[Technical Field]
[0001] One or more embodiments of the present general inventive concept relate to an electrophotographic
image forming apparatus capable of maintaining a stable image quality.
[Background Art]
[0002] An electrophotographic image forming apparatus forms a visible toner image on a photoconductor
by supplying toner to an electrostatic latent image formed on the photoconductor,
transfers the visible toner image to a recording medium, and then prints an image
on the recording medium by fusing the transferred visible toner image on the recording
medium.
[0003] Accordingly, the electrophotographic image forming apparatus may include a pickup
unit for picking up the recording medium, a transport unit for transporting the picked
up recording medium, an image forming unit for forming an image on the transported
recording medium, and a fusing unit for fusing the image on the recording medium.
Here, each unit may be supported by a frame.
[0004] When the image forming unit is exposed to vibration while the electrophotographic
image forming apparatus forms an image, an image quality may deteriorate.
[0005] The vibration transmitted to the image forming unit may be generated by the image
forming unit itself, or may be generated by a unit other than the image forming unit.
For example, vibration may be generated in the transport unit for transporting the
recording medium to the image forming unit. The vibration generated in the transport
unit may be transmitted to the image forming unit through the frame supporting the
transport unit. Accordingly, the image forming unit is instantaneously shaken, and
thus it is difficult to maintain a stable image quality.
US20100135704 discloses a belt unit;
EP2031455 discloses an image forming apparatus and process cartridge;
US20090152791 discloses a recording medium conveying device;
EP0338590A2 discloses an ink jet recording apparatus;
JP2003191569 discloses an image forming apparatus having a supporting member for supporting a
deflection optical unit.
[Disclosure]
[Technical Problem]
[0006] One or more embodiments of the present general inventive concept include an electrophotographic
image forming apparatus, wherein a transport unit in which vibration is generated
and an image forming unit for forming an image are supported by one frame while vibration
is blocked from being directly transmitted between the transport unit and the image
forming unit.
[0007] Additional features and utilities of the present general inventive concept will be
set forth in part in the description which follows and, in part, will be apparent
from the description, or may be learned by practice of the general inventive concept.
Solution to Problem
[0008] The present invention is defined by the appended claims. The foregoing and/or other
features and utilities of the present general inventive concept may be achieved by
providing an electrophotographic image forming apparatus including,
inter alia, a recording medium storage unit in which a recording medium is stored, a pickup unit
to pick up the recording medium stored in the recording medium storage unit; a pair
of transport rollers being engaged with each other to rotate and transport the recording
medium picked up by the pickup unit, an image forming unit to form an image on the
recording medium transported by the pair of transport rollers, and a frame including
a first support region to support at least one of the pair of transport rollers, and
a second support region to support at least a part of the image forming unit, wherein
the frame further includes a vibration blocking slit that is disposed between the
first and second support regions and blocks vibration from being transmitted from
the first support region to the second support region.
[0009] At least a part of the vibration blocking slit may extend in a direction crossing
a direction in which the first support region faces the second support region.
[0010] A length of the vibration blocking slit may be 80% to 150% of an axial length of
a rotation shaft of the pair of transport rollers.
[0011] A distance between the vibration blocking slit and a rotation shaft of the pair of
transport rollers may be 1.5% to 30% of an axial length of the rotation shaft of the
pair of transport rollers.
[0012] One of the pair of transport rollers may be a first transport roller that rotates
to transport the recording medium, and the other one of the pair of transport rollers
may be a second transport roller that is rotated by the first transport roller.
[0013] The second transport roller may be supported by the first support region.
[0014] The electrophotographic image forming apparatus may further include a friction unit
disposed to face the pickup unit and provide a frictional force to the recording medium
transported between the pickup unit and the friction unit, in a direction opposite
to a transport direction.
[0015] The pair of transport rollers may support the recording medium when a rear edge of
the recording medium is released between the pickup unit and the friction unit.
[0016] In the frame, the first support region and the second support region may be integrally
formed.
[0017] The frame may further include a first sub-frame including the first support region,
and a second sub-frame including the second support region and separated from the
first sub-frame, wherein the first sub-frame and the second sub-frame may be fixed
by a fastening member.
[0018] The image forming unit may include: a photoconductive member; an exposure unit to
irradiate a light to the photoconductive member to form an electrostatic latent image;
a developing unit for forming a toner image on the photoconductive member by supplying
toner to the photoconductive member where the electrostatic latent image is formed;
and a transfer unit for transferring the toner image to a recording medium.
[0019] The exposure unit may be supported by the second support region.
[0020] The foregoing and/or other features and utilities of the present general inventive
concept may also be achieved by providing an image forming apparatus, comprising,
inter alia, a transport unit to transport a recording medium, an image forming unit to form an
image on the recording medium, and a frame having a first support region to support
at least a part of the transport unit, a second support region to support at least
a part of the image forming unit, and a vibration blocking portion disposed between
first support region and the second support region to block vibration from being transmitted
between the first support region and the second support region.
[0021] The image forming apparatus may further comprise a reinforcing member disposed in
the frame beneath or above the vibration blocking portion and spaced apart from a
path of vibration between the first and second support regions.
[0022] The frame, first support region and second support region may be integrally formed.
[0023] The frame may further comprise a first sub-frame including the first support region
and a second sub-frame including the second support region, being fastened to the
first sub-frame by a fastening member.
[0024] The vibration blocking portion may be a slit disposed in the first sub-frame.
[0025] The image forming unit may include an exposure unit to form a latent image on a surface
of a photoconductive member, the exposure unit being supported by the second support
region.
[0026] The transport unit may comprise one or more first transport rollers on a first rotation
shaft supported on side frames connected to the frame and one or more second transport
rollers on a second rotation shaft supported on the frame.
[0027] The vibration blocking portion may be disposed in a direction parallel to the first
and second rotation shafts.
[0028] The image forming apparatus may further comprise an elastic member having one end
supported on the frame and one end in contact with the second rotation shaft such
that the second rotation shaft is pressed toward the first rotation shaft.
[0029] The foregoing and/or other features and utilities of the present general inventive
concept may also be achieved by providing a frame unit of an image forming apparatus,
comprising,
inter alia, a first support region to support at least a part of a transport unit to transport
a recording medium, a second support region to support at least a part of an image
forming unit to form an image on the recording medium, and a vibration blocking portion
disposed between the first support region and the second support region to block vibration
from being transmitted between the first support region and the second support region.
[0030] The vibration portion may be a groove formed in a direction crossing a direction
in which the first support region faces the second support region.
Advantageous Effects of Invention
[0031] As described above, according to the one or more of the above embodiments of the
present general inventive concept, an electrophotographic image forming apparatus
that is capable of providing a stable image quality by using an image forming unit
supported by a same frame as a transport unit, even when vibration is generated in
the transport unit, may be realized.
