The present invention relates to an image forming apparatus, and more specifically relates to an image forming apparatus such as a printer that can determine various sizes of a recording medium such as paper.
Conventionally, image forming apparatuses such as those in patent documents 1 and 2, for example, are known as an image forming apparatus equipped with a size determining mechanism that can determine various sizes of a recording medium mounted on a mounting portion.
In patent document 1, an automatic document feeding device for an image forming apparatus equipped with a document detection sensor is disclosed. The document detection sensor is a reflective type optical sensor having a light emitter and a light receiving part, and the document detection sensor is configured so as to detect the document via a detection hole from below or inside a document feeding table.
Furthermore, in patent document 2, an image forming apparatus having a paper size detection device is disclosed. The paper size detection device is equipped with a guide member that can freely move for regulating an end portion of the paper contained in the paper cassette; a reflective member provided in the guide member, having a plurality of reflective surfaces in which the reflectance differs along the moving direction of the guide member; and a light receiving and emitting element for emitting light to the reflective surfaces of the reflective member, receiving the reflected light from the reflective surfaces, and outputting a detection signal corresponding to the amount of light received from the reflective surfaces. Furthermore, in patent document 2, a form of a transmitting member having a plurality of transmitting surfaces with different transmittances is also disclosed instead of a form of a reflective member having a plurality of reflective surfaces.
[Patent Document 1] Japanese Unexamined Application Publication No. 2011-254216
[Patent Document 2] Japanese Unexamined Application Publication No. 2001-322723
In the document detection sensor of patent document 1, the sensor light emitted from the light emitter is reflected on the lower surface of the paper placed on the document feeding table via the detection holes, reaches the light receiving part, and is received by the light receiving part. However, for example, when the number of papers placed on the document feeding table is small, the sensor light emitted from the light emitter is transmitted through the paper, and the light receiving part may not be able to properly receive the sensor light. Alternatively, external light such as indoor illumination and the like may be transmitted through the paper, and the light receiving part may receive external light other than the sensor light. That is, in the document detection sensor of patent document 1, erroneous detection occurs easily, and in some cases, detection of paper size may not be reliably and appropriately carried out.
Furthermore, in the paper size detection device of patent document 2, a plurality of reflective surfaces having differing reflectance or a plurality of transmitting surfaces having differing transmittances corresponding to various types of paper sizes contained in the paper cassette are required. Thus, the detection device and the control mechanism thereof may become complicated, which increases the manufacture cost.
With the foregoing in mind, one or more embodiments of the invention may reliably and appropriately determine various sizes of a recording medium using a simple configuration.
The image forming apparatus according to one embodiment of the present invention is equipped with a housing; a mounting portion for mounting a recording medium, provided in the housing; at least one light receiving part provided in the housing; a change portion for changing the amount of light incident on the light receiving part based on the recording medium on the mounting portion, provided between the light receiving part and a light source for outputting light incident on the light receiving part; and a size determining part for determining size of the recording medium mounted in the housing, based on the amount of light received by the light receiving part that is changed by the change portion.
According to one or more embodiments of the present invention, because it is possible to change the amount of light incident on the light receiving part based on the recording medium on the mounting portion using the changing portion, it is possible to reliably and appropriately determine various sizes of a recording medium using a simple configuration.
Embodiments of the present invention will be described in detail below based on drawings. The following description of each embodiment is only an example, and is not intended to limit the present invention, its application, or its use. In embodiments of the invention, numerous specific details are set forth in order to provide a more thorough understanding of the invention. However, it will be apparent to one of ordinary skill in the art that the invention may be practiced without these specific details. In other instances, well-known features have not been described in detail to avoid obscuring the invention.
The printer 1 is equipped with a device body 2. The device body 2 has a resin housing 3, and a mounting portion 4 for mounting a paper as the recording medium is provided on the rear side of the housing 3 corresponding to various sizes. For example, the mounting portion 4 has a mounting surface 4a for mounting the paper of various sizes diagonally above. As illustrated in
The ejection portion 5 is provided on the front side in the housing 3 to eject the paper fed from the mounting portion 4 into the housing 3. The paper mounted on the mounting surface 4a of the mounting portion 4 is sent to the ejection portion 5 along a transporting direction orthogonal to the width direction of the housing 3 using a feeding mechanism (not illustrated) provided in the housing 3.
