provided with a developer storage cavity for storing developer; a power unit disposed at one side of the developing unit for receiving a driving force provided from the image forming apparatus main body; and the supply unit is arranged in the developer storage unit and used for supplying the developer, and comprises an agitating unit, a hole-shaped structure is arranged on the agitating unit, and the agitating unit receives the driving force provided by the power unit and periodically rotates in a mode of being lifted and then lowered relative to the bottom plate of the developer storage unit for supplying the developer. The developing unit has the advantages of high developer supply efficiency and less residual developer amount, avoids causing the waste of the developer, and has the advantages of high developer storage capacity, simplified mechanical structure, capability of meeting the requirement of miniaturization of an imaging device and the like.

Description

Developing unit and supply unit
[ technical field ] A method for producing a semiconductor device
The utility model relates to a development unit technical field among the image device especially relates to a development unit and supply unit.
[ background of the invention ]
In general, an electronic image forming apparatus, such as a printer, a photocopier, a facsimile machine, and a multifunction peripheral (MFP), is capable of forming an image on a printing medium according to an input image signal. First, a bias voltage is applied to the surface of a photosensitive medium by a charging roller to be charged to a predetermined potential, an exposure unit scans modulated light corresponding to image signal data onto the surface of the photosensitive medium to form an electrostatic latent image, a developer stored in a developer supply hopper is frictionally charged by an agitator, the supply roller supplies the charged developer to a developing roller, and a layer of the developer attached to the surface of the developing roller is transferred to the electrostatic latent image formed on the photosensitive medium by an electric field force, thereby forming a developed image. The developed image is directly or indirectly transferred to a printing medium by electrostatic attraction, the developed image is combined with the printing medium by a fixing process, and the printing medium with the image is output to the outside of the image forming apparatus, so that printing is completed.
In order to reduce the height of the developing unit casing and to minimize the size of the image forming apparatus, in the prior art, the agitator provided in the developer supply bin is generally constructed in a plate-like structure, and as shown in fig. 1, the supply roller drive gear 10e provided in the developing unit 10 receives the driving force from the image forming apparatus main body and transmits the driving force to the developer supply plate drive gear 10f to rotate the driving rotary shaft 10d, and further, the bent portion 10b provided on the rotary shaft 10d is caused to flow through the perforation 10i provided on the developer supply plate main body 10a when the developer supply plate main body 10a is linearly reciprocated along the developer supply bin bottom plate, that is, when the developer supply plate main body 10a is linearly moved in the direction (in the a direction) close to the supply roller 10g, the developer is loaded onto the developer supply plate main body 10a through the through-holes 10i, and when the developer supply plate main body 10a is moved into contact with the supply roller 10g, the developer adheres to the surface of the developing roller 10h through the supply roller 10 g. When the developer feeding plate main body 10a moves in a direction (in the B direction) away from the feeding roller 10g and in a straight line, the developer flows back from the through-holes 10i into the developer storage bin. The developer feeding plate main body 10a realizes primary developer feeding to the developing roller 10h by primary reciprocating motion.
In this kind of agitator structural design mode, because this agitator size is great, consequently lead to the developer memory space of developing unit to reduce, and then the user need often change developing unit when using, causes inconvenience for the use. In addition, the stirrer adopts a linear reciprocating motion mode to realize the supply of the developer, and the mode can cause the low supply efficiency of the developer and the caking phenomenon of the developer because the developer cannot be stirred sufficiently, so that the developer is remained in a large amount in a developer supply bin, and further the developer is seriously wasted.
[ Utility model ] content
The object of the utility model is to solve the problem among the prior art, and a developing unit and supply unit that propose, according to the utility model discloses a first aspect provides a developing unit and includes:
a box body is arranged on the upper portion of the box body,
a developer storage unit provided in the cartridge body and having a developer storage chamber for storing a developer;
the power unit is arranged at one side of the box body and used for receiving the driving force provided by the main body of the imaging device and driving the developing unit to work;
and the supply unit is arranged in the developer storage unit and used for supplying the developer, and comprises an agitating unit which receives the driving force provided by the power unit and moves periodically relative to the bottom plate of the developer storage unit in a manner of lifting first and then lowering.
Further, the power unit includes a driving force receiving member receiving a driving force output from a driving force supplying unit provided in the image forming apparatus, and transmitting to the first and second power members, a driving force receiving member for driving a rotating member provided in the supplying unit to rotate and for transmitting and attaching the developer to the developing roller, respectively.
Further, the supply unit further includes a powder feeding roller and a developing roller, the rotating member is provided with at least one protrusion, and the at least one protrusion is in contact with at least one protrusion rib provided on the stirring unit and protruding toward one side of the powder feeding roller.
Furthermore, a hole-shaped structure is arranged on the stirring unit, at least one first connecting piece is further arranged on the stirring unit, and the at least one first connecting piece is connected with at least one second connecting piece arranged on the bottom plate of the developer storage cavity through an elastic piece.
