This application claims benefit of priority based on Japanese Patent Application No. 2007-024098 filed on Feb. 2, 2007. The contents of this application are incorporated herein by reference in their entirety.
1. Field of the Invention
The present invention relates to a card processor that executes information writing processing and information reading processing on card-shaped information recording media, and specifically relates to a card processor having a stock portion, inside the processor body, the stock portion being capable of housing a plurality of cards.
2. Discussion of the Background
The above-mentioned card processor typically comprises: a card insertion slot (hereinafter referred to as an insertion slot) into which a card is inserted; and a carriage mechanism which carries the card inserted into the insertion slot to a predetermined processing position. Among such card processors, there are those comprising a stock portion capable of housing a plurality of cards so as to house cards inserted from the insertion slot and write information into a housed card for issuance.
As the card processor comprising the stock portion as just described, for example, a card processor is known which is set in a pachinko ball lending machine installed at a recreational hall or the like, as disclosed in Japanese Patent No. 3809612. Namely, such a card processor discharges pachinko balls in number corresponding to the selected amount of money if a prepaid card, which has been previously issued by a predetermined amount of money being paid, is inserted into an insertion slot; at the time when the balance in the card is used up, the card processor collects the prepaid card having been inserted as it is and houses the card into the stock portion (the card processor returns the prepaid card to the player when the card balance is left). Alternatively, if money is inserted by the user, the card processor takes out a card housed in the stock portion and writes into the card the amount of money inserted, and then issues the card to the player (prepaid card issuance).
In the card processor comprising the stock portion as described above, it is necessary to provide a drive mechanism for housing a card into the stock portion. For example, a drive mechanism of the card processor disclosed in Japanese Patent No. 3809612 comprises a shutter plate oscillatable in the shape of a seesaw, the shutter plate having a flap, integrally formed on one end, configured to close a card insertion slot and a projection, integrally formed on the other end, configured to press up a stocked card. The projection side of this shutter plate is pressed up by rotation of a card lift cam fixed to a card lift drive motor, thereby pressing up the undersurface of the stocked card to form a gap between the card and the carriage path so that a card inserted from the insertion slot can be housed into the stock portion.
The contents of Japanese Patent No. 3809612 are incorporated herein by reference in their entirety.
Since the card processor disclosed in Japanese Patent No. 3809612 described above requires the driving portion (card lift cam, card lift drive motor) for pressing up the projection formed on the shutter plate, the configuration of the drive mechanism for housing a card into the stock portion is complicated and the cost thereof is thus high. Especially in the event of failure in the drive portion, the card carrying operation may become unstable or the housing operation may be hindered.
The present invention was made with attention focused on the above-mentioned problem, and has an object to provide a card processor where a configuration of a housing drive mechanism for housing a card into a stock portion is simplified so that a stable card carrying operation and card housing operation can be performed.
In order to attain the above object, a card processor recited in claim 1 comprises: an insertion slot, into which a card is inserted; a carriage path, along which the card inserted from the insertion slot is carried; a stock portion, which is installed on a downstream side of the carriage path and capable of housing inserted cards in a stacked state; and a housing drive mechanism, which houses a card into the stock portion, wherein the housing drive mechanism includes an oscillating member having a first projecting/withdrawing portion which is located on the insertion slot side and capable of projecting and withdrawing from the carriage path and a second projecting/withdrawing portion which is located on the stock portion side and capable of projecting and withdrawing from the carriage path, the oscillating member being oscillatably supported via a shaft, and the second projecting/withdrawing portion of the oscillating member presses up the cards housed in the stock portion when the card inserted from the insertion slot presses down the first projecting/withdrawing portion of the oscillating member.
According to the card processor having the above-mentioned configuration, when a card is inserted into the insertion slot, the card presses down the first projecting/withdrawing portion of the oscillating member. Thereby the oscillating member oscillates and the second projecting/withdrawing portion rises, to press up a card housed in the stock portion located above the second projecting/withdrawing portion. Pressing up the card leads to formation of a gap between the carriage path and the surface of the card housed in the stock portion. A card is carried in through this gap and is newly stacked and housed in the stock portion. As just described, only oscillating the oscillating member along with performing the card carrying operation enables housing of the card into the stock portion, thereby simplifying the configuration of the housing drive mechanism without provision of a drive component such as a motor or a cam. Therefore, destabilization of the operation for housing the card into the stock portion due to failure in the drive component or the like can be suppressed.
