Image reading device

The image reading device stabilizes posture by positioning the center of gravity strategically relative to the rotation axis, using gravity to maintain orientation and reduce the need for additional stabilizing mechanisms, addressing the issue of instability and cost in existing devices.

JP7810014B2Active Publication Date: 2026-02-03SEIKO EPSON CORP
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Patent Information

Application Number
JP2022031946
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-02
Publication Date
2026-02-03
Estimated Expiration
2042-03-02

AI Technical Summary

Technical Problem

Existing image reading devices face instability in posture due to the center of gravity being offset from the rotation center, leading to increased force requirements for maintaining attitude, which can result in larger device size and higher costs.

Method used

The image reading device is designed with a rotatable main body that switches between postures, positioning the center of gravity vertically above the rotation axis in one posture and forward or rearward of the axis in the other, utilizing gravity to stabilize the device without additional attitude-maintaining mechanisms.

Benefits of technology

This configuration stabilizes the device posture, preventing size and cost increases by leveraging gravity to maintain the desired orientation, thus reducing the need for larger and more costly attitude-maintaining components.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To solve the problem in which a device body becomes easily rotatable in a direction to take another attitude depending on a position of the center of gravity of the device body, which applies a large force to means for holding the attitude of the device body and may destabilize the attitude.SOLUTION: An image reading device comprises: a body support part that is mounted on a device mounting surface; a device body that is supported by the body support part; and a reading conveyance path that faces a reading unit that reads a document. The device body is rotatable centered on a rotation axis with respect to the body support part, and rotates to be switchable between a first attitude and a second attitude in which the angle formed by the reading conveyance path with the mounting surface becomes smaller than that of the first attitude. A position of the center of gravity of the device body is vertically above the axial center of the rotation axis. In a depth direction of the device, the position of the center of gravity of the device body is located on the front of the axial center in the device when the device body takes the first attitude and is located on the back of the axial center in the device when the device body takes the second attitude.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present invention relates to an image reading device that reads an image on a medium. [Background technology]

[0002] One example of an image reading device is a sheet-fed scanner. The scanner described in Patent Document 1 has a device body that is rotatable relative to a support base, and is configured so that the inclination of the paper path relative to the installation surface can be changed by rotating the device body. In the scanner described in Patent Document 1, the orientation of the device body is maintained by a latch mechanism. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Special Publication No. 2009-527143 Summary of the Invention [Problem to be solved by the invention]

[0004] If the center of gravity of the device body is far from the center of rotation, the device body will be more likely to rotate in a direction that assumes a different attitude, which may result in a large force being applied to the means for maintaining the attitude of the device body, making the attitude unstable, or the means for maintaining the attitude of the device body becoming larger, which may lead to an increase in the size of the device and an increase in costs. [Means for solving the problem]

[0005] In order to solve the above problem, the image reading device of the present invention comprises a main body support section that is placed on a loading surface of the device, a device main body supported by the main body support section, and a document transport path in the device main body that transports a document and that faces a reading section that reads the document, wherein the device main body is rotatable around a rotation axis relative to the device support section, and is switchable between a first posture and a second posture in which the angle that the reading transport path forms with the loading surface is smaller than the first posture by rotating, and the center of gravity of the device main body is located vertically above the axial center of the rotation axis, and the center of gravity of the device main body in the device depth direction, which is a direction that intersects the axial direction and vertical direction of the rotation axis, is located forward of the axial center when the device main body is in the first posture, and is located rearward of the axial center when the device main body is in the second posture. [Brief explanation of the drawings]

[0006] [Figure 1] FIG. 2 is a perspective view of the scanner when viewed from the front, with the main body of the scanner in a normal reading position. [Figure 2] FIG. 10 is a view of the document transport path of the scanner when the device body is in the normal reading position, viewed from the width direction. [Figure 3] FIG. 10 is a view of the document transport path of the scanner when the device main body is in the booklet reading position, viewed from the width direction. [Figure 4] FIG. 1 is a diagram showing the appearance of the scanner when the device body is in the normal reading position, viewed from the width direction. [Figure 5] FIG. 10 is a diagram showing the appearance of the scanner when the device main body is in a booklet reading position, viewed from the width direction. [Figure 6] 4A and 4B are perspective views of the position maintaining means, in which FIG. 4A shows the state in which the device main body is in the normal reading position, and FIG. 4B shows the state in which the device main body is in the booklet reading position. [Figure 7] 10A and 10B are front views of a contact portion that determines the posture of the device body, in which FIG. 10A shows the device body in the normal reading posture, and FIG. 10B shows the device body in the booklet reading posture. [Figure 8]10A and 10B are diagrams showing changes in the center of gravity of the device body when the device body is in the normal reading position. [Figure 9] 10A and 10B are diagrams showing changes in the center of gravity of the device body when the device body is in a booklet reading position. [Figure 10] 1 is a plot diagram showing the position of the center of gravity of the device body in each posture and state. [Figure 11] 1A and 1B are diagrams showing the center of gravity of the device body when viewed in a plane, in which (A) shows the device body in a normal reading position, and (B) shows the device body in a booklet reading position. [Figure 12] FIG. 10 is a diagram showing an apparatus main body according to another embodiment. [Figure 13] FIG. 10 is a diagram showing an apparatus main body according to another embodiment. [Figure 14] FIG. 10 is a diagram showing an apparatus main body according to another embodiment. [Figure 15] FIG. 10 is a perspective view of the appearance of a scanner according to another embodiment, as viewed from the front. DETAILED DESCRIPTION OF THE INVENTION

[0007] The present invention will be briefly described below. The image reading device according to the first aspect comprises a main body support section placed on the device's loading surface, a device main body supported by the main body support section, and a document transport path in the device main body that transports documents and that faces a reading section that reads the documents. The device main body is rotatable around a rotation axis relative to the device support section, and can be switched between a first position and a second position in which the angle between the reading transport path and the loading surface is smaller than the first position by rotating. The center of gravity of the device main body is located vertically above the axial center of the rotation axis, and in the device depth direction, which is a direction intersecting the axial direction and vertical direction of the rotation axis, the center of gravity of the device main body is located forward of the axial center when the device main body is in the first position, and is located rearward of the axial center when the device main body is in the second position.