Brief Description of Drawings
[0032] These and/or other features and utilities of the present general inventive concept
will become apparent and more readily appreciated from the following description of
the embodiments, taken in conjunction with the accompanying drawings in which:
FIG. 1 is a diagram of an electrophotographic image forming apparatus according to
an exemplary embodiment of the present general inventive concept;
FIGS. 2a through 2c are diagrams illustrating a recording medium being picked up by
a pickup unit and transported to a transport unit in the electrophotographic image
forming apparatus of FIG. 1 according to an exemplary embodiment of the present general
inventive concept;
FIG. 3 is a diagram of the recording medium being transported between the pickup unit
and a friction unit of FIG. 2C according to an exemplary embodiment of the present
general inventive concept;
FIG. 4 is an assembly perspective view illustrating the transport unit and an exposure
unit of the electrophotographic image forming apparatus of FIG. 1 being assembled
to a side frame and a base frame according to an exemplary embodiment of the present
general inventive concept;
FIG. 5 is a plan view of FIG. 4;
FIG. 6 is a cross-sectional view taken along line VI-VI of FIG. 5, according to an
exemplary embodiment of the present general inventive concept;
FIG. 7 is a cross-sectional view taken along line VI-VI of FIG. 5, according to another
exemplary embodiment of the present general inventive concept;
FIG. 8 is a cross-sectional view taken along line VIII-VIII of FIG. 5;
FIG. 9 is a diagram illustrating a process of a base frame blocking vibration transmission
according to an exemplary embodiment of the present general inventive concept;
FIGS. 10a and 10b are graphs illustrating acceleration values during printing, while
a second transport roller and an exposure unit are supported by a base frame on which
a vibration blocking slit is not formed, according to Comparative Example;
FIGS. 11a and 11b are graphs illustrating acceleration values during printing, while
a second transport roller and an exposure unit are supported by a base frame on which
a vibration blocking slit is formed, according to an exemplary embodiment of the present
general inventive concept; and
FIGS. 12a and 12b are diagrams of a vibration blocking slit according to exemplary
embodiments of the present general inventive concept.
Mode for the Invention
[0033] Reference will now be made in detail to embodiments of the present general inventive
concept, examples of which are illustrated in the accompanying drawings, wherein like
reference numerals refer to like elements throughout. In this regard, the present
embodiments may have different forms and should not be construed as being limited
to the descriptions set forth herein. Accordingly, the embodiments are merely described
below, by referring to the figures, to explain aspects of the present description.
Expressions such as "at least one of," when preceding a list of elements, modify the
entire list of elements and do not modify the individual elements of the list.
[0034] The matters defined in the description, such as detailed construction and elements,
are provided to assist in a comprehensive understanding of the exemplary embodiments.
Thus, it is apparent that the exemplary embodiments can be carried out without those
specifically defined matters. Also, functions or elements known in the related art
are not described in detail since they would obscure the exemplary embodiments with
unnecessary detail.
[0035] FIG. 1 illustrates an electrophotographic image forming apparatus 1000 according
to an exemplary embodiment of the present general inventive concept. The electrophotographic
image forming apparatus 1000 may be a monochromic image forming apparatus. A color
of toner may be black.
[0036] Referring to FIG. 1, the electrophotographic image forming apparatus 1000 includes
recording medium storage units 10 and 10A, pickup units 20 and 20A, a friction unit
30, a transport unit 40, an image forming unit 70, a fusing unit 80, and a discharge
unit 90.
[0037] The recording medium storage units 10 and 10A store a recording medium P, and supply
the recording medium P to the electrophotographic image forming apparatus 1000. For
example, the recording medium storage unit 10 may include a tray 11 that is detachably
attached to a body 1 of the electrophotographic image forming apparatus 1000, and
a knock-up plate 12 on which the recording medium P is stacked and enabling the recording
medium P to contact the pickup unit 20. The knock-up plate 12 is elastically pressed
towards the pickup unit 20 by an elastic member 13. As another example, the recording
medium storage unit 10A may include a plate 14 on which the recording medium P is
stacked to manually supply the recording medium P.
[0038] The pickup unit 20 picks up the recording medium P stored in the recording medium
storage unit 10. The pickup unit 20 may be a circular roller. The pickup unit 20 is
supported by a rotation shaft 21, and may be elastically transformed to form a nip
as an outer circumference of the pickup unit 20 faces the knock-up plate 12. The recording
medium P may be withdrawn from the recording medium storage unit 10 as the pickup
unit 20 rotates while the outer circumference of the pickup unit 20 contacts the recording
medium P.
[0039] The friction unit 30 is disposed to face the pickup unit 20. The friction unit 30
is pressed towards the pickup unit 20 by an elastic member 31. The friction unit 30
provides a frictional force to a rear surface of the recording medium P transported
between the friction unit 30 and the pickup unit 20, in a direction opposite to a
transport direction. Accordingly, when a plurality of recording media P are placed
between the friction unit 30 and the pickup unit 20, recording media P other than
the recording medium P directly contacting the pickup unit 20 are prevented from being
transported. In other words, the plurality of recording media P are prevented from
being overlappingly transported to the transport unit 40 at once.
[0040] A friction pad is an exemplary method that may be used by the friction unit 30. The
friction pad method is a relatively simple method of preventing the recording media
P from being overlappingly transported. However, the friction unit 30 may use other
methods, such as, for example, a retard roller method or a semi-retard roller method.
[0041] In FIG. 1, the pickup unit 20 is shown as a single roller having a partial region
in contact with the knock-up plate 12 and another partial region in contact with the
friction unit 30, but the present general inventive concept is not limited thereto.
Although not shown in FIG. 1, the pickup unit 20 may include a plurality of rollers,
for example, a pickup roller and a forward roller, wherein the pickup roller contacts
the knock-up plate 12 and the forward roller contacts the friction unit 30.
[0042] The transport unit 40 transports the recording medium P picked up by the pickup unit
20 to the image forming unit 70. The transport unit 40 is disposed at a position downstream
in the transport direction from the pickup unit 20 to the recording medium P, and
transports the recording medium P picked up by the pickup unit 20 towards the image
forming unit 70. The transport unit 40 includes a pair of first and second transport
rollers 50 and 60 facing each other. The pair of first and second transport rollers
50 and 60 may be engaged with each other and rotate.
[0043] At least one of the pair of first and second transport rollers 50 and 60 may rotate
by a driving unit (not shown). For example, the first transport roller 50 rotates
by receiving a driving force from the driving unit, and the second transport roller
60 may be rotated by the first transport roller 50. The transport unit 40 may perform
a registration function of aligning the recording media P, or a feeding function of
supplying the recording media P.
[0044] The image forming unit 70 may form an image on the recording medium P via an electrophotographic
method. The image forming unit 70 includes a photoconductive member 71, an exposure
unit 72, a developing unit 73, and a transfer unit 76. The developing unit 73 includes
a charging roller 74 and a developing roller 75.
