BACKGROUND OF THE INVENTION
Field of the Invention
[0001] The present invention relates to an image forming system having a sheet hold-down
device, such as a copying machine, printer and the like, and more particularly it
relates to an image forming system having a deeper ejection tray capable of collecting
a large number of sheets.
Related Background Art
[0002] Recently, in image forming system such as copying machines, printers and the like,
in order to save time for supplying sheets regarding a large number of prints, a stacking
capacity for sheets to be supplied has been increased. For example, in a large-sized
or middle-sized copying machine, a sheet supply deck having the large sheet stacking
capacity has been used, and, even in a small-sized copying machine, a sheet supply
cassette having the stacking capacity capable of supplying 500 or more sheets at a
time has been used.
[0003] Pursuant to the increase in the sheet stacking capacity, also in the sheet ejecting
side of the image forming system, a sheet collecting capacity has been increased to
stack a large number of ejected regarding the large number of prints by using a deeper
ejection tray arranged at an upper part of the system.
[0004] By the way, if the deeper ejection tray is used to increase the sheet collecting
capacity, when a sheet ejected by a pair of ejector rollers is rested on the ejection
tray, a distance that a trailing end of the sheet is dropped onto the ejection tray
in space will be increased. Consequently, there is the discrepancy in the falling
points of the sheets on the ejection tray, thereby worsening the registration of the
sheets collected on the ejection tray.
[0005] Incidentally, some image forming systems are of the type that the sheets can be sorted
in such a manner that they are shifted (got out of position) in groups on the ejection
tray by shifting a pair of ejection rollers in the axial direction or by shifting
the ejection tray in a direction perpendicular to a sheet feeding direction. Particularly,
in the image forming system of this kind, in order to maintain the sorted condition,
the sheets must be collected on the ejection tray with correct registration.
[0006] For this reason, in the image forming system having a deep ejection tray 2 attached
to an upper part of a body frame 1 as shown in Fig. 4, there is normally provided
a sheet hold-down member 5 for urging or holding down a leading end of the sheet (not
shown) before a trailing end of the sheet falls on the ejection tray in order to prevent
the movement of the sheet (on the ejection tray) ejected out of the system by means
of a pair of ejector rollers 3.
[0007] The conventional sheet hold-down member 5 arranged at the ejection tray portion 2
of the image forming system is pivotally mounted, at its base end, on the body frame
1 via a support shaft 6 for pivotal movement in a direction (shown by the arrow) perpendicular
to a surface of the tray, so that the sheet hold-down member can hold the sheet ejected
on the ejection tray with a predetermined urging force by its own weight. In this
case, the leading end of the sheet ejected out of the system by means of the ejector
roller pair 3 is slidingly moved upwardly along the inclined surface of the tray and
then is slid into below a bent portion 7 formed on a free end of the hold-down member
5 so that the sheet is held down by the bent portion 7 with the predetermined force.
[0008] As mentioned above, although the sheet hold-down member holds the sheet by its own
weight, if the weight of the member is too great, the leading end of the sheet cannot
be slid into below the bent portion 7, with the result that the sheets are disordered
on the tray, thus preventing the correct stacking of the sheets. Accordingly, the
sheet hold-down member 5 is made of a thin molded plate or a fine metal wire or rod
to reduce the weight thereof.
[0009] However, since the conventional sheet hold-down member 5 arranged at the ejection
tray portion 2 of the image forming system is weak in construction, it is easily deformed
or damaged if an operator roughly handles it, with the result that the correct or
normal function of the sheet hold-down member will be worsened. Further, since the
sheet hold-down member 5 is pivoted around the support shaft 6, as it is lifted in
accordance with the increase in the sheets collected on the ejection tray, the urging
force of the sheet hold-down member acting on the sheet will be decreased, thus making
the sheet holding function unstable.