[0008] According to this aspect, in a configuration in which the center of gravity of the device body is located vertically above the axial center of the rotation shaft, when the device body is in the first posture, the center of gravity of the device body in the device depth direction is located forward of the axial center, so that the weight of the device body acts in a direction to maintain the first posture due to the action of gravity. That is, when the device body is in the first posture, the weight of the device body does not act in a direction to switch to the second posture. The same is true when the device body is in the second posture; when the device body is in the second posture, the weight of the device body does not act in a direction to switch to the first posture. As a result, the posture of the device body is stabilized, and it is possible to prevent an increase in size and cost of a means for maintaining the posture of the device body.

[0009] A second aspect is characterized in that, in the image reading device described in the first aspect, the device main body is a tray that can be stored in the device main body and deployed from the device main body, and is provided with a feed tray that, when deployed from the device main body, is located rearward of the device in the device depth direction relative to the axial center, and the center of gravity of the device main body in the device depth direction is located forward of the axial center when the device main body is in the first position, regardless of the state of the feed tray, and is located rearward of the axial center when the device main body is in the second position.

[0010] In a configuration including a feed tray that can be stored in the device body and deployed from the device body, the position of the center of gravity of the device body may change depending on the state of the feed tray. However, according to this aspect, the position of the center of gravity of the device body in the device depth direction is located forward of the axis center when the device body is in the first position, regardless of the state of the feed tray, and is located rearward of the axis center when the device body is in the second position, so that the effects of the first aspect described above can be obtained regardless of the state of the feed tray.

[0011] A third aspect is characterized in that, in the first or second aspect, the device main body comprises a first unit that forms the lower side of the reading conveying path and a second unit that forms the upper side of the reading conveying path and is openable and closable relative to the first unit, and the center of gravity of the device main body in the device depth direction is located forward of the axial center when the device main body is in the first position, regardless of the open / closed state of the second unit, and is located rearward of the axial center when the device main body is in the second position.

[0012] In a configuration in which the device main body includes a first unit that forms the lower side of the reading transport path and a second unit that forms the upper side of the reading transport path and is openable and closable relative to the first unit, the position of the center of gravity of the device main body may change depending on the open / closed state of the second unit. However, according to this aspect, the position of the center of gravity of the device main body in the device depth direction is located forward of the axis center when the device main body is in the first position, regardless of the open / closed state of the second unit, and is located rearward of the axis center when the device main body is in the second position, so that the effects of the first aspect described above can be obtained regardless of the open / closed state of the second unit.

[0013] A fourth aspect is characterized in that, in the first or second aspect, the device main body comprises a first unit that forms the lower side of the reading transport path, a second unit that forms the upper side of the reading transport path and is openable and closable relative to the first unit, and a third unit that forms a document transport path downstream of the reading transport path and is rotatable relative to both the first unit and the second unit, and the center of gravity of the device main body in the device depth direction is located forward of the axis center when the device main body is in the first position, regardless of the open / closed state of the third unit, and is located rearward of the axis center when the device main body is in the second position.

[0014] In a configuration in which the device main body includes a third unit that forms a document transport path downstream of the reading transport path and is rotatable with respect to both the first unit and the second unit, the position of the center of gravity of the device main body may change depending on whether the third unit is open or closed. However, according to this aspect, the position of the center of gravity of the device main body in the device depth direction is located forward of the axis center when the device main body is in the first position, regardless of whether the third unit is open or closed, and is located rearward of the axis center when the device main body is in the second position, so that the effects of the first aspect described above can be obtained regardless of whether the third unit is open or closed.

[0015] The fifth aspect is characterized in that, in the third or fourth aspect, the center of gravity of the first unit is located rearward of the axis center in the depth direction of the device, at least when the device main body is in the second posture.

[0016] According to this aspect, the center of gravity of the first unit is located rearward of the axial center in the device depth direction at least when the device main body is in the second posture, and therefore, when the device main body takes the second posture, the center of gravity of the device main body can be configured to be easily located rearward of the axial center.

[0017] The sixth aspect is characterized in that, in any of the third to fifth aspects, the center of gravity of the second unit is located forward of the axis center in the depth direction of the device, at least when the device main body is in the first posture. According to this aspect, the center of gravity of the second unit is located in front of the axial center in the device depth direction at least when the device main body is in the first posture, so that when the device main body takes the first posture, the center of gravity of the device main body can be easily located in front of the axial center.

[0018] The seventh aspect is characterized in that, in any of the first to sixth aspects, the device main body is provided with a weight that is located in front of the axial center in the device depth direction when the device main body assumes the first posture, and that is located behind the axial center in the device depth direction when the device main body assumes the second posture.

[0019] According to this aspect, the device main body is provided with a weight that is located in front of the device relative to the axial center when the device main body is in the first position, and that is located behind the axial center when the device main body is in the second position. Therefore, when the device main body is in the first position, the center of gravity of the device main body is likely to be located in front of the axial center, and when the device main body is in the second position, the center of gravity of the device main body is likely to be located behind the axial center.

[0020] An eighth aspect is characterized in that, in any of the first to seventh aspects, a portion is provided on the front side of the device body in the device depth direction, and includes an operation unit that receives operations from a user, the operation unit is provided at a position that rotates the device body toward the first posture when pressed by the user, and the distance between the center of gravity of the device body and the axis center when the device body is in the second posture in the device depth direction is longer than the distance between the center of gravity of the device body and the axis center when the device body is in the first posture.

[0021] In a configuration in which the operation unit is positioned to rotate the device body toward the first posture when pressed by a user, when the user operates the operation unit while the device body is in the second posture, the pressing force acts in a direction that changes the posture of the device body, which is undesirable. However, according to this aspect, the distance between the center of gravity of the device body and the axial center in the device depth direction when the device body is in the second posture is longer than the distance between the center of gravity of the device body and the axial center when the device body is in the first posture. This makes it possible to configure the device body to be less likely to rotate from the second posture to the first posture even if the user operates the operation unit while the device body is in the second posture.

[0022] The ninth aspect is characterized in that, in any of the first to eighth aspects, the device further comprises a posture holding means for holding the device body in the first posture when the device body is in the first posture, and for holding the device body in the second posture when the device body is in the second posture.

[0023] According to this aspect, the device body is provided with an attitude maintaining means that maintains the device body in the first attitude when the device body is in the first attitude, and that maintains the device body in the second attitude when the device body is in the second attitude, thereby making it even easier for the device body to maintain its attitude.

[0024] A tenth aspect is characterized in that, in any of the first to ninth aspects, the amount by which the device main body protrudes rearward in the device depth direction from the main body support part is more likely in the second position than in the first position, and the main body support part is a member that can be switched between a stored state and an expanded state in which it protrudes rearward in the device depth direction more than the stored state, and is provided with an auxiliary member that contacts the placement surface in the expanded state.

