Medium processing device

The media processing device in ATMs simplifies the storage of banknotes by adjusting motor timing to ensure the impeller strikes the medium end, addressing the complexity and part count issues of existing tongue mechanisms.

JP2025125836APending Publication Date: 2025-08-28OKI ELECTRIC INDUSTRY CO LTD
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Patent Information

Application Number
JP2024022053
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-02-16
Publication Date
2025-08-28

AI Technical Summary

Technical Problem

The existing tongue mechanisms in automated teller machines (ATMs) with both fixed and movable tongues are complex and have a large number of parts, complicating the storage of banknotes.

Method used

A media processing device with a storage container, collection roller, impeller, collection sensor, transport roller, transport sensor, and control unit that adjusts the timing of motor restart to ensure the impeller strikes the end of the medium in the payout direction, even with blades on only a portion of its circumference.

Benefits of technology

This configuration allows for simple and efficient storage of banknotes by ensuring the impeller strikes the end of the medium during accumulation, reducing the mechanism's complexity and part count while maintaining functionality.

✦ Generated by Eureka AI based on patent content.

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Abstract

To store bills in a storage container with a simple configuration.SOLUTION: A bill dispenser 10 includes: a second drive roller 42 configured to feed a bill in an accumulation direction Di on a conveyance path 38; a partial tongue piece 64 provided with a blade on part of its entire circumference and configured to hit a bill to be accumulated to drop the bill to a bottom of a storage case 30; an accumulation sensor 46 provided between the storage case 30 and the second drive roller 42 on the conveyance path 38; a first drive roller 40 configured to feed the bill to the second drive roller 42; a conveyance sensor 44 provided on a delivering direction Do side relative to the first drive roller 40 on the conveyance path 38; and a bill control unit 11 configured to detect a preceding bill with the accumulation sensor 46, and when the partial tongue piece 64 reaches an initial position, stop the second drive roller 42 and the partial tongue piece 64 to stop the preceding bill, and when a subsequent bill is detected with the conveyance sensor 44, restart operation of the second drive roller 42 and the partial tongue piece 64 to send the preceding bill to the storage case 30 and cause the partial tongue piece 64 to hit an end of the bill.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates to a medium processing device, and is suitable for application to an automatic teller machine (ATM) that allows a customer to insert a medium such as a banknote and performs a desired transaction. [Background technology]

[0002] Conventionally, automated teller machines used in financial institutions and the like have been widely used, which allow customers to deposit cash such as banknotes and coins and dispense cash to customers depending on the content of transactions with the customers. As such automated teller machines, for example, those having a control unit that controls the entire machine, a banknote deposit and withdrawal unit that transfers banknotes (medium) to and from customers, a transport unit that transports inserted banknotes, a recognition unit that recognizes the denomination and authenticity of the banknotes, etc., a temporary storage unit that temporarily stores banknotes, and a plurality of banknote storage vaults that store banknotes by denomination have been proposed.

[0003] Some such automated teller machines rotate a tongue mechanism (also called a vane wheel mechanism) made up of blades, and use the blades to strike banknotes discharged from the transport path of the transport unit into the banknote storage vault, causing the banknotes to fall to the bottom of the banknote storage vault. Proposed tongue mechanisms include a fixed tongue with blades provided on a portion of its circumference that rotates together with the rotating shaft, and a movable tongue with blades provided on a portion of its circumference that can rotate about the rotating shaft (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-132519 Summary of the Invention [Problem to be solved by the invention]

[0005] However, in the case of a tongue mechanism that combines a fixed tongue and a movable tongue, there is a problem in that the structure is complicated and the number of parts is large.

[0006] The present invention has been made in consideration of the above points, and aims to propose a medium processing device that can store banknotes in a storage container with a simple configuration. [Means for solving the problem]

[0007] In order to solve this problem, the media processing device of the present invention is provided with a storage container that stores media in a stacked state, a collection roller that sends the media in the transport direction along the transport path toward the storage container, an impeller with blades on part of its circumference that strikes the accumulated media and drops the media to the bottom of the storage container, a collection sensor that is located on the transport path between the storage container and the collection roller and detects the media, a transport roller that sends the media to the collection roller, a transport sensor that is located on the opposite side of the transport path in the transport direction from the transport roller and detects the media, and a control unit that, when the collection sensor detects a preceding medium and the impeller reaches a predetermined initial rotation position, stops the collection roller and impeller to stop the preceding medium, and when the transport sensor detects a following medium that is following the preceding medium, resumes operation of the collection roller and impeller, sends the preceding medium to the storage container, and causes the impeller to strike the edge of the medium.

[0008] The present invention adjusts the timing of restarting the motor so that the impeller is expected to strike the end of the media in the payout direction when the media is sent into the storage container, so that the end of the media in the payout direction can be struck during accumulation even in an impeller that has blades only on part of its circumference. [Effects of the Invention]

[0009] According to the present invention, by adjusting the timing of restarting the motor so that the impeller is expected to strike the end of the medium in the payout direction when the medium is fed into the storage container, it is possible to strike the end of the medium in the payout direction during accumulation even in an impeller that has blades on only a portion of its circumference, thereby realizing a media processing device that can store banknotes in a storage container with a simple configuration. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 is a perspective view showing a configuration of an automated teller machine. [Figure 2] FIG. 2 is a left side view showing the configuration of the banknote depositing and dispensing machine. [Figure 3] 1 is a left side view showing the configuration of a banknote storage vault and a transport path according to a first embodiment. FIG. [Figure 4] FIG. 10 is a left side view showing the operation (1) during stacking. [Figure 5] FIG. 10 is a left side view showing the operation (2) during accumulation. [Figure 6] FIG. 10 is a left side view showing the operation (3) during stacking. [Figure 7] FIG. 10 is a left side view showing the operation (4) during stacking. [Figure 8] FIG. 10 is a left side view showing the operation (5) during accumulation. [Figure 9] FIG. 10 is a left side view showing the operation (6) during accumulation. [Figure 10] FIG. 10 is a left side view showing the operation (7) during stacking. [Figure 11] FIG. 10 is a left side view showing the configuration of a banknote storage vault and a transport path according to a second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] Hereinafter, modes for carrying out the invention (hereinafter referred to as embodiments) will be described with reference to the drawings.