[0045] The photoconductive member 71 is a photoconductor on which an electrostatic latent
image is formed, and may be obtained by forming a photoconductive and photosensitive
layer on an outer circumference of a cylindrical metal pipe.
[0046] The charging roller 74 charges a surface of the photoconductive member 71 at a uniform
electric potential. A charging bias is applied to the charging roller 74. The charging
roller 74 is an example of a charger, and a Corona charger may be used instead of
the charging roller 74.
[0047] The exposure unit 72 forms an electrostatic latent image by scanning a light modulated
according to image information on the surface of the photoconductive member 71 charged
at the uniform electric potential. The exposure unit 72 may be, for example, a laser
scanning unit (LSU) to scan a light irradiated from a laser diode on the photoconductive
member 71 after biasing the light in a main scanning direction by using a polygon
mirror.
[0048] The developing roller 75 develops the electrostatic latent image formed on the photoconductive
member 71 by supplying toner to the electrostatic latent image. Accordingly, a toner
image is formed on the surface of the photoconductive member 71.
[0049] The transfer unit 76 is disposed to face the surface of the photoconductive member
71. A transfer bias voltage is applied to the transfer unit 76. The toner image developed
on the surface of the photoconductive member 71 may be transferred to the recording
medium P while the recording medium P passes between the photoconductive member 71
and the transfer unit 76. A transfer roller may be used as the transfer unit 76, but
alternatively, for example, a Corona transfer unit may be used instead of the transfer
roller.
[0050] The toner image transferred to the surface of the recording medium P by the transfer
unit 76 stays on the surface of the recording medium P by electrostatic attraction.
By fusing the toner image on the recording medium P as the fusing unit 80 applies
heat and pressure to the toner image, a permanent printing image is formed on the
recording medium P.
[0051] The recording medium P that passed through the fusing unit 80 is discharged outside
the electrophotographic image forming apparatus 1000 by the discharge unit 90.
[0052] As described above, the recording medium P stored in the recording medium storage
unit 10 is transported to the image forming unit 70 through the pickup unit 20 and
the transport unit 40, and a predetermined image is formed on the recording medium
P while the recording medium P passes through the image forming unit 70.
[0053] FIGS. 2a through 2c are diagrams showing the recording medium P being picked up by
the pickup unit 20 and transported to the transport unit 40 in the electrophotographic
image forming apparatus 1000 of FIG. 1. A transport process of the recording medium
P and a process of generating vibration in the transport unit 40 during the transport
process of the recording medium P will now be described with reference to FIGS. 2a
through 2c.
[0054] Referring to FIG. 2a, the pickup unit 20 rotates to transport the recording medium
P. The pickup unit 20 frictionally-contacts the recording medium P stacked on the
knock-up plate 12 to transport the recording medium P towards the transport unit 40.
When the recording medium P passes between the pickup unit 20 and the friction unit
30, a frictional force is applied to a rear surface of the recording medium P by the
friction unit 30 in a direction opposite to a transport direction. If the plurality
of recording media P pass between the pickup unit 20 and the friction unit 30, the
recording media P other than the recording medium P directly contacting the pickup
unit 20 are prevented from being transported by the frictional force applied by the
friction unit 30.
[0055] Referring to FIG. 2b, after a front edge Pf of the recording medium P reaches the
transport unit 40, a driving signal transmitted to the pickup unit 20 is blocked so
as to transport the recording media P one-by-one to the image forming unit 70 at regular
intervals. Here, in order to smoothly transport the recording medium P, the transport
unit 40 rotates before the front edge Pf of the recording medium P reaches the transport
unit 40. When the driving signal is blocked, the pickup unit 20 no longer rotates
and idles by the frictional force with the recording medium P transported by the transport
unit 40. Here, whether the front edge Pf of the recording medium P reached the transport
unit 40 may be detected by any one of various methods. For example, a paper detecting
sensor (not shown) may be disposed at a position downstream of the transport unit
40, to detect whether the front edge Pf of the recording medium P reached the transport
unit 40.
[0056] While the driving signal is transmitted to the pickup unit 20, a transport speed
of the transport unit 40 may be faster than a transport speed of the pickup unit 20.
Here, a region of the recording medium P disposed between the transport unit 40 and
the pickup unit 20 may be loosened as shown by broken lines. Then, when the driving
signal transmitted to the pickup unit 20 is blocked, the pickup unit 20 is temporarily
stopped. According to the transport unit 40 having a faster transport speed than the
pickup unit 20 that is stopped, the loosened region of the recording medium P between
the transport unit 40 and the pickup unit 20 is tightened. Since the recording medium
P that is tightened is transported by the transport unit 40, the pickup unit 20 contacting
the recording medium P idles in a direction shown in a broken arrow by the frictional
force between the pickup unit 20 and the recording medium P.
[0057] FIG. 2c shows a rear edge Pb of the recording medium P disposed between the pickup
unit 20 and the friction unit 30. Referring to FIG. 2C, when the rear edge Pb of the
recording medium P transported by the transport unit 40 is released from between the
pickup unit 20 and the friction unit 30, the frictional force applied to the rear
edge Pb of the recording medium P is suddenly relieved, and thus the recording medium
P bounces in a direction opposite to the frictional force of the pickup unit 20 and
the friction unit 30. Accordingly, a shock is applied to the transport unit 40 supporting
the recording medium P, thereby generating vibration.
[0058] FIG. 3 is a diagram of the recording medium P being transported between the pickup
unit 20 and the friction unit 30 of FIG. 2C. Referring to FIG. 3, a nip is formed
between the friction unit 30 and the pickup unit 20 as an outer circumference of the
pickup unit 20 is elastically transformed.
[0059] The rear edge Pb of the recording medium P is disposed in a region N1 of the nip,
and thus the pickup unit 20 and the friction unit 30 do not directly contact each
other in the region N1, but the pickup unit 20 and the friction unit 30 directly contact
each other in a region N2 of the nip. As such, since the pickup unit 20 and the friction
unit 30 directly contact each other in the region N2, the idle of the pickup unit
20 described with reference to FIG. 2b is restricted. In other words, despite the
pickup unit 20 contacting the recording medium P transported by the transport unit
40, the pickup unit 20 may instantaneously stop or slowly rotate. When the recording
medium P is released from between the friction unit 30 and the pickup unit 20 in such
a state, a shock may be applied to the transport unit 40, and thus the transport unit
40 may further vibrate.
[0060] The above embodiment is described with an example of vibrations caused by the pickup
unit 20 and the friction unit 30, which are disposed adjacent to the tray 11 that
is detachably attached to the body 1, but causes of vibration are not limited thereto
and may vary. For example, the transport unit 40 may vibrate while the recording medium
P is released between the pickup unit 20A and a friction unit 30A, which are disposed
adjacent to the plate 14 of the recording medium storage unit 10A of FIG. 1. A reference
numeral 31A denotes an elastic member that pressurizes the friction unit 30A, and
a reference numeral 21A denotes a rotation shaft of the pickup unit 20A. In another
example, the transport unit 40 may vibrate while the recording medium P is released
from between the knock-up plate 12 and the pickup unit 20.
