This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2020-153404 filed Sep. 13, 2020.
The present disclosure relates to a medium feeding device and a medium processing apparatus including the medium feeding device.
Japanese Patent No. 4871455 (refer to DETAILED DESCRIPTION OF THE INVENTION and
Aspects of non-limiting embodiments of the present disclosure relate to addressing a technical challenge to suppressing movement of media downstream in the medium delivery direction during air blowing of the media in a post-feeding period that is a period after completion of the feeding job, when a method of blowing air toward a stored media stack from a position beside the media stack during a feeding job of the media or during the post-feeding period is adopted.
Aspects of certain non-limiting embodiments of the present disclosure overcome the above disadvantages and/or other disadvantages not described above. However, aspects of the non-limiting embodiments are not required to overcome the disadvantages described above, and aspects of the non-limiting embodiments of the present disclosure may not overcome any of the disadvantages described above.
According to an aspect of the present disclosure, there is provided a medium feeding device including a storage unit that stores media in a form of a sheet, a delivery unit that is disposed downstream in a medium delivery direction relative to the media stored in the storage unit and that delivers the media individually, a transfer unit that is disposed above the storage unit and that adheres by suction to each of the media stored in the storage unit and transfers the media to the delivery unit, and a fluffing unit that is disposed beside the media stored in the storage unit in a direction intersecting the medium delivery direction. The fluffing unit fluffs an upper-side region of the media in a state of being separated, by blowing air toward a side of the media during a feeding job of the media and during a post-feeding period that is a predetermined period after completion of the feeding job. The medium feeding device further includes a suppression unit that suppresses movement of the media toward the delivery unit side during air blowing performed by the fluffing unit in the post-feeding period.
Exemplary embodiments of the present disclosure will be described in detail based on the following figures, wherein:
The medium feeding device illustrated in
In the present exemplary embodiment, as
In such a technical configuration, the storage unit 1 typically has a stacking portion on which media S are to be stacked. A type that stores media S of a variety of sizes has, at a position beside the media S in a direction intersecting the delivery direction of the media S, a side guide portion that guides media S for positioning the media S, or the type has, at a rear position upstream in the delivery direction of media S, a rear guide portion that guides the media S for positioning the media S. The storage unit 1 is often withdrawable with respect to a housing of the medium feeding device in view of media S supplement capability.
The delivery unit 2 may be any delivery unit having a function of delivering media S. For example, paired delivery rollers and a combination of a delivery roller and a delivery belt are representative. In such cases, the function may be achieved by nipping and delivering a medium S1 that is to be delivered in a nip region between paired delivery members. For example, when the delivery unit 2 is a pair of rollers, the medium S1 is nipped in a region (nip region) in which the paired rollers are in contact with one another, and one of the paired rollers may also transport a belt, and the rollers may hold the belt therebetween.
In this example, the transfer unit may be selected appropriately from any type that adheres by suction to each of the media S stored in the storage unit 1, transfers the media to the delivery unit individually, and returns to an initial position.
The fluffing unit 4 may be selected appropriately from any type that blows air toward an upper-side region of the media S stored in the storage unit 1 from a position beside the storage unit 1.
Here, an air blowing operation is performed by the fluffing unit 4 during not only a media feeding job but also the post-feeding period, which is the period after completion of the feeding job, because the intention is to start a feeding operation of media S without waiting time, even if an instruction to perform the next feeding job is provided immediately after completion of the feeding job. Although the “post-feeding period” in this example denotes the period after completion of the feeding job of media, the post-feeding period does not include the entire period from completion of the feeding job of the media until an instruction for the next feeding job is provided but rather is a predetermined period after the feeding job completion or a period that may be appropriately selected by a user. Such a post-feeding period is often selected in view of the frequency of performing a feeding job, and, when an instruction for the next feeding job is not provided within the post-feeding period, the fluffing unit 4 may be caused to stop performing the air blowing operation for a moment.
As
Next, a representative example or other examples of the suppression unit 5 will be described.
Regarding the type illustrated in
In this example, the suppression unit 5 may have an air blowing unit (not illustrated in
Here, the air blowing unit, as an example, blows air moving diagonally downward from an upper side in a direction away from the delivery unit 2, toward the downstream end portion of the fluffed medium S1 in the delivery direction.