[0012] 1. First Embodiment [1-1. Configuration of the automated teller machine and banknote deposit / dispensing machine] As shown in Fig. 1, an automated teller machine 1 is composed mainly of a box-shaped housing 2, and is installed in, for example, a financial institution, etc., to carry out cash-related transactions such as deposit transactions and withdrawal transactions with customers. The housing 2 has a customer service unit 3 at the front, in a position facing the customer, where the customer can easily insert banknotes and operate the touch panel.

[0013] The customer service area 3 is equipped with a card slot 4, a cash slot 5, an operation and display unit 6, a numeric keypad 7, and a receipt issuing slot 8. It directly exchanges cash, bankbooks, and other items with customers, and also notifies them of transaction-related information and accepts their operational instructions. The card slot 4 is where various cards, such as cash cards, are inserted and ejected. A card processing unit (not shown) is located behind the card slot 4 and reads account numbers and other information magnetically recorded on various cards. The cash slot 5 is where customers insert banknotes to be deposited and where banknotes to be withdrawn are ejected. The cash slot 5 is opened and closed by operating a shutter. The operation and display unit 6 integrates an LCD (Liquid Crystal Display) that displays the operation screen during a transaction and a touch panel for selecting the transaction type and inputting the PIN and transaction amount. The numeric keypad 7 is a physical keypad that accepts the input of numbers "0" through "9" and is used to input the PIN and transaction amount. The receipt issuing port 8 is a section that issues a receipt with transaction details and other information printed on it at the end of a transaction process. At the back of the receipt issuing port 8 is a receipt processing section (not shown) that prints the transaction details and other information on the receipt.

[0014] In the following, the side of the automated teller machine 1 that the user faces will be referred to as the front side, the opposite side as the rear side, the left and right sides as seen from the user facing the front side will be referred to as the left side and right side, respectively, and the upper side and lower side will be further defined and explained.

[0015] The housing 2 contains a main control unit 9 that controls the entire automated teller machine 1, a banknote deposit and withdrawal machine 10 that performs various processes related to banknotes, and the like. The main control unit 9 is mainly composed of a CPU (Central Processing Unit) (not shown), and controls each unit to perform various processes such as deposit transactions and withdrawal transactions by reading and executing predetermined programs from a ROM (Read Only Memory), flash memory, etc. The main control unit 9 also has a storage unit consisting of a RAM (Random Access Memory), hard disk drive, flash memory, etc., and stores various information in this storage unit.

[0016] 2, the banknote deposit and withdrawal machine 10 incorporates multiple units that perform various processes related to banknotes as a medium. The banknote deposit and withdrawal machine 10 is broadly composed of an upper unit 10U that occupies the section above approximately the center in the vertical direction, and a lower unit 10L that occupies the section below the upper unit 10U.

[0017] The upper unit 10U is provided with a banknote control unit 11 that controls the entire system, a deposit / withdrawal unit 12 that receives and sends banknotes to and from users, a transport unit 13 and an upper transport unit 18 that transport banknotes to each unit, a recognition unit 14 that recognizes banknotes, a temporary holding unit 15 that temporarily stores banknotes, and an upper storage cabinet 19 that stores banknotes.

[0018] Like the main control unit 9, the banknote control unit 11 is configured around a CPU (not shown), and by reading and executing predetermined programs from a ROM, flash memory, etc. (not shown), it performs various processes such as determining the destination of banknotes and controlling the operation of each unit. The banknote control unit 11 also has an internal memory unit made up of RAM, flash memory, etc., and stores various information in this memory unit and reads various information from this memory unit.

[0019] The depositing / withdrawing unit 12 is located at the upper front part of the upper unit 10U. This depositing / withdrawing unit 12 has inside it a receptacle 12A that stores banknotes received from users and banknotes to be delivered to users, and the top of the receptacle 12 can be opened and closed by a shutter 12B. A plurality of banknotes are stored in the receptacle 12A in a stacked state with their faces facing forward and backward. This depositing / withdrawing unit 12 separates the banknotes in the receptacle 12A one by one and delivers them to the transport unit 13, and also releases banknotes received from the transport unit 13 into the receptacle 12A for stacking.

[0020] The transport unit 13 is located at the lower end of the upper unit 10U, and has a shape that is thin in the vertical direction and elongated in the front-to-rear direction overall. Within this transport unit 13, transport guides that guide banknotes, a number of rotating rollers, etc. (not shown) are appropriately arranged, and a linear transport path is formed that transports banknotes mainly in the front-to-rear direction with the short sides of the banknotes aligned with the traveling direction. Furthermore, based on the control of the banknote control unit 11, the transport unit 13 transports banknotes between each part of the banknote deposit and dispensing machine 10 while appropriately switching the banknote transport path.

[0021] The recognition unit 14 is incorporated within the transport unit 13, and is located on the banknote transport path between the deposit / withdrawal unit 12 and the temporary holding unit 15. The recognition unit 14 incorporates several types of sensors, such as a thickness sensor, an image sensor, and a magnetic sensor, and acquires various information from the transported banknotes, and based on this information, recognizes the denomination, authenticity, fitness (whether or not the banknotes are damaged), etc. of the banknotes, and notifies the banknote control unit 11 of the recognition results.

[0022] The temporary holding unit 15 employs a so-called tape escrow system, storing banknotes by wrapping them together with tape around the circumferential surface of a cylindrical drum, and then dispensing the banknotes by peeling them off together with the tape from the circumferential surface. At this time, the temporary holding unit 15 sequentially dispenses the banknotes in the reverse order to the order in which they were stored.

[0023] Upper transport unit 18 is disposed near the rear end on the upper side of transport unit 13, and transports banknotes from the lower end toward the upper front side. Upper storage cabinet 19 is provided at a location near the rear on the upper side of transport unit 13, adjacent to the front side of upper transport unit 18. Upper storage cabinet 19 receives banknotes transported by upper transport unit 18 and stores them therein.

[0024] Incidentally, the upper storage cabinet 19 is used, for example, as a counterfeit bill storage cabinet that stores bills that have been determined to be counterfeit (forged banknotes) by the recognition unit 14, distinguishing them from other banknotes, a rejected bill storage cabinet that stores rejected banknotes (described later), or a forgotten bill storage cabinet that stores banknotes that users have forgotten to take out from the deposit / withdrawal unit 12.

[0025] All peripheral sides of the lower unit 10L are covered by a sturdy safe housing 10S. Inside this safe housing 10S, from the rear to the front, there are provided five banknote storage vaults 16 (banknote storage vaults 16A, 16B, 16C, 16D, and 16E) and a reject vault 17. Hereinafter, the banknote storage vaults 16A, 16B, 16C, 16D, and 16E will also be collectively referred to as banknote storage vaults 16.