[0061] FIG. 4 is an assembly perspective view showing the transport unit 40 and the exposure
unit 72 of the electrophotographic image forming apparatus 1000 of FIG. 1 being assembled
to a side frame 200 and a base frame 100, and FIG. 5 is a plan view of FIG. 4. A support
structure of the transport unit 40 where vibration is generated, and a relationship
between the transport unit 40 and the exposure unit 72 will now be described with
reference to FIGS. 4 and 5. Here, the exposure unit 72 is used as the image forming
unit 70 supported by the base frame 100 that supports the transport unit 40, but the
exposure unit 72 may be applied to at least one of the photoconductive member 71,
the developing unit 73, and the transfer unit 76, which are other components of the
image forming unit 70.
[0062] FIGS. 4 and 5 show the side frames 200 supporting the first transport roller 50,
and the base frame 100 supporting the second transport roller 60 and the exposure
unit 72. The side frames 200 are disposed on two sides of the base frame 100.
[0063] A plurality of the first transport rollers 50 are disposed on a rotation shaft 51
at regular intervals. The first transport roller 50 is supported by the rotation shaft
51, and two ends of the rotation shaft 51 are supported by the side frames 200. A
driving gear 52 is disposed on at least one of the two ends of the rotation shaft
51 and is connected to a driving gear 53 provided at the side frame 200, thereby receiving
a driving force from a driving unit (not shown).
[0064] A plurality of the second transport rollers 60 are disposed on a rotation shaft 61
at regular intervals. The plurality of second transport rollers 60 correspond to the
plurality of first transport rollers 50. The first and second transport rollers 50
and 60 are pressed and contact each other by an elastic member 62 that pressurizes
the rotation shaft 61 of the second transport roller 60. The elastic member 62 may
be a spring. A nip is formed between the first and second transport rollers 50 and
60 that contact each other and are pressed together by the elastic member 62, and
the recording medium P is transported to the image forming unit 70 of FIG. 1 by a
frictional force generated in the nip.
[0065] The second transport roller 60 is supported by the rotation shaft 61, and the rotation
shaft 61 is supported by the base frame 100. The rotation shaft 61 is pressed towards
the first transport roller 50 by the elastic member 62, while a weight of the rotation
shaft 61 is supported by a plurality of lower supports 111 formed at the base frame
100. Referring to FIG. 8, an end 62b of the elastic member 62 contacts the rotation
shaft 61 while an end 62a of the elastic member 62 is fixed to the base frame 100.
Two ends of the rotation shaft 61 are inserted into side supports 112 formed at the
base frame 100. A location of the rotation shaft 61 is restricted by the side supports
112.
[0066] Vibration generated in the first and second transport rollers 50 and 60 when the
recording medium P is released from between the pickup unit 20 and the friction unit
30 is transported to the side frames 200 supporting the rotation shaft 51 of the first
transport roller 50 and to the base frame 100 supporting the rotation shaft 61 of
the second transport roller 60.
[0067] A shock applied to the first transport roller 50 is transmitted to the side frames
200 along the rotation shaft 51. Vibration transmitted to the side frames 200 may
be transmitted to the base frame 100 which is fixed and connected to the side frames
200, but may considerably disappear while being transmitted along the side frames
200. Thus, the vibration does not actually affect the exposure unit 72 supported by
the base frame 100.
[0068] Vibration applied to the second transport roller 60 is transmitted to the base frame
100 along the rotation shaft 61. In detail, since the rotation shaft 61 of the second
transport roller 60 is supported by the elastic member 62 providing an elastic force
towards the first transport roller 50, vibration is transmitted to the base frame
100 along the elastic member 62.
[0069] The second transport roller 60 and the exposure unit 72 may be supported by the base
frame 100. The base frame 100 includes a first support region 110 for supporting the
second transport roller 60 and a second support region 120 for supporting the exposure
unit 72. The lower support 111 to support the rotation shaft 61 of the second transport
roller 60, the side support 112, and a support 113 to support the elastic member 62
may be formed in the first support region 110. A plurality of supports 121 to support
the exposure unit 72 may be formed in the second support region 120.
[0070] As such, when the second transport roller 60 and the exposure unit 72 are supported
by the base frame 100, vibration generated in the second transport roller 60 needs
to be blocked from being transmitted to the exposure unit 72. If the vibration generated
in the second transport roller 60 is transmitted to the exposure unit 72, the exposure
unit 72 vibrates, and thus an electrostatic latent image formed on the photoconductive
member 71 may be affected.
[0071] In order to prevent the vibration generated in the second transport roller 60 from
being directly transmitted to the exposure unit 72 along the base frame 100, a vibration
blocking slit 130 may be formed between the first and second support regions 110 and
120.
[0072] The vibration blocking slit 130 has a function of blocking vibration transmitted
from the second transport roller 60 to the first support region 110 from being directly
transmitted to the second support region 120. The vibration blocking slit 130 may
be formed by removing a partial region of the base frame 100 on a path where vibration
is directly transmitted from the first support region 110 to the second support region
120, thereby preventing the vibration from being directly transmitted to the second
support region 120. By using the vibration blocking slit 130, the vibration transmitted
to the second support region 120 detours at the vibration blocking slit 130, and may
considerably disappear. Accordingly, an image quality is prevented from being deteriorated
due to vibration of the exposure unit 72.
[0073] The vibration blocking slit 130 may be formed in a direction crossing a direction
in which the first support region 110 faces the second support region 120. For example,
the vibration blocking slit 130 may extend in a direction (x-axis direction) perpendicular
to a direction (y-axis direction) in which the first support region 110 faces the
second support region 120.
[0074] FIG. 6 is a cross-sectional view taken along line VI-VI of FIG. 5, according to an
exemplary embodiment of the present general inventive concept, FIG. 7 is a cross-sectional
view taken along line VI-VI of FIG. 5, according to another exemplary embodiment of
the present general inventive concept, and FIG. 8 is a cross-sectional view taken
along line VIII-VIII of FIG. 5.
[0075] Referring to FIG. 6, the second transport roller 60 is supported in the first support
region 110 of the base frame 100, and the exposure unit 72 is supported in the second
support region 120.
[0076] The base frame 100 may connect the first and second support regions 110 and 120 directly
to each other without using the side frames 200. For example, as shown by FIG. 6,
in the base frame 100, the first and second support regions 110 and 120 may be integrally
formed. Alternatively, the first and second support regions 110 and 120 may be connected
to each other. For example, as shown by FIG. 7, the base frame 100 may include a first
sub-frame 101 including the first support region 110 and a second sub-frame 102 including
the second support region 120 and separated from the first support region 101, wherein
the first and second sub-frames 101 and 102 are fixed by a fastening member 103. The
fastening member 103 may be a bolt, but is not limited thereto. The vibration blocking
slit 130 may be disposed within the first sub-frame 101 in order to further isolate
the second support region from vibrations.