Furthermore, the device body 2 is equipped with a cartridge 6 having a nozzle (not illustrated) for discharging ink, and a carriage 7 on which the cartridge 6 is mounted. The carriage 7 is configured to be able to reciprocate in the left and right direction in the housing 3. An image or the like is printed on a paper fed from the mounting portion 4 into the housing 3 by discharging ink from the nozzle of the cartridge 6 while reciprocating the carriage 7 in the left and right direction within the housing 3.
Next, as illustrated in
The through holes 8a, 8b, and 8c are disposed at intervals along the width direction of the housing 3 so as to correspond to each paper size mounted in the mounting portion 4. For example, as illustrated in
Here, the dimension X1 corresponds to a length (297 mm) in the longitudinal direction in an A4 sized paper horizontally placed on the mounting surface 4a of the mounting portion 4, or a length (279.4 mm) in the longitudinal direction in a letter size paper. Furthermore, the dimension X2 corresponds to a length (257 mm) in the longitudinal direction in a B5 size paper horizontally placed on the mounting surface 4a of the mounting portion 4.
Furthermore, as illustrated in
Here, as illustrated in
As illustrated in
As illustrated in
As a characteristic of the printer 1 according to the present embodiment, each through hole 8 is disposed at a position shifted more upward than the position of each light receiving part 12 in the transporting direction of the paper P along the mounting surface 4a of the mounting portion 4. In other words, as illustrated in
Due to the positional relationship between the through holes 8 and the light receiving parts 12, in a state in which there is no paper P in the mounting portion 4, the light L output from the light source S passes through the through hole 8 and is incident on each light receiving part 12 so as to be along an inclined direction inclined upward by only a predetermined angle with respect to the protruding direction of the light receiving part 12 (see
Furthermore, as described above, because the through hole 8 is disposed at a position shifted upward from the position of the light receiving part 12, as indicated by the virtual line in
Meanwhile, as illustrated in
Then, as illustrated in
In the size determining part 14, when an output voltage (hereinafter “output voltage V1”) is detected corresponding to when the amount of light L attenuated from all of the light receiving part 12a, 12b, and 12c is incident, the size determining part 14 determines that an A4 size paper or a letter size paper is mounted on the mounting portion 4 in a horizontal state.
In the size determining part 14, when an output voltage (hereinafter “output voltage V2”) is detected corresponding to when the amount of light L not attenuated from only light receiving part 12a is incident (that is, the light L guided from the through hole 8a to the direct light receiving part 12a without passing through the paper P), and when the output voltage V1 from the other light receiving part 12b and 12c are detected, the size determining part 14 determines that a B5 size paper is mounted on the mounting portion 4 in a horizontal state.
In the size determining part 14, when the output voltage V2 from both light receiving part 12a and 12b is detected, and when the output voltage V1 from the light receiving part 12c is detected, the size determining part 14, for example, determines that a postcard size paper, paper less than or equal to B5 size, envelope, L size, and the like is mounted in the mounting portion 4.
In the size determining part 14, when the output voltage V2 is detected from all of the light receiving part 12a, 12b, and 12c, the size determining part 14 determines that no paper of any size is mounted on the mounting portion 4.
Then, as illustrated in
As described above, the through hole 8 is configured so that the path of the light L incident on the light receiving part 12 is narrowed in advance. Then, as described above, in a state in which there is paper P on the mounting portion 4, the amount of light L output from the light source S is significantly attenuated by the paper P and the though hole 8, and the amount of light L smaller than the state in which no paper P is on the mounting portion 4 is incident on the light receiving part 12. As a result, it is possible to reliably distinguish the amount of light L incident on the light receiving part 12 based on the paper P mounted on the mounting portion 4. That is, the through hole 8 is provided between the light receiving part 12 and the light source S, and functions as a change portion (light guiding portion) for changing the amount of light L when the light L from the light source S is incident on the light receiving part 12 based on the presence and absence of paper P on the mounting portion 4.
