This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2019-167686 filed on Sep. 13, 2019.
The present invention relates to a transport device and an image forming apparatus.
JP-A-2015-171938 discloses a sheet feeding apparatus including a feeding member that comes into contact with an upper surface of a sheet material and feeds the sheet material to the downstream along a predetermined transport path, a friction separation member disposed at a position facing the feeding member and nipping the transport path to come into contact with a lower surface of the sheet material, and a guide plate having a guide surface that guides a front end portion of the sheet material toward a separation nip portion formed between the feeding member and the friction separation member, upstream of the separation nip portion. A notch portion located upstream of the separation nip portion and opened to the transport path side is formed on a central portion of the guide plate in a width direction perpendicular to the transport direction of the transport path.
JP-A-2008-94523 discloses a separation sheet feeding apparatus including a sheet feeding tray, a sheet feeding roller provided on the sheet feeding direction side of the sheet feeding tray, and a separation pad that elastically contacts the sheet feeding roller. A film having a small slip resistance of a sheet is adhered on a surface of a portion upstream in the sheet feeding direction of a nip portion of the separation pad with the sheet feeding roller. A portion downstream of the nip portion of the separation pad is curved with a radius of curvature smaller than a radius of curvature of the sheet feeding roller, and elastically contacts the sheet feeding roller in a compressive deformed state.
However, as a transport device, a transport device is considered including a transport roller (for example, feed roller) that transports a transport target material sent from an accommodating unit and a nip section (for example, retard roller) that sandwiches the transport target material with the transport roller and prevents multi-feed of the transport target material. In the transport device, when an entire first transport path surface that is disposed upstream of the nip section in a transport direction, and faces the transport roller side of the nip section, and an entire second transport path surface that is disposed downstream of the nip section in the transport direction, and faces the transport roller side of the nip section are disposed on a nip section side of a nip line between the transport roller and the nip section, the transport target material may not be pressed against the transport roller, and the transport capability of the transport roller may be insufficient.
The term “nip line” refers to a perpendicular line to a line that connects a contact point between the transport roller and the nip section and the center of the transport roller, the perpendicular line that passes through the contact point. When the transport roller and the nip section contact with each other with a width in the transport direction, the center point in the transport direction in the contact area is the contact point.
Aspects of non-limiting embodiments of the present disclosure relate to improving the transport capability of the transport roller compared with the configuration in which the entire first transport path surface and the entire second transport path surface are disposed on the nip section side of the nip line.
Aspects of certain non-limiting embodiments of the present disclosure address the above advantages and/or other advantages not described above. However, aspects of the non-limiting embodiments are not required to address the advantages described above, and aspects of the non-limiting embodiments of the present disclosure may not address advantages described above.
According to an aspect of the present disclosure, there is provided a transport device includes a transport roller, a nip section, a first transport path surface, and a second transport path surface. The transport roller is configured to transport a transport target material sent from an accommodating unit. The nip section is configured to nip the transport target material with the transport roller, and prevent multi-feed of the transport target material. The first transport path surface is disposed upstream of the nip section in a transport direction to face a transport roller side of the nip section. The first transport path surface includes a top portion protruding toward the transport roller side beyond a nip line between the transport roller and the nip section. The second transport path surface is disposed downstream of the nip section in the transport direction to face the transport roller side of the nip section. The second transport path surface includes a top portion protruding toward the transport roller side beyond the nip line.
Exemplary embodiment(s) of the present disclosure will be described in detail based on the following figures, wherein:
Hereinafter, an exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
A configuration of an image forming apparatus 10 according to an exemplary embodiment will be described.
The image forming apparatus 10 illustrated in
The first accommodating unit 12 and the second accommodating unit 19 have a function of accommodating the recording media P such as paper. The first accommodating unit 12 is formed in a box shape. The first accommodating unit 12 accommodates the recording media P in a stacked state.
The second accommodating unit 19 is a so-called manual feed tray. The second accommodating unit 19 is supported by an apparatus body 11 to be movable between a position (position illustrated by a two-dot chain line in
The discharge unit 13 is a portion to which the recording medium P is discharged. The transport device 15 has a function of transporting the recording medium P. Specifically, the transport device 15 has a function of selectively transporting the recording medium P from the first accommodating unit 12 and the second accommodating unit 19 to the image forming unit 14 (specifically, a secondary transfer position T2 to be described later), the fixing device 16, and the discharge unit 13. A direction in which the transport device 15 transports the recording medium P is hereinafter referred to as a “transport direction”. Further, a specific configuration of the transport device 15 will be described later.