[0077] Referring back to FIG. 6, the first support region 110 includes the lower support
111 protruding upward and supporting a weight of the rotation shaft 61 of the second
transport roller 60. The second support region 120 includes the support 121 protruding
upward and supporting the exposure unit 72. The vibration blocking slit 130 is formed
between the first and second support regions 110 and 120, and blocks vibration from
being directly transmitted from the first support region 110 to the second support
region 120.
[0078] A reinforcing member 150 may be provided at the base frame 100, for example, disposed
above or below and parallel to the vibration blocking slit 130. By using the reinforcing
member 150, an intensity of the base frame 100 may be prevented from being deteriorated
when the vibration blocking slit 130 is formed. Here, in order to prevent vibration
blocked by the vibration blocking slit 130 from being transmitted through the reinforcing
member 150, the reinforcing member 150 may be disposed spaced apart from a path of
vibration between the first support region 110 and second support region 120.
[0079] Referring to FIG. 8, the rotation shaft 61 of the second transport roller 60 is pressed
towards the first transport roller 50 by the elastic member 62. While the end 62a
of the elastic member 62 is supported by the support 113 of the base frame 100, the
end 62b contacts the rotation shaft 61 of the second transport roller 60, thereby
pressing the rotation shaft 61 of the second transport roller 60. Since the second
transport roller 60 is pressed towards the first transport roller 50 by an elastic
force of the elastic member 62, when vibration is generated in at least one of the
first and second transport rollers 50 and 60, a shock is transmitted to the base frame
100 through the elastic member 62.
[0080] Vibration may be partially absorbed by the elastic member 62 while the vibration
is transmitted to the base frame 100 through the elastic member 62. However, since
the elastic member 62 strongly presses the rotation shaft 61 of the second transport
roller 60, the vibration absorbed by the elastic member 62 is extremely small, and
most of the vibration is transmitted to the support 113 of the base frame 100. Vibration
transmitted to the support 113 may be transmitted in a direction indicated by an arrow
A along the base frame 100, but the vibration transmitted in the direction indicated
by the arrow A along the base frame 100 is blocked by the vibration blocking slit
130 having a width W.
[0081] FIG. 9 is a diagram for describing a process of the base frame 100 blocking vibration
transmission, and showing a part of the base frame 100 of FIG. 5. Referring to FIG.
9, vibration generated in the second transport roller 60 is transmitted to the elastic
member 62, and the vibration transmitted to the elastic member 62 is transmitted in
a direction indicated by arrows A along the base frame 100 through the support 113.
The vibration transmitted in the direction indicated by the arrows A is blocked from
being directly transmitted to the second support region 120 by the vibration blocking
slit 130. Vibration generated in the first support region 110 may dissipate while
detouring the vibration blocking slit 130, and thus does not actually affect the exposure
unit 72 supported in the second support region 120.
[0082] Also, the vibration generated in the second transport roller 60 may be transmitted
to the plurality of lower supports 111 without passing through the elastic member
62. The vibration transmitted to the lower support 111 is also blocked from being
directly transmitted to the second support region 120 by the vibration blocking slit
130. Accordingly, the vibration generated in the first support region 110 does not
actually affect the exposure unit 72 supported in the second support region 120.
[0083] If the vibration blocking slit 130 is not formed in the base frame 100, vibration
may be directly transmitted from the first support region 110 to the second support
region 120 along the base frame 100, and thus the exposure unit 72 supported in the
second support region 120 may vibrate.
[0084] However, according to the current embodiment, a shock is blocked from being transmitted
by using the vibration blocking slit 130 formed between the first and second support
regions 110 and 120, and thus vibration of the exposure unit 72 may be reduced.
[0085] The vibration blocking slit 130 may extend in a direction crossing a direction in
which the first support region 110 faces the second support region 120. A shape of
the vibration blocking slit 130 may be rectangular as shown by FIG. 9. However, the
shape of the vibration blocking slit 130 is not limited thereto, and may vary like
vibration blocking slits 130A and 130B of FIGS. 12a and 12b.
[0086] Referring back to FIG. 9, a length LH of the vibration blocking slit 130 may be 80%
to 150% of an axial length LS of the rotation shaft 61 of the second transport roller
60. For example, when the axial length LS of the rotation shaft 61 of the second transport
roller 60 is about 300 mm, the length LH of the vibration blocking slit 130 may be
from about 240 mm to about 450 mm. When the length LH of the vibration blocking slit
130 is lower than 80% of the axial length LS, it may be difficult to block vibration
from being transmitted to the exposure unit 72. In detail, the vibration generated
in the second transport roller 60 may be transmitted through the plurality of lower
supports 111 supporting the bottom of the second transport roller 60, as well as through
the elastic member 62. When the length LH is lower than 80% of the axial length LS,
the vibration transmitted through the lower support 111 may not be blocked and may
be transmitted to the second support region 120, and thus the vibration transmitted
to the exposure unit 72 may not be effectively blocked. When the length LH is higher
than 150% of the axial length LS, the vibration may be effectively blocked, but a
size of the base frame 100 is increased, thereby increasing a size of the electrophotographic
image forming apparatus 1000.
[0087] The width W of the vibration blocking slit 130 may be from about 0.3 mm to about
200 mm. When the width W is less than 0.3 mm, it may be difficult to form the vibration
blocking slit 130. When the width W is higher than 200 mm, a length of an optical
path between the exposure unit 72 and the photoconductive member 71 may be increased.
[0088] A distance D between the vibration blocking slit 130 and the rotation shaft 61 of
the second transport roller 60 may be from about 1.5% to about 30% of the axial length
LS. For example, when the axial length LS is about 300 mm, the distance D may be from
about 5 mm to about 90 mm. When the distance D is less than 1.5% of the axial length
LS, a space for the first support region 110 may be decreased, and thus it may be
difficult to stably support the rotation shaft 61 of the second transport roller 60.
When the distance D is higher than 30% of the axial length LS, it is difficult to
block vibration transmitted to the second support region 120 at an early stage.
[0089] In FIG. 9, the rotation shaft 61 of the second transport roller 60 is a single member,
but alternatively, the rotation shaft 61 of the second transport roller 60 may include
a plurality of members that are spaced apart from each other in an axial direction.
In such a case, the axial length LS denotes an overall length of the plurality of
members in the axial direction.
[0090] FIGS. 10a and 10b are graphs showing acceleration values during printing, while the
second transport roller 60 and the exposure unit 72 are supported by the base frame
100 in which the vibration blocking slit 130 is not formed, according to Comparative
Example, and FIGS. 11a and 11b are graphs showing acceleration values during printing
while the second transport roller 60 and the exposure unit 72 are supported by the
base frame 100 in which the vibration blocking slit 130 is formed, according to an
exemplary embodiment of the present general inventive concept.
