The present invention relates to a printing apparatus.
As a printing apparatus represented by a large format inkjet printer, there is known a printing apparatus that performs printing on a roll sheet. In such a printing apparatus, a basket is arranged in the lower portion of the apparatus and a printed cut sheet is discharged to the basket. However, the storage amount of the basket is limited. Therefore, there has been also proposed a printing apparatus that is provided with a tray, on which a discharged sheet is stacked, separately from the basket, and configured to be switchable between discharge to the basket and discharge to the tray. Japanese Patent No. 4243343 discloses a printing apparatus including a plurality of exit paths for discharging sheets, in which a switch member can selectably switch the exit paths.
In the printing apparatus including the plurality of exit paths, it is necessary to ensure a space for the switch member in addition to ensurance of a space for each exit path. Thus, the apparatus tends to be large.
The present invention provides a printing apparatus having a configuration for switching a plurality of exit paths, in which downsizing can be achieved.
According to one aspect of the present invention, there is provided a printing apparatus comprising: a printing unit configured to print an image on a sheet; a first exit path from which the sheet with the image printed thereon by the printing unit is discharged while being reversed; a second exit path from which the sheet with the image printed thereon by the printing unit is discharged without being reversed; and a switch member configured to be pivotably arranged so as to switch the first exit path and the second exit path, wherein the first exit path passes above a pivot center of the switch member, and the second exit path passes below the pivot center.
Further features of the present invention will become apparent from the following description of exemplary embodiments (with reference to the attached drawings).
Hereinafter, embodiments will be described in detail with reference to the attached drawings. Note, the following embodiments are not intended to limit the scope of the claimed invention. Multiple features are described in the embodiments, but limitation is not made to an invention that requires all such features, and multiple such features may be combined as appropriate. Furthermore, in the attached drawings, the same reference numerals are given to the same or similar configurations, and redundant description thereof is omitted.
In the lower portion of the printing apparatus 1, a plurality of feeding units 2 are vertically arranged in a plurality of stages (two stages in this example). Each feeding unit 2 forms a storage portion that stores a roll sheet R as a print medium. The roll sheet R is stored, in the storage portion, in a posture in which its axial direction is directed to the X direction. Each feeding unit 2 includes support portions 21 (shown in
The feeding unit 2 includes a door 20 that opens and closes the interior of the feeding unit 2. The door 20 is provided so as to be openable and closable with a hinge 2a, which is provided in the lower portion of the door 20 and has the X-direction axis, as the pivot center. The door 20 is provided in the front portion of the printing apparatus 1, so that the user can perform a replacement operation of the roll sheet R from the front of the printing apparatus 1. Note that in this embodiment, the roll sheet R is exemplified as the print medium, but the print medium may be a cut sheet.
The conveyance path RT is a sheet path defined by a guide structure which guides a sheet, and extends from the feeding unit 2 to an outlet port 9 or an outlet port 10 while curving in the midway. In the following description, an upstream side and a downstream side are the upstream side and the downstream side with respect to the sheet conveying direction, respectively.
The sheet pulled out from the roll sheet R is supplied through a conveying unit 3 to a position facing a printhead 4. The conveying unit 3 includes a conveying roller 3a, which is a driving roller, and a nip roller 3b, which is a driven roller pressed against the conveying roller 3a. While being nipped by the conveying roller 3a and the nip roller 3b, the sheet is conveyed on the conveyance path RT in the arrow direction by rotation of the rollers.
The printhead 4 is arranged on the downstream side of the conveying unit 3. The printhead 4 in this embodiment is an inkjet head which prints an image on a sheet by discharging ink. The printhead 4 uses a discharge energy generating device such as an electrothermal transducer (heater) or a piezoelectric device to discharge ink from the discharge port. The printing apparatus 1 according to this embodiment is a serial scanning inkjet printing apparatus, and the printhead 4 is mounted on a carriage 5. The carriage 5 is configured to be reciprocated in the X direction (the widthwise direction of the sheet) by a driving mechanism (not shown). In the vicinity of the printhead 4, the sheet is conveyed in the Y direction. By alternately repeating intermittent conveyance of the sheet by the conveying unit 3 and an operation including moving the carriage 5 and ink discharge by the printhead 4, an image is printed on the sheet.