Alternatively, in the suppression unit 5, as another example of this type, the storage unit 1 has a raising/lowering unit (not illustrated in
Regarding the type illustrated in
In this example, in the suppression unit 5, the transfer unit 3 may adhere by suction to the medium S1 fluffed during the air blowing in the post-feeding period. In the suppression unit 5, as another example of this type, the storage unit 1 has, on the delivery unit 2 side, the stopper wall 1a capable of retaining media S stored in the storage unit 1 when the fluffing unit is not used, and the suppression unit 5 raises the stopper wall 1a of the storage portion 1 so that the stopper wall 1a retains the downstream end portion of the fluffed medium S1 in the delivery direction during the air blowing in the post-feeding period.
Hereinafter, exemplary embodiments of the present disclosure will be described in more detail with reference to the accompanying drawings.
In
In this example, the processing unit 20 includes an image forming portion 21 that forms images on the media. The image forming portion 21 may adopt various image forming systems such as an electrophotographic system or an ink-jet recording system. The processing unit 20 includes an inbound transport path 22 used to transport the media that are fed from the medium feeding device 11 into the image forming portion 21 and an outbound transport path 23 used to transport the media on which images have been formed by the image forming portion 21 out of the processing unit 20. In this example, a built-in medium feeding portion 24 is further separately provided below the image forming portion 21 in the processing unit 20, and media that are fed from the medium feeding portion 24 are also fed into the image forming portion 21 via a feeding transport path 25. Reference 26 denotes an inbound transport roller 26 disposed at the entrance of the inbound transport path 22, and the appropriate number of transport members are provided in the inbound transport path 22, the outbound transport path 23, and the feeding transport path 25.
In this example, as
In this example, both the upper drawer 13 and the lower drawer 14 store a large amount of media and feed the media individually. The relay unit 16 includes a first outbound transport path 17a used to transport outward the media that are fed from the upper drawer 13, a second outbound transport path 17b used to transport outward the media that are fed from the lower drawer 14, and a third outbound transport path 17c used to transport outward the media that are fed from the manual feeding portion 15. The first to third outbound transport paths 17a to 17c have the appropriate number of transport rollers 18, and a merging transport path 17d that is connected to an outlet 17e to the processing unit 20 is formed on the exit side of each of the first to third outbound transport paths 17a to 17c. The merging transport path 17d includes a discharging roller 19. The upper drawer 13 and the lower drawer 14 have handles 13a and 14a, respectively, and are capable of being withdrawn frontward.
In this example, the upper drawer 13 and the lower drawer 14 have configurations substantially similar to one another. Hereinafter, the drawers will be described by referring to an example of the upper drawer 13.
In this example, for example, as
In this example, as
In this example, the storage portion 30 may be designed in accordance with the size of a medium to be used, and the medium to be used may be an ordinary-size medium in view of providing versatility. For the ordinary-size medium here, for example, a medium having a length of up to 488 mm in the longitudinal direction may be used, and an example of the medium in such a size is a medium in a size of A3, defined by the Japanese Industrial Standards (JIS), or smaller.
In this example, the side guides 32 are provided so as to move in the width direction of the stacking bottom plate 31 and are to be positioned at predetermined positioning positions. The end guide 33 is provided so as to move forward and backward in the delivery direction of media on the stacking bottom plate 31 and is to be positioned at predetermined positioning positions. In this example, the partition plate 34 has plural stopper pieces 35 (refer to
In addition, as
In this example, as
When being denoted collectively, the divided roller bodies 41b and 42b are referred to as a “divided roller 43”. When being denoted collectively, the divided roller bodies 41c and 42c are referred to as a “divided roller 44”.
In this example, as
In this example, the vacuum head 50 has a head body 51 having a hollow boxy shape. A surface of the head body 51 facing media stored in the storage portion 30 has a large number of vacuum holes 52, and a suction mechanism 53 is connected to the head body 51. The suction mechanism 53 here adopts a configuration in which a blower 54 for suction and the head body 51 are coupled to one another by a vacuum duct 55, in the middle of which, a vacuum valve 56 that opens and closes a flow passage is interposed, and the vacuum valve 56 is opened and closed by a valve motor 57.
The head frame 60 has an advancing/retreating mechanism 61 that causes the vacuum head 50 to advance and retreat. In this example, as
In this example, as
In addition, in this example, a medium regulating portion 100 is provided near the corresponding air blowing port 71 of the side guide 32. Each medium regulating portion 100 is provided beside media stacked on the stacking bottom plate 31 and protrudes into a media storage region so as to regulate an excessive amount of fluffing of a medium that is fluffed when the fluffing mechanism 70 is used.
In this example, as
In this example, an air duct 83 is in communication with the air nozzle 81, and a blower 84 for blowing air is connected to the air duct 83. An opening/closing valve 85 that opens and closes a flow passage is provided in the middle of the air duct 83 and opened and closed by using a valve motor 86.