[0026] Incidentally, the lower unit 10L is provided with a loading section (not shown) having a plurality of slots for loading the banknote storage vault 16 and the reject storage vault 17 from above, and this loading section is attached to the safe housing 10S via predetermined slide rails (not shown). Therefore, in the lower unit 10L, the banknote storage vault 16 and the reject storage vault 17 can be attached to and detached from this loading section by sliding the loading section back and forth and pulling it out to the outside of the safe housing 10S.

[0027] The banknote storage vault 16 is formed in the shape of a rectangular parallelepiped that is long in the vertical direction, and has a space inside for accumulating and storing banknotes. Furthermore, the denominations of banknotes to be stored in each banknote storage vault 16 are preset. When the banknote storage vault 16 receives banknotes from the transport unit 13, it accumulates and stores them inside. Furthermore, when the banknote storage vault 16 receives an instruction to feed banknotes from the banknote control unit 11, it separates the accumulated banknotes one by one, feeds them, and hands them over to the transport unit 13.

[0028] The reject vault 17 is formed in the shape of a rectangular parallelepiped that is long in the vertical direction, and has a space inside for accumulating and storing banknotes. When a rejected banknote that has been determined by the recognition unit 14 and the banknote control unit 11 to be too damaged to be reused is transported by the transport unit 13, the reject vault 17 stores the rejected banknote inside.

[0029] [1-2. Configuration of banknote storage and transport path] As shown in Fig. 3, the banknote storage vault 16 has a storage case 30 formed into a vertically long box shape by combining, for example, six metal plates. The storage case 30 is provided with a banknote storage section 32 that is a vertically long space for storing banknotes, and an opening 34 that connects the banknote storage section 32 to the outside is formed at the upper rear side of the storage case 30. The banknote storage section 32 is also provided with a flat plate-shaped stage 36. The stage 36 holds multiple banknotes in a stacked manner and moves up and down within the banknote storage section 32 by a drive mechanism (not shown). Behind the opening 34, a transport path 38 of the transport unit 13 is provided along a front-to-rear direction that is approximately perpendicular to the up-to-down direction in which the banknotes placed on the stage 36 are accumulated, and is composed of guides that guide the upper and lower sides of banknotes transported in the transport direction.

[0030] Although Figures 3 to 10 differ from Figure 2 in some respects in the arrangement and orientation of the transport path 38 and the banknote storage vault 16, they are merely schematic diagrams for explaining the flow of operations during accumulation in the present invention.

[0031] The conveyance path 38 is provided with first drive rollers 40 that face each other in the vertical direction with the conveyance path 38 between them. The first drive rollers 40 are rotated by being driven by a first drive motor (not shown), and grip banknotes on the conveyance path 38 and convey them in a stacking direction Di that is a direction toward the banknote storage vault 16, or in a dispensing direction Do that is a direction in which the banknotes are dispensed from the banknote storage vault 16. Specifically, when banknotes conveyed from the conveyance path 38 are stacked in the banknote storage unit 32, the rollers of the first drive rollers 40 above the conveyance path 38 rotate counterclockwise in FIG. 3 and the rollers below the conveyance path 38 rotate clockwise in FIG. 3, thereby conveying the banknotes on the conveyance path 38 in the stacking direction Di and sending them to the second drive roller 42 toward the banknote storage unit 32. Although not shown, multiple sets of rollers similar to the first drive roller 40 are provided on the conveying path 38 closer to the payout direction Do than the first drive roller 40, and these rollers rotate when driven by a first drive motor (not shown), clamping banknotes on the conveying path 38 and transporting them in the accumulation direction Di or the payout direction Do.

[0032] Further, second drive rollers 42 are provided on the conveying path 38 closer to the banknote storage vault 16 than the first drive roller 40, facing each other in the vertical direction with the conveying path 38 in between. The second drive rollers 42 are driven to rotate by a second drive motor (not shown), which is a motor different from the first drive motor, and grip and convey banknotes on the conveying path 38 in the accumulation direction Di or the pay-out direction Do. Specifically, during accumulation, the rollers of the second drive rollers 42 above the conveying path 38 rotate counterclockwise in FIG. 3 and the rollers below the conveying path 38 rotate clockwise in FIG. 3, thereby conveying the banknotes on the conveying path 38 in the accumulation direction Di and sending them to the feed rollers 50 and reverse rollers 62 towards the banknote storage unit 32.

[0033] Furthermore, a transport sensor 44 is provided in the transport path 38 near the side of the first drive roller 40 in the payout direction Do. The transport sensor 44 is, for example, an optical sensor, and is composed of a light-emitting unit that emits detection light and a light-receiving unit that receives the detection light. The transport sensor 44 notifies the banknote control unit 11 of the detection result of receiving the detection light. Specifically, when a banknote crosses the detection light, the transport sensor 44 notifies the banknote control unit 11 of the detection result (i.e., ON state) indicating that the detection light is blocked by the banknote and the detection light is not received. On the other hand, when a banknote does not cross the detection light, the transport sensor 44 notifies the banknote control unit 11 of the light-receiving result (i.e., OFF state) indicating that the detection light is received. The banknote control unit 11 recognizes the position of the banknote transported on the transport path 38 based on this detection result, and detects that the banknote on the transport path 38 has reached the vicinity of the first drive roller 40 on the side of the payout direction Do during accumulation.

[0034] Furthermore, an accumulation sensor 46 is provided on the conveyance path 38 between the second drive roller 42 and the feed roller 50 and reverse roller 62. The accumulation sensor 46 is an optical sensor like the conveyance sensor 44, and supplies the detection result to the banknote control unit 11. Based on this detection result, the banknote control unit 11 detects that, for example, during accumulation, a banknote on the conveyance path 38 has passed the first drive roller 40 and reached a position where it can be conveyed by the second drive roller 42.

[0035] A picker roller 48 is rotatably supported on a shaft at a position above the banknote storage unit 32 facing the stage 36. Behind the picker roller 48 and above the opening 34, a feed roller 50 is driven by a second drive motor (not shown) and is rotatable clockwise and counterclockwise in FIG.