The image forming unit 14 has a function of forming a toner image (an example of an image) on the recording medium P. The image forming unit 14 is disposed downstream of a second transport path surface 222 (to be described later) of the transport device 15 in the transport direction. Specifically, the image forming unit 14 includes a toner image forming unit 22 and a transfer device 17.
As illustrated in
Since the toner image forming units 22 for respective colors are configured in the same manner except for the toner to be used, reference numerals are assigned only to the respective parts of the toner image forming unit 22(Y) in
Each of the toner image forming unit 22 for respective colors includes, specifically, a photoconductor drum 32 (photoconductor) that rotates in one direction (for example, counterclockwise rotation direction in
The charger 23 charges the photoconductor drum 32 in the toner image forming unit 22 for each color. Further, the exposure device 36 exposes the photoconductor drum 32 charged by the charger 23 to form an electrostatic latent image on the photoconductor drum 32. Further, the developing device 38 develops the electrostatic latent image formed on the photoconductor drum 32 by the exposure device 36 to form a toner image.
The transfer device 17 illustrated in
The transfer belt 24 includes an annular belt wound around plural rollers 42. The transfer belt 24 circulates in one direction (for example, clockwise rotation direction in
In the transfer device 17, the primary transfer roller 26 primarily transfers the toner image of the photoconductor drum 32 for each color to be superimposed on the transfer belt 24 at a primary transfer position T1 between the photoconductor drum 32 and the primary transfer roller 26.
The toner image primarily transferred on the transfer belt 24 is transported to a secondary transfer position T2 between the secondary transfer roller 28 and the transfer belt 24 by circulating the transfer belt 24. Then, the secondary transfer roller 28 secondarily transfers the toner image transported to the secondary transfer position T2 to the recording medium P.
The configuration of the image forming unit 14 is not limited to the above configuration. For example, as a configuration of the image forming unit 14, a configuration may be used which transfers directly from the photoconductor drum 32 to the recording medium P without using the transfer belt 24. In this case, for example, a monochrome toner image is transferred to the recording medium P.
The fixing device 16 illustrated in
Specifically, as illustrated in
The sending roller 71 is a roller that sends the recording medium P accommodated in the first accommodating unit 12. The transport rollers 72, 73, and 74 are rollers that transport the recording medium P sent from the first accommodating unit 12 toward the pair of registration rollers 75. The transport rollers 72, 73, and 74 are disposed in this order toward the downstream in the transport direction. A specific configuration of the transport rollers 74 will be described later.
The registration rollers 75 are rollers that transport the recording medium P to the secondary transfer position T2. Specifically, the registration rollers 75 transport the recording medium P to the secondary transfer position T2 in accordance with the transport timing of the toner image transported by the transfer belt 24 to the secondary transfer position T2.
The transport rollers 76 illustrated in
In the transport device 15, the recording medium P accommodated in the first accommodating unit 12 is transported to the discharge unit 13 passing through the image forming unit 14 (specifically, the secondary transfer position T2) and the fixing device 16, by the sending roller 71, the pairs of transport rollers 72, 73, and 74, the pair of registration rollers 75, the pair of transport rollers 76, and the pair of discharge rollers 77.
In the exemplary embodiment, the transport device 15 includes guides (not illustrated) such as transport guides disposed between each of the pairs of transport rollers 72, 73, and 74, the pair of registration rollers 75, the pair of transport rollers 76, and the pair of discharge rollers 77. Therefore, the recording medium P is transported in a predetermined transport path. Further, each of the pairs of transport rollers 72, 73, and 74, the pair of registration rollers 75, the pair of transport rollers 76, and the pair of discharge rollers 77 includes a pair of rollers and is configured such that one of the rollers of each pair is driven.