[0010] On the other hand, in the image forming system having the deeper ejection tray 2,
since a large number of sheets can be collected, the operator do not often pay attention
to the sheet ejecting condition in comparison with normal image forming systems, and,
thus, in many cases, a sheet full load condition is left as it is. Consequently, over-
ejected sheets sent to the ejection tray exceeding its maximum sheet collecting capacity
are dropped onto a floor to become dirty or are jammed in the vicinity of the ejector
roller pair 3.
SUMMARY OF THE INVENTION
[0011] The present invention aims to eliminate the above-mentioned conventional drawbacks,
and an object of the present invention is to provide an image forming system having
a sheet hold-down device, which can hold sheets with a constant urging force even
when an amount of sheets collected onto an ejection tray is changed and which has
a function for detecting a sheet full load condition.
[0012] In order to achieve the above object, the present invention provides an image forming
system having a deeper ejection tray attached to an upper part of the system and capable
of collecting a large number of sheets.
[0013] The present invention is characterized by a sheet hold-down device comprising a sheet
hold-down member pivotally mounted, at its base end, on a sheet ejection tray via
a support shaft for pivotal movement in a direction perpendicular to a surface of
the tray, and a hold-down member biasing means for biasing the sheet hold-down member
away from the surface of the tray in opposition to a weight of the sheet hold-down
member and for maintaining an urging force of the sheet hold-down member to a constant
value so long as the sheet hold-down member is within a predetermined range of its
pivotal movement.
[0014] According to another aspect, the present invention is characterized by a sheet-hold
down device comprising a sheet hold-down roller disposed on a sheet ejection tray,
and a roller supporting member for rotatably supporting roller shafts formed on both
ends of the sheet hold-down roller laterally outside of sheets collected on the sheet
ejection tray and for guiding the sheet hold-down roller for up-and-down movement
with respect to a surface of the tray within a predetermined range.
[0015] The sheet hold-down device may include a detection means for detecting the fact that
the sheet hold-down member or the sheet hold-down roller is brought into a sheet full
load position.
[0016] With the arrangements as mentioned above, the weight of the sheet hold-down member
of the sheet hold-down device is relieved or lightened by a biasing force of the hold-down
member biasing means. Thus, it is possible to use the sheet hold-down member having
a relatively tough or rigid construction which would increase the weight of the member
itself.
[0017] The biasing force of the hold-down member- biasing means for biasing the sheet hold-down
member is changed in accordance with the pivot angle of the sheet hold-down member
so that it is decreased as the sheet hold-down member is shifted upwardly. As a result,
the sheet hold-down member has always a predetermined urging force at any pivot angle
so long as the member is within the predetermined range of its pivotal movement.
[0018] Further, the sheet hold-down device is constituted by the combination of the sheet
hold-down roller and the roller supporting member. Thus, the sheet hold-down device
has a rigid construction.
[0019] The sheet hold-down roller is shifted upwardly with being guided by the roller supporting
member as a sheet collecting amount on the tray is increased, thereby hold the sheets
by its own weight. As a result, the sheet hold-down roller has the predetermined urging
force at any shifted position.
[0020] In addition, the detection means of the sheet hold-down device detects the fact that
the sheet ejection tray is completely filled with the sheets. Accordingly, by stopping
a sheet supplying operation of the image forming system or by alerting the sheet full
load condition to the operator in response to a detection signal from the detection
means, it is possible to avoid the overload of the sheets on the tray, thus preventing
the sheets from dropping on the floor to become dirty and the jamming of the sheet
in the vicinity of the ejector roller pair.
[0021] In the image forming system according to the present invention, it is possible to
use the sheet hold-down device which is rigid and is not deformed or damaged and which
can always hold the sheets with the constant urging force even when the sheet collecting
amount on the tray is changed.
[0022] Further, since the sheet hold-down device has the detection means for detecting the
fact that the sheet hold-down member or the sheet hold-down roller is brought into
the sheet full load position, it is possible to stop the operation of the image forming
system or alert the sheet full load condition to the operator, in response to the
detection signal from the detection means.