Further, the stirring unit is provided with at least one projection, and the stirring unit is moved by the at least one projection along a surface portion of at least one boss provided on a bottom plate of the developer storage chamber under forces respectively exerted by the rotating member and the elastic member.
Further, the surface portion of the boss includes a first surface, a second surface, a third surface, and a fourth surface, the first surface, the third surface, and the fourth surface being slopes that are obliquely arranged with respect to the bottom plate of the developer storage chamber, the second surface being a plane that is parallel to the bottom plate of the developer storage chamber.
Further, the first surface is disposed obliquely upward from a bottom plate of the developer storage chamber, a top portion thereof is connected to one side of the second surface, the other side of the second surface is connected to one side of the third surface, the other side of the third surface is disposed obliquely toward the bottom plate of the developer storage chamber, and the fourth surface is disposed obliquely in a direction toward the powder feed roller and is connected to the third surface and the first surface, respectively.
Further, be equipped with the protecting cover on the box body, the protecting cover is installed on the developer storage unit, be equipped with the opening on the protecting cover, be used for working as when rotating the piece and rotating, avoid the protruding portion with the protecting cover lower surface is contradicted.
According to a second aspect of the present invention, there is provided a supply unit installed in the developing unit of any one of the above, comprising:
a stirring unit mounted in a developer storage chamber provided in the developing unit, the stirring unit having a size smaller than that of the developer storage chamber; the stirring unit is provided with a porous structure;
at least one protrusion disposed on the stirring unit;
and a supply member installed in the developer storage unit provided in the developing unit, for supplying the developer, receiving a driving force provided by a power unit provided in the developing unit, driving the agitating unit to move along a surface portion of at least one boss provided on a bottom plate of the developer storage chamber by at least one protrusion, and periodically moving in a manner of being raised and then lowered with respect to the bottom plate of the developer storage chamber.
Further, the surface portion includes a first surface, a second surface, a third surface, and a fourth surface, the first surface, the third surface, and the fourth surface being slopes obliquely arranged with respect to the bottom plate of the developer storage chamber, the second surface being a plane parallel to the bottom plate of the developer storage chamber.
The utility model has the advantages of: the utility model also provides a developing unit, a supply unit and an imaging device with the developing unit, wherein the developing unit comprises a box body, a developer storage unit which is arranged in the box body and is provided with a developer storage cavity for storing developer; a power unit disposed at one side of the developing unit for receiving a driving force provided by the image forming apparatus main body and driving the developing unit to operate; and the supply unit is arranged in the developer storage unit and used for supplying the developer, and comprises an agitating unit, a hole-shaped structure is arranged on the agitating unit, and the agitating unit receives the driving force provided by the power unit and periodically rotates in the developer storage unit in a mode of lifting relative to the bottom plate of the developer storage unit and then lowering relative to the bottom plate of the developer storage unit for supplying the developer. The utility model provides an among the technical scheme, exert drive power to the supply unit through the power pack, stirring unit in the drive supply unit is in developer storage unit with the mode that reduces for developer storage unit's bottom plate risees earlier afterwards and makes periodic rotation, can make the developer obtain abundant stirring, avoid the developer caking or deposit in developer storage unit, promote the rate of supply of developer by a wide margin, reduce the remaining of developer in developer storage unit, avoid causing the serious waste of developer. Furthermore, the utility model provides a development unit structural design mode still has advantages such as mechanical structure simplifies, avoids the component to damage and satisfy the miniaturized demand of image device.
[ description of the drawings ]
FIG. 1 is a schematic view of a stirrer in a developing unit according to the prior art;
FIG. 2 is a schematic diagram of a partial explosion structure of a developing unit according to an embodiment of the present invention;
fig. 3 is a schematic structural diagram of a cartridge of a developing unit according to an embodiment of the present invention;
FIG. 4 is a schematic structural diagram of a stirring unit provided in the embodiment of FIG. 2;
fig. 5 is a schematic partial structural view of a developing unit according to an embodiment of the present invention;
FIG. 6 is a schematic view of a rotating member shown in FIG. 3 according to an embodiment of the present invention;
fig. 7a to 7d are partial schematic structural views and corresponding partial enlarged schematic views of different embodiments of a developing unit according to an embodiment of the present invention;
FIG. 8a is a cross-sectional view taken along the width direction of the developing unit (direction B-B in FIG. 5) in FIG. 7 a;
FIG. 8B is a cross-sectional view taken along the width direction of the developing unit (direction B-B in FIG. 5) in FIG. 7B;
fig. 9 is a schematic structural view of a rotating member and a sealing blade in a developing unit according to an embodiment of the present invention.
[ detailed description ] embodiments
The following detailed description of the embodiments of the present invention will be made with reference to the accompanying drawings.
