Recording device
The recording device addresses the challenge of extending the inverting path for dual-sided recording by using overlapping curved paths within the device, ensuring efficient dual-sided recording without increasing the device's height.
Patent Information
- Application Number
- JP2025032888
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2040-01-31
AI Technical Summary
Existing recording devices face challenges in extending the inverting path for dual-sided recording without increasing the device's height, as longer paths require vertical movement of structures, thereby increasing the device's vertical dimension.
The recording device incorporates a supply path that reverses the medium using a first curved path convex upward and an inverting path that conveys the medium below the vertical, allowing the supply path to join the inverting path, with at least a portion of the first and second curved paths overlapping when viewed horizontally, thereby maintaining a compact device height.
This configuration ensures a longer path length for the inverting process without increasing the device's height, allowing for efficient dual-sided recording while maintaining a compact device profile.
Smart Images

Figure 2025074244000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to a recording device for recording on a medium. [Background technology]
[0002] 2. Description of the Related Art Some recording devices, such as facsimiles and printers, are provided with a path for reversing a recording medium, such as recording paper, in order to perform recording on both sides of the recording medium. The inkjet recording device described in Patent Document 1 includes a first cassette and a second cassette for storing recording media, and a recording medium sent from either cassette is sent to a position facing the recording heads located above each cassette, where recording is performed on the first side. After recording on the first side, the recording medium is transported vertically upward and then vertically downward, that is, switched back, and sent to a reversing path for reversing. The recording medium is reversed in the reversing path from a downward transport direction to an upward transport direction, and is sent again to a position facing the recording heads, where recording is performed on the second side. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2019-14253 A Summary of the Invention [Problem to be solved by the invention]
[0004] The longer the path length of the inversion path for inverting the recording medium, the more advantageous it is that it can accommodate longer recording media and ensure drying time, etc. However, in order to lengthen the inversion path for inverting the recording medium in the path layout described in Patent Document 1, it is necessary to move vertically upward a structure disposed vertically above the inversion path, or to move vertically downward a structure disposed vertically below the curved path portion that inverts the recording medium so that the conveying direction changes from a downward conveying direction to an upward conveying direction, which increases the height dimension of the device. [Means for solving the problem]
[0005] In order to solve the above problem, the recording device of the present invention comprises a recording unit that records on a medium, at least one medium storage unit that is located vertically below the recording unit and stores the medium before recording, a supply path that reverses the medium sent out from the medium storage unit via a first curved path that is convex upward, into a transport direction that includes a component in the opposite direction to the medium sending-out direction from the medium storage unit, and a reversal path that transports the medium that has passed a position opposite to the recording unit into a transport direction that includes a vertically downward component and reverses it via a second curved path that is convex downward into a transport direction that includes a vertically upward component, and is characterized in that the supply path merges with the reversal path, and at least a portion of the first curved path and at least a portion of the second curved path overlap when viewed horizontally. [Brief description of the drawings]
[0006] [Figure 1] FIG. 2 is a diagram showing a medium transport path of the inkjet printer. [Diagram 2] A partially enlarged view of Figure 1. [Diagram 3] FIG. 13 illustrates another embodiment of an inkjet printer. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] The present invention will now be briefly described. The recording device of the first aspect comprises a recording unit that records on a medium, at least one medium storage unit that is located vertically below the recording unit and stores the medium before recording, a supply path that reverses the medium sent out from the medium storage unit via a first curved path that is convex upward, into a transport direction that includes a component in the opposite direction to the medium sending-out direction from the medium storage unit, and a reversal path that transports the medium that has passed a position opposite to the recording unit into a transport direction that includes a vertically downward component and reverses the medium via a second curved path that is convex downward, into a transport direction that includes a vertically upward component, and is characterized in that the supply path merges with the reversal path and at least a portion of the first curved path and at least a portion of the second curved path overlap when viewed horizontally.
[0008] According to the present aspect, the supply path merges with the inversion path, and at least a portion of the first curved path and at least a portion of the second curved path overlap when viewed horizontally. Therefore, even if the first curved path is positioned further downward to ensure the path length of the inversion path, the height dimension of the device can be reduced.
[0009] A second aspect is the first aspect, characterized in that a curvature of the second curved path is smaller than a curvature of the first curved path. According to this aspect, since the curvature of the second curved path is smaller than the curvature of the first curved path, the medium can be curved more gently when the medium is curved along the second curved path, i.e., when a medium with recording on its first side is curved, than when the medium is curved along the first curved path, i.e., when a medium with recording on its first side is curved, the medium can be curved more gently. In other words, when a medium with recording already on it is curved, damage such as wrinkles is less likely to be formed on the medium, and good recording results can be obtained.