BRIEF DESCRIPTION OF THE DRAWINGS
[0023]
Fig. 1 is an elevational sectional view of an image forming system (laser beam printer)
according to a preferred embodiment of the present invention;
Fig. 2A is a perspective view of a main portion (inventive portion) of the image forming
system, and Fig. 2B is a schematic elevational view showing an alteration;
Fig. 3 is an elevational sectional view of an image forming system (laser beam printer)
according to another embodiment of the present invention; and
Fig. 4 is an elevational sectional view a conventional sheet hold-down member arranged
at a sheet ejection tray portion of an image forming system.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0024] The present invention will now be explained in connection with embodiments thereof
with reference to the accompanying drawings.
[0025] First of all, a first embodiment of the present invention will be explained.
[0026] Fig. 1 generally shows an image forming system (laser beam printer) according to
a first embodiment of the present invention, and Fig. 2A shows a main portion (inventive
portion) of the image forming system.
[0027] First of all, the image forming system will be briefly described with reference to
Fig. 1.
[0028] At a central position within a body frame 7 of the image forming system, there is
disposed an image forming means 15 comprising a photosensitive drum 9, a process cartridge
10 incorporating a primary charger, developing device (both not shown) and the like,
a transfer roller 11, a laser scanner 12, and a cleaner 13. At a sheet supply side
of the image forming means 15, there are disposed a pair of regist rollers 16, a sheet
supply roller 17 and a sheet supply cassette 19. On the other hand, at a sheet ejecting
side of the image forming means 15, there are disposed a fixing device 23 comprising
a pair of fixing rollers 20 and a pair of convey rollers 21, and a pair of ejector
rollers 25.
[0029] A sheet S supplied from the sheet supply cassette 19 by the sheet supply roller 17
is sent to an image forming portion (transfer roller 11) of the image forming means
15 by means of the regist roller pair 16, where an image formed on the photosensitive
drum is transferred onto the sheet. Then, the transferred image is fixed onto the
sheet by the fixing device 23. Thereafter, the sheet S is sent along a sheet feeding
path 26 to an upper part of the body frame 7 and then is ejected out of the system
by means of the ejector roller pair 25 to be collected on a deeper sheet ejection
tray 27. In this case, a leading end of the sheet S ejected out of the system by means
of the ejector roller pair 25 is slidingly moved upwardly along an inclined surface
29 of the tray and then is held down by a sheet hold-down device 30 arranged above
the ejection tray 27, with a predetermined urging force. In this condition, a trailing
end of the sheet S is falling on the tray 27.
[0030] Next, the sheet hold-down device 30 arranged above the ejection tray 27 will be explained
with reference to Fig. 2A.
[0031] The sheet hold-down device 30 comprises a sheet hold-down member 32 pivotally supported
for pivotal movement around a support shaft 31 in a direction perpendicular to a surface
of the tray, and a torsion coil spring (hold-down member biasing means) 43 for biasing
the sheet hold-down member 32 away from the surface of the tray (i.e., toward an upward
direction in Fig. 1) in opposition to a weight of the member itself.
[0032] The sheet hold-down member 32 is removably mounted on the support shaft 31 which
is separately formed from the member. The support shaft 31 comprises a prismatic base
portion 31 a and a cylindrical drum portion 33 which are integrally connected to each
other. In the support shaft 31, the base portion 31 a is rotatably supported, at its
one end, by a bearing portion 35 formed on the body frame 7, and the drum portion
33 is rotatably supported by a horizontal fixed shaft 37 provided on a side plate
37 formed on the body frame 7.