As shown in fig. 2-4, the present invention provides a developing unit and a supply unit, wherein the developing unit includes a cartridge 100; a developer storage unit provided on the cartridge 100 for storing a developer; a power unit 300 and a supply unit provided at one side of the cartridge body 100 of the developing unit to receive a driving force provided from the image forming apparatus main body. The supply unit is installed in a developer storage chamber 210 provided in the developer storage unit. Wherein the supply unit comprises a stirring unit 411, the stirring unit 411 is a plate-shaped structure with a substantially rectangular frame shape, a hole-shaped structure is arranged on the stirring unit 411, the hole-shaped structure is preferably at least one through hole 412, and the at least one through hole 412 is arranged at intervals along the length direction and/or the width direction of the stirring unit 411. The agitating unit 411 receives a driving force from the power unit 300, periodically rotates in the developer storage unit in such a manner as to be raised and then lowered with respect to the bottom plate of the developer storage chamber 210, and the developer flows in the developer storage chamber 210 through the at least one through hole 412, thereby supplying the developer.
It should be noted that the size and shape of the through hole 412 may be designed to have different structures to fit different stirring units 411 and developing units for realizing the supply of the developer.
As shown in fig. 1, in the prior art, since the agitator has a large size, it occupies a large space in the developer storage bin, resulting in a reduced amount of stored developer, and the user needs to frequently replace the developing unit during use, which causes inconvenience in use. Therefore, in the technical solution provided by the present invention, as shown in fig. 5, the size of the stirring unit 411 is smaller than the size of the developer storage chamber, that is, the first side 4111 of the stirring unit 411 is spaced from the first sidewall 211 of the developer storage chamber 210 by a certain distance, and the second side 4112 of the stirring unit 411 is spaced from the second sidewall 212 of the developer storage chamber 210 by a certain distance. The utility model discloses in through the size that reduces stirring unit 411, avoid occupying great space in stirring unit 411 in developer storage chamber 210, and then can effectively increase the developer memory space and more do benefit to the flow of developer in developer storage chamber 210, make the developer obtain abundant stirring and avoid the developer caking phenomenon to appear.
As shown in fig. 3 to 6, the power unit 300 includes a driving force receiving member 310 and a first power member 320, and a rotating member 420 provided in the feeding unit, wherein the driving force receiving member 310 and the first power member 320 are preferably gears, the driving force receiving member 310 and the first power member 320 are engaged with each other, the first power member 320 is sleeved on a shaft side portion of the rotating member 420, and the driving force receiving member 310 receives a driving force output from a driving force feeding unit (not shown) provided in the image forming apparatus, and transmits the driving force to the first power member 320, thereby rotating the rotating member 420.
The supply unit includes a powder feeding roller 430 and a developing roller 440, and the rotary member 420 is provided with at least one protrusion 421 (as shown in fig. 6) at positions close to the first and second side walls 211 and 212 of the developer storage chamber 210 in the axial direction, the protrusions 421 are preferably two, the two protrusions 421 are symmetrically provided, and the protrusions 421 are substantially arc-shaped and have a protrusion side 4211 and a depression side 4212. The first side 4111 and the second side 4112 of the stirring unit 411 are provided with at least one protruding rib 413 protruding toward the powder feeding roller 430, the protruding ribs 413 are preferably two, at least one protruding portion 421 contacts with at least one protruding rib 413, and when the rotating member 420 rotates, a protruding side 4211 (shown in fig. 6) of the protruding portion 421 applies an urging force to the protruding rib 413, so that the stirring unit 411 is driven to rotate between the developer storage chamber 210 and the powder feeding roller 430, and the developer flows from the through hole 412 of the stirring unit 411, is stirred, and is loaded on the stirring unit 411.
As shown in fig. 3 and 5, the agitating unit 411 is provided with at least one first coupling member 414, the bottom plate of the developer storage chamber 210 is provided with at least one second coupling member 214, wherein the number of the first connecting member 414 and the second connecting member 214 is preferably two, the first connecting member 414 is connected with the second connecting member 214 by the elastic member 500, both ends of the elastic member 500 are preferably configured in a ring structure, the ring structures are respectively sleeved on the first connecting piece 414 and the second connecting piece 214, the first connecting piece 414 and the second connecting piece 214 are provided with groove portions for matching with the ring structures at the two ends of the elastic piece 500, when the stirring unit 411 rotates to a preset position, the elastic member 500 can provide a force to the stirring unit 411, move the stirring unit 411 toward the powder feeding roller 430 at a high speed, while the developer carried on the stirring unit 411 is transported and attached to the powder feeding roller 430. The power unit 300 further includes a second power element 330, the second power element 330 being engaged with the driving force receiver 310 and receiving the driving force transmitted from the driving force receiver 310, and driving the developing roller 440 to rotate, so that the developer adhered to the powder feeding roller 430 is transmitted to and adhered to the developing roller 440.