[0010] A third aspect is characterized in that, in the first or second aspect, the recording unit is composed of a liquid ejection head that ejects liquid onto a medium, and has a liquid storage unit that stores liquid ejected from the liquid ejection head between the liquid ejection head and the medium storage unit in the vertical direction, and at least a portion of the liquid storage unit, at least a portion of the first curved path, and at least a portion of the second curved path overlap when viewed in the horizontal direction.
[0011] According to this aspect, at least a portion of the liquid storage portion, at least a portion of the first curved path, and at least a portion of the second curved path overlap when viewed from the horizontal direction, so that the height dimension of the device can be reduced.
[0012] A fourth aspect is characterized in that, in any of the first to third aspects, a transport path that passes through a position opposite the recording unit is angled with respect to the horizontal and vertical directions and transports the medium upward. According to this aspect, the transport path that passes through a position facing the recording unit is angled with respect to the horizontal and vertical directions and is configured to transport the medium upward, so that the horizontal dimension of the device can be reduced.
[0013] A fifth aspect is characterized in that, in any of the first to fourth aspects, a downward conveying path in the reversing path, which is upstream of the second curved path and conveys the medium in a conveying direction including a vertically downward component, is inclined in a direction from the outer surface of the device toward the center of the device, and a supply roller is provided above the first curved path in the vertical direction, which sends the medium into the inside of the device via a supply tray that protrudes from the side of the device to the outside of the device, and at least a portion of the downward conveying path and at least a portion of the supply roller overlap when viewed in the vertical direction.
[0014] According to this aspect, the downward transport path is inclined, and at least a portion of the supply roller is inserted into a space formed by the inclination, so that the horizontal dimension of the device can be reduced.
[0015] A sixth aspect is the fifth aspect, characterized in that the medium fed into the inside of the device through the supply tray enters the reversing path. According to this aspect, in a configuration in which the medium fed into the inside of the device via the supply tray enters the reversing path, the operational effect of the fifth aspect described above can be obtained.
[0016] The present invention will be specifically described below. In the following, an inkjet printer 1 that performs recording by ejecting ink, which is an example of a liquid, onto a medium such as recording paper will be described as an example of a recording device. In the following, the inkjet printer 1 will be abbreviated to printer 1. The XYZ coordinate system shown in each figure is an orthogonal coordinate system, with the Y axis direction being the width direction that intersects with the medium transport direction and also being the depth direction of the device. The X axis direction is the width direction of the device, with the +X direction being the left side and the -X direction being the right side as seen by the operator of the printer 1. The Z axis direction is the vertical direction, i.e. the height direction of the device, with the +Z direction being the upward direction and the -Z direction being the downward direction. In the following, the direction in which the medium is transported may be referred to as "downstream," and the opposite direction may be referred to as "upstream." In each figure, the medium transport path is indicated by a dashed line. In the printer 1, the medium is transported through the medium transport path indicated by the dashed line.
[0017] The printer 1 is equipped with multiple media cassettes arranged vertically at the bottom of the device body 2. In this embodiment, the media cassettes are arranged in the following order from the topmost first media cassette 3 downwards: second media cassette 4, third media cassette 5, and fourth media cassette 6. The symbol P indicates the media stored in each media cassette. Each media cassette is an example of a media storage section.
[0018] A pick roller is provided for each media cassette to feed the stored media in the -X direction. A pick roller 21 is provided for the first media cassette 3, a pick roller 22 is provided for the second media cassette 4, a pick roller 23 is provided for the third media cassette 5, and a pick roller 24 is provided for the fourth media cassette 6.
[0019] Further, for each medium cassette, a pair of feed rollers is provided that feeds the medium sent out in the -X direction in an obliquely upward direction including a -X direction component and a +Z direction component. A pair of feed rollers 25 is provided for the first medium cassette 3, a pair of feed rollers 26 is provided for the second medium cassette 4, a pair of feed rollers 27 is provided for the third medium cassette 5, and a pair of feed rollers 28 is provided for the fourth medium cassette 6. In the following, unless otherwise specified, a "roller pair" is defined as consisting of a drive roller driven by a motor (not shown) and a driven roller that rotates in contact with the drive roller.