Note that the serial scanning printing apparatus is exemplarily shown in this embodiment, but the present invention is also applicable to a full-line printing apparatus. In this case, a long printhead extending in the widthwise direction of a sheet is used as the printhead 4. Then, by discharging ink from the printhead while continuously conveying the sheet, an image is printed on the sheet. Further, although the inkjet printing apparatus is exemplarily shown in this embodiment, the present invention is also applicable to printing apparatuses of other printing types.
A cutting unit 6 is arranged on the downstream side of the printhead 4. The cutting unit 6 cuts the sheet, which has been pulled out from the roll sheet R and has an image printed thereon, in the widthwise direction of the sheet. With this, the roll sheet R is cut by the cutting unit 6 and becomes a cut sheet.
The conveyance path RT branches at a branch point BR on the downstream side of the cutting unit 6, thereby forming a plurality of exit paths including an exit path RT1 and an exit path RT2. The exit path RT1 is a sheet exit path extending from the branch point BR to the outlet port 9, and a path for discharging the sheet to the rear side in the Y direction. The exit path RT2 is a sheet exit path extending from the branch point BR to the outlet port 10, and a path for discharging the sheet to the front side in the Y direction. In this embodiment, the path length of the exit path RT1 is longer than that of the exit path RT2, and the exit path RT1 extends in the Y direction in the upper portion of the printing apparatus 1.
A switch member 14 is arranged at the branch point BR. The switch member 14 is provided so as to be pivotable with a common shaft 15 extending in the X direction as the pivot center. The switch member 14 switches, between the plurality of exit paths RT1 and RT2, the exit path used to discharge a sheet having undergone printing by the printhead 4. Switching of the exit paths is performed in accordance with, for example, user's selection instruction. The position of the switch member 14 shown in
The outlet port 9 is located in the rear portion of the printing apparatus 1, and open in the back face of the printing apparatus 1. A plurality of guides 9b that restrict a warp of the sheet is provided in the upper portion of the outlet port 9. The exit path RT1 passes above the common shaft 15, and a reversing portion 11, a discharge unit 7, and a stacking portion 8 are provided midway along the exit path RT1 from the upstream side toward the downstream side.
The reversing portion 11 is a structure for reversing the printed sheet. In this embodiment, by forming the shape of the path into a U shape (inverted C-shape in the side view shown in
The discharge unit 7 includes a discharge roller 7a, which is a driving roller, and a nip roller 7b pressed against the discharge roller 7a. The stacking portion 8 is arranged on the downstream side of the discharge unit 7, and the discharge unit 7 conveys, to the stacking portion 8, the sheet with the image printed thereon by the printhead 4. The stacking portion 8 forms a tray which receives a plurality of sheets discharged from the discharge unit 7, and the stacking portion 8 is arranged inside the printing apparatus 1. The stacking portion 8 forms the exit path RT1 which is almost horizontal in the rear portion in the Y direction and slopes upward toward the rear portion in the front portion in the Y direction. Depending on the length of the sheet, the end portion of the sheet may come out of the outlet port 9. The stacking portion 8 forms a part of the exit path RT1.
A window portion 9a for exposing the stacking portion 8 is formed in the top portion of the printing apparatus 1, so that the user can visually recognize the stacking amount of sheets on the stacking portion 8 through the window portion 9a. A plurality of guide members 9c are disposed in the window portion 9a to prevent the sheet discharged onto the stacking portion 8 from being discharged from the window portion 9a.
The outlet port 10 is located in the front portion of the printing apparatus 1 and open to the front of the printing apparatus 1. The exit path RT2 is a path passing below the common shaft 15, and does not have a structure for reversing the sheet like the reversing portion 11. That is, the image printed surface of the sheet discharged from the outlet port 10 is the upper surface. Further, no sheet conveyance mechanism like the discharge unit 7 is provided midway along the exit path RT2. Accordingly, the sheet is conveyed by conveyance of the conveying unit 3, cut by the cutting unit 6, and discharged from the outlet port 10 due to its own weight or by a manual operation of the user.