The driving force receiving member 310, the first power member 320, and the second power member 330 are preferably configured as gears, preferably, all of them are helical gears, and the driving force receiving member 310, the first power member 320, and the second power member 330 are respectively sleeved on the shaft side portions of the powder feeding roller 430, the rotational member 420, and the developing roller 440. Wherein, the driving force receiving member 310, the first power element 320 and the second power element 330 are all disposed on the same side and engaged with each other.
It should be noted that the driving force receiving member 310, the first power member 320, and the second power member 330 may be configured as other transmission means than gears to be adapted to different developing units.
As shown in fig. 5 and fig. 7a to 7d, the agitating unit 411 is further provided with at least one projection 415, and the at least one projection 415 and the at least one boss 213 provided on the bottom plate of the developer storage chamber 210 are in contact with each other, wherein the number of the projections 415 and the bosses 213 is preferably two. The stirring unit 411 is moved by the projection 415 along the surface portion of the boss 213 provided on the bottom plate of the developer storage chamber 210 by the forces applied by the rotary member 420 and the elastic member 500, respectively. The surface portions of the boss 213 include a first surface 2131, a second surface 2132, a third surface 2133 and a fourth surface 2134, wherein the first surface 2131, the third surface 2133 and the fourth surface 2134 are preferably configured as inclined surfaces, the second surface 2132 is preferably configured as a plane, i.e., the first surface 2131, the third surface 2133 and the fourth surface 2134 are disposed obliquely with respect to the bottom plate of the developer storage chamber 210, and the second surface 2132 is parallel to the plane of the bottom plate with respect to the bottom plate of the developer storage unit 2132; the first surface 2131 is obliquely upwardly disposed from the bottom plate of the developer storage chamber 210, the top thereof is connected to one side of the second surface 2132, the other side of the second surface 2132 is connected to the third surface 2133, and the third surface 2133 is obliquely disposed toward the bottom plate of the developer storage chamber 210; the fourth surface 2134 is obliquely arranged in a direction toward the powder feeding roller 430 and connects the third surface 2133 and the first surface 2131, respectively. The first surface 2131, the second surface 2132 and the third surface 2133 are gradually farther from the powder feed roller 430, i.e., the first surface 2131 is closer to the powder feed roller 430 than the second surface 2132, and the second surface 2132 is closer to the powder feed roller 430 than the third surface 2133. As shown in fig. 7a-7b, when the rotation member 420 moves from the first position (the protrusion 415 contacts the first surface 2131) to the second position (the protrusion 415 contacts the second surface 2132), the protrusion 421 provided on the rotation member 420 contacts the protrusion rib 413 provided on the stirring unit 411, and as the rotation member 420 rotates, the protrusion side 4211 of the protrusion 421 contacts the protrusion rib 413 and applies a gradually increasing force to the protrusion rib 413, the amount of deformation of the elastic member 500 provided on the first link 414 and the second link 214 increases, the rotation member 420 drives the stirring unit 411 to move along the first surface 2131 of the boss 213 to the second surface 2132 in a direction away from the powder feeding roller 430 through the protrusion 415 provided thereon, so that the stirring unit 411 does not contact the bottom plate of the developer storage chamber 210 any more and is raised gradually relative to the moving position of the bottom plate of the developer storage chamber 210, when the agitating unit 411 moves to the second position as shown in fig. 7b, the agitating unit 411 is positioned at the highest relative to the bottom plate of the developer storage chamber 210 by a distance h (as shown in fig. 8 b), thereby achieving agitation of the developer stored in the developer storage chamber 210.
While the rotation member 420 moves from the second position shown in fig. 7b to the third position (the protrusion 415 is in contact with the third surface 2133) shown in fig. 7c, the moving position of the agitating unit 411 is gradually lowered with respect to the bottom plate of the developer storage chamber 210, and when the protrusion 415 provided on the agitating unit 411 is in contact with the third surface 2133 of the boss 213, the bottom of the agitating unit 411 is completely in contact with the bottom plate of the developer storage chamber 210, and the amount of deformation of the elastic member 500 is maximized.
When the rotation member 420 moves further from the third position to the fourth position (the protrusions 415 contact the fourth surface 2134) as shown in fig. 7d, the protrusion sides 4211 of the protrusions 421 gradually disengage from the protrusion ribs 413, so that the acting force applied by the protrusions 421 to the protrusion ribs 413 is gradually reduced, since the elastic member 500 connecting the first connection member 414 and the second connection member 214 needs to restore the elastic deformation, the stirring unit 411 moves at a high speed along the fourth surface 2134 of the protrusion 213 toward the powder feeding roller 430 by the protrusions 415 provided thereon under the resilient force of the elastic member 500, so that the developer loaded on the stirring unit 411 is transferred and attached to the powder feeding roller 430, and the developing roller 440 rotates under the driving force of the second power member 330, so that the developer attached to the powder feeding roller 430 is transferred and attached to the developing roller 440.