[0020] The medium is sent out from the first medium cassette 3 and fed diagonally upward by the feeding roller pair 25, and receives a feeding force from the transport roller pair 29, so that the medium is sent diagonally upward including a +X direction component and a +Z direction component. The medium is sent out from the second medium cassette 4 and sent diagonally upward by the feed roller pair 26 , and is sent upward by the feeding force of the transport roller pair 30 until it reaches the transport roller pair 29 . The medium is sent out from the third medium cassette 5 and sent diagonally upward by the feed roller pair 27 , and is then sent upward by the transport roller pair 31 and the transport roller pair 30 , until it reaches the transport roller pair 29 . The medium is sent out from the fourth medium cassette 6 and sent diagonally upward by the feed roller pair 28 , then sent upward by the transport roller pair 32 , the transport roller pair 31 , and the transport roller pair 30 , and reaches the transport roller pair 29 . As described above, the transport roller pair 29 transports the medium in an obliquely upward direction including a +X direction component and a +Z direction component.
[0021] The media transport path downstream from the transport roller pair 29 is curved so as to be convex upward, and the media reaches the transport roller pair 30 through this curved path portion. Hereinafter, the media transport path from the media sent out from each media cassette to the transport roller pair 30 is referred to as the "supply path T1". In addition, the path portion of the supply path T1 that is curved so as to be convex upward between the transport roller pair 29 and the transport roller pair 30 is referred to as the "first curved path R1". The supply path T1 is a path that reverses the media sent out from each media cassette to a transport direction that includes a component in the +X direction, which is the opposite direction to the media sending direction from each media cassette, i.e., the -X direction. Then, this supply path T1 merges with the reversal path T4, which will be described later, near the upstream of the transport roller pair 30.
[0022] The external transport roller pair 18 shown near the transport roller pair 29 and on the outside of the device main body 2 is a roller pair provided in an add-on unit not shown in Fig. 1. This add-on unit is configured to be able to store a medium, and is configured so that the medium sent out from a send-out roller (not shown) can be supplied into the printer 1 by the external transport roller pair 18.
[0023] Further, near the first curved path R1, a supply tray 7 that protrudes from the side of the device body 2 to the outside of the device is provided. The supply tray 7 is a tray for manually feeding the medium, and the medium is supplied from the supply tray 7 into the printer 1 by a supply roller 19 and a separation roller 20. Note that the medium sent into the inside of the device via the supply tray 7 enters the supply path T1, and then enters the reversal path T4, which will be described later.
[0024] Next, the medium receiving the feeding force from the transport roller pair 29 passes through a curved path that is curved so as to be convex downward and reaches the transport roller pair 31. In the following, the curved path that is curved so as to be convex downward between the transport roller pair 34 and the transport roller pair 31, which will be described later, is referred to as a "second curved path R2." The second curved path R2 is a path that constitutes the reversing path T4, which will be described later.
[0025] The medium receiving the feeding force from the transport roller pair 31 is sent between the line head 12, which is an example of a recording unit and a liquid ejection head, and the transport belt 13, that is, to a recording position facing the line head 12. Note that hereinafter, the medium transport path from the transport roller pair 31 to the transport roller pair 32 is referred to as the "transport path T2 during recording." The line head 12 performs recording by ejecting ink, which is an example of liquid, onto the surface of the medium. The line head 12 is an ink ejection head configured so that the nozzles that eject ink cover the entire area in the width direction of the medium, and is configured as an ink ejection head that can perform recording over the entire width of the medium without moving in the width direction of the medium. However, the ink ejection head is not limited to this, and may be of a type that is mounted on a carriage and ejects ink while moving in the width direction of the medium.
[0026] Incidentally, reference numeral 10 denotes an ink storage section serving as a liquid storage section for storing ink. Ink to be ejected from the line head 12 is supplied from the ink storage section 10 to the line head 12 via a tube (not shown). The ink storage section 10 is composed of a plurality of ink tanks arranged along the X-axis direction. Reference numeral 11 denotes a waste liquid storage section that stores ink as waste liquid discharged from the line head 12 toward a flushing cap (not shown) for maintenance purposes.
[0027] The conveyor belt 13 is an endless belt that is wound around pulleys 14 and 15, and rotates when at least one of the pulleys 14 and 15 is driven by a motor (not shown). The medium is conveyed to a position facing the line head 12 while being attracted to the belt surface of the conveyor belt 13. The medium can be attracted to the conveyor belt 13 by a known attraction method such as an air suction method or an electrostatic attraction method.