[0033] The sheet hold-down member 32 is made of molded material as a box-shape having a
thick wall so that the sheet hold-down member has a rigid construction. A pair of
left and right rollers 39 are rotatably mounted on a lower portion of a free end of
the sheet hold-down member 32, and a connection pin 40 is protruded horizontally from
a rear end of the sheet hold-down member at its central portion. The sheet hold-down
member 32 is mounted on the support shaft 31 by fitting the connection pin 40 into
a hole 41 (Fig. 1) formed in the base portion 31a. In this case, the position of the
sheet hold-down member 32 is adjusted by rotating the member around the connection
pin 40 in a clockwise or anti-clockwise direction so that the left and right rollers
39 correctly contact with the surface of the tray.
[0034] The torsion coil spring 43 is fitted around a peripheral surface of the drum portion
33 of the support shaft 31, and a hook 42 formed on one end of the spring is locked
at the drum side and a hook 43a formed on the other end of the spring is locked on
a circular adjusting plate 45 rotatably mounted on the fixed shaft 37. An L-shaped
positioning hook 47 is formed on an inner surface of the adjusting plate 45. By inserting
the hook 47 into one of holes 49 formed in the side plate 36 in a circumferential
direction thereof, the adjusting plate 45 can be fixed with respect to the side plate
36. By selecting the hole 49 into which the hook 47 is to be inserted, a spring force
of the torsion coil spring 43 for biasing the sheet hold-down member 32 away from
the tray surface is varied. Accordingly, when the adjusting plate 45 is fixedly positioned
with respect to the side plate 36, the hook 47 is inserted into the hole 49 which
provides the spring force in accordance with the weight of the sheet hold-down member
32 itself.
[0035] Such a torsion coil spring 43 affords a predetermined urging force to the sheet hold-down
member 32 at any pivot angle of the latter when this member is within a predetermined
range of its pivotal movement. The torsion coil spring 43 is so arranged that the
return torsion force thereof becomes stronger when the support shaft 31 is rotated
in the clockwise direction and weaker when the shaft 31 is rotated in the anti-clockwise
direction. The urging force of the sheet hold-down member 32 is selected so that the
leading end of the sheet S can slide in below the rollers 39 and the sheet is prevented
from moving on the tray. That is to say, when the sheet hold-down member 32 is in
the horizontal condition as shown in Fig. 1, since the weight G
1 of the sheet hold-down member acting on the rollers 39 is great, by increasing the
left rotational force P
1 of the sheet hold-down member 32 (i.e., force for lifting this member) by means of
the coil spring 43, an appropriate urging force (Gi - Pi) is given to the sheet hold-down
member 32. On the other hand, when the sheet hold-down member 32 is in a position
shown by a phantom line in Fig. 1, the weight G
2 of the sheet hold-down member acting on the rollers 39 is smaller than the weight
G
1 because of the inclination of the sheet hold-down member. In this case, since the
torsion coil spring 43 is also rotated in the anti-clockwise direction (to reduce
the spring force), the left rotational force P
2 will be smaller than the force P
i. Thus, the spring force is so selected the relation (G
2 - P
2) = (Gi - Pi) is obtained.
[0036] On the side plate 36, there is disposed a sheet hold-down member detection sensor
50 for detecting the fact that the sheet hold-down member 32 is brought to a sheet
full load position. The sheet hold-down detection sensor 50 comprises a light emitting
element 51 such as a luminous diode and a light receiving element 52 such as a photo-
transister so that, when the light receiving element 52 receives the light from the
light emitting element 51, the sensor outputs a detection signal.
[0037] On the other hand, a shield plate 53 for activating the sheet hold-down member detection
sensor 50 is arranged on the drum portion 33 of the support shaft 31. The shield plate
53 has a notched portion 55 for passing the light from the light emitting element
51, and shield portions 56, 57 for blocking the light from the light emitting element
51. When the sheet hold-down member 32 does not reach the sheet full load position,
the shield portion 56 faces the light emitting element 51 of the detection sensor
50 (sensor OFF); whereas, when the sheet hold-down member 32 reaches the sheet full
load position, the notched portion 55 faces the light emitting element 51 of the sensor
50 (sensor ON). Further, the sheet hold-down member 32 exceeds the sheet full load
position, the shield portion 57 faces the light emitting element 51 of the sensor
50 (sensor OFF).