Further, as illustrated in
The sending roller 121 is a roller that sends the recording medium P accommodated in the second accommodating unit 19. As illustrated in
Then, the support 122 is driven by a drive unit (not illustrated), so that the other end portion 122B swings around the axis of the drive roller 125 with the one end portion 122A as a swing center. Therefore, the sending roller 121 moves between a contact position (position illustrated by a two-dot chain line in
As illustrated in
The drive roller 125 is an example of a transport roller. The drive roller 125 is a transport roller that transports the recording medium P sent from the second accommodating unit 19. Specifically, the drive roller 125 is a drive roller that has a direction intersecting (specifically, a perpendicular direction, and a depth direction of the paper in
The separation roller 126 is an example of a nip section. The separation roller 126 has a function of nipping the recording medium P with the drive roller 125, and preventing multi-feed of the recording medium P as follows. Specifically, the separation roller 126 is a driven roller that has a direction intersecting (specifically, a perpendicular direction, and a depth direction of the paper in
More specifically, the separation roller 126 faces the lower side of the drive roller 125. Therefore, a nip area (hereinafter, referred to as a “nip area N1”) to which the recording medium P sent from the second accommodating unit 19 is sandwiched is formed between the drive roller 125 and the separation roller 126. Further, a torque limiter (not illustrated) is attached to a shaft portion of the separation roller 126.
In the transport device 15, when the recording medium P is sent to the nip area N1, the drive roller 125 comes into contact with the upper surface (surface) on the front end side (that is, downstream in the transport direction) of the recording medium P and is rotationally driven, so that the recording medium P is transported to the downstream in the transport direction. Meanwhile, when the recording medium P comes into contact with the outer peripheral surface of the separation roller 126, and a predetermined rotational force is applied to the separation roller 126 due to friction with the recording medium P, the separation roller 126 starts to be driven. Until a predetermined rotational force is applied to the separation roller 126, the separation roller 126 functions as a brake that generates a rotational load.
Then, the separation roller 126 functions as a brake, so that when plural recording media P are overlapped and introduced into the nip area N1, transport resistance is applied to the recording media P from the lower surface side (back surface side) to prevent the multi-feed of the recording medium P transported by the drive roller 125.
As described above, when the plural recording media P are overlapped and sent to the nip area N1 from the second accommodating unit 19, the drive roller 125 applies transport force to the upper recording medium P (first recording medium P), meanwhile, the separation roller 126 applies transport resistance to the lower recording medium P (the second and subsequent recording media P). That is, the overlapped recording media P are separated (spread) by the drive roller 125 and the separation roller 126, and the recording medium P is transported one by one.
The pair of transport rollers 74 illustrated in
The transport rollers 74 are disposed downstream of the second guide 220 in the transport direction and on the drive roller 125 side (specifically, the upper side) of the separation roller 126. Specifically, the nip area N2 of the transport rollers 74 is disposed on the drive roller 125 side of the separation roller 126. More specifically, the nip area N2 of the transport rollers 74 is disposed above the nip line LA.
In other words, the nip area N2 of the transport rollers 74 is disposed on the drive roller 125 side (specifically, upper side) more than the nip area N1 between the drive roller 125 and the separation roller 126. Therefore, the recording medium P is transported obliquely upward from the nip area N1 toward the nip area N2. A portion of the lower roller of the transport rollers 74 is located below the nip line LA.
Then, in the transport device 15, the recording medium P accommodated in the second accommodating unit 19 is transported to the discharge unit 13 passing through the image forming unit 14 (specifically, the secondary transfer position T2) and the fixing device 16, by the sending roller 121, the drive roller 125, the separation roller 126, the pair of transport rollers 74, the pair of registration rollers 75, the pair of transport rollers 76, and the pair discharge rollers 77.
As illustrated in
The first guide 210 includes a first transport path surface 211 facing the drive roller 125 side (specifically, the upper side) of the separation roller 126. In the first guide 210, the recording medium P sent from the second accommodating unit 19 (see
Further, the first transport path surface 211 includes a top portion 213 that protrudes toward the drive roller 125 side (specifically, upper side) beyond the nip line LA between the drive roller 125 and the separation roller 126. The first transport path surface 211 is an example of a transport path surface.
Here, the nip line LA is a perpendicular line to a line LS that connects a contact point S1 between the drive roller 125 and the separation roller 126 and the center 125A of the drive roller 125, that is, a perpendicular line that passes through the contact point S1. When the drive roller 125 and the separation roller 126 come into contact with each other with a width in the transport direction, the center point in the transport direction in the contact area is the contact point S1. The line LS may be a line that connects the center 125A of the drive roller 125 and the center 126A of the separation roller 126. In each drawing, in order to make it easy to understand the positional relationship with the nip line LA, there are portions where the unevenness of the first guide 210 and the second guide 220 is exaggerated.