[0025] In a configuration in which the amount by which the device main body protrudes rearward in the device depth direction from the main body support part is more likely to be in the second position than in the first position, when the device main body takes the second position, it becomes more likely to tip rearward in the device depth direction. However, according to this aspect, the main body support part is a member that can be switched between a stored state and an expanded state in which it protrudes further rearward in the depth direction of the device than the stored state, and an auxiliary member that contacts the placement surface in the expanded state can prevent the device main body from tipping over when it takes on the second position.

[0026] The 11th aspect is characterized in that, in the 10th aspect, the center of gravity of the device main body is located rearward of the main body support part in the device depth direction and vertically above the auxiliary member in the expanded state when the device main body is in the second posture.

[0027] If the center of gravity of the device main body is located behind the main body support part in the device depth direction when the device main body is in the second posture, the device main body will be more likely to tip over backward in the device depth direction when it assumes the second posture. However, in this aspect, since the center of gravity of the device main body is located vertically above the auxiliary member in the unfolded state in such a configuration, the device main body can be effectively prevented from tipping over when it assumes the second posture.

[0028] The present invention will be specifically described below. In the following, as an example of an image reading device, a scanner 1 capable of reading at least one of the first side and the opposite second side of a document will be taken as an example. The scanner 1 is a so-called sheet-fed type scanner that reads a document while moving it relative to a reading unit described below. In this specification, the document includes not only a sheet-shaped document but also a card-shaped document and a booklet-shaped document.

[0029] In the XYZ coordinate system shown in each figure, the X axis direction is the width direction of the device and the width direction of the original. The Y axis direction is the depth direction of the device, and the Z axis direction is the vertical direction. The Y axis direction intersects with the axial direction (X axis direction) of the main body rotation shaft 6c (described later) and the vertical direction. In this embodiment, the +Y direction is the direction from the rear to the front of the device, and the -Y direction is the direction from the front to the rear of the device. Also, the left direction as viewed from the front of the device is the +X direction, and the right direction is the -X direction. In the following description, the direction in which the document is transported may be referred to as "downstream," and the opposite direction may be referred to as "upstream."

[0030] 1, the scanner 1 includes a device main body 2 and a body support part 6 that rotatably supports the device main body 2. The body support part 6 is placed on a mounting surface S of the device. The mounting surface S is, for example, a surface parallel to a horizontal plane. The device main body 2 is configured to include a first unit 3, a second unit 4, and a third unit 5.

[0031] The second unit 4 and the third unit 5 are provided so as to be rotatable about a unit rotation axis 41b (see FIGS. 4 and 5). The unit rotation axis 41b is a rotation axis that forms the rotation axis center parallel to the X-axis direction. The second unit 4 and the third unit 5 can rotate integrally around the unit rotation axis 41b relative to the first unit 3 (see FIGS. 8(A-5) and 9(B-5)). Reference symbol 8a in FIG. 1 indicates an unlocking portion, and the user can unlock the second unit 4 and the third unit 5 relative to the first unit 3 by sliding the unlocking portion 8a in the -X direction. Then, by rotating the second unit 4 and the third unit 5 relative to the first unit 3, part of the document transport path can be exposed. In particular, by opening the second unit 4 relative to the first unit 3, the reading transport path R0 (see FIGS. 2 and 3), which will be described later, can be exposed.

[0032] The third unit 5 can rotate about a unit rotation axis 41b relative to the first unit 3 and the second unit 4 (see FIGS. 8(A-4) and 9(B-4)). By rotating the third unit 5 relative to the second unit 4, a U-turn discharge path R1 (see FIGS. 2 and 3) downstream from a reading conveyance path R0 (described later) can be exposed. In other words, the U-turn discharge path R1 is formed between the third unit 5 and the second unit 4.

[0033] Furthermore, the third unit 5 is held relative to the second unit 4 by a snap-fit ​​structure not shown, and when the user applies external force to the third unit 5, the third unit 5 is released from its position relative to the second unit 4, allowing the third unit 5 to be opened.

[0034] The device main body 2 is rotatable around a main body rotation axis 6c (see FIGS. 2 and 3) relative to the main body support part 6, and in this embodiment, the device main body 2 can hold two postures by rotating. The two postures of the device main body 2 are shown in FIGS. 2 and 3, and hereinafter the posture in FIG. 2 will be referred to as the normal reading posture, and the posture in FIG. 3 will be referred to as the booklet reading posture. The normal reading posture is an example of the first posture of the device main body 2, and the booklet reading posture is an example of the second posture of the device main body 2.

[0035] 1, an operation unit 7 made up of a plurality of operation buttons is provided on the front of the device. In this embodiment, the plurality of operation buttons are made up of operation buttons 7a, 7b, and 7c, and user operations are accepted by these buttons.

[0036] Next, the configuration of the document transport path in the scanner 1 will be described with reference to Figures 2 and 3. In Figures 2 and 3, thick dashed lines indicate the path along which the transported document passes. Of these, the document transport path from the first transport roller pair 16 to the second transport roller pair 20 is the reading transport path R0. The reading transport path R0 is a document transport path that faces the first reading unit 32 and the second reading unit 33, which will be described later. The first unit 3 forms the lower side of the reading transport path R0, and the second unit 4 forms the upper side of the reading transport path R0.

[0037] The normal reading position of the device main body 2 (FIG. 2) is a position in which the reading conveyance path R0 is connected to the U-turn discharge path R1 by a flap 35, which is an example of a conveyance path switching means. The booklet reading position of the device main body 2 (FIG. 3) is a position in which the reading conveyance path R0 is connected to the straight discharge path R2 by the flap 35.

[0038] The angle that the reading transport path R0 forms with the placement surface S of the device is smaller in the second position shown in FIG. 3 than in the first position shown in FIG. In the normal reading position, the projection area of ​​the device body 2 onto the placement surface S on which the scanner 1 is placed is the smallest, that is, the footprint of the device body 2 is the smallest. In this specification, the footprint refers to the area occupied by the device body 2 in the XY plane when the device body 2 is viewed from above. The normal reading position is suitable for reading sheet-like documents, i.e., documents that have low rigidity and are easily bent, while the booklet reading position is suitable for reading documents that have high rigidity and are not easily bent, such as plastic cards or booklets.