[0036] A rotating shaft 60 extends in the left-right direction below the opening 34 at a location facing the feed roller 50, and a reverse roller 62 is attached to the rotating shaft 60 at a location facing the feed roller 50 so that it can rotate clockwise in FIG. 3 when driven by a second drive motor (not shown). Both ends of the rotating shaft 60 are attached to the storage case 30 via a one-way clutch (not shown). The one-way clutch allows the rotating shaft 60 to rotate only clockwise in FIG. 3 relative to the storage case 30, and restricts counterclockwise rotation. The feed roller 50 and the reverse roller 62 mesh together in a non-contact manner, with the reverse roller meshing portion fitting into a feed roller groove (not shown).

[0037] 3, the feed roller 50 rotates counterclockwise in FIG. 3, and the reverse roller 62 rotates clockwise in FIG. 3, thereby clamping banknotes on the conveyance path 38 and discharging them to the banknote storage unit 32. On the other hand, when banknotes are fed out from the banknote storage unit 32, the feed roller 50 rotates clockwise in FIG. 3 together with the picker roller 48, and the reverse roller 62 does not rotate, thereby separating the banknotes in the banknote storage unit 32 one by one and sending them out to the conveyance path 38.

[0038] In the following, the counterclockwise rotation direction of the feed roller 50 in Figure 3 during accumulation, the clockwise rotation direction of the rotating shaft 60, reverse roller 62 and partial tongue piece 64 in Figure 3, the counterclockwise rotation direction of the rollers of the first drive rollers 40 above the conveying path 38 in Figure 3, the clockwise rotation direction of the rollers of the first drive rollers 40 below the conveying path 38 in Figure 3, the counterclockwise rotation direction of the rollers of the second drive rollers 42 above the conveying path 38 in Figure 3, and the clockwise rotation direction of the rollers of the second drive rollers 42 below the conveying path 38 in Figure 3 are also referred to as accumulation rotation directions ri.

[0039] A partial tongue 64 is fixed to the rotating shaft 60. Therefore, as the rotating shaft 60 rotates, the partial tongue 64 rotates in the accumulation rotation direction ri in synchronization with the reverse roller 62, which rotates in the accumulation rotation direction ri. As described above, the rotating shaft 60 is configured to be rotatable only in the accumulation rotation direction ri. Therefore, the partial tongue 64 is configured to be rotatable together with the rotating shaft 60 only in the accumulation rotation direction ri. The partial tongue 64 has a plurality of elastic, strip-shaped blades, for example, four blades, planted radially at predetermined equal intervals within a predetermined angular range of 180 degrees or less on the outer circumferential surface of a cylindrical main body (not shown). Furthermore, the partial tongue 64 rotates together with the reverse roller 62 in the accumulation rotation direction ri during accumulation, thereby knocking down the end of the banknote on the payout direction Do side of the banknote discharged by the feed roller 50 and the reverse roller 62 to the banknote storage unit 32. Incidentally, a groove or hole or the like is provided on the front side of the storage case 30, which allows the tip of the blade of the partial tongue 64 to enter into the banknote storage section 32 when the partial tongue 64 rotates. Note that the partial tongue 64 is also called a blade wheel in the technical field to which the present invention pertains.

[0040] A tongue position sensor 66 is provided near the partial tongue 64. The tongue position sensor 66 is an optical sensor like the transport sensor 44, and supplies the detection result to the banknote control unit 11. Based on this detection result, the banknote control unit 11 detects the rotational position (rotation angle) of the partial tongue 64, and controls the position of the partial tongue 64 by driving the second drive motor to rotate the rotation shaft 60.

[0041] As a result, the banknote control unit 11 retracts the partial tongue 64 to a predetermined retracted position during dispensing so that the partial tongue 64 does not protrude into the conveyance path 38 and interfere with the conveyance of banknotes. As described above, the rotating shaft 60 is configured to be rotatable only in the accumulation rotation direction ri by a one-way clutch (not shown). Therefore, even if the second drive motor (not shown) rotates so as to rotate the partial tongue 64 in the direction opposite to the accumulation rotation direction ri during dispensing, the partial tongue 64 does not rotate in the direction opposite to the accumulation rotation direction ri but is held in the predetermined retracted position.

[0042] For convenience of explanation, the conveying path 38 is divided into a first driving region ARc and a second driving region ARs. The second driving region ARs is the region from the position where the feed roller 50 and the reverse roller 62 mesh with each other to between the first driving roller 40 and the second driving roller 42. The first driving region ARc is the region on the payout direction Do side of the second driving region ARs.

[0043] When the end of a banknote on the payout direction Do side is located on the accumulation direction Di side of the boundary between the second drive area ARs and the first drive area ARc, the banknote is sandwiched between the second drive roller 42. Therefore, when the second drive roller 42 rotates due to the driving force of the second drive motor, the banknote is transported by the second drive roller 42, but since the banknote is not sandwiched between the first drive roller 40, it is not transported by the first drive roller 40 even when the first drive roller 40 rotates.

[0044] On the other hand, when the end of the banknote in the accumulation direction Di is located on the side of the feeding direction Do of the boundary between the second drive area ARs and the first drive area ARc, the banknote is pinched by the rollers on the conveying path 38, such as the first drive roller 40. Therefore, when the first drive roller 40 rotates due to the driving force of the first drive motor, the banknote is conveyed by the first drive roller 40, but since the banknote is not pinched by the second drive roller 42, it is not conveyed by the second drive roller 42 even when the second drive roller 42 rotates.

[0045] [1-3. Accumulation Operation] When the automated teller machine 1 performs a deposit transaction with a user, for example, it carries out a stacking operation in which the deposited banknotes are transported along the transport path 38 and stacked in the banknote storage vault 16 according to their denominations. Prior to starting the stacking operation and before starting to stack the banknotes in the banknote storage vault 16, the banknote control unit 11 rotates the partial tongue 64 while monitoring the detection result from the tongue position sensor 66, and moves it to a predetermined rotation position which serves as the initial position among the retracted positions as shown in Figure 3.

[0046] Here, the initial position is the rotational position of the partial tongue 64 when the banknote control unit 11 detects, based on the detection result of the accumulation sensor 46, that banknote BL1 of the banknotes BL has reached the second predetermined position on the transport path 38 as shown in Fig. 6 and stops the second drive motor. The second predetermined position is the position where, when the second drive motor is subsequently started again, the partial tongue 64 rotates from the initial position in the accumulation rotation direction ri and, in synchronization with this, banknote BL1 at the second predetermined position is transported as is to the banknote storage vault 16, and the end of banknote BL1 on the pay-out direction Do side is expected to be struck by the partial tongue 64 during accumulation, as shown in Fig. 8. In other words, based on the positional relationship between the rotational position of the partial tongue piece 64 and the banknote BL1 at the moment when the end of the banknote BL1 on the payout direction Do side is struck by the partial tongue piece 64 as shown in Figure 8, the partial tongue piece 64 is rotated in the opposite rotational direction to the accumulation rotational direction ri while the banknote BL1 is moved in the payout direction Do in synchronization with this, and the rotational position of the partial tongue piece 64 when the banknote BL1 is positioned at the second predetermined position becomes the initial position.