Further, the invention according to claim 2 is characterized in that an inclined face gradually rising toward a card carrying direction is formed on the first projecting/withdrawing portion.
According to the card processor having the above-mentioned configuration, formation of the inclined face allows smooth movement of the card passing the first projecting/withdrawing portion, thereby facilitating the card inserting operation. In this case, the inclined face may be formed on the internal side of the processor body so long as being configured to be capable of returning the card toward the insertion slot side.
Moreover, the invention according to claim 3 is characterized in that a roller is rotatably supported in the first projecting/withdrawing portion so that the card being carried comes in sliding contact with the roller.
According to the card processor having the above-mentioned configuration, installation of the rotatable roller allows smoother carriage of the card as well as alleviation of contact resistance to the card, thereby efficiently preventing damage on the card.
Furthermore, the present invention according to claim 4 is characterized in that a small diameter portion is formed on the roller so that part of the surface of the card being carried does not come into contact with the roller.
According to the card processor having the above-mentioned configuration, previous formation of the small diameter portion on the rotatable roller can prevent the card surface from partially coming into contact with the roller at the region of the small diameter portion when the card is carried. Namely, the card surface may be provided with a column to write a name in at a previously determined position, and in a roller without the small diameter portion, the name part may be rubbed and thus the name may be erased; however, previously forming the small diameter portion allows the card to be protected such that the name is not rubbed and thus erased.
According to the present invention, it is possible to obtain a card processor in which a configuration of a housing drive mechanism for housing a card into a stock portion is simplified and a stable card carrying operation and card housing operation can be performed.
In the following, an embodiment of a card processor according to the present invention is described with reference to drawings. It is to be noted that a card processor in the present embodiment has such a configuration as to be suitably installed mainly in a game media lending machine in a recreation hall such as a pachinko hall. Namely, the card processor in the present embodiment is configured to be able to: read and rewrite amount-of-money information by insertion of a card (prepaid card) with amount-of-money information written therein; return a card with rewritten amount-of-money information or collect a card when the amount becomes zero; and write amount-of-money information into a card previously in stock by insertion of an amount of money, to issue the card (prepaid card).
A card processor 1 of the present embodiment is for example configured so as to be incorporated into a game media lending machine (not shown) installed between a variety of gaming machines such as pachinko machines and slot machines. In this case, other devices (e.g. bill processor, a power unit, and the like) may be previously installed on the upper side or the lower side with respect to the card processor 1 in the game media lending machine; the card processor 1 may be integrated with these other devices, or may be configured separately therefrom. While executing prepaid card reading processing and return processing/collect processing as described above, the card processor 1 is capable of executing card issuance processing by insertion of a bill into a bill processor which is not shown.
The card processor 1 comprises a frame 2 formed in the shape of a substantially rectangular prism, and this frame 2 is mounted on a locking portion of a game media lending machine which is not shown. The frame 2 has: a body frame 2A constituting a processor body; a stock portion 2B which is configured to stack and house a plurality of cards and installed on the card carriage downstream side of the body frame 2A; and a substrate mounted frame 2C which is installed on the card carriage upstream side of the body frame 2A and has a control substrate 200 mounted thereon for controlling the whole processor. It is to be noted that, although
As shown in
The body frame 2A has the shape of a substantially rectangular prism, and at its center, a carriage path 3 is formed which extends in a longitudinal direction to carry a card. As shown in
Card carrying-in portions 3A, 3B are formed respectively on the body frame 2A and the substrate mounted frame 2C, so as to agree with the carriage path 3. When the stock portion 2B is closed into the body frame 2A and the substrate mounted frame 2C is mounted on the body frame 2A, the card carrying-in portions 3A, 3B form a slit-shaped card insertion slot 4. As shown in
The stock portion 2B is provided with the function of stocking cards carried in onto the carriage path 3 from the insertion slot 4, and cards that move along the carriage path 3 are housed so as to be sequentially stacked from the bottom of the stock portion. It is to be noted that a specific configuration and operation of the stock portion 2B are described later.