[0039] The document transport path will be described in further detail below. The document to be fed is supported in an inclined position by document support section 11 and document support 9. When multiple documents are supported on document support section 11, the top document is sent downstream by feed roller 14. Document support section 11 is formed in upper opening / closing section 10. Upper opening / closing section 10 is rotatable around a rotation axis (not shown), and opens and closes the feed port by rotating. The document support 9 can be stored in the upper opening / closing unit 10 or deployed from the upper opening / closing unit 10. Fig. 1 shows the state in which the upper opening / closing unit 10 is closed, while Figs. 2 and 3 show the state in which the upper opening / closing unit 10 is open and the document support 9 is deployed. The upper opening / closing unit 10 and the document support 9 constitute a first unit 3.

[0040] A pair of edge guides (not shown) are provided in the document support section 11. The pair of edge guides are arranged to move apart or approach each other across the center position in the document width direction, and are linked by a rack and pinion mechanism (not shown). In other words, the scanner 1 employs a so-called center feeding system.

[0041] The feed roller 14 is provided in the second unit 4. The feed roller 14 rotates by receiving power from the transport motor 40. A separation roller 15 is provided in the first unit 3 at a position opposite the feed roller 14. A rotational torque is applied to the separation roller 15 by a torque limiter (not shown), which prevents double feeding of documents. Instead of the separation roller 15, a separation pad may be provided. In addition, in this embodiment, the feed roller 14 is provided above the documents placed on the document support section 11, and the top document is fed first, but the feed roller 14 may be provided below the documents placed on the document support section 11, and the bottom document is fed first.

[0042] A first pair of conveying rollers 16 is provided downstream of the feed roller 14 and the separation roller 15. The first pair of conveying rollers 16 is composed of a first lower roller 17 provided in the first unit 3 and a first upper roller 18 provided in the second unit 4. The first upper roller 18 is provided so as to be able to move toward and away from the first lower roller 17, and is pressed against the first lower roller 17 by a pressing member (not shown), for example, a coil spring. Both the first lower roller 17 and the first upper roller 18 receive power from a conveyance motor 40 and rotate. When the second unit 4 is closed relative to the first unit 3, the first lower roller 17 and the first upper roller 18 come into contact with each other. When the second unit 4 is opened relative to the first unit 3, the first upper roller 18 moves away from the first lower roller 17.

[0043] A first reading unit 32 and a second reading unit 33 are disposed facing each other downstream of the first transport roller pair 16. The first reading unit 32 is provided in the first unit 3, and the second reading unit 33 is provided in the second unit 4. The first reading unit 32 reads the bottom surface (first side) of the document supported by the document support unit 11, and the second reading unit 33 reads the top surface (second side) of the document supported by the document support unit 11. The second reading unit 33 is provided so as to be able to advance and retreat relative to the first reading unit 32, and is pressed toward the first reading unit 32 by a pressing member (not shown), for example, a coil spring. In this embodiment, the first reading unit 32 and the second reading unit 33 are configured as contact image sensor modules (CISMs).

[0044] A second pair of transport rollers 20 is provided downstream of the first reading unit 32 and the second reading unit 33. The second pair of transport rollers 20 is composed of a second lower roller 21 provided in the first unit 3 and a second upper roller 22 provided in the second unit 4. The second upper roller 22 is provided so as to be able to move toward and away from the second lower roller 21, and is pressed against the second lower roller 21 by a pressing member (not shown), for example a coil spring. The second lower roller 21 and the second upper roller 22 are both rotated by power received from a conveyance motor 40 . When the second unit 4 is closed relative to the first unit 3, the second lower roller 21 and the second upper roller 22 come into contact with each other. When the second unit 4 is opened relative to the first unit 3, the second upper roller 22 moves away from the second lower roller 21.

[0045] When the device main body 2 is in the normal reading position shown in Fig. 2, a U-turn discharge path R1 that turns the read document upward and discharges it is connected downstream of the reading transport path R0. When the device main body 2 is in the booklet reading position shown in Fig. 3, a straight discharge path R2 that discharges the read document without turning it over is connected downstream of the reading transport path R0.

[0046] Switching between the U-turn discharge path R1 and the straight discharge path R2 is performed by a flap 35. The flap 35 rotates to connect the U-turn discharge path R1 to the reading conveyance path R0, or to connect the straight discharge path R2 to the reading conveyance path R0. In this embodiment, the flap 35 is configured to rotate in conjunction with the change in position of the device main body 2. In this embodiment, the flap 35 is rotated in conjunction with the change in position of the device main body 2 by a linkage mechanism (not shown), for example a cam mechanism, which mechanically rotates the flap in conjunction with the position of the device main body 2. However, the flap 35 may also be configured to rotate by a solenoid (not shown). In this case, a control unit (not shown) that performs various controls drives the solenoid to rotate the flap 35 based on detection information from a position detection sensor (not shown).

[0047] A third conveying roller pair 24 and a fourth conveying roller pair 28 are provided on the U-turn conveying path R1. The third transport roller pair 24 is composed of a third drive roller 25 provided in the third unit 5 and a third driven roller 26 provided in the second unit 4. The third driven roller 26 is provided so as to be able to move toward and away from the third drive roller 25, and is pressed toward the third drive roller 25 by a pressing member (not shown), such as a coil spring. The third drive roller 25 is driven by the transport motor 40. The third driven roller 26 is a roller that is rotated by the conveyance motor 40.

[0048] The fourth transport roller pair 28 is composed of a fourth drive roller 29 provided in the third unit 5 and a fourth driven roller 30 provided in the second unit 4. The fourth driven roller 30 is provided so as to be able to move toward and away from the fourth drive roller 29, and is pressed toward the fourth drive roller 29 by a pressing member (not shown), such as a coil spring. The fourth drive roller 29 is driven by a transport motor 40. The fourth driven roller 30 is a roller that is rotated by the conveyor motor 40.

[0049] When the third unit 5 is closed relative to the second unit 4, the third drive roller 25 and the third driven roller 26 come into contact, and the fourth drive roller 29 and the fourth driven roller 30 also come into contact. When the third unit 5 is opened relative to the second unit 4, the third drive roller 25 and the third driven roller 26 move apart, and the fourth drive roller 29 and the fourth driven roller 30 also move apart. The document discharged from the U-turn transport path R1 is discharged obliquely upward including a −Y direction component by the fourth transport roller pair 28, and is supported in an inclined position by the upper surface 4a of the second unit 4.