It should be noted that the first surface 2131, the third surface 2133 and the fourth surface 2134 are preferably configured as inclined surfaces, and the second surface 2132 is preferably configured as a plane surface. In addition, the first surface 2131, the second surface 2132, the third surface 2133 and the fourth surface 2134 may also be configured with other shapes to accommodate different stirring units, developer storage units and developing units.
As shown in fig. 2, the developing unit is further provided with an adjusting device 600 mounted on the cartridge 100 of the developing unit by a fixing member 610, and the adjusting device 600 is disposed above the powder feeding roller 430 and covers the powder feeding roller 430. The regulating end 620 of the regulating device 600 is in contact with the developing roller 440 for regulating the thickness of the developer attached to the developing roller 440. Since there are gaps between the developer storage unit and the end of the regulating device 600 and between the regulating device 600 and the fixing member 610, and leakage of the developer from the developer storage chamber 210 is prevented, it is necessary to provide a sealing member (not shown in the drawings) at the gap between the developer storage unit and the end of the regulating device 600 and the gap between the regulating device 600 and the fixing member 610.
In addition, as shown in fig. 9, the developing unit further includes at least one sealing blade 700, the number of the sealing blades 700 is preferably two, and two sealing blades 700 are oppositely disposed in the axial direction of the rotation member 420 and are assembled with the rotation member 420 through the mounting flange 422 provided on the rotation member 420. The rotation member 420 receives the driving force transmitted from the first power member 320 to rotate, and when the rotation member 420 rotates the sealing blade 700 to a position where the sealing blade 700 is perpendicular to the developer storage chamber 210, sealing between the developer storage chamber 210 and the powder feeding roller 430 can be achieved, and leakage of the developer from the developer storage chamber 210 can be prevented.
The developing unit is further provided with a position sensor for sensing the rotating position of the sealing blade 700 in real time, and when the printing operation is completed or the developing unit stops working, the rotating member 420 drives the sealing blade 700 to automatically rotate to the position where the sealing blade 700 is perpendicular to the developer storage chamber 210, and at this time, the passage between the developer storage chamber 210 and the powder feeding roller 430 is closed. When the developing unit is not used for a long time, the user can also seal the developer storage chamber 210 by manually rotating the rotary member 420 to a predetermined position, thereby preventing the leakage of the developer from the developer storage chamber 210.
It should be noted that the sealing blade 700 is preferably configured as a plate-type blade, and the sealing blade 700 is preferably made of a material having elasticity. In addition, the sealing blade 700 may be configured in other shapes to accommodate different rotating members, stirring units, developer storage units, and developing units.
As shown in fig. 2, the cartridge 100 is further provided with a protective cover 110, the protective cover 110 is assembled with the developer storage unit by a fastener, and the protective cover 110 is mounted above the developer storage unit. In the working process of the developing unit, the rotating member 420 in the developing unit rotates periodically, when the rotating member rotates to a certain position, the protruding side 4211 corresponding to the protruding portion 421 provided on the rotating member 420 can be contradicted with the lower surface of the protecting cover 110, and further the rotating member 420 is blocked in rotation, and in the long-time use process of the developing unit, the protruding portion 421 or the protecting cover 110 can be damaged, therefore, the technical solution provided by the utility model provides an in which the opening 111 is provided on the protecting cover 110, the protruding portion 421 is exposed on the upper surface of the protecting cover 110 from the opening 111, and when the rotating member 420 rotates, the protruding portion 421 abuts against the lower surface of the protecting cover 110.
In addition, as shown in fig. 2, the present invention provides a developing unit, further comprising an electric power unit 800, wherein the electric power unit 800 comprises a first terminal 810 and a second terminal 820, the first terminal 810 and the second terminal 820 are respectively disposed at the other axial side of the powder feeding roller 430 and the developing roller 440, that is, the first terminal 810 and the driving force receiving member 310 are disposed relatively along the axial direction of the powder feeding roller 430, and the second terminal 820 and the second power member 330 are disposed relatively along the axial direction of the developing roller 440. The first terminal 810 and the second terminal 820 are electrically connected to corresponding electrode terminals provided inside the housing of the image forming apparatus, respectively, for receiving power from the image forming apparatus during image development, and applying voltages to the powder feeding roller 430 and the developing roller 440, respectively, to bring the surfaces of the powder feeding roller 430 and the developing roller 440 to a predetermined potential.
As shown in fig. 2, the present invention provides a developing unit, a supply port 900 is provided at a side of a developing unit cartridge 100, the supply port 900 communicates with a developer storage chamber 210 in the developing unit, and a sealing end cap (not shown in the figure) is provided at the supply port 900 to prevent the developer from leaking out from the supply port 900. After the developer in the developing unit is consumed, the user pulls the sealing end cap arranged on the supply port 900, and the developer can be added to the developer storage cavity 210 through the supply port 900, so that the developing unit can be recycled, the whole developing unit does not need to be replaced, and the product purchase expense of the user can be saved.