[0047] Specifically, the second predetermined position is not limited to the position at the moment when the leading edge of the banknote BL being transported in the accumulation direction Di on the accumulation direction Di side crosses the detection light of the accumulation sensor 46, but is set to a position where the banknote BL reliably crosses the detection light of the accumulation sensor 46, the leading edge of the banknote BL in the payout direction Do is located in the second drive area ARs, and the leading edge of the banknote BL in the accumulation direction Di does not enter the banknote storage section 32.

[0048] When the stacking operation starts, the banknote control unit 11 starts the first drive motor to rotate rollers on the conveyance path 38, including the first drive roller 40, in the payout direction Do in the stacking rotation direction ri, thereby conveying banknote BL1, which is the first banknote BL to be stacked on the conveyance path 38, in the stacking direction Di, as shown in Fig. 4. At this time, the banknote control unit 11 does not start the second drive motor yet.

[0049] Next, as shown in FIG. 5, when it is detected based on the detection result of the transport sensor 44 that the banknote BL1 has reached the first predetermined position, the banknote control unit 11 activates the second drive motor to rotate the second drive roller 42 in the accumulation rotation direction ri.

[0050] Here, the first predetermined position is a position where, when the partial tongue 64 rotates from the initial position in the accumulation rotation direction ri while the banknote BL is at the first predetermined position, and the banknote BL at the first predetermined position is transported to the banknote storage vault 16 in synchronization with the rotation, the end of the banknote BL on the payout direction Do side is expected to be struck by the partial tongue 64 during accumulation, as shown in Fig. 8. In other words, based on the positional relationship between the rotational position of the partial tongue 64 and the banknote BL at the moment the end of the banknote BL on the payout direction Do side is struck by the partial tongue 64 as shown in Fig. 8, the partial tongue 64 is rotated in the direction opposite to the accumulation rotation direction ri and the banknote BL is moved in the payout direction Do in synchronization with the rotational position of the partial tongue 64 when the banknote BL is positioned at the first predetermined position, and the rotational position of the partial tongue 64 is the initial position. This first predetermined position is determined by the rotational position of the partial tongue 64 at the initial position and the transport speed of the banknote BL. Therefore, the banknote control unit 11 can adjust the relationship between the position of the leading end of the banknote BL on the pay-out direction Do side and the rotational position of the partial tongue piece 64 by adjusting the start timing of the second drive motor.

[0051] Thereafter, as shown in Fig. 6, when it is detected that banknote BL1 has reached the second predetermined position based on the detection result of the accumulation sensor 46, the banknote control unit 11 stops the second drive motor. At this time, the banknote control unit 11 detects that the partial tongue 64 has reached the same rotational position as the initial position based on the detection result of the tongue position sensor 66. As a result, banknote BL1 is retained within the second drive area ARs.

[0052] Meanwhile, because the first drive motor continues to operate, banknote BL2, the second succeeding banknote BL located on the payout direction Do side of banknote BL1, approaches the second drive region ARs from the first drive region ARc. At this time, banknote BL1 has left the first drive region ARc and reached the second drive region ARs, so even if the first drive motor operates, the relationship between the position of banknote BL1 and the rotational position of the partial tongue piece 64 remains unchanged.

[0053] 7, when it is detected based on the detection result of the transport sensor 44 that banknote BL2 has reached the first predetermined position, similar to banknote BL1, the banknote control unit 11 starts the second drive motor again. At this time, similar to banknote BL1, the relationship between the position of the tip end of banknote BL2 on the pay-out direction Do side and the rotational position of the partial tongue 64 is adjusted so that if banknote BL2 is transported as is to the banknote storage vault 16, the end of banknote BL2 on the pay-out direction Do side is expected to be struck by the partial tongue 64 during stacking.

[0054] When the second drive motor is started again, banknote BL1 already in the second drive area ARs is clamped between the feed roller 50 and the reverse roller 62 and released from the opening 34 into the banknote storage unit 32, as shown in Fig. 8. At this time, the relationship between the position of the end of banknote BL1 on the payout direction Do side and the rotational position of the partial tongue piece 64 is maintained as described above, so the banknote deposit and withdrawal machine 10 can strike the end of banknote BL1 on the payout direction Do side with the partial tongue piece 64 during accumulation.

[0055] Thereafter, as shown in Fig. 9, when it is detected that banknote BL2 has reached the second predetermined position based on the detection result of the accumulation sensor 46, the banknote control unit 11 stops the second drive motor. At this time, the banknote control unit 11 detects that the partial tongue 64 has reached the same rotational position as the initial position based on the detection result of the tongue position sensor 66. As a result, banknote BL2 is retained within the second drive area ARs.

[0056] Meanwhile, because the first drive motor continues to operate, banknote BL3, the third and succeeding banknote BL located on the payout direction Do side of banknote BL2, approaches the second drive area ARs from the first drive area ARc. At this time, banknote BL2 has left the first drive area ARc and reached the second drive area ARs, so even if the first drive motor operates, the relationship between the position of banknote BL2 and the rotational position of the partial tongue piece 64 remains unchanged.

[0057] 10, when it is detected based on the detection result of the transport sensor 44 that banknote BL3 has reached the first predetermined position, similar to banknote BL2, the banknote control unit 11 starts the second drive motor again. At this time, similar to banknote BL2, the relationship between the position of the tip end of banknote BL3 on the pay-out direction Do side and the rotational position of the partial tongue 64 is adjusted so that if banknote BL3 is transported as is to the banknote storage vault 16, the end of banknote BL3 on the pay-out direction Do side is expected to be struck by the partial tongue 64 during stacking.

[0058] When the second drive motor is started again, banknote BL2 already in the second drive area ARs is clamped by the feed roller 50 and the reverse roller 62 (not shown) and released from the opening 34 into the banknote storage unit 32. At this time, as described above, the relationship between the position of the end of banknote BL2 on the payout direction Do side and the rotational position of the partial tongue piece 64 is maintained, so the banknote deposit and withdrawal machine 10 can strike the end of banknote BL2 on the payout direction Do side with the partial tongue piece 64 during accumulation.