[0091] The base frame 100 according to the current embodiment includes the vibration blocking
slit 130 whose distance D from the rotation shaft 61 of the second transport roller
60 is about 31 mm, length LH is about 310 mm, and width W is about 5 mm, whereas the
base frame 100 according to Comparative Example does not include the vibration blocking
slit 130. Other components of an image forming apparatus according to the current
embodiment and Comparative Example are configured as shown by FIG. 1, and the acceleration
values were measured for about 8 seconds.
[0092] In FIGS. 10a and 11a, acceleration values of the rotation shaft 61 of the pickup
unit 20 are measured, and changes of the acceleration values of the pickup unit 20
during printing are shown. Referring to FIG. 10a, an acceleration value having a predetermined
value starts to be measured from around 1 second after the image forming apparatus
is turned on. Then, a first peak P1S, wherein an acceleration value suddenly increases,
occurs around 3 seconds when a driving signal is transmitted to the pickup unit 20.
Then, the acceleration value decreases, and a second peak P2S, wherein an acceleration
value suddenly increases, occurs around 4 seconds when the driving signal transmitted
to the pickup unit 20 is blocked. Then, the acceleration value again decreases, and
a third peak P3S, wherein an acceleration value suddenly increase, occurs around 5.3
seconds when the rear edge Pb of the recording medium P is released from between the
pickup unit 20 and the friction unit 30. In FIG. 11a, the first through third peaks
PIS through P3S show similar aspects, despite of small differences in acceleration
values.
[0093] In FIGS. 10b and 11b, acceleration values of the second support region 120 where
the exposure unit 72 is supported are measured, and changes of the acceleration values
of the second support region 120 in which the exposure unit 72 is supported during
printing are shown.
[0094] Referring to FIG. 10b, an acceleration value starts to be measured around 1 second
after the image forming apparatus is turned on, like FIG. 10a. Then, a first peak
P1L, wherein an acceleration value suddenly increases, occurs around 4 seconds when
a driving signal transmitted to the pickup unit 20 is blocked. Then, an acceleration
value decreases, and a second peak P2L, wherein an acceleration value suddenly increases,
occurs around 5.3 seconds when the rear edge Pb of the recording medium P is released
from between the pickup unit 20 and the friction unit 30. The acceleration value is
about 4 m/s
2 at the first peak P1L, and is about 7 m/s
2 at the second peak P2L.
[0095] On the other hand, referring to FIG. 11b, the change of the acceleration values of
the second support region 120 of the base frame 100 including the vibration blocking
slit 130 is completely different from that of FIG. 10b. In detail, an acceleration
value starts to be measured after the image forming apparatus is turned on, but most
acceleration values were lower than 2 m/s
2, and a maximum value of an acceleration value was about 2.36 m/s
2. In the second support region 120 of the base frame 100 including the vibration blocking
slit 130, an acceleration value is maintained lower than 2.5 m/s
2 not only around 4 seconds when a driving signal is blocked in the pickup unit 20,
but also around 5.3 seconds when the rear edge Pb of the recording medium P is released
from between the pickup unit 20 and the friction unit 30. In other words, the first
and second peaks P1L and P2L of FIG. 10b are not shown in FIG. 11b. Considering that
a size of an acceleration value is proportional to a force, sudden vibration is not
applied to the second support region 120 in FIG. 11b. Accordingly, the vibration blocking
slit 130 formed in the base frame 100 effectively blocks vibration from being transmitted
to the second support region 120.
[0096] As described above, according to the one or more of the above embodiments of the
present general inventive concept, an electrophotographic image forming apparatus
that is capable of providing a stable image quality by using an image forming unit
supported by a same frame as a transport unit, even when vibration is generated in
the transport unit, may be realized.
[0097] While one or more embodiments of the present general inventive concept have been
described with reference to the figures, it will be understood by those of ordinary
skill in the art that various changes in form and details may be made therein without
departing from the present general inventive concept,the scope of which is defined
by the following claims.
1. An electrophotographic image forming apparatus comprising:
a recording medium storage unit (10/10A) operable to store a recording medium (P);
a pickup unit (20/20A) to pick up the recording medium (P) stored in the recording
medium storage unit (10/10A);
a transport unit (40) comprising a first transport roller (50) and a second transport
roller (60), the first and second transport rollers (50, 60) being engaged with each
other, to rotate and transport the recording medium (P) picked up by the pickup unit
(20/20A); and
an image forming unit (70) to form an image on the recording medium (P) transported
by the pair of transport rollers (40);
characterised in that the electrophotographic image forming apparatus comprises a base frame (100) comprising
a first support region (110) to support the second transport roller (60), and a second
support region (120) to support at least a part of the image forming unit (70), and
side frames (200) supporting the first transport roller (50), the side frames (200)
being disposed on two sides of the base frame (100);
wherein the base frame (100) connects the first support region (110) and the second
support region (120) directly to each other without using the side frames (200), and
wherein the base frame (100) further comprises a vibration blocking slit (130) that
is disposed between the first and second support regions (110,120) and adapted to
block vibrations that are generated in the transport unit (40) when the recording
medium is released from the pickup unit and are transmitted from the second transport
roller (60) to the first support region (110) from being directly transmitted through
the base frame (100) from the first support region (110) to the second support region
(120).
2. The electrophotographic image forming apparatus of claim 1, wherein at least a part
of the vibration blocking slit extends in a direction crossing a direction in which
the first support region faces the second support region.
3. The electrophotographic image forming apparatus of claim 1, wherein a length of the
vibration blocking slit is 80% to 150% of an axial length of a rotation shaft of the
pair of transport rollers.
4. The electrophotographic image forming apparatus of claim 1, wherein a distance between
the vibration blocking slit and a rotation shaft of the pair of transport rollers
is 1.5% to 30% of an axial length of the rotation shaft of the pair of transport rollers.
5. The electrophotographic image forming apparatus of claim 1, wherein the first transport
roller is configured to rotate to transport the recording medium, and the second transport
roller is configured to be rotated by the first transport roller.
6. The electrophotographic image forming apparatus of claim 1, further comprising a friction
unit disposed to face the pickup unit and provide a frictional force to the recording
medium transported between the pickup unit and the friction unit, in a direction opposite
to a transport direction.
7. The electrophotographic image forming apparatus of claim 6, wherein the pair of transport
rollers support the recording medium when a rear edge of the recording medium is released
between the pickup unit and the friction unit.
8. The electrophotographic image forming apparatus of claim 1, wherein in the base frame,
the first support region and the second support region are integrally formed.
9. The electrophotographic image forming apparatus of claim 1, wherein the base frame
further comprises a first sub-frame including the first support region, and a second
sub-frame including the second support region and separated from the first sub-frame,
wherein the first sub-frame and the second sub-frame are fixed by a fastening member.
10. The electrophotographic image forming apparatus of claim 1, wherein the image forming
unit comprises:
a photoconductive member;
an exposure unit for irradiating a light to the photoconductive member to form an
electrostatic latent image;
a developing unit for forming a toner image on the photoconductive member by supplying
toner to the photoconductive member where the electrostatic latent image is formed;
and
a transfer unit for transferring the toner image to a recording medium.