As has been described above, in this embodiment, it is possible to select whether to discharge the sheet to the stacking portion 8 on the upper side or to the front of the printing apparatus 1. For example, if the number of discharged sheets is large, the stacking portion 8 may be selected, and if the sheet length is long, discharge from the outlet port 10 may be selected. In this manner, it is possible for the user to arbitrarily select the exit path.
Further, it is configured such that the exit path RT1 passes above the common shaft 15 serving as the pivot center of the guide member 12 and the switch member 14 and the exit path RT2 passes below the common shaft 15. Thus, an empty space between the two exit paths RT1 and RT2 can be utilized as the arrangement space of the common shaft 15, and downsizing of the printing apparatus 1 can be achieved.
In addition, since the two exit paths RT1 and RT2 can be switched by a pivot motion of the switch member 14, it is possible to switch the exit paths with a relatively simple arrangement. Further, the user can switch the two exit paths RT1 and RT2 without opening and closing the guide member 12, so that the exit paths can be switched relatively easily. Furthermore, when adjusting the two exit paths RT1 and RT2 for maintenance thereof or the like, they can be adjusted relatively easily.
Next, the printing apparatus 1 includes a main body 1A and a reversing unit 1B. The reversing unit 1B is an attachment/detachment unit detachable from the main body 1A. The reversing unit 1B according to this embodiment is a unit including the discharge unit 7, the reversing portion 11, the switch member 14, and the like. By removing the exterior of the printing apparatus 1, the reversing unit 1B is exposed and attachment/detachment thereof to/from the main body 1A can be performed. By separating the reversing unit 1B from the main body 1A, work such as a replacement operation of the worn discharge roller 7a or cleaning of the reversing portion 11, the switch member 14, or the like, can be efficiently performed.
Each of
The guide member 12, the switch member 14, a discharge roller unit 40 which forms the discharge unit 7, and the like are supported between the side plates including the side plate 31L and the side plate 31R. Each of
In the lower end portion of the guide member 12, a plurality of engaging portions 12b spaced apart from each other in the X direction are formed on a pivot center line 12a defined by the common shaft 15. Each engaging portion 12b has a C shape, which engages with the common shaft 15, and separably engages with the common shaft 15. In a state in which the engaging portions 12b engage with the common shaft 15, the guide member 12 is pivotably supported by the common shaft 15. A plurality of ribs 12c spaced apart from each other in the X direction are formed in the inner side surface of the guide member 12. Each rib 12c has a C-shape sectional shape, and forms the outer path forming wall of the reversing portion 11.
The switch member 14 includes a boss portion 14a including a hole through which the common shaft 15 is inserted. The switch member 14 is fixed to the common shaft 15 at the boss portion 14a. On the rear side of the boss portion 14a, the switch member 14 includes a sheet guide surface 14b for a case in which the exit path RT1 is selected, and a sheet guide surface 14c for a case in which the exit path RT2 is selected. The guide surface 14b also functions as a surface for preventing the sheet from entering the exit path RT2 when the exit path RT1 is selected. Similarly, the guide surface 14c also functions as a surface for preventing the sheet from entering the exit path RT1 when the exit path RT2 is selected.
The switch member 14 according to this embodiment pivots interlockingly with rotation of a cam member 17. The cam member 17 is provided so as to be pivotable around a shaft 17a, and rotated using a motor M included in the driving unit DU as a driving source. The cam member 17 includes a cam portion 17b. The cam portion 17b abuts against a lever portion 14d of the switch member 14, thereby causing the switch member 14 to pivot. The switch member 14 is located in the RT1 selecting position due to a bias by an elastic member (coil spring or the like) (not shown). When the cam member 17 is rotated by driving of the motor M, as shown in
Each of
As has been described above, in this embodiment, by arranging the two pivot members (guide member 12 and switch member 14) coaxially, the number of shafts can be reduced as compared with a case in which each pivot member is arranged on the shaft specific thereto. Accordingly, downsizing of the reversing unit 1B can be achieved, and this leads to downsizing of the printing apparatus 1. Further, since the exit path RT2 passes below the common shaft 15, the common shaft 15 does not hinder discharge of the sheet S to the exit path RT2. Similarly, since the exit path RT1 passes above the common shaft 15, the common shaft 15 does not hinder discharge of the sheet S to the exit path RT1.