[0038] When the sheet hold-down member detection sensor 50 detects the fact that the sheet
hold-down member 32 reached the sheet full load position, the sheet supplying operation
of the image forming system is stopped, or the sheet full load condition is alerted
to the operator. In this way, after the sheet full load condition, the sheet is prevented
from falling on a floor or from being jammed in the vicinity of the ejector roller
pair 25.
[0039] When the sheet full load condition is reached, the operator can remove the sheets
collected on the ejection tray 27 after he detaches the sheet hold-down member 32
from the support shaft 31. When the sheet hold-down member 32 is detached from the
support shaft 31, since the support shaft 31 is further rotated by the spring force
of the torsion coil spring 43, the shield portion 57 will face the light emitting
element 51 of the sheet hold-down member detection sensor 50, thus making the sensor
50 OFF condition.
[0040] In the sheet hold-down device 30 so constructed, before the sheet supplying operation
is initiated, the rollers 39 of the sheet hold-down member 32 contact the inclined
surface 29 of the ejection tray 27 with the predetermined urging force (condition
shown by the solid line in Fig. 1). In this condition, after the predetermined treatment
processes has been finished regarding the sheet S within the body frame 7 of the image
forming system, the latter is ejected by means of the ejector roller pair 25 onto
the ejection tray 27 disposed outside the system. When the sheet S is ejected out
of the system by means of the ejector roller pair 25, the leading end of the sheet
slidingly moves upwardly along the inclined surface 29 of the ejection tray 27 and
then slides in below the rollers 39 of the sheet hold-down member 32 while rotating
these rollers. When the leading end of the sheet reaches the predetermined position,
it is held by the sheet hold-down member 32 via the rollers 39 with the predetermined
urging force.
[0041] In this way, as the sheets S are ejected successively, the number of the sheets collected
on the ejection tray 27 (i.e., the sheet collecting amount) is gradually increased,
and accordingly, the sheet hold-down member 32 is also gradually pivoted upwardly
around the support shaft 31 (condition shown by the phantom line in Fig. 1). In this
case, the urging force of the sheet hold-down member 32 for urging the sheet S is
always constant at any pivot angle of the sheet hold-down member. When the sheet hold-down
member 32 is lifted up to the sheet full load position, the sheet hold-down member
detection sensor 50 detects that fact.
[0042] When the sheet hold-down member 32 is dismounted from the support shaft 31 after
the sheet full load condition is reached or the image forming system becomes a non-used
condition, or when the sheet hold-down member 32 is mounted on the support shaft 31,
since the sheet hold-down member 32 is made of the molded material to have the rigid
construction, it is not deformed or damaged during the handling of this member.
[0043] In the illustrated embodiment, while the torsion coil spring 43 was used, in place
of the torsion coil spring, a tension spring 143 may be used as shown in. Fig. 2B.
Regarding this case, an example will be described by using concrete numerical values.
(a) When there is no sheet on the ejection tray 27, the urging force of the sheet
hold-down member 32 due to its own weight was 25.9 grams, and when the sheet hold-down
member is in the sheet full load condition, the urging force was 24.4 grams, so that
the difference in force became about 1.5 grams.
(b) Next, a distance between a center of rotation (shaft 31) of the sheet hold-down
member 32 and an attachment position of the spring to the sheet hold-down member was
20 mm, and the spring was lengthened by 5 mm between the no sheet condition and the
sheet full load condition. A spring constant K of this spring was 3.24 g/mm. Further,
the spring force in the no sheet condition was selected to have a value of 214.9 grams.
[0044] Torques generated by the spring at the center of rotation of the sheet hold-down
member 32 would be as follows:
T1 = 214.9 x 20 = 4298 g' mm (no sheet condition);
T2 = (214.9 - 3.24 x 5) x 20 = 3974 g*mm (sheet full load condition).