The present invention provides a developing unit, which is described with reference to fig. 7a-7d, 8a-8b and 9, and comprises the following components:
first, as shown in fig. 7a, the driving force receiving member 310 receives the driving force output from the driving force supplying unit (not shown) provided in the image forming apparatus, and when the driving force receiving member 310 drives the first power member 320 to rotate the rotation member 420 to the first position by the engagement, the concave side 4212 (shown in fig. 6) of the protrusion 421 contacts the protrusion rib 413 without applying a force to the protrusion rib 413, the elastic member 500 connecting the first connection member 414 and the second connection member 214 is not deformed, and the protrusion 415 provided on the agitating unit 411 contacts the first surface 2131 of the boss 213, at which time, as shown in fig. 8a, the bottom of the agitating unit 411 directly contacts the bottom plate of the developer storage chamber 210 in the cross-sectional view of the developing unit in the width direction.
Note that the developing unit is in the B-B direction shown in fig. 5 in the width direction.
As shown in fig. 7b, the first power member 320 drives the rotation member 420 to rotate continuously, when the rotation member 420 drives the stirring unit 411 to move to the second position along the first surface 2131 of the boss 213 via the protrusion 415, the protruding side 4211 of the protrusion 421 gradually applies an urging force to the protruding rib 413, the elastic member 500 starts to deform, when the rotation member 420 drives the stirring unit 411 to move to the second surface 2132 in a direction away from the powder feeding roller 430 along the first surface 2131 of the boss 213 via the protrusion 415 provided thereon, the stirring unit 411 no longer contacts with the bottom plate of the developer storage chamber 210, and the moving position of the bottom plate relative to the developer storage chamber 210 gradually rises until the stirring unit 411 moves to the second position shown in fig. 7b, at which time the stirring unit 411 is located at the highest position relative to the bottom plate of the developer storage chamber 210, and the rising distance h (shown in fig. 8 b), the developer flows through at least one through-hole 412 provided on the agitating unit 411 to achieve an agitating operation of the developer.
As shown in fig. 7c, in the process that the rotation member 420 drives the agitating unit 411 to move to the third position along the second surface 2132 of the boss 213 by the protrusion 415, the moving position of the agitating unit 411 is gradually lowered with respect to the bottom plate of the developer storage chamber 210, the protrusion side 4211 of the protrusion 421 is gradually contacted with the protrusion rib 413, when the agitating unit 411 moves to the third surface 2133 of the boss, the protrusion side 4211 of the protrusion 421 is directly contacted with the protrusion rib 413, and the protrusion side 4211 applies the maximum pushing force to the protrusion rib 413, that is, the pushing force applied to the agitating unit 411 by the protrusion 421 of the rotation member 420 is the maximum, at which the deformation amount of the elastic member 500 is the maximum. Since the protrusion 415 is in contact with the third surface 2133 of the boss 213 at this time, the agitating unit 411 moves toward the second sidewall 212 of the case body 110 and is again in contact with the bottom plate of the developer storage chamber 210, so that the developer is carried on the agitating unit 411 through the at least one through hole 412 formed in the agitating unit 411.
As shown in fig. 7d, when the rotation member 420 drives the stirring unit 411 to move to the fourth position along the third surface 2133 of the boss 213 via the protrusion 415, the protruding side 4211 of the protrusion 421 is gradually out of contact with the protruding rib 413, the recessed side 4212 of the protrusion 421 is gradually in contact with the protruding rib 413, the pushing force applied by the protrusion 421 to the protruding rib 413 is gradually reduced, the elastic member 500 is required to restore the elastic deformation, so that a force is applied to the stirring unit 411, which is a resilient force, the stirring unit 411 moves at a high speed along the fourth surface 2134 of the boss 213 toward the powder feeding roller 430 via the protrusion 415 under the resilient force of the elastic member 500, and transports and attaches the developer carried on the stirring unit 411 to the powder feeding roller 430, and during this high speed, the stirring unit 411 further moves toward the second sidewall 212 close to the developer storage chamber 210.
Further, the driving force receiving member 310 receives a driving force from a driving force supplying unit (not shown) in the image forming unit, and drives the second power member 330 to rotate the developing roller 440 by engagement, so that the developer attached to the powder feeding roller 430 is transferred and attached to the developing roller 440, and the developer attached to the developing roller 440 is adjusted by the adjusting end 620 of the adjusting device 600 provided in the developing unit to be uniformly attached to the surface of the developing roller 440. The electrostatic bias is applied to the developing roller 440 to charge the surface of the developing roller 440, and the developer is transferred and attached to the surface of the photosensitive medium by the electric field force between the developing roller 440 and the photosensitive medium, so that the electrostatic latent image formed on the surface of the photosensitive medium is developed and converted into a developed image. After the developing unit completes one developer supplying operation, the rotator 420 drives the sealing blade 700 to rotate to the position where the sealing blade 700 is perpendicular to the developer storage chamber 210, so as to seal the developer storage chamber 210, and prevent the influence on the printing quality due to the leakage of the developer.