11. The electrophotographic image forming apparatus of claim 10, wherein the exposure
unit is supported by the second support region.
12. A frame unit of an image forming apparatus, comprising:
side frames (200) for supporting a first transport roller,
characterised in that the frame unit comprises a base frame (100) comprising a first support region (110)
to support a second transport roller (60) to engage with the first transport roller
(50) for transporting a recording medium (P) and a second support region (120) to
support at least a part of an image forming unit (70) to form an image on the recording
medium (P),
the side frames (200) being disposed on two sides of the base frame (100) and the
base frame (100) connecting the first support region (110) and the second support
region (110) directly to each other without using the side frames (200), and
a vibration blocking slit (130) disposed between the first support region (110) and
the second support region (120) to block vibrations that are generated in the first
transport roller (50) and the second transport roller (60) when the recording medium
is released from a pickup unit and are transmitted from the second transport roller
(60) to the first support region (110) from being transmitted directly through the
base frame (100) to the second support region (120).
13. The frame unit of claim 12, wherein at least a part of the vibration blocking slit
extends in a direction crossing a direction in which the first support region faces
the second support region.
1. Elektrofotografische Bilderzeugungsvorrichtung, die Folgendes umfasst:
eine Aufzeichnungsmedium-Speichereinheit (10/10A), die zum Speichern eines Aufzeichnungsmediums
(P) betreibbar ist;
eine Aufnahmeeinheit (20/20A) zum Aufnehmen des in der Aufzeichnungsmedium-Speichereinheit
(10/10A) gespeicherten Aufzeichnungsmediums (P);
eine Transporteinheit (40), die eine erste Transportrolle (50) und eine zweite Transportrolle
(60) umfasst, wobei die erste und die zweite Transportrolle (50, 60) miteinander in
Eingriff stehen, um das Aufzeichnungsmedium (P) zu drehen und zu transportieren, das
von der Aufnahmeeinheit (20/20A) aufgenommen wurde; und
eine Bilderzeugungseinheit (70) zum Erzeugen eines Bildes auf dem Aufzeichnungsmedium
(P), das von dem Transportrollenpaar (40) transportiert wird;
dadurch gekennzeichnet, dass die elektrofotografische Bilderzeugungsvorrichtung einen Grundrahmen (100) umfasst,
der einen ersten Stützbereich (110) zum Stützen der zweiten Transportrolle (60) und
einen zweiten Stützbereich (120) zum Stützen mindestens eines Teils der Bilderzeugungseinheit
(70) umfasst und
Seitenrahmen (200), die die erste Transportrolle (50) stützen, wobei die Seitenrahmen
(200) auf zwei Seiten des Grundrahmens (100) angeordnet sind;
wobei der Grundrahmen (100) den ersten Stützbereich (110) und den zweiten Stützbereich
(120) ohne Verwendung der Seitenrahmen (200) direkt miteinander verbindet, und
wobei der Grundrahmen (100) ferner einen Schwingungsblockierschlitz (130) umfasst,
der zwischen dem ersten und dem zweiten Stützbereich (110, 120) angeordnet ist und
geeignet ist, um Schwingungen zu blockieren, die in der Transporteinheit (40) erzeugt
werden, wenn das Aufzeichnungsmedium von der Aufnahmeeinheit freigegeben wird, und
die von der zweiten Transportrolle (60) auf den ersten Stützbereich (110) übertragen
werden, damit sie nicht direkt durch den Grundrahmen (100) von dem ersten Stützbereich
(110) auf den zweiten Stützbereich (120) übertragen werden.
2. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei sich mindestens
ein Teil des Schwingungsblockierschlitzes in einer Richtung erstreckt, die eine Richtung
kreuzt, in der der erste Stützbereich dem zweiten Stützbereich zugewandt ist.
3. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei eine Länge des
Schwingungsblockierschlitzes 80% bis 150% einer axialen Länge einer Drehwelle des
Transportrollenpaares beträgt.
4. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei ein Abstand
zwischen dem Schwingungsblockierschlitz und einer Drehwelle des Transportrollenpaares
1,5% bis 30% einer axialen Länge der Drehwelle des Transportrollenpaars beträgt.
5. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei die erste Transportrolle
ausgestaltet ist, sich zu drehen, um das Aufzeichnungsmedium zu transportieren, und
die zweite Transportrolle ausgestaltet ist, um durch die erste Transportrolle gedreht
zu werden.
6. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, die ferner eine Reibungseinheit
umfasst, die so angeordnet ist, dass sie der Aufnahmeeinheit zugewandt ist und dem
zwischen der Aufnahmeeinheit und der Reibungseinheit transportierten Aufzeichnungsmedium
eine Reibungskraft entgegengesetzt zu einer Transportrichtung verleiht.
7. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 6, wobei das Transportrollenpaar
das Aufzeichnungsmedium stützt, wenn eine Hinterkante des Aufzeichnungsmediums zwischen
der Aufnahmeeinheit und der Reibungseinheit freigegeben wird.
8. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei in dem Grundrahmen
der erste Stützbereich und der zweite Stützbereich einstückig ausgebildet sind.
9. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei der Grundrahmen
ferner einen ersten Hilfsrahmen, der den ersten Stützbereich enthält, und einen zweiten
Hilfsrahmen, der den zweiten Stützbereich enthält und von dem ersten Hilfsrahmen getrennt
ist, umfasst,
wobei der erste Hilfsrahmen und der zweite Hilfsrahmen durch ein Befestigungselement
befestigt sind.
10. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 1, wobei die Bilderzeugungseinheit
Folgendes umfasst:
ein fotoleitendes Element;
eine Belichtungseinheit zum Bestrahlen des fotoleitenden Elements mit Licht, um ein
elektrostatisches latentes Bild zu bilden;
eine Entwicklungseinheit zum Erzeugen eines Tonerbildes auf dem fotoleitenden Element
durch Zuführen von Toner zu dem fotoleitenden Element, wo das elektrostatische latente
Bild gebildet ist; und
eine Übertragungseinheit zum Übertragen des Tonerbildes auf ein Aufzeichnungsmedium.
11. Elektrofotografische Bilderzeugungsvorrichtung nach Anspruch 10, wobei die Belichtungseinheit
von dem zweiten Stützbereich gestützt wird.