The first transport path surface 211 has a downward inclination that is lowered toward the separation roller 126 side (specifically, the lower side) of the drive roller 125, as it goes from the top portion 213 toward the downstream in the transport direction. The downward inclination is gradually lowered, and reaches the lower side of the nip line LA.
Further, the first transport path surface 211 has a bottom portion 215 that is recessed toward the separation roller 126 (specifically, the lower side) of the drive roller 125. The bottom portion 215 is located upstream in the transport direction of the top portion 213. The bottom portion 215 is disposed on the separation roller 126 side (specifically, the lower side) of the nip line LA.
In other words, the first transport path surface 211 has a downward inclination that is lowered toward the lower side of the nip line LA as it goes from the top portion 213 toward the bottom portion 215. In other words again, the first transport path surface 211 has an upward inclination that is risen toward the upper side of the nip line LA as it goes from the bottom portion 215 toward the top portion 213. The upward inclination gradually rises.
The second guide 220 is disposed downstream of the separation roller 126 in the transport direction, and has a function of guiding the transported recording medium P to the transport rollers 74 (specifically, nip area N2). Specifically, the second guide 220 is disposed upstream of the transport rollers 74 in the transport direction and downstream of the separation roller 126 in the transport direction.
The second guide 220 includes a second transport path surface 222 facing the drive roller 125 side (specifically, the upper side) of the separation roller 126. In the second guide 220, the recording medium P transported by the drive roller 125 is guided to the transport rollers 74 (specifically, nip area N2) by the second transport path surface 222.
Further, the second transport path surface 222 includes a top portion 223 that protrudes toward the drive roller 125 side (specifically, upper side) beyond the nip line LA between the drive roller 125 and the separation roller 126. The second transport path surface 222 is an example of a transport path surface.
The second transport path surface 222 has a downward inclination that is lowered toward the separation roller 126 side (specifically, the lower side) of the drive roller 125, as it goes from the top portion 223 toward the upstream in the transport direction. The downward inclination is gradually lowered, and reaches the lower side of the nip line LA.
Further, the second transport path surface 222 has a bottom portion 225 that is disposed downstream of the top portion 223 in the transport direction and that is recessed toward the separation roller 126 side (specifically, the lower side) of the drive roller 125. The bottom portion 225 is disposed on the separation roller 126 side (specifically, the lower side) of the nip line LA.
In other words, the second transport path surface 222 has a downward inclination that is lowered toward the lower side of the nip line LA as it goes from the top portion 223 toward the bottom portion 225. In other words again, the second transport path surface 222 has an upward inclination that is risen toward the upper side of the nip line LA as it goes from the bottom portion 225 toward the upstream in the transport direction. The upward inclination gradually rises.
Further, the second transport path surface 222 has an overhanging portion 227 that is disposed downstream of the bottom portion 225 in the transport direction and that protrudes toward the drive roller 125 side (specifically, the upper side) of the separation roller 126. The overhanging portion 227 is disposed on the drive roller 125 side (specifically, the upper side) of the nip line LA.
In other words, the second transport path surface 222 has an upward inclination that is risen toward the upper side of the nip line LA as it goes from the bottom portion 225 toward the overhanging portion 227. The upward inclination gradually rises.
Further, the top portion 223 of the second transport path surface 222 is disposed on the drive roller 125 side (specifically, upper side) more than the top portion 213 of the first transport path surface 211. Therefore, the recording medium P is approximately transported obliquely upward from the top portion 213 toward the top portion 223.
The third guide 230 faces the second guide 220. That is, the third guide 230 is disposed upstream of the transport rollers 74 in the transport direction and downstream of the drive roller 125 in the transport direction.
The third guide 230 includes a third transport path surface 233 facing the second transport path surface 222. That is, the third transport path surface 233 faces the separation roller 126 side (specifically, the lower side) of the drive roller 125.
A distance between the third transport path surface 233 and the second transport path surface 222 increases from the top portion 223 to the bottom portion 225 of the second transport path surface 222. That is, the shortest distance L2 between the third transport path surface 233 and the bottom portion 225 of the second transport path surface 222 is larger than the shortest distance L1 between the third transport path surface 233 and the top portion 223 of the second transport path surface 222.