The utility model provides an among the technical scheme, under the impetus effect that rotation piece 420 rotation in-process protruding portion 421 applyed to stirring unit 411, first along boss 213's first surface 2131, second surface 2132 and third surface 2133 with for the developer storage chamber 210 bottom plate rise earlier the mode that reduces back to the direction motion of keeping away from powder feed roller 430, the effect of the resilience of elastic component 500 is utilized again, make stirring unit 411 along boss 213's fourth surface 2134 towards powder feed roller 430 high-speed motion, realize with this that stirring unit 411 carries out the periodic rotation once with the mode that reduces back rising earlier for developer storage unit's bottom plate, stirring unit 411 accomplishes periodic rotation once every time, accomplish once the developer supply operation to powder feed roller 430 promptly. The utility model provides an among the developer structural design mode, through drive stirring unit 411 with the mode that reduces after rising earlier for developer storage unit's bottom plate do periodic rotation, can make the developer obtain abundant stirring, avoid the developer caking or deposit in developer storage chamber 210, make the developer increase at stirring unit 411's attachment rate, and then promote the supply rate of developer by a wide margin, reduce the remaining of developer in developer storage chamber 210, avoid causing the serious waste of developer.
The utility model provides a supply unit installs in the utility model provides an in the developing unit, supply unit is equipped with the porous structure including installing the stirring unit 411 in the developer storage chamber 210 that is equipped with in the developing unit on the stirring unit 411 for the developer flows in developer storage chamber 210. To increase the developer storage amount of the developer storage chamber 210, the storage space of the developer storage chamber 210 is prevented from being occupied by the stirring unit 411 which is oversized. As shown in fig. 5, the present invention provides a solution in which the size of the stirring unit 411 is smaller than the size of the developer storage chamber 210, that is, the first side 4111 of the stirring unit 411 is spaced from the first sidewall 211 of the developer storage chamber 210 by a certain distance, and the second side 4112 of the stirring unit 411 is spaced from the second sidewall 212 of the developer storage chamber 210 by a certain distance.
The supply unit further includes a supply member mounted in a developer storage unit provided in the developing unit, the supply member including a rotary member 420 and a powder feeding roller 430, at least one protrusion 421 of the rotary member 420 provided opposite to the first and second side walls 211 and 212 of the developer storage chamber 210 in the axial direction contacting at least one protrusion rib 413 provided on the first and second side edges 4111 and 4112 of the stirring unit 411 to protrude toward the side of the powder feeding roller 430.
The surface portions include a first surface 2131, a second surface 2132, a third surface 2133 and a fourth surface 2134, wherein the first surface 2131, the third surface 2133 and the fourth surface 2134 are preferably configured as inclined surfaces, the second surface 2132 is preferably configured as a plane, i.e., the first surface 2131, the third surface 2133 and the fourth surface 2134 are obliquely arranged with respect to the bottom plate of the developer storage chamber 210, and the second surface 2132 is parallel to the plane of the bottom plate with respect to the bottom plate of the developer storage unit; the first surface 2131 is obliquely upwardly disposed from the bottom plate of the developer storage chamber 210, the top thereof is connected to one side of the second surface 2132, the other side of the second surface 2132 is connected to the third surface 2133, and the third surface 2133 is obliquely disposed toward the bottom plate of the developer storage chamber 210; the fourth surface 2134 is obliquely arranged in a direction toward the powder feeding roller 430 and connects the third surface 2133 and the first surface 2131, respectively. When the rotation member 420 rotates by receiving the driving force provided by the power unit 300, the protrusion 421 continuously applies a force to the protrusion rib 413, so as to push the stirring unit 411 to move along the first surface 2131, the second surface 2132 and the third surface 2133 of the at least one boss 213 provided on the bottom plate of the developer storage unit along the protrusion 415 provided thereon in a direction away from the powder feeding roller 430, so that the developer flows through the hole-shaped structure provided on the stirring unit 411 in the developer storage unit 210, thereby stirring the developer and loading the developer on the stirring unit 411.
In addition, at least one first connecting member 414 is provided on the stirring unit 411 and at least one second connecting member 214 provided on the bottom plate of the developer storage chamber 210 are connected by an elastic member 500, and when the rotating member 420 drives the stirring unit 411 to rotate to a predetermined position as shown in fig. 7c, the elastic member 500 provides a force to the stirring unit to move the stirring unit 411 at a high speed toward the powder feeding roller 430 along the fourth surface 2134 of the boss 213 by the protrusion 415, thereby achieving periodic rotation of the stirring unit 411 and transferring and attaching the developer loaded on the stirring unit 411 to the powder feeding roller 430.