Note that the example in which the switch member 14 is fixed to the common shaft 15 has been exemplarily shown in this embodiment, but it may be configured such that the guide member 12 is fixed to the common shaft 15 and the switch member 14 engages with (for example, loosely fits to) the common shaft 15. Further, it is configured in this embodiment such that the single common shaft 15 is shared by the guide member 12 and the switch member 14, but it may be configured such that a shaft member for the guide member 12 and a shaft member for the switch member 14 are separate members arranged coaxially. Also in this configuration, as compared with the configuration in which the guide member 12 and the switch member 14 are arranged on different axes, downsizing of the printing apparatus 1 can be achieved.
The reversing unit 1B includes the discharge roller unit 40 that supports the discharge roller 7a of the discharge unit 7. Refer to
A gear 43 is provided in the left end portion of the roller shaft 42. A driving force from a driving source (motor) provided in the driving unit DU is input to the gear 43 to rotate the roller shaft 42 (that is, the discharge rollers 7a).
In this embodiment, the gear 43 is attached to the roller shaft 42 through a torque limiter 48. In a printing operation, the rotation speed of the discharge roller 7a is controlled such that the conveyance speed of the sheet S is constantly faster than the conveyance speed of the conveying roller 3a. In a situation in which the sheet S is conveyed while being nipped by both the conveying unit 3 and the discharge unit 7, if the sheet conveyance speed of the discharge unit 7 is slower than the conveyance speed of the conveying unit 3, a slack of the sheet S is generated. This causes a jam. A slack of the sheet S can be prevented by controlling such that the sheet conveyance speed of the discharge unit 7 is faster than the conveyance speed of the conveying unit 3, but the sheet S may be damaged if the tension is strong. In this embodiment, the tension of the sheet S can be limited by limiting the torque of the roller shaft 42 using the torque limiter 48.
A code wheel 45 is also fixed to the roller shaft 42, and the reversing unit 1B is provided with an optical sensor (photointerrupter) 46 which detects the slit of the code wheel 45. It is possible to detect the rotation amount of the discharge roller 7a using the code wheel 45 and the optical sensor 46.
In this embodiment, discharge of the sheet S onto the stacking portion 8 is performed by the discharge unit 7. Therefore, arranging the discharge unit 7 (particularly, the discharge rollers 7a) at a position close to the stacking portion 8 leads to an improvement in discharge accuracy. An improvement in discharge accuracy is also influenced by the positional accuracy of the discharge rollers 7a with respect to the main body 1A. In this embodiment, since the discharge roller unit 40 is arranged adjacent to the stay 30 serving as a connection part between the reversing unit 1B and the main body 1A, each discharge roller 7a can be arranged at a position close to the stacking portion 8 and the positional accuracy of the discharge rollers 7a with respect to the main body 1A can also be improved.
If the discharge roller unit 40 is inclined in the X direction, this causes a skew of the sheet S. In this embodiment, since the gear 43 exists in one end portion of the roller shaft 42 on the left side, the position of the other end portion of the roller shaft 42 on the right side, that is, the position of the right end portion 41b of the stay 41 is adjusted by the position adjustment mechanism 50. With this, the X-direction parallelism of the discharge roller unit 40 (that is, the roller shaft 42) with respect to the stay 30 and the side plates 31L and 31R is adjusted. That is, the position adjustment mechanism 50 is a roller position adjustment mechanism.