[0028] Here, the transport path T2 during recording, which passes through a position facing the line head 12, is configured to transport the medium upward at an angle to the horizontal and vertical directions. This upward transport direction is a direction that includes a -X direction component and a +Z direction component in Figure 1, and this configuration makes it possible to reduce the horizontal dimension of the printer 1. In this embodiment, the recording transport path T2 is set at an inclination angle in the range of 50° to 70° with respect to the horizontal direction, and more specifically, is set at an inclination angle of approximately 60°.
[0029] The medium on whose first side recording has been performed by the line head 12 is further conveyed in an obliquely upward direction including a -X direction component and a +Z direction component by a pair of conveying rollers 32 positioned downstream of the conveying belt 13. A flap 41 is provided downstream of the transport roller pair 32, and the transport direction of the medium is switched by this flap 41. When the medium is discharged as is, the transport path of the medium is switched by the flap 41 to head toward the upper transport roller pair 37. A flap 42 is further provided downstream of the transport roller pair 37, and this flap 42 switches the transport path to either discharge from discharge position A1 or transport to the transport roller pair 38 located further vertically above. When the medium is sent toward the transport roller pair 38, it is discharged from discharge position A2. The medium discharged from discharge position A1 is received by discharge tray 8, which is inclined diagonally upward including a +X direction component and a +Z direction component. The medium discharged from discharge position A2 is received by an optional tray (not shown).
[0030] When recording is to be performed on the second side of the medium in addition to the first side, the medium is sent by the flap 41 in an obliquely upward direction including a -X direction component and a +Z direction component, passes through the branching position K1, and enters the switchback path T3. In this embodiment, the switchback path T3 is the medium transport path on the upper side from the branching position K1. A transport roller pair 39 is provided on the switchback path T3. The medium that enters the switchback path T3 is transported upward by the transport roller pair 39, and when the rear end of the medium passes the branching position K1, the rotation direction of the transport roller pair 39 is switched, whereby the medium is transported downward.
[0031] The switchback path T3 is connected to a reversing path T4. In this embodiment, the reversing path T4 is a medium transport path that extends from the branch position K1 through the transport roller pairs 33, 34, and 30 to the transport roller pair 31. The reversing path T4 includes the second curved path R2 described above. The medium transported downward by the transport roller pair 33 receives a feeding force from the transport roller pair 33 and the transport roller pair 34, reaches the transport roller pair 30, and is sent again to a position facing the line head 12 by the transport roller pair 30. That is, the reversing path T4 is a path that transports the medium in a transport direction that includes a vertically downward component, and reverses the medium to a transport direction that includes a vertically upward component via the second curved path R2 that is convex downward.
[0032] The medium is sent again to a position facing line head 12, with the second side opposite the first side on which recording has already been performed facing line head 12. This makes it possible to record on the second side of the medium by line head 12. The medium on which recording has been performed on the second side is discharged from discharge position A1 or discharge position A2 described above.
[0033] The configuration of the medium transport path will be further described below with reference to FIG. 2, position H1 is the upper end position of the first curved path R1 in the vertical direction, and position H2 is the lower end position of the second curved path R2 in the vertical direction. Position H1 in the vertical direction is above position H2. In other words, at least a part of the first curved path R1 and at least a part of the second curved path R2 overlap when viewed from the X-axis direction, which is the horizontal direction. In other words, the first curved path R1 and the second curved path R2 are configured to overlap in the vertical direction. Therefore, even if the second curved path R2 is disposed further downward in order to ensure the path length of the reversing path T4, the height dimension of the device can be reduced. In this embodiment, when viewed from the X-axis direction, a portion of the first curved path R1 and a portion of the second curved path R2 overlap, but the entire first curved path R1 may overlap a portion of the second curved path R2, or the entire second curved path R2 may overlap a portion of the first curved path R1.
[0034] Furthermore, in this embodiment, the curvature of the second curved path R2 is smaller than the curvature of the first curved path R1. This allows the medium to be curved more gently when curved along the second curved path R2 than when curved along the first curved path R1, that is, when a medium on which no recording has been performed on either the first or second side is curved. In other words, when a medium on which recording has already been performed and has reduced rigidity is curved more gently, damage such as wrinkles is less likely to occur on the medium, and good recording results can be obtained.