[0050] Next, we will explain the configuration related to the rotation and attitude maintenance of the device main body 2. The main body support part 6 is provided with an upright wall part 6a that stands up as shown in Fig. 6, and the upright wall part 6a is provided with a main body rotation shaft 6c. Although not shown, two main body rotation shafts 6c are provided at intervals in the X-axis direction on the main body support part 6. Of the two main body support parts 6 provided at intervals in the X-axis direction, Fig. 6 shows the main body support part 6 provided in the +X direction.

[0051] Reference numeral 41 denotes a first frame constituting the first unit 3. The main body rotation shaft 6c passes through the first frame 41, allowing the first frame 41, i.e., the device main body 2, to rotate about the main body rotation shaft 6c. The main body rotation shaft 6c is a rotation axis whose center is parallel to the X-axis direction.

[0052] Figure 7 shows the upright wall 6a as seen from the opposite side to that of Figure 6, and shows that the upright wall 6a is formed with a first contact portion 6e and a second contact portion 6f as rotation restricting means. A boss 41c provided on the first frame 41 is inserted between the first contact portion 6e and the second contact portion 6f. When the device body 2 rotates from the booklet reading position to the normal reading position, the boss 41c comes into contact with the first contact portion 6e, thereby defining the normal reading position of the device body 2. When the device body 2 rotates from the normal reading position to the booklet reading position, the boss 41c comes into contact with the second contact portion 6f, thereby defining the booklet reading position of the device body 2.

[0053] 7(A), the weight of the device body 2 acts to rotate the device body 2 counterclockwise in the figure. That is, the weight of the device body 2 acts to bring the boss 41c into contact with the first contact portion 6e. 7(B), the weight of the device body 2 acts to rotate the device body 2 clockwise in the figure. That is, the weight of the device body 2 acts to bring the boss 41c into contact with the second contact portion 6f. In this embodiment, the first contact portion 6e and the second contact portion 6f are provided on both of the two standing wall portions 6a spaced apart in the X-axis direction, and the bosses 41c are also provided corresponding to them. However, the first contact portion 6e and the second contact portion 6f may be provided on only one of the two standing wall portions 6a spaced apart in the X-axis direction.

[0054] Returning to FIG. 6 , the upright wall portion 6a is provided with an elastically deforming portion 6b extending upward. The elastically deforming portion 6b is a portion that is elastically deformable so that its upper end can be displaced along the X-axis direction. The first frame 41 is provided with a protrusion 41a, and the engagement between the protrusion 41a and the elastically deforming portion 6b reliably maintains the posture of the device body 2. That is, the elastically deforming portion 6b and the protrusion 41a constitute a posture maintaining means 42 that maintains the device body 2 in the normal reading posture when the device body 2 is in the normal reading posture, and that maintains the device body 2 in the booklet reading posture when the device body 2 is in the booklet reading posture. This configuration makes it even easier for the device body 2 to maintain its posture. When the posture of the device body 2 changes, the protrusion 41a elastically deforms and pushes away the elastically deforming portion 6b. However, as described above, in the normal reading position, the weight of the device main body 2 acts to maintain the normal reading position, and in the booklet reading position, the weight of the device main body 2 acts to maintain the booklet reading position, so the position maintaining means 42 plays an auxiliary role in maintaining the position of the device main body 2.

[0055] In this embodiment, the above-mentioned elastic deformation portion 6b is provided on only one of the two standing wall portions 6a provided with a gap in the X-axis direction, and one corresponding protrusion 41a is also provided. That is, in this embodiment, one posture maintaining means 42 is provided. However, this is not limiting, and the elastic deformation portion 6b may be provided on both of the two standing wall portions 6a provided with a gap in the X-axis direction, and two corresponding protrusions 41a may also be provided. That is, a plurality of posture maintaining means 42 may be provided.

[0056] As described above, the user applies force to the device body 2, thereby changing the position of the device body 2. In a configuration in which the posture of the device body 2 is switched by a user's operation, it is also preferable to provide the device body 2 with a handle portion on which the user can place their hand.

[0057] Next, the position of the center of gravity of the device main body 2 will be described. 2 to 5, 8, 9, and 11, the symbol G0 indicates the position of the center of gravity of the device main body 2. For example, FIGS. 4 and 5 show a state in which the second unit 4 and the third unit 5 are closed relative to the first unit 3, and the upper opening / closing part 10 is closed. Hereinafter, this state in which all openable and closable parts are closed will be referred to as the "completely closed state" of the device main body 2. 4 and 5, symbol C1 indicates the center of the main body rotation shaft 6c, line Lv is a vertical line passing through the center C1, and line Lh is a horizontal line passing through the center C1. The intersection of line Lv and line Lh is the center C1.

[0058] 4 and 5, the center of gravity G0 of the device body 2 is located vertically above the center C1 of the main body rotation shaft 6c. When the device body 2 is in the normal reading position, the center of gravity G0 of the device body 2 is located further forward than the center C1 in the device depth direction, as shown in FIG. As shown in FIG. 5, when the device main body 2 is in the booklet reading position, the center of gravity G0 of the device main body 2 is located behind the axis center C1 in the device depth direction. Note that the symbol Lr denotes an arc including the rotation locus of the center of gravity G0 that accompanies a change in the posture of the device main body 2, and this arc is an arc centered on the axis C1. When the device main body 2 changes posture from the normal reading posture to the booklet reading posture, the center of gravity G0 moves along the arc Lr from the front of the device to the rear of the device. Also, when the device main body 2 changes posture from the booklet reading posture to the normal reading posture, the center of gravity G0 moves along the arc Lr from the rear of the device to the front of the device.

[0059] 4 and 5, the symbol G3 denotes the center of gravity of the first unit 3, and the symbol G4 denotes the center of gravity of the second unit 4. As shown in Fig. 4, when the device main body 2 is in the normal reading position, the center of gravity G3 of the first unit 3 is at the same position as the axial center C1 in the device depth direction, and the center of gravity G4 of the second unit 4 is at a position forward of the axial center C1 in the device depth direction. As shown in FIG. 5, when the device main body 2 is in the booklet reading position, the center of gravity G3 of the first unit 3 is located rearward of the axial center C1 in the device depth direction, and the center of gravity G4 of the second unit 4 is located at the same position as the axial center C1 in the device depth direction.