The adjustment member 51 includes an attachment portion 51a on which the end portion 41b of the stay 40 is overlapped in the Z direction. The end portion 41b is formed with two long holes 41c extending in the X direction and an opening portion 41d into which a protruding piece 51d of the attachment portion 51a is inserted. When the protruding piece 51d is inserted into the opening portion 41d, the adjustment member 51 and the stay 40 are positioned in the Y direction. The attachment portion 51a is formed with screw holes which respectively overlap the long holes 41c. When a screw (not shown) is fastened to each screw hole through the long hole 41c, the stay 40 is fixed to the adjustment member 51.
The adjustment member 51 includes two long holes 51b extending in the Z direction and two long holes 51c extending in the Z direction. Cylindrical projections 52b projecting from the adjustment member 52 in the X direction are respectively inserted into the long holes 51c. The Y-direction position of the adjustment member 51 with respect to the adjustment member 52 is constrained by the long holes 51c and the projections 52b, but the Z-direction position of the adjustment member 51 is adjustable. The adjustment member 52 includes screw holes 52a at positions each overlapping the long hole 51b. When a screw (not shown) is fastened to each screw hole 52a through the long hole 51c, the adjustment member 51 is fixed to the adjustment member 52.
The adjustment member 52 includes two long holes 52c extending in the Y direction and two long holes 52d extending in the Y direction. Cylindrical projections 31b projecting from the side plate 31R in the X direction are respectively inserted into the long holes 52d. The Z-direction position of the adjustment member 52 with respect to the side plate 31R is constrained by the long holes 52d and the projections 31b, but the Y-direction position of the adjustment member 52 is adjustable. The side plate 31R includes screw holes 31a at positions each overlapping the long hole 52c. When a screw (not shown) is fastened to each screw hole 31a through the long hole 52c, the adjustment member 52 is fixed to the side plate 31R.
During an attachment operation of the discharge roller unit 40 to the side plates 31L and 31R, first, the end portion 41a of the stay 40 is fixed to the side plate 31L and the end portion 41b is temporarily fixed to the adjustment member 51. Then, after adjusting the X-direction parallelism of the roller shaft 42 by the position adjustment mechanism 50, the end portion 41b is fixed to the adjustment member 51 and the adjustment members 51 and 52 are fixed to the side plate 31R.
When adjusting the parallelism, a reference portion 30a formed in each X-direction end portion of the stay 30 shown in
With the adjustment described above, the positioning of the discharge roller unit 40 in the reversing unit 1B is completed. Then, the reversing unit 1B is attached to the main body 1A at an appropriate position. Thus, the high parallelism between the axis of the conveying rollers 3a of the main body 1A and the axis of the discharge rollers 7a of the reversing unit 1B can be ensured.
The support portions 60L and 60R are formed with reference portions 61a which engage with the reference portions 30a of the stay 30 through position adjustment mechanisms 61L and 61R, respectively. In this embodiment, the reference portion 61a is a pin to be inserted into the reference portion (hole) 30a, and projecting from each of the support portions 60L and 60R in the Z direction. The position adjustment mechanisms 61L and 61R are mechanisms for adjusting the attachment position of the reversing unit 1B with respect to the main body 1A. The position adjustment mechanism 61L is a mechanism for adjusting the Y-direction position and the Z-direction position of the reference portion 61a on the support portion 60L side. The position adjustment mechanism 61R is a mechanism for adjusting the Y-direction position and the Z-direction position of the reference portion 61a on the support portion 60R side. Before the attachment of the reversing unit 1B, the parallelism between a virtual line connecting the two reference portions 61a and a roller shaft 3c supporting the conveying rollers 3a is adjusted. With this, when the reversing unit 1B is attached to the main body 1A, the parallelism between the roller shaft 3c and the roller shaft 42 is ensured without additional adjustment work. That is, the position adjustment mechanisms 61L and 61R serve as a unit position adjustment mechanism.
The adjustment member 63R includes an attachment portion 63a on which the adjustment member 62R is overlapped in the Z direction. The adjustment member 62R is formed with a long hole 62a extending in the Y direction. The attachment portion 63a is formed with a screw hole 63b at a position overlapping the long hole 62a. When a screw (not shown) is fastened to the screw hole 63b through the long hole 62a, the adjustment member 62R is fixed to the adjustment member 63R. The adjustment member 63R includes a plurality of long holes 63c extending in the Z direction. The support portion 60R includes screw holes 60a formed at positions overlapping the long holes 63c. When a screw (not shown) is fastened to each screw hole 60a through the long hole 63c, the adjustment member 63R is fixed to the support portion 60R.