The front edge side of the stock portion 2B is provided with a lock shaft 6 that can be latched to the body frame 2A. This lock shaft 6 is biased toward the rear side by a bias spring or the like. Pulling the lock shaft 6 toward the insertion slot 4 side (direction of an arrow B) releases the locked state of the stock portion 2B and the body frame 2A (both frames being in the closed state) so that the stock portion 2B comes into an open state (see
In the body frame 2A, there are installed a shutter mechanism for preventing insertion of an additional card, a carriage mechanism for carrying a card, a housing drive mechanism for housing a card moving along the carriage path 3 into the stock portion 2B, a drop prevention mechanism for holding a card so as to prevent the card from dropping when a card is discharged from the insertion slot 4, and some other mechanisms.
In the following, configurations and operations of a variety of drive mechanisms installed in the body frame 2A are specifically described.
In the body frame 2A, a shutter mechanism 10 is installed which prevents the user from erroneously inserting an additional card during card processing. The configuration of this shutter mechanism 10 is described with reference to the above-mentioned
The shutter mechanism 10 has an oscillating member 12 oscillatably supported with respect to the body frame 2A via a shaft 11. The oscillating member 12 of the present embodiment is oscillatably supported on one side wall side of the carriage path 3, and extends in the card carrying direction, to be integrally formed of a synthetic resin material so as to be elastically transformed. In addition, the shaft 11 is integrally formed with the oscillating member 12 on the side slightly behind the center.
In the oscillating member 12, the shaft 11 is set to a bearing 2a projected to the rear side of the carriage path 3 of the body frame 2A, and a substantially M-shaped cover 13 is installed over the shaft 11 so that the oscillating member 12 is oscillatably supported against the body frame 2A. Namely, the oscillating member 12 can be mounted onto or demounted from the body frame 2A by a simple operation, and a load applied on the oscillating member can be alleviated by the substantially M-shaped cover 13.
Further, a closing portion 12c that makes the insertion slot 4 closable is formed on one end side of the oscillating member 12, and a projecting/withdrawing portion 12d capable of projecting and withdrawing from the carriage path 3 is formed on the other end side of the oscillating member 12. As shown in
The oscillating member 12 is supported such that the closing portion 12c constantly opens the insertion slot 4 (in a state where the closing portion 12c is depressed into the opening 2b), and in this state, the projecting/withdrawing portion 12d on the other end side projects from the surface of the carriage path 3. In order to give such a state, a pressing spring 14 is interposed between the oscillating member 12 at a position ahead of the shaft 11 and the rear surface of the body frame 2A, to bias the closing portion 12c in a direction to be constantly depressed into the opening 2b. A hole is formed in the oscillating member 12, and the pressing spring 14 is in the state of being held in the hole.
Further, the insertion slot side of the oscillating member 12 is arranged to be bendable along the card carrying direction. When the front end side of a card moving along the carriage path 3 presses the projecting/withdrawing portion 12d, the closing portion 12c of the oscillating member 12 in a bent state comes into contact with the surface of the rear end side of the card. Namely, with the oscillating member 12 bent, a large load is not applied to the moving card even when the closing portion 12c comes into contact therewith, thereby preventing the closing portion 12c from damaging the card and being resistance during carriage of the card.
In this case, a notch depression 12e is formed on the oscillating member 12 so that the oscillating member 12 is more easily bent when the closing portion 12c comes into contact with the moving card. This notch depression 12e is formed with a predetermined depth on the surface of the oscillating member 12 on the body frame 2A side ahead of the shaft 11, in a direction orthogonal to the shaft direction so that the closing portion 12c side can be easily bent downward. Namely, the front side including the closing portion 12c with the notch depression 12e as a supporting point can be easily bent in the direction to be depressed into the opening 2b, when the top of the closing portion 12c comes into contact with the surface of the card. It is to be noted that, other than formation of the notch depression 12e, as the means of bending the oscillating member 12, for example, the front side of the oscillating member 12 may be formed of a flexible material or the like.