Specifically, the second transport path surface 222 has the downward inclination that is lowered toward the lower side of the nip line LA as it goes from the top portion 223 toward the bottom portion 225, whereas the third transport path surface 233 has an inclination in a direction away from the second transport path surface 222 in an opposing portion facing each other in the range from the top portion 223 to the bottom portion 225. More specifically, the third transport path surface 233 has an upward inclination that is risen toward the upper side of the nip line LA in the opposing portion.
More specifically, the third transport path surface 233 has a height difference (that is, difference between the highest value and the lowest value) in the direction along the line LS smaller than that of the second transport path surface 222. That is, the third transport path surface 233 includes a path surface similar to a plane surface along the nip line LA.
In the image forming apparatus 10 illustrated in
In the present exemplary embodiment, the separation roller 126 functions as a brake, so that when plural recording media P are overlapped and introduced into the nip area N1, transport resistance is applied to the recording media P from the lower surface side (back surface side) to prevent the multi-feed of the recording medium P transported by the drive roller 125.
As described above, when the plural recording media P are overlapped and sent to the nip area N1 from the second accommodating unit 19, the drive roller 125 applies transport force to the upper recording medium P (first recording medium P), meanwhile, the separation roller 126 applies transport resistance to the lower recording medium P (the second and subsequent recording media P). That is, the overlapped recording media P are separated (spread) by the drive roller 125 and the separation roller 126, and the recording medium P is transported one by one.
Then, in the present exemplary embodiment, the first transport path surface 211 of the first guide 210 guides the recording medium P sent from the second accommodating unit 19 by the sending roller 121 and transported to the nip area N1. Further, the recording medium P transported by the drive roller 125 is guided to the transport rollers 74 (specifically, nip area N2) by the second transport path surface 222 of the second guide 220.
Here, in the present exemplary embodiment, the first transport path surface 211 includes the top portion 213 that protrudes toward the drive roller 125 side beyond the nip line LA between the drive roller 125 and the separation roller 126. Further, the second transport path surface 222 includes the top portion 223 that protrudes toward the drive roller 125 side beyond the nip line LA between the drive roller 125 and the separation roller 126.
Therefore, as illustrated in
In other words, in the present exemplary embodiment, it may be said that the first transport path surface 211 and the second transport path surface 222 cause the posture of the recording medium P to be a posture such that the contact area between the recording medium P and the drive roller 125 is larger than the contact area between the recording medium P and the separation roller 126. Each drawing in
Here, as illustrated in
In this regard, in the present exemplary embodiment, the recording medium P has a larger contact area with the drive roller 125 than a contact area with the separation roller 126, as compared with the first configuration. Therefore, the transport force of the drive roller 125 is transmitted to the recording medium P and the transport capability of the drive roller 125 is improved. That is, according to the present exemplary embodiment, as compared with the first configuration, it is easy to secure the transport force necessary for the drive roller 125 to transport the recording medium P.
Further, in the present exemplary embodiment, the first transport path surface 211 has the bottom portion 215 that is recessed toward the separation roller 126 side of the drive roller 125 and that is positioned upstream of the top portion 213 in the transport direction. Therefore, as illustrated in
Here, as illustrated in
In this regard, in the present exemplary embodiment, since the recording medium P transported to the top portion 213 becomes the posture facing obliquely upward, as compared with the second configuration, it is each for the recording medium P to be introduced to the nip area N1 in the posture facing obliquely upward. Therefore, the recording medium P is likely to come into contact with the drive roller 125, and to receive the drive force of the drive roller 125. As a result, according to the present exemplary embodiment, as compared with the second configuration, the transport force of the drive roller 125 is transmitted to the recording medium P, and the transport capability of the drive roller 125 is improved.
Further, in the present exemplary embodiment, the bottom portion 215 of the first transport path surface 211 is disposed on the separation roller 126 side of the nip line LA.
As a result, compared to a configuration (hereinafter, referred to as a “third configuration”) in which the bottom portion 215 of the first transport path surface 211 is disposed on the drive roller 125 side of the nip line LA, the range of the upward inclination from the bottom portion 215 to the top portion 213 becomes longer, or the upward inclination becomes steep, and it is easy for the recording medium P to be introduced to the nip area N1 with the posture facing obliquely upward. Therefore, according to the present exemplary embodiment, as compared with the third configuration, the recording medium P is likely to come into contact with the drive roller 125, and to receive the drive force of the drive roller 125. As a result, according to the present exemplary embodiment, as compared with the third configuration, the transport force of the drive roller 125 is transmitted to the recording medium P, and the transport capability of the drive roller 125 is improved.