The discharge roller 7a may be replaced due to wear. As replacement modes of the discharge roller 7a, replacement on the basis of the discharge roller unit 40 and replacement on the basis of the unit including the discharge rollers 7a and the roller shaft 42 are conceivable. Once the positioning between the stay 30 and the discharge roller unit 40 is performed using the position adjustment mechanism 50, it is unnecessary to perform position adjustment again as long as the replacement operation is performed while the position adjustment mechanism 50 is fixed to the side plate 31R. Accordingly, the replacement workability can be improved. In this manner, the exit path can be easily adjusted with respect to the conveying rollers. The reversing unit 1B can also be replaced due to wear or failure. Once the positioning between the reference portions 61a and the roller shaft 3c of the conveying rollers 3a is performed using the position adjustment mechanisms 60R and 60L, it is unnecessary to perform position adjustment again every time the reversing unit 1B is replaced. Accordingly, the replacement workability can be improved.
With reference to
The holder 22 includes a shaft member 23, a flange 24, and a flange 25. The shaft member 23 is a member having a circular section, and a gear 26, to which a driving force for rotating the roll sheet R is input, is formed in one end portion of the shaft member 23 in the axial direction. The flange 24 is fixed to an end portion of the shaft member 23, and includes a large-diameter portion 24a having a diameter larger than that of the roll sheet R and a small-diameter portion 24b that fits into a hole H of a cylindrical member serving as the core of the roll sheet R. The small-diameter portion 24b is fixed to the core by a friction force, and the flange 24 is attached to one end portion of the roll sheet R. An end portion of the shaft member 23 projects outside the flange 24.
The shaft member 23 is inserted into the flange 25. The flange 25 is displaceable in the axial direction with respect to the shaft member 23. The flange 25 also includes a large-diameter portion 25a having a diameter large than that of the roll sheet R and a small-diameter portion 25b that fits into the hole H of the cylindrical member serving as the core of the roll sheet R. The small-diameter portion 25b is fixed to the core by a friction force, and the flange 25 is attached to the other end portion of the roll sheet R. The diameters of the large-diameter portion 25a and the small-diameter portion 25b are equal to those of the large-diameter portion 24a and the small-diameter portion 24b, respectively.
Since the position of the flange 25 in the axial direction with respect to the shaft member 23 can be changed, the common holder 22 can support the roll sheets R of different widths. In this case, since the position of the flange 24 in the axial direction with respect to the shaft member 23 is unchanged, the flange 24 serves as a reference member for defining the position of one end portion (the right end portion in this embodiment) of each of the roll sheets R of different widths. That is, with respect to the feeding unit 2, the position of the right end portion of the roll sheet R is unchanged regardless of the width of the roll sheet R, and a sheet pulled out from the roll sheet R is offset to the right end portion of the conveyance path RT and conveyed therein. The printing position of an image on the sheet may be determined using the right end portion of the sheet as a reference.
A recess portion 20a, which enables the roll sheet R to be placed on the door 20 when the door 20 is in the open state, is formed in the inner surface of the door 20. The recess portion 20a is located in the center in the Y direction in the open state of the door 20, and formed by the Y-direction front end portion and the Y-direction rear end portion being inclined toward the central portion.
When replacing the roll sheet R, the new roll sheet R with the holder 22 attached thereto is temporarily placed in the recess portion 20a. Then, the roll sheet R is rolled to the support portions 21 together with the holder 22. Thus, the new roll sheet R can be easily set in the support portions 21.