Thereby, the oscillating member 12 becomes able to make the closing portion 12c and the projecting/withdrawing portion 12d formed on the respective ends thereof simultaneously come into contact with the card surface, and as shown in
Further, as shown in
It is to be noted that as shown in the enlarged view in
Further, as shown in
Moreover, in the present embodiment, as shown in
Next, an operation of the oscillating member 12 constituting the shutter mechanism 10 is described with reference to
Initially, the oscillating member 12 of the shutter mechanism 10 described above is in a state where, with the shaft 11 as the center, the closing portion 12c is depressed below the carriage path 3. This state is kept by a position that the shaft 11 supports the oscillating member 12 as well as the bias force of the pressing spring 14. When the card PC is inserted from the insertion slot 4 in this state, a card detection sensor 15A (first sensor) installed on the carriage path 3 shown in
At a stage where passage of the rear end of the carried-in card PC is detected by the first sensor 15A, the operation of the carriage mechanism is stopped to temporarily stop the card PC.
As shown in
At this time, as shown in
When the card PC is carried further inside and the rear end of the card passes through the first sensor 15A and is carried to the information processing position as described above, the closing portion 12c in the bent state rises as the projecting/withdrawing portion 12d of the oscillating member 12 is pressed down, to close the insertion slot 4, as shown in
In the shutter closed state shown in
When the card PC is collected to a later-described stock portion 2B, the card PC is carried further inside to a stock position shown in
It is to be noted that, on the carriage path 3 of the body frame 2A, a second sensor 15B is installed on the downstream side of the first sensor 15A, to detect conditions (carriage state and direction) of the card. Further, a third sensor 15C that detects an operation of the oscillating member 12 is installed on the rear surface of the body frame 2A, to detect the end of the read/write operation as well as completion of carriage of the card PC to a later-described stock portion 2B. In this case, as well known, the first sensor 15A and the second sensor 15B are each configured to have a light emitting portion and a light receiving portion which detect passage of the card, and the third sensor 15C is installed in the vicinity of the projecting/withdrawing portion 12d of the oscillating member 12 and is provided with a light-emitting portion and a light-receiving portion which detect an operation of the projecting/withdrawing portion 12d when moving up or down.
According to the above-mentioned shutter mechanism 10, when the card PC is inserted into the insertion slot 4 and then carried by the carriage mechanism, the front end side of the card engages with the projecting/withdrawing portion 12d to oscillate the oscillating member 12. With the oscillating member 12 oscillated in this manner, the closing portion 12c formed on the insertion slot side closes the insertion slot 4, thereby bringing the insertion slot 4 into the state of preventing additional insertion of a new card during the card PC processing operation. Further, even if the closing portion 12c moves in a direction to close the insertion slot 4, to come into contact with the surface of the card PC being carried before the rear end of the card passes through the insertion slot 4, contact force generated when the closing portion 12c comes into contact with the card surface is alleviated because the oscillating member 12 is configured to be bendable as described above, thereby preventing damage on the card surface. In particular, the notch depression 12e formed on the oscillating member 12 can make the oscillating member to be more bendable, to allow reliable alleviation of contact force of the closing portion 12c on the card so that damage on the card surface can be reliably prevented.
This eliminates the need for adjusting the length of the carriage direction of the oscillating member 12 based upon the length of the card in the carrying direction, thereby allowing reduction in size of the processor body. Specifically, it becomes possible to set the length of the oscillating member 12 shorter than the length of the card in the carrying direction, so as to reduce the processor body in size by the length by which the oscillating member 12 is set shorter.