Since a length of arm of the sheet hold-down member 32 was 216 mm, the urging forces
given by the spring (for urging the sheet) would be as follows:
4298/216 = 19.9 grams (no sheet condition);
3974/216 = 18.4 grams (sheet full load condition).
(c) Accordingly, from the above (a) and (b), the actual sheet urging forces would
be as follows: 25.9 - 19.9 = 6.0 grams (no sheet condition); 24.4 - 18.4 = 6.0 grams
(sheet full load condition).
Thus, it is apparent that the urging force is not varied between the no sheet condition
and the sheet full load condition.
[0045] Incidentally, the above calculations can also be adopted to the torsion coil spring
43 shown in Fig. 2A, and the spring constant of the coil spring 43 can be selected
similarly.
[0046] Next, a second embodiment of the present invention will be explained.
[0047] Fig. 3 generally shows an image forming system (laser beam printer) according to
the second embodiment of the present invention.
[0048] The image forming system according to this second embodiment is the same as that
of the first embodiment, except for the construction of a sheet hold-down device 59;
accordingly, only the sheet hold-down device 59 will be described hereinafter.
[0049] The sheet hold-down device 59 comprises a sheet hold-down roller 60, and a roller
supporting member 61 for rotatably supporting roller shafts 61 (only one of which
is shown) formed on both ends of the sheet hold-down roller 60 laterally outside of
sheets collected on the sheet ejection tray 27 and for guiding the sheet hold-down
roller 60 for up-and-down movement with respect to a surface of the tray within a
predetermined range.
[0050] The roller supporting member 61 is of arch configuration as a side view, and vertical
guide grooves 65 are formed in both side supporting portions 63 of the sheet supporting
member. The roller shafts 61 are received in the respective guide grooves 65 via respective
bearings 66. The roller supporting member 62 mounting the sheet hold-down roller in
this way is removably attached to the body frame 7 in a vertical orientation above
the inclined surface 29 of the tray.
[0051] The sheet hold-down roller 60 mounted on the roller supporting member 62 is biased
by coil springs 67 received in the guide grooves 65 so that the roller contacts the
tray surface 29 with a predetermined urging force. As the sheets collected on the
ejection tray 27 are increased, the sheet hold-down roller 60 is moved upwardly along
the guide grooves 65. Incidentally, if the predetermined urging force is obtained
only by the weight of the roller itself, the coil springs 67 can be omitted.
[0052] A sensor attachment portion 69 is integrally formed on one of the supporting portions
63 of the roller supporting member 62, and a roller detection sensor 71 is attached
to the sensor attachment portion 69, which sensor serves to output a detection signal
when it detects a horizontal projection 70 integrally formed on one of the bearings
66. In this case, when the sheet hold-down roller 60 is moved upwardly up to a sheet
full load position, the projection 70 is detected by the roller detection sensor 71.
[0053] In this embodiment, the sheet hold-down roller 60, roller supporting member 62 and
bearings are made of molded material, respectively.
[0054] In the sheet hold-down device 59 according to the second embodiment, since the sheet
hold-down roller 60 can be moved in the up-and-down direction with respect to the
tray surface 29, the urging force of the roller does not change at any positions of
the roller.
[0055] Further, since the sheet hold-down device is constituted as a rigid construction
by the sheet hold-down roller 60 and the roller supporting member 62, even when the
sheet hold-down device is dismounted from or mounted on the body frame 7, it is not
deformed or damaged. Further, since the sheet full load condition is detected by the
roller detection sensor 71, the sheets are prevented from dropping on a floor or from
being jammed in the vicinity of the ejector roller pair 25.
[0056] Since the sheet hold-down device 59 according to the second embodiment can be incorporated
into the roller supporting member 62, it can be used as option.