[0035] In this embodiment, the ink storage unit 10 is located between the line head 12 and the first medium cassette 3 in the vertical direction. In FIG. 2, position H3 is the upper end position of the ink storage unit 10 in the vertical direction, and position H4 is the lower end position of the ink storage unit 10 in the vertical direction. Positions H1 and H2 are between positions H3 and H4 in the vertical direction. That is, at least a part of the ink storage unit 10, at least a part of the first curved path R1, and at least a part of the second curved path R2 are configured to overlap when viewed from the X-axis direction, which is a horizontal direction. In other words, at least a part of the ink storage unit 10, at least a part of the first curved path R1, and at least a part of the second curved path R2 are configured to overlap in the vertical direction. With this configuration, the height dimension of the device can be reduced.
[0036] Further, in the reversing path T4, a downward conveying path T5 that is upstream of the second curved path R2 and conveys the medium in a conveying direction that includes a vertically downward component is inclined in a direction from the outer surface of the device toward the center of the device. The downward conveying path T5 is a part of the reversing path T4, and is a linear path from the vicinity of the upstream of the conveying roller pair 33 to the conveying roller pair 34. Since this linear downward transport path T5 is inclined, a space is formed below the downward transport path T5. The supply roller 19 is inserted into this space. In FIG. 2, position W1 is the end position of the supply roller 19 in the -X direction, and position W2 is the end position of the supply roller 19 in the +X direction. As is clear from FIG. 2, at least a part of the downward transport path T5 and at least a part of the supply roller 19 overlap when viewed from the vertical direction. In other words, at least a part of the downward transport path T5 and at least a part of the supply roller 19 overlap in the horizontal direction. With this configuration, the horizontal dimension of the device can be reduced. In addition, in this embodiment, a portion of the downward conveying path T5 overlaps with a portion of the supply roller 19 when viewed from the vertical direction, but the entire downward conveying path T5 may overlap with a portion of the supply roller 19, or the entire supply roller 19 may overlap with a portion of the downward conveying path T5.
[0037] The present invention is not limited to the embodiments described above, and various modifications are possible within the scope of the invention described in the claims, and it goes without saying that these modifications are also included in the scope of the present invention. For example, in this embodiment, the transport path T2 during printing is inclined upward, but it may be along the vertical direction or along the horizontal direction. Further, in this embodiment, the downward transport path T5 is inclined downward, but if the overlap with the supply roller 19 in the horizontal direction is not taken into consideration, it may be along the vertical direction. Furthermore, the means for supplying a medium via the supply tray 7 and the means for supplying a medium from an additional unit using the external transport roller pair 18 may be omitted. Also, the medium supplied from the supply tray 7 into the printer 1 by the supply roller 19 and separation roller 20 may be configured to enter the reversal path T4 as shown in Fig. 3. With this configuration, the supply tray indicated by reference symbol 7A, the supply roller indicated by reference symbol 19A, and the separation roller indicated by reference symbol 20A in Fig. 3 can be provided further vertically above. In other words, the degree of freedom in the arrangement of the supply tray, supply roller, and separation roller can be improved. [Explanation of symbols]
[0038] Reference Signs List 1...inkjet printer, 2...device body, 3...first media cassette, 4...second media cassette, 5...third media cassette, 6...fourth media cassette, 7...supply tray, 8...output tray, 10...ink storage section, 11...waste liquid storage section, 12...line head, 13...conveyor belt, 14, 15...pulley, 18...external conveyor roller pair, 19...supply roller, 20...separation roller, 21, 22, 23, 24...pick roller, 25, 26, 27, 28...feed roller pair, 29, 30, 31, 32, 33, 34, 37, 38, 39...conveyor roller pair, 41, 42...flap, T1...supply path, T2...conveyor path during recording, T3...switchback path, T4...reverse path, T5...downward conveyor path, R1...first curved path, R2...second curved path
Claims
1. a recording unit for recording on a medium; a recording transport path facing the recording unit; a reversing path that conveys the medium recorded by the recording in a conveying direction including a vertical downward component and reverses the medium to a conveying direction including a vertical upward component; At least one medium storage section that is located below the recording section in a vertical direction and stores a medium before recording; a supply path that reverses the medium fed from the medium storage unit to a conveying direction that includes a component in the opposite direction to the medium feeding direction from the medium storage unit; Equipped with a part of the recording transport path is formed by a transport belt that is wound around a plurality of pulleys; the reversing path is connected to the recording transport path, the conveyor belt is located between the recording conveyance path and the reversal path, The supply path merges with the reversing path, The supply path has a first curved path that is convex upward, The inversion path has a second curved path that is convex downward, At least a portion of the first curved path and at least a portion of the second curved path overlap when viewed in a horizontal direction. A recording apparatus comprising:
2. 2. The recording apparatus according to claim 1, the conveyor belt is located inside a closed space formed by the recording conveyance path and the reversal path; A recording apparatus comprising:
3. 2. The recording apparatus according to claim 1, The conveyor belt conveys the medium while adsorbing it. A recording apparatus comprising:
4. 2. The recording apparatus according to claim 1, A lower end position of the second curved path in the vertical direction is vertically lower than an upper end position of the first curved path in the vertical direction. A recording apparatus comprising:
5. 5. The recording apparatus according to claim 4, a first transport roller configured to transport a medium is provided upstream of the upper end position of the first curved path; a second transport roller that transports a medium is provided downstream of the upper end position of the first curved path; the supply path and the reversing path join together between the first transport roller and the second transport roller; A recording apparatus comprising:
6. 2. The recording apparatus according to claim 1, wherein a curvature of the second curved path is smaller than a curvature of the first curved path. A recording apparatus comprising:
7. 2. The recording apparatus according to claim 1, the recording unit is configured with a liquid ejection head that ejects liquid onto a medium; a liquid storage section for storing liquid to be ejected from the liquid ejection head is provided between the liquid ejection head and the medium storage section in a vertical direction; at least a portion of the liquid storage portion, at least a portion of the first curved path, and at least a portion of the second curved path overlap with each other when viewed in a horizontal direction; A recording apparatus comprising:
8. 8. The recording apparatus according to claim 7, a lower end position of the second curved path in a vertical direction overlaps with the liquid storage portion when viewed from a horizontal direction, an upper end position of the first curved path in a vertical direction overlaps with the liquid storage portion when viewed in a horizontal direction; A recording apparatus comprising:
9. 2. The recording apparatus according to claim 1, the recording unit is configured with a liquid ejection head that ejects liquid onto a medium; a liquid storage section for storing liquid to be ejected from the liquid ejection head is provided between the liquid ejection head and the medium storage section in a vertical direction; a waste liquid storage section for storing waste liquid discharged from the liquid discharge head is provided between the liquid discharge head and the medium storage section in a vertical direction; a lower end position of the second curved path in a vertical direction does not overlap with the waste liquid storage section when viewed in a horizontal direction; A recording apparatus comprising:
10. 2. The recording apparatus according to claim 1, the recording unit is configured with a liquid ejection head that ejects liquid onto a medium; a liquid storage section for storing liquid to be ejected from the liquid ejection head is provided between the liquid ejection head and the medium storage section in a vertical direction; a waste liquid storage section for storing waste liquid discharged from the liquid discharge head is provided between the liquid discharge head and the medium storage section in a vertical direction; A portion of the second curved path and a portion of the waste liquid storage section overlap each other when viewed from a vertical direction. A recording apparatus comprising:
11. 2. The recording apparatus according to claim 1, the recording unit is configured with a liquid ejection head that ejects liquid onto a medium; a liquid storage section for storing liquid to be ejected from the liquid ejection head is provided between the liquid ejection head and the medium storage section in a vertical direction; the second curved path and the liquid storage portion do not overlap when viewed in a vertical direction; A recording apparatus comprising:
12. 2. The recording apparatus according to claim 1, the transport path during recording is angled with respect to the horizontal and vertical directions and transports the medium upward; A recording apparatus comprising:
13. 2. The recording apparatus according to claim 1, a discharge tray for receiving a medium discharged after recording by the recording unit, a discharge position where the medium is discharged to the discharge tray and the second curved path overlap when viewed in a vertical direction; A recording apparatus comprising:
14. 2. The recording apparatus according to claim 1, a downward conveying path that is upstream of the second curved path in the reversing path and conveys the medium in a conveying direction that includes a vertically downward component, the downward conveying path being inclined in a direction from an outer surface of the device toward a center of the device, a supply roller that feeds the medium into the inside of the device via a supply tray that protrudes from a side surface of the device to the outside of the device, the supply roller being disposed above the first curved path in the vertical direction; At least a portion of the downward transport path and at least a portion of the supply roller overlap when viewed in a vertical direction. A recording apparatus comprising:
15. 15. The recording apparatus according to claim 14, The medium fed into the device through the supply tray enters the inversion path. A recording apparatus comprising:
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