[0060] 4 and 5, the symbol Lt denotes an arc including the rotation locus of the center of gravity G3 that accompanies a change in the posture of the device main body 2, and this arc is an arc centered on the axis center C1. When the device main body 2 changes its posture from the normal reading posture to the booklet reading posture, the center of gravity G3 moves along the arc Lt from the position of the axis center C1 toward the rear of the device. Furthermore, when the device main body 2 changes its posture from the booklet reading posture to the normal reading posture, the center of gravity G3 moves along the arc Lt from the rear of the device to the position of the axis center C1. 4 and 5, the symbol Ls denotes an arc including the rotation locus of the center of gravity G4 that accompanies a change in the posture of the device main body 2, and this arc is an arc centered on the axis center C1. When the device main body 2 changes posture from the normal reading posture to the booklet reading posture, the center of gravity G4 moves along the arc Ls from the front of the device to the position of the axis center C1. When the device main body 2 changes posture from the booklet reading posture to the normal reading posture, the center of gravity G4 moves along the arc Ls from the position of the axis center C1 to the front of the device.

[0061] In this embodiment, when the device body 2 is in the normal reading position, the center of gravity G3 of the first unit 3 is at the position of the axis center C1 in the device depth direction, but it may be located somewhat forward or backward from the position of the axis center C1. For example, when the device body 2 is in the normal reading position, the center of gravity G3 of the first unit 3 may be located within the range Ya in the device depth direction of the standing wall portion 6a. Similarly, in this embodiment, when the device body 2 is in the booklet reading position, the center of gravity G4 of the second unit 4 is at the position of the axis center C1 in the device depth direction, but it may be located somewhat forward or rearward of the position of the axis center C1. For example, when the device body 2 is in the booklet reading position, the center of gravity G4 of the second unit 4 may be within the range Ya in the device depth direction of the standing wall portion 6a.

[0062] Next, Fig. 8 shows how the center of gravity G0 changes when the state of the device main body 2 changes while the device main body 2 is in the normal reading position. Also, Fig. 9 shows how the center of gravity G0 changes when the state of the device main body 2 changes while the device main body 2 is in the booklet reading position. 8(A-1) and 9(B-1) show the state in which the upper opening / closing section 10 is opened from the completely closed state of the device main body 2, and further the document support 9 is deployed. 8(A-2) and 9(B-2) show the state in which the upper opening / closing part 10 is opened from the completely closed state of the device main body 2. FIG. 8(A-3) and 9(B-3) show the device main body 2 in a completely closed state. 8(A-4) and 9(B-4) show the state in which the apparatus main body 2 is in a completely closed state and the third unit 5 is open. 8(A-5) and 9(B-5) show the state in which the second unit 4 and the third unit 5 are opened from the completely closed state of the device main body 2. FIG. Note that Figure 11(A-1) corresponds to Figure 8(A-1) and shows the state in which original P1 is placed, and Figure 11(B-1) corresponds to Figure 9(B-1) and shows the state in which original P2 is placed.

[0063] Note that the states shown in Figures 8(A-4), 8(A-5), 9(B-4), and 9(B-5) are states when removing a document jammed in the document transport path, and are not states when reading a document.Furthermore, the completely blocked states shown in Figures 8(A-3) and 9(B-3) are also not states when reading a document.

[0064] As shown in each state in FIG. 8, the center of gravity G0 of the device body 2 is located in front of the axis center C1 in the device depth direction, regardless of the state of the device body 2. As shown in each state in FIG. 9, the center of gravity G0 of the device body 2 is located rearward of the axis center C1 in the device depth direction, except for the state shown in (B-5). As shown in Figures 11(A-1) and 12(B-1), in a plan view, the center of gravity G0 of the device main body 2 is located near the intersection of a line Lx, which is the axial center line of the main body rotation axis 6c, and a line Ly, which is a line passing through the center position of the document in the width direction and is parallel to the Y-axis direction.

[0065] In Fig. 8(A-1), symbol P1 indicates the document to be supported, and as an example, the maximum number of sheets of plain paper is supported. In Fig. 8(A-1), symbol G0-1 ​​indicates the center of gravity of the device body 2 when there is no document P1, and symbol G0-2 indicates the center of gravity of the device body 2 when there is a document P1. In the normal reading position, both center of gravity positions G0-1 ​​and G0-2 are located forward of the axis center C1 in the device depth direction. 9(B-1), symbol P2 denotes a supported document, and an example of the state in which a booklet is supported is shown, where the booklet is, for example, a passport. Symbol G0-1 ​​denotes the center of gravity of the device body 2 when there is no document P2, and symbol G0-2 denotes the center of gravity of the device body 2 when there is document P2. In the booklet reading position, both center of gravity positions G0-1 ​​and G0-2 are located rearward of the axis center C1 in the device depth direction.

[0066] The center of gravity position G0 of the device main body 2 in each state when the device main body 2 is in the normal reading position and the center of gravity position G0 of the device main body 2 in each state when the device main body 2 is in the booklet reading position are all shown in Figure 10. In Figure 10, the vertical axis represents the position of the center of gravity position G0 in the vertical direction (Z-axis direction), and the horizontal axis represents the position of the center of gravity position G0 in the device depth direction (Y-axis direction). In Figure 10, the symbols (A-1) and so on correspond to the symbols shown in Figures 8 and 9.

[0067] As described above, the center of gravity G0 of the device main body 2 is located vertically above the axial center C1 of the main body rotation axis 6c, and in the device depth direction (Y axis direction), which is a direction intersecting the axial direction (X axis direction) and vertical direction (Z axis direction) of the main body rotation axis 6c, the center of gravity G0 of the device main body 2 is located in front of the axial center C1 when the device main body 2 is in the normal reading position, and is located behind the axial center C1 when the device main body 2 is in the booklet reading position.

[0068] As a result, when the device main body 2 is in the normal reading position, the weight of the device main body 2 acts due to the action of gravity in a direction to maintain the normal reading position. In other words, when the device main body 2 is in the normal reading position, the weight of the device main body 2 does not act in a direction to switch to the booklet reading position. The same is true when the device main body 2 is in the booklet reading position; when the device main body 2 is in the booklet reading position, the weight of the device main body 2 does not act in a direction to switch to the normal reading position. As a result, the position of the device main body 2 is stabilized, and it is possible to prevent the position maintaining means 42 that maintains the position of the device main body 2 from becoming larger and more costly. Hereinafter, this effect will be referred to as the first effect.

[0069] The upper opening / closing part 10 is a tray that can be stored in the device main body 2 (Figures 8(A-3), 9(B-3)) or deployed from the device main body 2 (Figures 8(A-1), 8(A-2), 9(B-1), 9(B-2)), and is an example of a feed tray that is located rearward of the axis center C1 in the device depth direction when deployed from the device main body 2. As shown in Figures 8 and 9, the center of gravity G0 of the device main body 2 in the device depth direction is located forward of the axis center C1 when the device main body 2 is in the normal reading position, regardless of the open / closed state of the upper opening / closing part 10, and is located rearward of the axis center C1 when the device main body 2 is in the booklet reading position. This makes it possible to obtain the first effect described above regardless of the open / closed state of the upper opening / closing part 10.