Further, in the present exemplary embodiment, the second transport path surface 222 has a bottom portion 225 that is recessed toward the separation roller 126 side (specifically, the lower side) of the drive roller 125, downstream of the top portion 223 in the transport direction. Therefore, as illustrated in
Here, as illustrated in
In this regard, in the present exemplary embodiment, since the recording medium P transported from the top portion 223 to the bottom portion 225 becomes the posture facing obliquely downward, as compared with the fourth configuration, the portion of the recording medium P on the rear end side (upstream in the transport direction) with respect to the top portion 223 is easily lifted with the top portion 223 as a fulcrum. Therefore, as compared with the fourth configuration, it is easy for the recording medium P to be pressed against the drive roller 125, and to have a larger contact area with the drive roller 125 than a contact area with the separation roller 126. As a result, according to the present exemplary embodiment, as compared with the fourth configuration, the transport force of the drive roller 125 is transmitted to the recording medium P, and the transport capability of the drive roller 125 is improved.
Further, in the present exemplary embodiment, the bottom portion 225 of the second transport path surface 222 is disposed on the separation roller 126 side of the nip line LA.
Therefore, as compared with a configuration (hereinafter, referred to as a “fifth configuration”) in which the bottom portion 225 of the second transport path surface 222 is disposed on the drive roller 125 side of the nip line LA, the recording medium P transported from the top portion 223 to the bottom portion 225 is likely to be in a posture facing the separation roller 126 side (specifically, obliquely downward) of the drive roller 125. Therefore, according to the present exemplary embodiment, as compared with the fifth configuration, the portion of the recording medium P on the rear end side (upstream in the transport direction) with respect to the top portion 223 is easily lifted with the top portion 223 as a fulcrum. Therefore, as compared with the fifth configuration, it is easy for the recording medium P to be pressed against the drive roller 125, and to have a larger contact area with the drive roller 125 than a contact area with the separation roller 126. As a result, according to the present exemplary embodiment, as compared with the fifth configuration, the transport force of the drive roller 125 is transmitted to the recording medium P, and the transport capability of the drive roller 125 is improved.
Further, in the present exemplary embodiment, the second transport path surface 222 has the overhanging portion 227 that protrudes toward the drive roller 125 side (specifically, the upper side) of the separation roller 126, downstream of the bottom portion 225 in the transport direction. Therefore, as illustrated in
Here, as illustrated in
In this regard, in the present exemplary embodiment, since the recording medium P is deformed into the convex shape at the bottom portion 225 toward the lower side after being deformed into the convex shape at the top portion 223 toward the upper side, as compared with the sixth configuration, the recording medium P is prevented from being deformed into the convex shape biasing toward one side (specifically, upper side) in the vertical direction. Further, according to the present exemplary embodiment, the overhanging portion 227 causes the recording medium P to have the posture such that the recording medium P faces upward. Therefore, as compared with the sixth configuration, it is easy to form a transport path toward the transport rollers 74 disposed on the upper side of the separation roller 126.
Further, in the present exemplary embodiment, the overhanging portion 227 of the second transport path surface 222 is disposed on the drive roller 125 side of the nip line LA. Therefore, as compared with a configuration (hereinafter, referred to as a “seventh configuration”) in which the overhanging portion 227 of the second transport path surface 222 is disposed on the separation roller 126 side of the nip line LA, the recording medium P transported from the bottom portion 225 to the overhanging portion 227 is likely to be in a posture facing the drive roller 125 side (specifically, obliquely upward) of the separation roller 126. Therefore, according to the present exemplary embodiment, as compared with the seventh configuration, the recording medium P is prevented from being deformed into the convex shape upward. Further, according to the present exemplary embodiment, the recording medium P easily becomes the posture such that the recording medium P faces upward. Therefore, as compared with the seventh configuration, it is easy to form the transport path toward the transport rollers 74 disposed on the upper side of the separation roller 126.
Further, in the present exemplary embodiment, as illustrated in
Here, as illustrated in
In this regard, according to the present exemplary embodiment, since the distance between the third transport path surface 233 and the second transport path surface 222 increases from the top portion 223 to the bottom portion 225 of the second transport path surface 222, the facing surface 239 of the third transport path surface 233 does not have a downward inclination to the downstream in the transport direction, or even if the facing surface 239 has a downward inclination, the inclination is smaller than the inclination of the second transport path surface 222.