The large-diameter portions 24a and 25a of the flanges 24 and 25 abut against the recess portion 20a. When the roll sheet R is rolled to the support portions 21 together with the holder 22, the flanges 24 and 25 ride on the inclination of the rear end portion of the door 20. By further rolling the roll sheet R, the shaft member 23 rides on an inclined surface 21b of the front portion of each support portion 21. That is, it is designed such that the Z-direction distance from the rear end portion of the door 20 to the inclined surface 21b corresponds to the difference between the radius of each of the large-diameter portions 24a and 25a and the radius of the shaft member 23. Accordingly, when the roll sheet R is rolled from the recess portion 20a to the support portions 21 together with the holder 22, the shaft member 23 is moved along a locus L and the shaft member 23 drops into the groove 21a. Thus, the user can easily perform setting work of the roll sheet R.
Further, since this embodiment employs the structure in which the stay 30 serving as the skeleton of the reversing unit 1B is located at the top of the unit and connected with the main body 1A, it is possible to ensure a larger space below the reversing unit 1B, so that a large space for a replacement operation of the roll sheet R by the user can be ensured. Therefore, the user operability can be improved.
In the embodiment described above, the arrangement has been exemplarily shown in which two exit paths (RT1 and RT2) are provided, but three or more exit paths may be provided. Further, although the reversing portion 11 is provided in the exit path RT1, the reversing portion may be provided in the exit path RT2. Furthermore, in the embodiment described above, the example has been described in which the guide member 12 as the openable and closable member opens and closes one exit path RT1, but the openable and closable member may be a member that opens and closes a plurality of exit paths.
Although embodiments of the present invention have been described above, the present invention is not limited to the above embodiments and various changes and modifications can be made within the spirit and scope of the present invention. Therefore, to apprise the public of the scope of the present invention, the following claims are made.
Embodiment(s) of the present invention can also be realized by a computer of a system or apparatus that reads out and executes computer executable instructions (e.g., one or more programs) recorded on a storage medium (which may also be referred to more fully as a ‘non-transitory computer-readable storage medium’) to perform the functions of one or more of the above-described embodiment(s) and/or that includes one or more circuits (e.g., application specific integrated circuit (ASIC)) for performing the functions of one or more of the above-described embodiment(s), and by a method performed by the computer of the system or apparatus by, for example, reading out and executing the computer executable instructions from the storage medium to perform the functions of one or more of the above-described embodiment(s) and/or controlling the one or more circuits to perform the functions of one or more of the above-described embodiment(s). The computer may comprise one or more processors (e.g., central processing unit (CPU), micro processing unit (MPU)) and may include a network of separate computers or separate processors to read out and execute the computer executable instructions. The computer executable instructions may be provided to the computer, for example, from a network or the storage medium. The storage medium may include, for example, one or more of a hard disk, a random-access memory (RAM), a read only memory (ROM), a storage of distributed computing systems, an optical disk (such as a compact disc (CD), digital versatile disc (DVD), or Blu-ray Disc (BD)™), a flash memory device, a memory card, and the like.
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2020-197309, filed Nov. 27, 2020, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2020-197309 | Nov 2020 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
5592280 | Ishizuka et al. | Jan 1997 | A |
5742301 | Ikeda | Apr 1998 | A |
6731903 | Suzuki | May 2004 | B2 |
6845228 | Suzuki et al. | Jan 2005 | B2 |
20030193135 | Suzuki | Oct 2003 | A1 |
20060181590 | Nonaka | Aug 2006 | A1 |
20060214351 | Watanabe | Sep 2006 | A1 |
20110064497 | Niihara | Mar 2011 | A1 |
20110114691 | Morinaga | May 2011 | A1 |
20110211210 | Niihara | Sep 2011 | A1 |
20150328906 | Sumioka | Nov 2015 | A1 |
20220105738 | Murata | Apr 2022 | A1 |
20220169477 | Fukui | Jun 2022 | A1 |
Number | Date | Country |
---|---|---|
01176747 | Jul 1989 | JP |
09136744 | May 1997 | JP |
4243343 | Mar 2009 | JP |
Entry |
---|
Extended European Search Report dated Mar. 24, 2022, in European Patent Application No. 21207221.9. |
Number | Date | Country | |
---|---|---|---|
20220169470 A1 | Jun 2022 | US |