It is to be noted that, as shown in
In the body frame 2A, a carriage mechanism 20 is installed which carries a card inserted into the insertion slot 4 toward the inside of the processor. The configuration of this carriage mechanism is described with reference to the above-mentioned
The carriage mechanism 20 of the present embodiment is configured to be able to carry a card inserted from the insertion slot 4 along an insertion direction A and to be able to carry a card located inside the processor body toward the insertion slot 4 side. The carriage mechanism 20 is provided with: a drive motor 21 as a drive source installed on the body frame 2A (see
The carriage belt 25 is wound around a rotating roller 22 installed on the drive shaft 22a rotatably driven by the drive motor 21 and a roller 23 installed at a predetermined spacing along the carriage path 3. The carriage belt 25 with its surface exposed to the carriage path 3 has the function of carrying the card placed thereon. It is to be noted that, as shown in
As shown in
Further, the roller 23 in the state of being rotatably held by the fixing member 24 is installed at a predetermined position of the carriage path 3. In the following, configurations of the roller 23 and the fixing member 24 are described with reference to
The roller 23 is integrally formed using a synthetic resin such as POM, and as shown in
Further, as is the roller 23, the fixing member 24 is integrally formed using the synthetic resin such as POM, and as shown in
In
As shown in
According to the above-mentioned configuration, while in the state of being held by the fixing member 24, the roller 23 constituting the carriage mechanism can be installed by a one-touch operation (a simple pressure-insertion operation) into the depression (installation portion) 3a formed on the card carriage path of the body frame 2A; thus, incorporating the rollers 23 into the body frame 2A becomes easy so that manufacturing cost can be reduced.
In particular, in the configuration of the present embodiment, the fixing member 24 is provided with the transforming portion 24B that is elastically transformable, and the fixing member 24 is arranged to be fixed such that force is applied to the transforming portion 24B in a direction (direction of the arrow D1 in
Further, in the above-mentioned configuration, the roller 23 is held between a pair of fixing members 24, and the direction D1 in which the transforming portions 24B for removing the fixing members 24 elastically transform are directions toward the center of the roller as shown in
Further, in the above-mentioned configuration, since the fixing member 24 has the central shaft holding portion 24a in which the central shaft 23b of the roller 23 is rotatably installed, only changing this position allows positional adjustment of the roller in its height direction. Namely, as shown in
As for the roller 23 and the fixing member 24 having the above-mentioned configurations, a diameter D of the roller 23 (column portion 23a) is preferably formed larger than dimensions of the fixing member 24, specifically a height H as the direction of pressure-insertion.
With the roller 23 and the fixing member 24 set in such a dimensional relationship, the roller 23 (column portion 23a) becomes larger in the height direction than the fixing member 24 when the roller 23 is incorporated into the fixing member 24. Therefore, when these are installed on the carriage path 3, the roller 23 projects from the carriage surface while the surface position of the carriage belt 25 wound around the roller 23 can also be higher than the position of the fixing member 24. Therefore, it is possible to prevent the card carried to the carriage path 3 from coming into contact with the fixing member 24 so as to reliably prevent clogging with the card, and the like.
As shown in
In the body frame 2A, there are installed: the stock portion 2B that collects a fully used card and houses a card to be issued according to need; and a housing drive mechanism 40 that is activated so as to house a card into the stock portion 2B. The configurations of these stock portion 2B and housing drive mechanism 40 are described with reference to the above-mentioned
As described above, the stock portion 2B is rotatably arranged on the base installed on the back side of carriage direction, with respect to the body frame 2A, and is typically in a closed state as shown in
The stock portion 2B is provided with a body 30 formed in box shape so as to house a predetermined number of cards PC (the order of ten cards in the present embodiment). As shown in
It is to be noted that cards stacked and housed inside the body 30 are in a state where the top card is in surface contact with the above-mentioned carriage belt 25 of the carriage mechanism.
Inside the body 30, a pressure plate 35 (schematically shown in
Further, each side wall 30c of the body 30 is provided with two nails 32, which hold the card PC so as to prevent dropping thereof, at a predetermined spacing in the longitudinal direction. The nail 32 is formed by bending in L shape the front end side of a rectangular fitting 32a that is attached to the surface side of each wall portion 30c.
In the above-mentioned body frame 2A, the housing drive mechanism 40 is installed, which, when a card inserted from the insertion slot is fully used, cooperates with the card carrying operation performed by the carriage belt 25, to house the card into the body 30 of the stock portion. This housing drive mechanism has the function of performing a press-up operation on the pressure plate 35 in housing a card without installation of an electric component. In the following, the configuration of the housing drive mechanism 40 is described.