As a result, as compared with the eighth configuration, the transported recording medium P is hardly caught on the facing surface 239, and the transport failure of the recording medium P is prevented.
Further, in the present exemplary embodiment, the top portion 223 of the second transport path surface 222 is disposed on the drive roller 125 side (that is, upper side) more than the top portion 213 of the first transport path surface 211.
As a result, as compared with a configuration (hereinafter, referred to as a “ninth configuration”) in which the top portion 223 of the second transport path surface 222 has the same height as the top portion 213 of the first transport path surface 211, it is easy to become the posture facing the upper side (see
As described above, according to the present exemplary embodiment, since the transport capability of the drive roller 125 is improved, the transport failure in the transport device 15 is prevented. As a result, the image failure due to the transport failure in the transport device 15 is prevented.
In the present exemplary embodiment, as an example of a nip section, the separation roller 126 is used. However, the present disclosure is not limited thereto. For example, examples of a nip section may include, for example, a non-rotatable member (for example, a pad) that comes into contact with the recording medium P.
Further, in the present exemplary embodiment, the drive roller 125 is used as an example of a transport roller, and the separation roller 126 is used as an example of a nip section. However, the present disclosure is not limited thereto. For example, the upper roller of the transport rollers 72 may be configured the same as the drive roller 125 to use an example of a transport roller, and the lower roller of the transport rollers 72 may be configured the same as the separation roller 126 to use an example of a nip section. In this case, the first accommodating unit 12 is an example of an accommodating unit.
Further, in the present exemplary embodiment, the first transport path surface 211 has the bottom portion 215 that is recessed toward the separation roller 126 side of the drive roller 125. The bottom portion 215 is located upstream of the top portion 213 in the transport direction. However, the present disclosure is not limited thereto. For example, as illustrated in
Further, in the present exemplary embodiment, the bottom portion 215 of the first transport path surface 211 is disposed on the separation roller 126 side of the nip line LA. However, the present disclosure is not limited thereto. For example, the bottom portion 215 of the first transport path surface 211 may be disposed on the drive roller 125 side of the nip line LA, or may be disposed on the nip line LA.
Further, in the present exemplary embodiment, the second transport path surface 222 has a bottom portion 225 that is disposed downstream of the top portion 223 in the transport direction and that is recessed toward the separation roller 126 side (specifically, the lower side) of the drive roller 125. However, the present disclosure is not limited thereto. For example, as illustrated in
Further, in the present exemplary embodiment, the bottom portion 225 of the second transport path surface 222 is disposed on the separation roller 126 side of the nip line LA. However, the present disclosure is not limited thereto. For example, the bottom portion 225 of the second transport path surface 222 may be disposed on the drive roller 125 side of the nip line LA, or may be disposed on the nip line LA.
Further, in the present exemplary embodiment, the second transport path surface 222 has the overhanging portion 227 that is disposed downstream of the bottom portion 225 in the transport direction and that protrudes toward the drive roller 125 side (specifically, the upper side) of the separation roller 126. However, the present disclosure is not limited thereto. For example, as illustrated in
Further, in the present exemplary embodiment, the overhanging portion 227 of the second transport path surface 222 is disposed on the drive roller 125 side of the nip line LA. However, the present disclosure is not limited thereto. For example, the overhanging portion 227 of the second transport path surface 222 may be disposed on the separation roller 126 side of the nip line LA.
In the exemplary embodiment, as illustrated in
Further, in the exemplary embodiment, the top portion 223 of the second transport path surface 222 is disposed on the drive roller 125 side (specifically, upper side) more than the top portion 213 of the first transport path surface 211. However, the present disclosure is not limited thereto. For example, the top portion 223 of the second transport path surface 222 may have the same height as the top portion 213 of the first transport path surface 211, and may be disposed below the top portion 213.
The present disclosure is not limited to the above exemplary embodiments, and various modifications, changes, and improvements may be made without departing from the spirit of the present disclosure. For example, the modifications described above may be appropriately combined with each other.
The foregoing description of the exemplary embodiments of the present disclosure has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The exemplary embodiments were chosen and described in order to best explain the principles of the invention and its practical applications, thereby enabling others skilled in the art to understand the invention for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the following claims and their equivalents.
Number | Date | Country | Kind |
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2019-167686 | Sep 2019 | JP | national |