[0059] Thereafter, the banknote deposit and withdrawal machine 10 repeats the above-described procedure. For this reason, the banknote deposit and withdrawal machine 10 intermittently operates the second drive motor, and adjusts the relationship between the position of the end of the banknote BL on the payout direction Do side and the rotational position of the partial tongue piece 64 every time a banknote BL is transported. This allows the banknote deposit and withdrawal machine 10 to always strike the end of all banknotes BL on the payout direction Do side with the partial tongue piece 64, even if, for example, the intervals between the transported banknotes BL vary.

[0060] Furthermore, if the banknote deposit and withdrawal machine 10 detects that a banknote BL has reached the second predetermined position based on the detection result of the accumulation sensor 46 and stops the second drive motor, and then does not detect a subsequent banknote BL based on the detection result of the transport sensor 44 even after a certain time has elapsed since the banknote deposit and withdrawal machine 10 stopped the second drive motor, the banknote deposit and withdrawal machine 10 starts the second drive motor again and releases the banknote BL from the opening 34 to the banknote storage section 32, even if a subsequent banknote BL was not detected based on the detection result of the transport sensor 44 because the banknote BL was the last banknote BL in the accumulation operation or the accumulation operation was for only one banknote BL in the first place.

[0061] If the distance between the leading banknote (BL) and the following banknote (BL) during deposit transport falls below a certain threshold, the following banknote will reach the first predetermined position based on the detection result of the transport sensor 44 before the timing for stopping the second drive motor for the leading banknote arrives, and the timing for restarting the second drive motor for the leading banknote arrives, resulting in a loss of control. In this case, the banknote deposit and withdrawal machine 10 may become clogged with banknotes BL, causing a jam, so it is necessary to temporarily stop the accumulation operation and have an operator remove both the leading and following banknotes.

[0062] [1-4. Effects, etc.] In the above configuration, when the banknote deposit and withdrawal machine 10 of the automated teller machine 1 detects that the banknote BL1 has reached the first predetermined position based on the detection result of the transport sensor 44, as shown in FIG. 5, it activates the second drive motor to rotate the second drive roller 42 in the accumulation rotation direction ri.

[0063] Thereafter, as shown in Fig. 6, when the banknote deposit and withdrawal machine 10 detects that banknote BL1 has reached the second predetermined position based on the detection result of the accumulation sensor 46, it stops the second drive motor and causes banknote BL1 to remain in the second drive area ARs. At this time, the banknote deposit and withdrawal machine 10 detects that the partial tongue 64 has reached the same rotational position as the initial position based on the detection result of the tongue position sensor 66. Therefore, the banknote deposit and withdrawal machine 10 can adjust the relationship between the position of the end of banknote BL1 on the pay-out direction Do side and the rotational position of the partial tongue 64 so that when the second drive motor is subsequently started again to feed banknote BL1 into the banknote storage unit 32, the partial tongue 64 is expected to be able to strike the end of banknote BL1 on the pay-out direction Do side.

[0064] Next, as shown in Fig. 7, when the banknote deposit and withdrawal machine 10 detects that banknote BL2 has reached the first predetermined position based on the detection result of the transport sensor 44, it starts the second drive motor again and rotates the second drive roller 42, the feed roller 50 and the reverse roller 62 in the accumulation rotation direction ri, thereby discharging banknote BL1 into the banknote storage unit 32. At this time, because the relationship between the position of the end of banknote BL1 on the pay-out direction Do side and the rotational position of the partial tongue piece 64 is maintained as described above, the banknote deposit and withdrawal machine 10 can hit the end of banknote BL1 on the pay-out direction Do side with the partial tongue piece 64 during accumulation, as shown in Fig. 8.

[0065] The banknote deposit and withdrawal machine 10 repeats the above-mentioned procedure for subsequent banknotes BL, thereby adjusting the timing of restarting the second drive motor to adjust the relationship between the position of the end of the banknote BL on the pay-out direction Do side and the rotational position of the partial tongue piece 64 so that it is expected that the end of the banknote BL on the pay-out direction Do side will be struck by the partial tongue piece 64 when the banknote BL is fed into the banknote storage unit 32. Therefore, the banknote deposit and withdrawal machine 10 can strike the end of the banknote BL on the pay-out direction Do side with the partial tongue piece 64 for all subsequent banknotes BL as well when they are stacked.

[0066] Here, we consider a comparative example of a conventional tongue mechanism that combines a fixed tongue and a movable tongue, but simply removes the movable tongue and uses only the fixed tongue. In the comparative example, the fixed tongue simply has multiple blades formed at predetermined intervals within a predetermined angle range of 180 degrees or less, making it easy to retract the fixed tongue from the conveying path 38 during dispensing. Therefore, compared to conventional tongue mechanisms, the comparative example of a tongue mechanism can simplify its structure and reduce the number of parts while retaining its retraction function. However, in the comparative example of a tongue mechanism, because the blades of the fixed tongue are formed only within a predetermined angle range of 180 degrees or less, depending on the timing of the arrival of banknotes BL during stacking, the fixed tongue may not strike the end of the banknote BL on the side of the dispensing direction Do. This could cause the following banknote to collide with the preceding banknote, resulting in a jam. This could disrupt the stacking function and prevent the tongue mechanism from fully fulfilling its intended role.

[0067] In contrast, the banknote deposit and withdrawal machine 10 maintains the same accumulation function as the conventional tongue mechanism that combines a fixed tongue and a movable tongue, while simplifying the mechanism for retracting from the conveying path 38, thereby reducing the number of parts and costs.