12. Rahmeneinheit einer Bilderzeugungsvorrichtung, die Folgendes umfasst:
Seitenrahmen (200) zum Stützen einer ersten Transportrolle,
dadurch gekennzeichnet, dass die Rahmeneinheit einen Grundrahmen (100) umfasst, der einen ersten Stützbereich
(110), um eine zweite Transportrolle (60) zu stützen, um mit der ersten Transportrolle
(50) zum Transportieren eines Aufzeichnungsmediums (P) in Eingriff zu kommen, und
einen zweiten Stützbereich (120) umfasst, um mindestens einen Teil einer Bilderzeugungseinheit
(70) zu stützen, um ein Bild auf dem Aufzeichnungsmedium (P) zu bilden,
wobei die Seitenrahmen (200) auf zwei Seiten des Grundrahmens (100) angeordnet sind
und der Grundrahmen (100) den ersten Stützbereich (110) und den zweiten Stützbereich
(110) ohne Verwendung der Seitenrahmen (200) direkt miteinander verbindet, und
einen Schwingungsblockierschlitz (130), der zwischen dem ersten Stützbereich (110)
und dem zweiten Stützbereich (120) angeordnet ist, um Schwingungen zu blockieren,
die in der ersten Transportrolle (50) und der zweiten Transportrolle (60) erzeugt
werden, wenn das Aufzeichnungsmedium von einer Aufnahmeeinheit freigegeben wird, und
die von der zweiten Transportrolle (60) auf den ersten Stützbereich (110) übertragen
werden, damit sie nicht direkt durch den Grundrahmen (100) auf den zweiten Stützbereich
(120) übertragen werden.
13. Rahmeneinheit nach Anspruch 12, wobei sich mindestens ein Teil des Schwingungsblockierschlitzes
in einer Richtung erstreckt, die eine Richtung kreuzt, in der der erste Stützbereich
dem zweiten Stützbereich zugewandt ist.
1. Appareil de formation d'image électrophotographique comprenant :
une unité de stockage de support d'enregistrement (10/10A) pouvant servir à stocker
un support d'enregistrement (P) ;
une unité de collecte (20/20A) destinée à collecter le support d'enregistrement (P)
stocké dans l'unité de stockage de support d'enregistrement (10/10A) ;
une unité de transport (40) comprenant un premier rouleau de transport (50) et un
second rouleau de transport (60), les premier et second rouleaux de transport (50,
60) étant mutuellement associés de manière à tourner et transporter le support d'enregistrement
(P) collecté par l'unité de collecte (20/20A) ; et
une unité de formation d'image (70) destinée à former une image sur le support d'enregistrement
(P) transporté par la paire de rouleaux de transport (40) ;
l'appareil de formation d'image électrophotographique comprenant un cadre de base
(100) comprenant une première région de support (110) pour soutenir le second rouleau
de transport (60), et une seconde région de support (120) pour soutenir au moins une
partie de l'unité de formation d'image (70), et
des cadres latéraux (200) soutenant le premier rouleau de transport (50), les cadres
latéraux (200) étant disposés sur deux côtés du cadre de base (100) ;
le cadre de base (100) reliant directement la première région de support (110) et
la seconde région de support (120) sans utiliser les cadres latéraux (200), et
le cadre de base (100) comprenant en outre une fente de blocage de vibration (130)
qui est disposée entre les première et seconde régions de support (110, 120) et adaptée
pour empêcher les vibrations qui sont générées dans l'unité de transport (40) lorsque
le support d'enregistrement est libéré de l'unité de collecte et qui sont transmises
du second rouleau de transport (60) à la première région de support (110) d'être directement
transmises à travers le cadre de base (100) de la première région de support (110)
à la seconde région de support (120).
2. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel au moins une partie de la fente de blocage de vibration s'étend dans une direction
traversant une direction dans laquelle la première région de support fait face à la
seconde région de support.
3. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel une longueur de la fente de blocage de vibration est de 80 % à 150 % d'une
longueur axiale d'un arbre de rotation de la paire de rouleaux de transport.
4. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel une distance entre la fente de blocage de vibration et un arbre de rotation
de la paire de rouleaux de transport est de 1,5 % à 30 % d'une longueur axiale de
l'arbre de rotation de la paire de rouleaux de transport.
5. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel le premier rouleau de transport est configuré pour tourner pour transporter
le support d'enregistrement, et le second rouleau de transport est configuré pour
être mis en rotation par le premier rouleau de transport.
6. Appareil de formation d'image électrophotographique selon la revendication 1, comprenant
en outre une unité de frottement disposée pour faire face à l'unité de collecte et
fournir une force de frottement au support d'enregistrement transporté entre l'unité
de collecte et l'unité de friction, dans une direction opposée à une direction de
transport.
7. Appareil de formation d'image électrophotographique selon la revendication 6, dans
lequel la paire de rouleaux de transport soutient le support d'enregistrement lorsqu'un
bord arrière du support d'enregistrement est libéré entre l'unité de collecte et l'unité
de frottement.
8. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel dans le cadre de base, la première région de support et la seconde région de
support sont formées d'un seul tenant.
9. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel le cadre de base comprend en outre un premier sous-cadre comprenant la première
région de support, et un second sous-cadre comprenant la seconde région de support
et séparé du premier sous-cadre,
dans lequel le premier sous-cadre et le second sous-cadre sont fixés par un élément
de fixation.
10. Appareil de formation d'image électrophotographique selon la revendication 1, dans
lequel l'unité de formation d'image comprend :
un élément photoconducteur ;
une unité d'exposition destinée à irradier une lumière vers l'élément photoconducteur
pour former une image latente électrostatique ;
une unité de développement destinée à former une image de toner sur l'élément photoconducteur
en délivrant le toner à l'élément photoconducteur où l'image latente électrostatique
est formée ; et
une unité de transfert destinée à transférer l'image de toner sur un support d'enregistrement.
11. Appareil de formation d'image électrophotographique selon la revendication 10, dans
lequel l'unité d'exposition est soutenue par la seconde région de support.
12. Unité de cadre d'un appareil de formation d'image, comprenant :
des cadres latéraux (200) pour soutenir un premier rouleau de transport,
unité de cadre comprenant un cadre de base (100) comprenant une première région de
support (110) pour soutenir un second rouleau de transport (60) pour s'engager avec
le premier rouleau de transport (50) pour transporter un support d'enregistrement
(P) et une seconde région de support (120) pour soutenir au moins une partie d'une
unité de formation d'image (70) pour former une image sur le support d'enregistrement
(P),
les cadres latéraux (200) étant disposés sur deux côtés du cadre de base (100) et
le cadre de base (100) reliant directement la première région de support (110) et
la seconde région de support (110) sans utiliser les cadres latéraux (200), et
une fente de blocage de vibration (130) disposée entre la première région de support
(110) et la seconde région de support (120) pour empêcher les vibrations qui sont
générées dans le premier rouleau de transport (50) et le second rouleau de transport
(60) lorsque le support d'enregistrement est libéré d'une unité de collecte et qui
sont transmises du second rouleau de transport (60) à la première région de support
(110) d'être directement transmises à travers le cadre de base (100) à la seconde
région de support (120).
13. Unité de cadre selon la revendication 12, dans laquelle au moins une partie de la
fente de blocage de vibration s'étend dans une direction traversant une direction
dans laquelle la première région de support fait face à la seconde région de support.