In the description of the present invention, it should be understood that the terms "upper", "lower", "front", "rear", and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, and are only for convenience of description and simplification of description, but do not indicate or imply that the device or element referred to must have a specific orientation, be constructed in a specific orientation, and be operated, and thus should not be construed as limiting the present invention. Furthermore, the terms "first" and "second", "at least one", are used for descriptive purposes only and are not to be construed as indicating or implying relative importance or implicit to a number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature.
The above embodiments are merely preferred embodiments of the present invention, and the scope of the present invention is not limited thereto. According to the utility model discloses a shape, structure and principle have a great deal of transform yet. Therefore, any changes and modifications made without departing from the spirit and scope of the present invention should be covered by the present invention. Where the term "preferred" is used throughout the disclosure, it is intended that the term "preferred" be exclusive and mean "preferred", rather than limiting, and the terms in the claims should be given their broadest interpretation consistent with the description of the invention.

Claims (10)

1. A developing unit is characterized by comprising
A box body is arranged on the upper portion of the box body,
a developer storage unit provided in the cartridge body and having a developer storage chamber for storing a developer;
the power unit is arranged at one side of the box body and used for receiving the driving force provided by the main body of the imaging device and driving the developing unit to work;
and the supply unit is arranged in the developer storage unit and used for supplying the developer, and comprises an agitating unit which receives the driving force provided by the power unit and moves periodically relative to the bottom plate of the developer storage unit in a manner of lifting first and then lowering.
2. The developing unit according to claim 1, wherein the supply unit includes a developing roller, and the power unit includes a driving force receiving member, a first power member, and a second power member, the driving force receiving member receiving the driving force output from the driving force supply unit provided in the image forming apparatus and transmitting to the first power member and the second power member for driving a rotation member provided in the supply unit to rotate and for transmitting and adhering the developer to the developing roller, respectively.
3. The developing unit according to claim 2, wherein the supply unit further includes a powder feed roller, and the rotating member is provided with at least one protrusion, and the at least one protrusion is in contact with at least one protrusion rib provided on the stirring unit and protruding toward a side of the powder feed roller.
4. The developer unit according to claim 3, wherein the agitator unit is provided with a hole-like structure, the agitator unit is further provided with at least one first connecting member, and the at least one first connecting member is connected to at least one second connecting member provided on a bottom plate of the developer storage chamber by an elastic member.
5. The developing unit according to claim 4, wherein the stirring unit is provided with at least one projection, and the stirring unit is moved by the at least one projection along a surface portion of at least one boss provided on a bottom plate of the developer storage chamber by forces respectively applied by the rotary member and the elastic member.
6. The developing unit according to claim 5, wherein the surface portion of the boss includes a first surface, a second surface, a third surface, and a fourth surface, the first surface, the third surface, and the fourth surface being slopes obliquely arranged with respect to the bottom plate of the developer storage chamber, the second surface being a plane parallel to the bottom plate of the developer storage chamber.
7. The developer unit according to claim 6, wherein the first surface is disposed obliquely upward from a bottom plate of the developer storage chamber, a top portion thereof is connected to one side of the second surface, the other side of the second surface is connected to one side of the third surface, the other side of the third surface is disposed obliquely toward the bottom plate of the developer storage chamber, and the fourth surface is disposed obliquely in a direction toward the powder feed roller and is connected to the third surface and the first surface, respectively.
8. The developer unit according to claim 3, wherein the cartridge body has a cover, the cover is mounted on the developer storage unit, and the cover has an opening for preventing the protrusion from abutting against the lower surface of the cover when the rotatable member rotates.
9. A supply unit mounted in the developing unit according to any one of claims 1 to 8, comprising:
a stirring unit mounted in a developer storage chamber provided in the developing unit, the stirring unit having a size smaller than that of the developer storage chamber; the stirring unit is provided with a porous structure;
at least one protrusion disposed on the stirring unit;
and a supply member installed in the developer storage unit provided in the developing unit, for supplying the developer, receiving a driving force provided by a power unit provided in the developing unit, driving the agitating unit to move along a surface portion of at least one boss provided on a bottom plate of the developer storage chamber by at least one protrusion, and periodically moving in a manner of being raised and then lowered with respect to the bottom plate of the developer storage chamber.
10. The supply unit according to claim 9, wherein the surface portion includes a first surface, a second surface, a third surface, and a fourth surface, the first surface, the third surface, and the fourth surface being slopes obliquely arranged with respect to a bottom plate of the developer storage chamber, the second surface being a plane parallel to the bottom plate of the developer storage chamber.
CN202120893843.4U 2021-04-27 2021-04-27 Developing unit and supply unit Active CN214896218U (en)

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Publication Number Publication Date
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113189852A (en) * 2021-04-27 2021-07-30 纳思达股份有限公司 Developing unit and developing unit control method

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113189852A (en) * 2021-04-27 2021-07-30 纳思达股份有限公司 Developing unit and developing unit control method

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