Therefore, in the printer 1 according to this embodiment, it is possible to change the amount of light when the light L from the light source S is incident on the light receiving part 12 based on the paper P on the mounting portion 4, and reliably and appropriately determine the paper size so that erroneous detection does not occur.
Furthermore, in the printer 1 according to this embodiment, by providing a through hole 8 passing through from the mounting surface 4a to the mounting portion 4 to the light receiving part 12, the mechanism for detecting the paper size equipped with a change portion (light guiding portion) can be simplified, and the cost of the device body in the printer 1 can be reduced.
Furthermore, because the storage space 13 having a storage space 13a for storing the light receiving part 12 is provided on the opposite side of the mounting surface 4a in the mounting portion 4, the light L guided from the through hole 8 can be effectively caused to be incident on the light receiving part 12.
Furthermore, because the opening in each through hole 8 is formed in substantially a triangular shape so as to taper toward the transporting direction, when setting the paper P on the mounting portion 4 (mounting surface 4a) along the transporting direction, the lower end portion of the paper P does not catch on each through hole 8, and the paper P can be smoothly mounted on the mounting portion 4 (mounting surface 4a).
Furthermore, in the printer 1 according to this embodiment, because an illumination light and the like on the outside of the housing 3 is used as the light source S, it is unnecessary to additionally provide a dedicated light emitter composed of an LED as the light source S, and the mechanism for detecting the paper size can be simplified, thus reducing the cost of the device body in the printer 1.
As illustrated in
In particular, the through hole 8 in the variation is configured to incline only at a predetermined angle θ (θ=30° in the illustrated example) with respect to the mounting surface 4a. Thus, for example, compared to the through hole 8 in which the angle θ is formed to be 90° (that is, a state formed to pass through in the vertical direction with respect to the mounting surface 4a), the distance from the paper P to each light receiving part 12 is approximately doubled, and the attenuation distance of the light L can be secured to a longer distance. As a result, the amount of light L incident on the light receiving part 12 can more reliably be distinguished based on the presence and absence of paper P mounted on the mounting portion 4. Note that the angle θ in this variation is set to 30°, but it is not limited to this angle, and may be set to an angle less than 90°.
(Another example relating to example 1)
In the printer 1 according to this embodiment, an aspect using the through hole 8 as the change portion (light guiding portion) is illustrated, but it is not limited to this. For example, it may be a light guiding portion in which each through hole 8 is blocked by a transparent member such as a transparent glass member, acrylic member, and the like. In this case, the opening of each through hole 8 is not limited to the substantially triangular shape as described above, and may be formed in a polygonal shape including a square shape, or a circular shape. That is, the change portion (light guiding portion) is provided between the light receiving part 12 and the light source S, and may function for changing the amount of light when the light L from the light source S is incident on the light receiving part 12 based on the presence and absence of paper P on the mounting portion 4.
In this embodiment, as illustrated in
As illustrated in
For example, each light emitter 11 and each light receiving part 12 are disposed close to each other so as to form a pair on positions corresponding to the position of each through hole 20 on the opposite side (back side) of the mounting surface 4a on the mounting portion 4. As illustrated in
As illustrated in
As a characteristic of the printer 1 according to this embodiment, as illustrated in
Furthermore, as illustrated in
The size determining part 14 according to this embodiment is configured so as to determine the size of each paper P mounted on the mounting portion 4 based on the amount of light L to the light receiving part 12 reflected by the reflective surface 22 on the medium guide 21. Furthermore, each light receiving part 12 is set so that the medium guide 21 does not overlap the through hole 20, the output voltage is not the maximum value when the light L reflected by the paper P is incident, and the output voltage is the maximum value when the light L reflected by the reflective surface 22 of the medium guide 21 is incident due to the medium guide 21 overlapping the through hole 20. The aspect for determining the specific size of each paper will be described below.