[0070] The upper opening / closing section 10 (document support section 11) and the document support 9 may be considered as a single unit and constitute a feed tray. In this embodiment, the document support 9 is lightweight and contributes little to the center of gravity G0 of the device main body 2. Therefore, regardless of whether the document support 9 is in a stored state or an unfolded state, it is located in front of the axis center C1 when the device main body 2 is in the normal reading position, and is located behind the axis center C1 when the device main body 2 is in the booklet reading position.

[0071] 8 and 9, the center of gravity G0 of the device body 2 in the device depth direction is located in front of the axis center C1 when the device body 2 is in the normal reading position, regardless of the open / closed state of the third unit 5, and is located behind the axis center C1 when the device body 2 is in the booklet reading position. This makes it possible to obtain the first effect described above regardless of the open / closed state of the third unit 5.

[0072] 9, in this embodiment, the center of gravity G0 of the device body 2 in the booklet reading posture is located behind the axial center C1 in the device depth direction, except for the state shown in (B-5). However, if the maximum opening angle between the second unit 4 and the third unit 5 is made smaller than in this embodiment, the center of gravity G0 can be located behind the axial center C1 even in the state shown in (B-5). In this way, the center of gravity G0 of the device main body 2 in the device depth direction is located in front of the axial center C1 when the device main body 2 is in the normal reading position, regardless of the open / closed state of the second unit 4, and is located behind the axial center C1 when the device main body 2 is in the booklet reading position. This configuration makes it possible to obtain the first effect described above regardless of the open / closed state of the second unit 4.

[0073] 5, in this embodiment, the center of gravity G3 of the first unit 3 is located behind the axial center C1 in the device depth direction, at least when the device body 2 is in the booklet reading position. This makes it possible to configure the center of gravity G0 of the device body 2 to be easily located behind the axial center C1 when the device body 2 is in the booklet reading position.

[0074] 4, in this embodiment, the center of gravity G4 of the second unit 4 is located further forward than the axial center C1 in the device depth direction, at least when the device body 2 is in the normal reading position. This makes it possible to configure the center of gravity G0 of the device body 2 to be more likely to be located further forward than the axial center C1 when the device body 2 is in the normal reading position.

[0075] Furthermore, in this embodiment, the operation unit 7 is located in a position that rotates the device body 2 toward the normal reading position when pressed by the user. In Figures 4 and 5, the symbol Ft denotes the pressing force applied to the device body 2 when the user presses the operation unit 7, and this pressing force Ft acts to rotate the device body 2 clockwise in Figures 4 and 5. In other words, the pressing force Ft acts in a direction that moves the device body 2 toward the normal reading position. Therefore, if the user operates the operation unit 7 while the device body 2 is in the booklet reading position, the pressing force Ft at that time acts in a direction that changes the posture of the device body 2, which is undesirable. Here, in the device depth direction, the distance Y2 (FIG. 5) between the center of gravity G0 of the device main body 2 and the axis center C1 when the device main body 2 is in the booklet reading position is longer than the distance Y1 (FIG. 4) between the center of gravity G0 of the device main body 2 and the axis center C1 when the device main body 2 is in the normal reading position. This makes it possible to configure the device main body 2 so that it is difficult for the device main body 2 to rotate from the booklet reading position to the normal reading position even if the user operates the operation unit 7 when the device main body 2 is in the booklet reading position.

[0076] It is also preferable to provide a weight that is located in front of the axis center C1 when the device body 2 is in the normal reading position, and that is located behind the axis center C1 when the device body 2 is in the booklet reading position. Figure 12 shows a device body 2A according to such another embodiment, in which the reference numeral 43 denotes a weight, and in this embodiment, the weight 43 is provided in the second unit 4.

[0077] In Fig. 12(A), line L1 is a line that passes through the center of gravity G4 and the axial center C1 of the second unit 4. In Fig. 12(B), line L2 is a line that passes through the center of gravity G3 and the axial center C1 of the first unit 3. It is preferable that weight 43 be in area α1 between vertical line Lv and line L1 when in the normal reading position, and in area α2 between vertical line Lv and line L1 when in the booklet reading position. With such a weight 43, when the device main body 2 is in the normal reading position, the center of gravity G0 of the device main body 2 is likely to be located in front of the axial center C1, and when the device main body 2 is in the booklet reading position, the center of gravity G0 of the device main body 2 is likely to be located behind the axial center C1.

[0078] The weight 43 may be provided independently, or an existing part, such as a frame, may have a portion for increasing weight, and this portion may be used as the weight. Also, a heavy object in the scanner 1, such as a motor, may be used as the weight.

[0079] Next, Figure 13 shows a device main body 2B according to another embodiment. The device main body 2B is configured so that the amount of protrusion from the main body support part 6 rearward in the device depth direction is greater in the booklet reading position than in the normal reading position. For this reason, the device main body 2B is prone to tipping rearward in the booklet reading position. However, in this embodiment, the main body support part 6 is equipped with an auxiliary member 45 that can be switched between a stored state and an expanded state in which it protrudes rearward in the device depth direction further than the stored state, and that comes into contact with the placement surface S in the expanded state. Figure 13(A) shows the auxiliary member 45 in the stored state, and Figure 13(B) shows the auxiliary member 45 in the expanded state. Such an auxiliary member 45 can prevent the device main body 2 from tipping over when it assumes the booklet reading position. The auxiliary member 45 switches between the stored state and the deployed state by sliding along the Y-axis direction, but it may also switch between the stored state and the deployed state by rotating around a rotation axis along the Z-axis direction. Furthermore, an interlocking mechanism may be provided that interlocks the auxiliary member 45 with the device main body 2B, so that when the device main body 2B switches from the normal reading position to the booklet reading position, the auxiliary member 45 switches from the stored state to the unfolded state. In this case, the auxiliary member 45 may be further configured to switch from the unfolded state to the stored state when the device main body 2B switches from the booklet reading position to the normal reading position. Such an interlocking mechanism may be, for example, a mechanical means such as a cam mechanism, or may be configured with an actuator such as a motor or solenoid.