The housing drive mechanism 40 has the oscillating member 42 (hereinafter referred to as a second oscillating member 42 to be distinguished from the oscillating member 12 of the shutter mechanism described above) oscillatably supported via a shaft 41 with respect to the body frame 2A. As shown in
As shown in
On this second oscillating member 42, there are integrally formed a first projecting/withdrawing portion 42a that can project and withdraw from the surface of the carriage path 3 on the insertion slot 4 side and a second projecting/withdrawing portion 42b that can project and withdraw from the surface of the carriage path 3 on the stock portion 2B side. As shown in
In this case, the second oscillating member 42 and the opening 2h are configured so that the second projecting/withdrawing portion 42b can come into contact with a position slightly more upstream side than a central position P2 of the card PC housed in the body 30 (the contact position is indicated by virtual slant lines). Therefore, as shown in
An inclined face gradually rising toward the card carrying direction is formed on the first projecting/withdrawing portion 42a, being configured to allow smooth movement of the card. Since it is configured in the present embodiment that the card PC is inserted inside from the insertion slot 4 and discharged (issued) from inside via the insertion slot 4, inclined faces 42c, 42c′ gradually rising toward the respective carriage directions are formed on the respective surface sides of the first projecting/withdrawing portion 42a. It is to be noted that, as described later, the first projecting/withdrawing portion 42a has a function as the drop prevention mechanism, preventing dropping of a card to be discharged from the insertion slot 4. The aspect of holding a card by this first projecting/withdrawing portion 42a (holding portion) is described later.
Further, an inclined face 42d gradually rising toward the card carrying direction is also formed on the second projecting/withdrawing portion 42b to allow smooth movement of the card inserted from the insertion slot 4. The inclined face 42d is formed on the surface on the insertion slot side. A top 42e of the inclined face abuts against the pressure plate 35 of the body 30 (the top card, in a case where the cards PC are stacked and housed on the pressure plate) following the oscillating operation of the second oscillating member 42, to incline the pressure plate 35 so that the insertion slot side of the pressure plate 35 rises to form a gap, as shown in
It is to be noted that the second oscillating member 42 is typically supported in a state where the first projecting/withdrawing portion 42a projects from the surface of the carriage path 3, and the second projecting/withdrawing portion 42b abuts against the pressure plate (or a card stacked thereon).
Further, in the body frame 2A, a fourth sensor (not shown) is installed which detects the state of the pressure plate 35 in the body 30, to detect whether or not a card is housed inside the body 30.
Next, the functions of the second oscillating member 42 and the stock portion 2B associated with carriage of a card are described with reference to
In an initial state, the second oscillating member 42 of the housing drive mechanism 40 is in a state where the projecting/withdrawing portions 42a, 42b on the respective sides project from the carriage path 3, with the shaft 41 as the center. The second projecting/withdrawing portion 42b is in the state of being in contact with the top card in the stock portion 2B.
When the card PC is inserted from the insertion slot 4 in this state, the card detection sensor (first sensor) 15A installed on the carriage path 3, shown in
At the stage where passage of the rear end of the card PC to be carried in is detected by the first sensor 15A, the operation of the carriage belt 25 is stopped to temporarily stop the card PC (see
After the information reading/writing processing on the card PC, the card PC is housed into the stock portion 2B as it is when no credit is left in the card PC, and returned to the user when a credit is left in the card PC.
Specifically, in the state shown in
Here, the processing of issuing a card is described with reference to
For example, in a case where a bill is inserted into a bill processor that is not shown and a card PC with its amount-of-money information written therein is issued, as shown in
In this carriage process, the card PC1 is temporarily stopped at an information processing position shown in
According to the second oscillating member 42 configured as described above, when a card is inserted into the insertion slot 4, the first projecting/withdrawing portion 42a is pressed down and the second projecting/withdrawing portion 42b thereby rises to press up cards housed in the stock portion 2B located above the second projecting/withdrawing portion 42b, allowing the card carried in to be stacked and housed inside the body 30. Since just oscillating the second oscillating member 42 associated with the card carrying operation allows a card to be stacked and housed in the stock portion 2B, the configuration of the housing drive mechanism is simplified without providing a drive component, such as a motor or a cam, and an electrical component as has conventionally been done. Therefore, destabilization of an operation to house a card into the stock portion due to a broken drive component or the like is also suppressed.