[0068] According to the above-mentioned configuration, the banknote deposit and withdrawal machine 10 of the automated teller machine 1 includes the storage case 30 that stores banknotes BL as media in an accumulated state, the second drive roller 42 that feeds the banknotes BL on the transport path 38 toward the storage case 30 in the accumulation direction Di, the partial tongue 64 that has a blade on a part of its circumference and strikes the accumulated banknotes BL to drop the banknotes BL to the bottom of the storage case 30, the accumulation sensor 46 that is provided on the transport path 38 between the storage case 30 and the second drive roller 42 and detects the banknotes BL, the first drive roller 40 that feeds the banknotes BL to the second drive roller 42, and the first drive roller 42 on the transport path 38. The conveying sensor 44 is provided in the pay-out direction Do, which is the opposite side of the accumulation direction Di from the moving roller 40, and detects the banknote BL; and when the accumulation sensor 46 detects a preceding banknote which is the banknote BL and the partial tongue piece 64 reaches an initial position as a predetermined initial rotation position, the second driving roller 42 and the partial tongue piece 64 are stopped to stop the preceding banknote, and when the conveying sensor 44 detects a following banknote which is the banknote BL following the preceding banknote, the operation of the second driving roller 42 and the partial tongue piece 64 is resumed, the preceding banknote is sent to the storage case 30, and the partial tongue piece 64 strikes the end of the banknote BL.

[0069] Therefore, the banknote deposit and withdrawal machine 10 adjusts the timing of restarting the second drive motor so that when a banknote BL is sent into the storage case 30, the partial tongue 64 is expected to be able to strike the end of the banknote BL on the payout direction Do side, so that even if the partial tongue 64 has a blade on only part of its circumference, it can strike the end of the banknote BL on the payout direction Do side during accumulation.

[0070] 2. Second Embodiment [2-1. Configuration of the automated teller machine and banknote deposit / dispensing machine] As shown in FIG. 1, the automated teller machine 101 according to the second embodiment differs from the automated teller machine 1 according to the first embodiment in that it has a banknote deposit and withdrawal machine 110 instead of the banknote deposit and withdrawal machine 10, but is otherwise configured in the same manner.

[0071] As shown in Fig. 2, the banknote deposit and dispensing machine 110 according to the second embodiment differs from the banknote deposit and dispensing machine 10 according to the first embodiment in that it has a banknote control unit 111 instead of the banknote control unit 11, but is otherwise configured in the same way. Like the banknote control unit 11, the banknote control unit 111 is configured mainly by a CPU (not shown), and performs some processing that differs from that of the banknote control unit 11 by reading and executing predetermined programs from a ROM, flash memory, etc. (not shown). Also, like the banknote control unit 11, the banknote control unit 111 has an internal memory unit in which various types of information are stored.

[0072] As shown in Figure 11, in which the same reference numerals are used for components corresponding to those in Figure 3, the banknote control unit 111 adjusts the initial position of the partial tongue 64 before the start of the stacking operation to a position where the blade arranged at the end of the partial tongue 64 in the opposite direction to the stacking rotation direction ri enters the banknote storage unit 32 and presses down on the upper surfaces of the banknotes BL stacked on the stage 36. Furthermore, based on the detection results from a sensor provided in the banknote storage unit 32, the banknote control unit 111 adjusts the position of the stage 36 so that the upper surfaces of the banknotes BL stacked on the stage 36 are always at a constant vertical position, regardless of the number of banknotes BL stacked on the stage 36. Note that a groove, hole, or the like is provided on the front side of the storage case 30 to allow the tip of the blade to enter the banknote storage unit 32 when the partial tongue 64 rotates.

[0073] Therefore, the banknote deposit and withdrawal machine 110 can prevent the banknotes BL that have been stacked on the stage 36 from floating up while the partial tongue piece 64 is not rotating. This makes it possible for the banknote deposit and withdrawal machine 110 to prevent the banknotes BL that have been released into the banknote storage unit 32 from colliding with the stacked banknotes BL that have been stacked on the stage 36 and causing a jam.

[0074] Here, even if the banknote deposit and withdrawal machine 110 adjusts the initial position of the partial tongue piece 64 to a position where the blade presses down on the top surface of the banknote BL already accumulated on the stage 36, in order to maintain the accumulation function, when the second drive motor is started again, the partial tongue piece 64 needs to strike the end of the banknote BL released into the banknote storage section 32 on the payout direction Do side.

[0075] In contrast, the banknote deposit and withdrawal machine 110 is configured such that, in the initial position, the blades arranged at the end of the partial tongue piece 64 in the opposite direction to the accumulation rotation direction ri press down the upper surfaces of the banknotes BL accumulated on the stage 36. Therefore, compared to when the banknote deposit and withdrawal machine 110 presses down the upper surfaces of the banknotes BL accumulated on the stage 36 in the initial position with the blades arranged at the end of the partial tongue piece 64, for example, on the accumulation rotation direction ri side, the banknote deposit and withdrawal machine 110 can more easily make the blades of the partial tongue piece 64 reach the position where they hit the end of the banknotes BL released into the banknote storage unit 32 on the payout direction Do side when the second drive motor is started again.

[0076] In other respects as well, the banknote deposit and withdrawal machine 110 according to the second embodiment can achieve the same effects as the banknote deposit and withdrawal machine 10 according to the first embodiment.

[0077] 3. Other Embodiments In the first embodiment described above, the banknote deposit and withdrawal machine 10 has been described as having the second drive roller 42, feed roller 50, and reverse roller 62 driven and rotated by the second drive motor. However, the present invention is not limited to this, and the banknote deposit and withdrawal machine 10 may have the second drive roller 42, feed roller 50, and reverse roller 62 driven and rotated by different drive motors. The same applies to the second embodiment.

[0078] Furthermore, in the banknote deposit and withdrawal machine 10 of the first embodiment described above, the second drive roller 42 may be omitted. In that case, the accumulation rollers that feed the banknotes BL in the accumulation direction Di on the conveyance path 38 toward the storage case 30 are the feed roller 50 and the reverse roller 62. The same applies to the second embodiment.

[0079] Furthermore, in the second embodiment described above, the banknote deposit and withdrawal machine 110 has been described as pressing down the upper surfaces of banknotes BL accumulated on the stage 36 with the blades arranged at the ends of the partial tongue pieces 64 in the opposite direction to the accumulation rotation direction ri. The present invention is not limited to this, and the banknote deposit and withdrawal machine 110 may press down the upper surfaces of banknotes BL accumulated on the stage 36 with various other blades of the partial tongue pieces 64, as long as the blades of the partial tongue pieces 64 can reach a position where they strike the ends of the banknotes BL released into the banknote storage unit 32 in the payout direction Do when the second drive motor is started again while maintaining the requirement of the second predetermined position.

[0080] Furthermore, in the banknote deposit and withdrawal machine 10 of the first embodiment described above, the present invention may be applied to the accumulation operation in various numbers of banknote storage vaults 16 out of the plurality of banknote storage vaults 16, and further, as long as a tongue mechanism is provided, the present invention may be applied to the accumulation operation in various other locations within the banknote deposit and withdrawal machine 10, such as the deposit and withdrawal unit 12. The same applies to the second embodiment.