[0080] Furthermore, when the device main body 2B is in the booklet reading position, the center of gravity G0 of the device main body 2B is located behind the main body support part 6 in the device depth direction and vertically above the auxiliary member 45 in the unfolded state. In FIG. 13(B), the straight line L3 is a vertical line passing through the center of gravity G0 of the device main body 2B, and the vertical line L3 crosses the auxiliary member 45 in the unfolded state. With this configuration, when the device main body 2B is in the booklet reading position, the device main body 2B is more likely to tip backward in the device depth direction, but because the center of gravity G0 of the device main body 2B is located vertically above the auxiliary member 45 in the unfolded state, tipping of the device main body 2 when it is in the booklet reading position can be effectively prevented.

[0081] Next, a scanner 1A and device main body 2C according to another embodiment will be described with reference to Figures 14 and 15. This embodiment differs from the above-described embodiment in that, as shown in Figure 15, an operation unit 7A provided in a third unit 5 includes a display unit 7d. In this embodiment, the third unit 5 is provided with the display unit 7d, so that the center of gravity G0 of the device body 2C is slightly closer to the front in the device depth direction than in the above-described embodiment. However, as shown in Figures 14(A) and 14(B), in this embodiment as well, the center of gravity G0 of the device body 2C is located in front of the axis center C1 when the device body 2C is in the normal reading position, and is located behind the axis center C1 when the device body 2C is in the booklet reading position.

[0082] 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. [Explanation of symbols]

[0083] DESCRIPTION OF SYMBOLS 1, 1A...scanner, 2, 2A, 2B, 2C...device main body, 3...first unit, 4...second unit, 4a...top surface, 5...third unit, 6...main body support section, 6a...standing wall section, 6b...elastic deformation section, 6c...main body rotation axis, 6e...first contact section, 6f...second contact section, 7, 7A...operation section, 7a, 7b, 7c...operation buttons, 7d...display section, 8a...unlock section, 9...document support, 10...upper opening / closing section, 11...document support section, 13...feed slot, 14...feed roller, 15...separation roller, 16...first pair of transport rollers, 17...first lower roller, 18... First upper roller, 20...second conveying roller pair, 21...second lower roller, 22...second upper roller, 24...third conveying roller pair, 25...third drive roller, 26...third driven roller, 28...fourth conveying roller pair, 29...fourth drive roller, 30...fourth driven roller, 32...first reading unit, 33...second reading unit, 35...flap, 40...conveying motor, 41...first frame, 41a...protrusion, 41b...unit rotation axis, 41c...boss, 42...position maintaining means, 43...weight, R0...reading conveying path, R1...U-turn discharge path, R2...straight discharge path

Claims

1. a main body support portion to be placed on a placement surface of the device; an apparatus main body supported by the main body support portion; a document transport path for transporting a document in the device body, the document transport path facing a reading unit for reading the document; the device body is rotatable about a rotation axis relative to the body support part, and is switchable between a first posture and a second posture in which an angle formed by the reading conveyance path and the placement surface is smaller than that of the first posture, the center of gravity of the device body is located vertically above the center of the rotation shaft, The center of gravity of the device body in the device depth direction, which is a direction intersecting the axial direction of the rotation shaft and the vertical direction, is When the device body is in the first position, the device body is located forward of the axis center, When the device body is in the second position, the device body is located rearward of the axis center. An image reading device characterized by:

2. 2. The image reading device according to claim 1, wherein the device body includes a tray that can be stored in the device body and deployed from the device body, and the tray is located rearward of the axis center in the device depth direction when deployed from the device body, The center of gravity of the device body in the device depth direction is the same regardless of the state of the feed tray. When the device body is in the first position, the device body is located forward of the axis center, When the device body is in the second position, the device body is located rearward of the axis center. An image reading device characterized by:

3. 3. The image reading apparatus according to claim 1, wherein the apparatus main body comprises: a first unit that forms a lower side of the reading conveyance path; a second unit that is a unit that forms an upper side of the reading conveyance path and is openable and closable relative to the first unit, The center of gravity of the device body in the device depth direction is, regardless of whether the second unit is open or closed, When the device body is in the first position, the device body is located forward of the axis center, When the device body is in the second position, the device body is located rearward of the axis center. An image reading device characterized by:

4. 3. The image reading apparatus according to claim 1, wherein the apparatus main body comprises: a first unit that forms a lower side of the reading conveyance path; a second unit that is a unit that forms an upper side of the reading conveyance path and that is openable and closable relative to the first unit; a third unit that forms a document transport path downstream of the reading transport path and is rotatable relative to both the first unit and the second unit; The center of gravity of the device body in the device depth direction is, regardless of whether the third unit is open or closed, When the device body is in the first position, the device body is located forward of the axis center, When the device body is in the second position, the device body is located rearward of the axis center. An image reading device characterized by:

5. 5. The image reading device according to claim 3, wherein the center of gravity of the first unit is located rearward of the axis center in the device depth direction at least when the device body is in the second posture. An image reading device characterized by:

6. 6. The image reading device according to claim 3, wherein a center of gravity of the second unit is located forward of the axis center in the device depth direction at least when the device body is in the first posture. An image reading device characterized by:

7. 7. The image reading device according to claim 1, wherein the device body includes a weight that is located forward of the axis center in the device depth direction when the device body is in the first posture, and that is located rearward of the axis center in the device depth direction when the device body is in the second posture. An image reading device characterized by:

8. 8. The image reading device according to claim 1, further comprising: an operation unit that is provided on a front surface of the device body in the device depth direction and that receives operations from a user; the operation unit is disposed at a position that rotates the device body toward the first position when pressed by a user, a distance between the center of gravity of the device body and the axis center in the device depth direction when the device body is in the second posture is longer than a distance between the center of gravity of the device body and the axis center when the device body is in the first posture; An image reading device characterized by:

9. 9. The image reading device according to claim 1, further comprising: a position holding unit that holds the device body in the first position when the device body is in the first position, and that holds the device body in the second position when the device body is in the second position. An image reading device characterized by:

10. 10. The image reading device according to claim 1, wherein a protrusion amount of the device body from the body support part rearward in the device depth direction is greater when the device is in the second position than when the device is in the first position; the main body support portion is a member switchable between a stored state and an expanded state in which it protrudes rearward in the depth direction of the device from the stored state, and includes an auxiliary member that contacts the placement surface in the expanded state. An image reading device characterized by:

11. 11. The image reading device according to claim 10, wherein a center of gravity of the device body is located rearward of the body support part in the device depth direction and vertically above the auxiliary member in the unfolded state when the device body is in the second posture. An image reading device characterized by:

Citation Information

Patent Citations

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