Further, as described above, with the operation of the carriage belt 25 for carrying the card PC1 thereon in a stopped state, the first projecting/withdrawing portion 42a of the second oscillating member 42 is provided with a function as the drop prevention mechanism which stops and holds a card so as not to drop from the insertion slot 4.
Namely, as shown in
Further, as described above, arrangement of the first projecting/withdrawing portion 42a (holding portion) between the insertion slot 4 and the carriage belt 25 constituting the carriage mechanism eliminates the need for considering a space inside the processor body for holding the card PC1 to be discharged, allowing reduction in size of the processor body. Particularly in the present embodiment, such a holding portion is provided as another function of the second oscillating member 42 constituting the foregoing housing drive mechanism 40, whereby it is possible to reduce the number of components to simplify the configuration so as to reduce cost.
Moreover, the above-mentioned first projecting/withdrawing portion 42a has the inclined face 42c′ gradually rising toward the card carrying direction, thereby allowing smooth movement of a card passing through the first projecting/withdrawing portion 42a, to facilitate the card discharging operation.
It is to be noted that the foregoing holding portion (first projecting/withdrawing portion 42a) that holds a card is not limited so long as the holding portion is configured to be installed between the insertion slot 4 and the carriage mechanism 20, press a card to be discharged, and make this card abut against the inside region of the opening portion of the insertion slot 4 for holding the card. Therefore, for example, the holding portion may be configured of a projecting/withdrawing member 42A that projects and withdraws from the carriage path 3 by a bias spring 50 as shown in
Alternatively, the foregoing first projecting/withdrawing portion 42a (holding portion) of the second oscillating member 42 may be configured as shown in
Although it was configured in the foregoing embodiment that the inclined faces 42c, 42c′ gradually rising toward the respective face sides of the first projecting/withdrawing portion 42a are formed and a card is smoothly carried due to these inclined faces, the first projecting/withdrawing portion 42a may be configured that a rotating roller is supported in place of such inclined faces. Specifically, a depression 51 is formed on the first projecting/withdrawing portion 42a formed at the front end of the second oscillating member 42, and at this portion, a roller 52 is rotatably supported. The roller 52 is integrally formed of a material that does not damage a card to come into sliding contact with, such as POM, and a shaft portion 52a projecting at both ends of the roller 52 is arranged in a supporting portion Sla formed inside the depression 51 so that the roller 52 is rotatably supported by the first projecting/withdrawing portion 42a.
As just described, installation of the rotatable roller 52 in the first projecting/withdrawing portion 42a leads to smoother carriage of a card as well as reduction in contact resistance to the card, thereby allowing effective prevention of damage on the card. Further, the card can also be held between such a roller 52 and the card carrying-in portion 3B by the roller 52.
Moreover, a step 52b is formed at a substantially central portion of the roller 52, and thereby the periphery of the roller is configured to have a small diameter portion 52c and a large diameter portion 52d. In this case, the roller 52 is supported inside the depression 51 such that the small diameter portion 52c side is located outside the width direction of the carriage path. With such a step portion 52b previously formed on the roller 52, it is possible to prevent the card surface from partially coming into contact with the region of the small diameter portion 52c when the card is carried (see
Although the embodiments of the present invention have been described above, the present invention is not restricted to the above-mentioned configurations, but can be variously transformed. For example, control means of controlling a carriage operation in carrying a card (configuration and arrangement aspect of a sensor that controls drive timing of the carriage mechanism, and the like) can be transformed as appropriate. Further, the configuration of the body in the stock portion, the shape of each oscillating member, the arrangement aspect of the roller constituting the carriage mechanism, and the like, can also be transformed as appropriate.
The card processor of the present invention is not restricted to a game media lending machine, but can be incorporated into a variety of devices that provide commercial products and service. Further, the card processor of the present invention is configured to comprise the stock portion that collects a card and allows issuance of a card, but is also applicable to a card processor where, simply, a card is inserted, its information is read and the card is then discharged, or a device that issues a prepaid card.
Number | Date | Country | Kind |
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2007-024098 | Feb 2007 | JP | national |