As
In the present exemplary embodiment, as
The plural prior stage position sensors 120 (in this example, two: specifically, 120a and 120b) are arranged at locations in a region that is on the delivery roller 40 side relative to a downstream end portion, in the delivery direction, of a medium stored in the storage portion 30 and that does not reach the nip regions NP of the delivery roller 40.
The prior stage position sensors 120 are arranged in the width direction intersecting the medium delivery direction, that is, in the axial direction of the delivery roller 40, at an interval and detect a position of the downstream end portion of the medium in the medium delivery direction. Thus, the prior stage position sensors 120 are used to provide information for determining, other than whether the medium has passed, the extent of a skew state of the medium.
On the other hand, the single later stage position sensor 130 that detects that a medium has passed through the nip regions NP of the delivery roller 40 is disposed at a position within a passing region of media.
Each of the prior stage position sensors 120 has, for example, a sensor housing in which a light-emitting element that radiates light toward a medium that is delivered and a light-receiving element that receives reflected light by the medium are arranged side by side. The prior stage position sensors 120 are capable of detecting that a downstream end portion, in the delivery direction, of the medium passes the prior stage position sensors 120, at the timing when the light-receiving elements receive light. The later stage position sensor 130 has a configuration substantially similar to the prior stage position sensor 120.
In this example, as
In this example, the control targets include, for example, the delivery roller 40, the vacuum head 50 (the suction mechanism 53 and the advancing/retreating mechanism 61), the fluffing mechanism 70, the air separation mechanism 80, and the raising/lowering mechanism 90. The controller 200 also has a display 210 that displays, for example, the progress of a medium feeding job and an abnormality warning regarding a feeding state of a medium.
Here, assume that a medium feeding job instruction for feeding plural media has been provided.
In such a case, as
In
In addition, a “vacuum valve motor” corresponds to the valve motor 57, an “air separation valve motor” corresponds to the valve motor 86, and a “vacuum head motor” corresponds to the stepping motor 62 of the advancing/retreating mechanism 61.
In this example, during the feeding job of media, the “vacuum head blower”, the “air separation blower”, and the fluffing blower” are in a turned-ON state throughout the feeding job. The “vacuum valve motor”, the “air separation valve motor”, and the “vacuum head motor” are controlled to be turned ON and OFF repeatedly each time a media sheet is fed, and the vacuum head 50A repeatedly performs a suction operation and an advancing/retreating operation and the air separation mechanism 80 repeatedly performs an operation of supplying air for media separation and an operation of stopping.
Note that the “fluffing blower” remains ON during the feeding job of the media and during the post-feeding period after the feeding job, and a so-called afterblow (an air blowing operation performed by the fluffing mechanism 70 during the post-feeding period) is performed.
Regarding the air blowing operation (corresponding to the “afterblow”) during the predetermined post-feeding period, a force to blow the media upward is constantly applied. Thus, there is a concern that, as
In this example, such a negative effect of the afterblow is addressed, and the following four examples, first to fourth, of the suppression mechanism are proposed.
In this example, during the post-feeding period, a medium is suppressed from advancing toward the delivery roller 40 side by using the existing air separation mechanism 80.
Specifically, during the afterblow, as
In this example, as
As
The lowering amount at this time may be selected so that a fluffed medium S1 is located at a position lower than the height of each stopper piece 35. In such a case, the fluffed medium is retained by the stopper pieces 35, and there is thus no concern that the fluffed medium may advance toward the delivery roller 40 side.
In this example, when an instruction for a feeding job of the next medium is provided, media may be raised by the raising/lowering mechanism 90 so that the surface of the media is located at a predetermined home position.
In this example, as
In this example, even when the afterblow is performed, the fluffed medium remains at a home position while being sucked by and adhering to the vacuum head 50. Thus, during the afterblow, there is no concern that the fluffed medium may advance toward the delivery roller 40 side.
In this example, as
In this example, after completion of the afterblow, the stopper pieces 35 may be lowered to the predetermined height position (home position) by the raising/lowering actuator 180.
In
In this example, the medium feeding device 11 has a body portion 300 (having a configuration substantially similar to the medium feeding device of the first exemplary embodiment) that is stacked with and feeds normal-size media. By a long size option 400 being added to the body portion 300, it is possible for the medium feeding device 11 to be stacked with and feed the long media.