[0081] Furthermore, in the first embodiment described above, the banknote deposit and dispensing machine 10 has been described as having the banknote control unit 11 (FIG. 2) control each operation such as the stacking operation. The present invention is not limited to this, and the banknote deposit and dispensing machine 10 may, for example, have the banknote control unit 11 cooperate with the main control unit 9 (FIG. 1) to control each operation such as the stacking operation. The same applies to the second embodiment.

[0082] Furthermore, in the first embodiment described above, the present invention has been described as being applied to the banknote depositing and dispensing machine 10 of the automated teller machine 1 that processes transactions involving banknotes as a medium between customers. However, the present invention is not limited to this, and may be applied to various devices that have a tongue mechanism and handle various paper-like media such as various coupons, securities, or admission tickets and train tickets as transaction objects. The same applies to the second embodiment.

[0083] Furthermore, the present invention is not limited to the above-described embodiments and other embodiments. That is, the scope of application of the present invention also extends to embodiments in which the above-described embodiments are combined in part or in whole with any of the above-described other embodiments. The scope of application of the present invention also extends to embodiments in which part of the configuration described in any of the above-described embodiments and other embodiments is extracted and used as part of the configuration of any of the above-described embodiments and other embodiments, or in which part of the extracted configuration is added to any of the above-described embodiments.

[0084] Furthermore, in the above-described embodiment, the banknote deposit and dispensing machine 10 as a medium processing device is configured with the storage case 30 as a storage container, the second drive roller 42 as a stacking roller, the partial tongue piece 64 as a blade wheel, the accumulation sensor 46 as an accumulation sensor, the first drive roller 40 as a transport roller, the transport sensor 44 as a transport sensor, and the banknote control unit 11 as a control unit. However, the present invention is not limited to this, and the medium processing device may be configured with a storage container, accumulation roller, blade wheel, accumulation sensor, transport roller, transport sensor, and control unit having various other configurations. [Industrial Applicability]

[0085] The present invention can be used, for example, in a banknote deposit / withdrawal device incorporated in an automated teller machine that performs deposit and withdrawal transactions relating to banknotes with users. [Explanation of symbols]

[0086] 1, 101...automated teller machine, 2...casing, 3...customer service section, 4...card slot, 5...deposit / withdrawal port, 6...operation display section, 7...numeric keypad, 8...receipt issuing port, 9...main control section, 10, 110...banknote deposit / withdrawal machine, 10U...upper unit, 10L...lower unit, 11...banknote control section, 12...deposit / withdrawal section, 12A...storage container, 12B...shutter, 13...conveyance section, 14...recognition section, 15...temporary holding section, 16...banknote storage box, 17...reject box, 18...upper conveyance section, 19...upper Storage cabinet, 30...storage cabinet case, 32...banknote storage section, 34...opening, 36...stage, 38...conveying path, 40...first drive roller, 42...second drive roller, 44...conveying sensor, 46...accumulation sensor, 48...picker roller, 50...feed roller, 60...rotating shaft, 62...reverse roller, 64...partial tongue, 66...tongue position sensor, BL...banknote, ri...accumulation rotation direction, Di...accumulation direction, Do...feeding direction, ARs...second drive area, ARc...first drive area.

Claims

1. a storage container for storing the media in an accumulated state; an accumulation roller that feeds the medium in a conveying direction along the conveying path toward the storage container; an impeller having blades on a portion of its circumference that strikes the accumulated media and drops the media to the bottom of the storage container; an accumulation sensor that is disposed between the storage container and the accumulation roller in the conveyance path and detects the medium; a conveying roller that feeds the medium to the collecting roller; a transport sensor that is provided on the transport path on the opposite side of the transport direction from the transport roller and detects the medium; a control unit that, when the accumulation sensor detects the preceding medium and the impeller reaches a predetermined initial rotation position, stops the accumulation roller and the impeller to stop the preceding medium, and, when the transport sensor detects a subsequent medium that follows the preceding medium, resumes operation of the accumulation roller and the impeller to send the preceding medium to the storage container and cause the impeller to strike an edge of the medium; A media processing device having:

2. The control unit When the transport sensor detects the preceding medium and the preceding medium reaches a predetermined position, the accumulation roller and the impeller start rotating to transport the preceding medium from the transport roller toward the accumulation roller, when the accumulation sensor detects the preceding medium and the impeller reaches the initial rotation position, the accumulation roller and the impeller stop to stop the preceding medium, and when the transport sensor detects the following medium, the accumulation roller and the impeller resume operation to send the preceding medium to the storage container and have the impeller strike the edge of the medium. The media processing device of claim 1 .

3. a rotational position sensor for detecting the rotational position of the impeller; and The control unit When the transport sensor detects the preceding medium and the preceding medium reaches a predetermined position, the accumulation roller and the impeller start rotating to transport the preceding medium from the transport roller toward the accumulation roller; when the accumulation sensor detects the preceding medium and the impeller rotates to the initial rotation position based on the detection result of the rotation position sensor, the accumulation roller and the impeller stop to stop the preceding medium; when the transport sensor detects the following medium, the accumulation roller and the impeller resume operation to send the preceding medium to the storage container and have the impeller strike the edge of the medium. The media processing device of claim 1 .

4. The predetermined position is The conveying roller conveys the medium to the accumulation roller, and then the accumulation roller and the impeller stop. Then, the accumulation roller and the impeller resume operation, and the impeller starts rotating from the initial rotation position, and when the medium is sent to the storage container, the impeller is in a position where it can strike the edge of the medium. The media processing device according to claim 2 or 3.

5. The initial rotation position is The accumulation roller and the impeller stop, and then the accumulation roller and the impeller resume operation, causing the impeller to start rotating from the initial rotation position, and when the media is sent to the storage container, the impeller is at a rotation position where it can strike the edge of the media. The media processing device of claim 1 .

6. The control unit Before the media start to be transported to the storage container, the rotational position of the impeller is set to a rotational position where the blades come into contact with the upper surface of the media accumulated in the storage container. The media processing device of claim 1 .

7. The accumulation roller and the impeller are driven by the same driving source. The media processing device of claim 1 .

8. The impeller has blades only on a part of its circumference. The media processing device of claim 1 .

Citation Information

Patent Citations

  • Impeller mechanism

    JP2009132519A