[0057] As mentioned above, the image forming system according to the present invention is
provided with a sheet hold-down device comprising a sheet hold-down member pivotally
mounted, as its base end, on a sheet ejection tray via a support shaft for pivotal
movement in a direction perpendicular to a surface of the tray, and a hold-down member
biasing means for biasing the sheet hold-down member away from the surface of the
tray in opposition to a weight of the sheet hold-down member and for maintaining a
predetermined urging force of the sheet hold-down member so long as the sheet hold-down
member is within a predetermined range of its pivotal movement, whereby the sheet
is held by maintaining the balance between the weight of the sheet hold-down member
itself and a spring force of the biasing means to substantially a given range.
[0058] Further, the present invention may be provided with a sheet-hold down device comprising
a sheet hold-down roller disposed on a sheet ejection tray, and a roller supporting
member for rotatably supporting roller shafts formed on both ends of the sheet hold-down
roller laterally outside of sheets collected on the sheet ejection tray and for guiding
the sheet hold-down roller for up-and-down movement with respect to a surface of the
tray within a predetermined range.
[0059] An image forming system comprising a sheet ejection tray on which ejected sheets
can be collected; and a sheet hold-down device including a sheet hold-down member
pivotally mounted on the sheet ejection tray via a support shaft for pivotal movement
in a direction perpendicular to a surface of the sheet ejection tray, and a hold-down
member biasing means for biasing the sheet hold-down member away from the surface
of the sheet ejection tray in opposition to a weight of the sheet hold-down member
itself and for maintaining a predetermined urging force of the sheet hold-down member
so long as the sheet hold-down member is within a predetermined range of its pivotal
movement.
1. An image forming system comprising:
a sheet ejection tray on which ejected sheets can be collected; and
a sheet hold-down device including a sheet hold-down member pivotally mounted, at
its base end, on said sheet ejection tray via a support shaft for pivotal movement
in a direction perpendicular to a surface of said sheet ejection tray, and a hold-down
member biasing means for biasing said sheet hold-down member away from the surface
of said sheet ejection tray in opposition to a weight of said sheet hold-down member
itself and for maintaining a predetermined urging force of said sheet hold-down member
so long as said sheet hold-down member is within a predetermined range of its pivotal
movement.
2. An image forming system according to claim 1, wherein said hold-down member biasing
means comprises a spring means having an elastic force which becomes smaller as said
sheet hold-down member is pivoted away from the surface of said sheet ejection tray.
3. An image forming system according to claim 2, wherein said sheet hold-down member
is cocked as it is pivoted away from the surface of said sheet ejection tray, so that
a gravity force of said sheet hold-down member toward the surface of said sheet ejection
tray becomes smaller.
4. An image forming system according to claim 3, wherein, when the gravity force of
said sheet hold-down member toward the surface of said sheet ejection tray in a horizontal
position of said sheet hold-down member is Gi, the return elastic force of said spring means at that time is Pi, the gravity force
of said sheet hold-down member toward the surface of said sheet ejection tray in a
certain pivot angle of said sheet hold-down member is G2, and the return elastic force of said spring means at that time is P2, the sheet urging forces are defined by (Gi - Pi), (G2 - P2), respectively, and said spring means is selected so. that a relation (Gi - Pi) = (G2 - P2) is obtained.
5. An image forming system comprising:
a sheet ejection tray on which ejected sheets can be collected; and
a sheet hold-down device including a sheet hold-down roller, and a roller supporting
member for rotatably supporting roller shafts formed on both ends of said sheet hold-down
roller laterally outside of the sheets collected on said sheet ejection tray and for
guiding said sheet hold-down roller for up-and-down movement with respect to a surface
of said sheet ejection tray within a predetermined range.
6. An image forming system according to claim 5, further including a detection means
for detecting the fact that said sheet hold-down roller is brought into a sheet full
load position.
7. An image forming system according to claim 1, further including a detection means
for detecting the fact that said sheet hold-down member is brought into a sheet full
load position.
8. An image forming system according to claim 4, wherein said spring means comprises
a torsion coil spring, and further including a means for adjusting a torsion force
of said torsion coil spring.