In this example, the body portion 300 has a configuration substantially similar to that of the medium feeding device 11 of the first exemplary embodiment. Unlike the first exemplary embodiment, in the body portion 300, an opening to which the long size option 400 is connectable is ensured in a side wall of a housing 12 on a side facing away from the relay unit 16. In addition, at a location that is in an upper portion of the housing 12 and adjacent to the manual feeding portion 15, an opening/closing covering part 301 is provided. The opening/closing covering part 301 is opened and closed with a portion thereof on the manual feeding portion 15 side as a rotation supporting point. In the body portion 300, by operating a handle 302 provided on the opening/closing covering part 301, the opening/closing covering part 301 is opened to ensure a working space when a long medium is set.
In this example, as
In this example, regarding the change section 420, a raising base 421 as a raising portion, which is for raising the height of the stacking bottom plate 31, that is disposed on the stacking bottom plate 31 included in the storage portion 30 of the upper drawer 13 in the body portion 300, and a surface portion of the raising base 421 is used as a specialized stacking portion 422 for long media.
Regarding the addition section 401, in an external housing 402, an additional stacking portion 403 is disposed at a location adjacent to a portion of the specialized stacking portion 422 on the side facing away from the delivery roller 40. A stacking surface of the specialized stacking portion 422 and a stacking surface of the additional stacking portion 403 are substantially flush with one another and function together as a long medium stacking portion 410 on which long media are enabled to be stacked. In this example, in particular, the stacking surface for long media is raised with respect to the stacking surface for normal-size media by using the raising base 421. This is because it is intended that the weight of the long media stacked on the long medium stacking portion 410 is decreased to reduce a load applied on a raising/lowering mechanism 90.
Moreover, in this example, the raising/lowering mechanism 90 has, in addition to the configuration for raising and lowering the stacking bottom plate 31 in the first exemplary embodiment, plural suspending portions 405, plural wires 406, and plural guide pulleys 407 all for raising and lowering the additional stacking portion 403. The wires 406 suspend and support the additional stacking portion 403. After the wires 406 are looped over the respective guide pulleys 96 that are existing constituents of the raising/lowering mechanism 90 in the body portion 300 area, one end side of each of the wires 406 is anchored to a corresponding one of the winding pulleys 97 that are existing constituents. The raising/lowering mechanism 90 raises and lowers the additional stacking portion 403 and the specialized stacking portion 422 at the same timing by the driving motor 98, which is an existing constituent, rotating.
Furthermore, inside the external housing 402 of the addition section 401, around the additional stacking portion 403, additional side guides 432 (specifically, 432a and 432b) that guide long media for positioning both sides of the long media in the width direction intersecting the delivery direction of the long media are provided. In addition, the existing end guide 33 is also used here as an end guide for the additional stacking portion 403. Moreover, in the additional side guides 432, an additional fluffing mechanism 440 is provided, and additional medium regulating portions 450 for preventing side edge portions of a long medium from being excessively fluffed when the long media are fluffed are disposed. In
Regarding the medium feeding device 11 in which the long size option 400 is used, long media are stored in the long medium stacking portion 410, a surface of the long media is located at a predetermined position by using the raising/lowering mechanism 90, and the medium feeding device 11 is held on standby in such a state until a medium feeding instruction is provided.
When the medium feeding instruction is provided, the medium feeding operation is performed. During the medium feeding operation, the fluffing mechanism 70 and the additional fluffing mechanism 440 operate and fluff the long media, and the vacuum head 50 adheres by suction to an upper surface portion on the downstream side, in the delivery direction, of a fluffed long medium and transports the long medium to the delivery roller 40. In addition, the air separation mechanism 80 separates a downstream end portion, in the delivery direction, of the long media one after another, and the long media are transferred to the delivery roller 40 individually.
At this time, the long media tend to be easily skewed compared with normal-size media. In this example, a state of a downstream end portion, in the delivery direction, of a long medium is detected, and whether the feeding state of the long medium is in a permissible range or in an abnormal range may be easily determined.
The foregoing description of the exemplary embodiments of the present disclosure has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The embodiments were chosen and described in order to best explain the principles of the disclosure and its practical applications, thereby enabling others skilled in the art to understand the disclosure for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the disclosure be defined by the following claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
2020-153404 | Sep 2020 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
6398207 | Taylor et al. | Jun 2002 | B1 |
20060170145 | Nakane | Aug 2006 | A1 |
20110193284 | Fuda | Aug 2011 | A1 |
20120133092 | Fuda | May 2012 | A1 |
20140339759 | Takahashi | Nov 2014 | A1 |
Number | Date | Country |
---|---|---|
4871455 | Feb 2012 | JP |
Number | Date | Country | |
---|---|---|---|
20220081233 A1 | Mar 2022 | US |