The size determining part 14 determines that an A4 size or letter size paper P is mounted on the mounting portion 4 when the size determining part 14 detects an output voltage of the maximum value from only the light receiving part 12a and an output voltage less than the maximum value from the other light receiving part 12b and 12c. In this case, as illustrated in
The size determining part 14 determines that a B5 size paper P is mounted on the mounting portion 4 when the size determining part 14 detects an output voltage of the maximum value from only the light receiving part 12b and detects an output voltage less than the maximum value from only the light receiving part 12c. In this case, as illustrated in
The size determining part 14 determines that a postcard size paper P is mounted on the mounting portion 4 when the size determining part 14 detects an output voltage less than the maximum value from only the light receiving part 12c, and does not detect an output voltage from the other light receiving part 12a and 12b. In this case, as illustrated in
Note that the size determining part 14 determines that no paper P of any size is mounted on the mounting portion 4 when an output voltage is not detected from the light receiving part 12c.
Then, as illustrated in
The other configurations of the printer 1 in example 2 are similar to the configurations of the printer 1 according to example 1.
As described above, the medium guide 21 (reflective surface 22) in this embodiment is interposed between the light receiving part 12 and the light emitter 11, and functions as the change portion for changing the amount of light L based on the paper P on the mounting portion 4 when the light L from the light emitter 11 is incident on the light receiving potion 12. Then, in the printer 1 according to this embodiment, the position of each paper P mounted on the mounting surface 4a on the mounting portion 4 can easily be aligned using the medium guide 21, and the amount of light can be changed when the light L from each light emitter 11 is incident on the light receiving part 12 based on the paper P on the mounting portion 4 by using the medium guide 21 (reflective surface 22) correlating to the change portion. Therefore, in the printer 1 according to this embodiment, the paper size can also be reliably and appropriately determined.
Furthermore, the light receiving part 12 is set so that the output voltage is the maximum voltage when the light L reflected by the reflective surface 22 on the medium guide 21 is incident by the medium guide 21 overlapping the through hole 20. Therefore, the difference between the output voltage having the maximum value and the output voltage from the light receiving part 12 when the light L reflected on the rear surface of the paper P in the through hole 20 is incident by the medium guide 21 not overlapping the through hole 20 appears large. Due to this voltage difference, both output voltages can be reliably distinguished, and erroneous detection of the paper size by the size determining part 14 can be prevented in advance.
In this variation, as illustrated in
By providing such slits 23, it is possible to shield the light from outside the housing 3 (for example, light output from an interior illumination light) in front of each light receiving part 12 so to not be incident on each light receiving part 12. As a result, when there is no paper on the mounting surface 4a on the mounting portion 4, light from the outside of the housing 3 being incident on the light receiving part 12 is prevented, and it is possible to reliably determine that there is no paper on the mounting surface 4a of the mounting portion 4 by the size determining part 14.
In the printer 1 according to this embodiment, one light emitter 11 composed of an LED element provided in the housing 3 is used as the light source. As illustrated in
Furthermore, the light receiving part 12 is provided in the light emitter 11 opposing the left and right direction on the other end portion in the width direction of the mounting portion 4. For example, a substantially plate-shaped second attachment plate 32 extending in the front and back direction is fixed to a right side portion 4c on the mounting portion 4, and the light receiving part 12 is attached to, for example, a left side surface of the second attachment plate 32 so as to face the left and right direction, that is, towards the light emitter 11 side. The light receiving part 12 is composed of a phototransistor, similar to example 2. Then, the light emitter 11 and the light receiving part 12 are disposed so as to be positioned on the same straight line M in a position at the same height, and the light L output from the light emitter 11 is incident on the light receiving part 12.
As illustrated in
Furthermore, as a characteristic of the printer 1 according to this embodiment, a substantially plate-shaped light refractor 33 positioned on the straight line M connecting the light emitter 11 and the light receiving part 12 is fixed in the front end portion of the medium guide 21. The light refractor 33 refracts the light L output from the light emitter 11 and incident on the light receiving part 12 in the middle, and is formed in a substantially rectangular shape as viewed from the side surface, composed of, for example, a transparent glass material or acrylic material.
In addition, as illustrated in
In the printer 1 according to this embodiment, the refractive position of the light L from the light refractor 33 on the straight line M is changed according to the position of the medium guide 21, and changes the amount of light L incident on the light receiving part 12. Then, the size determining part 14 (see
As illustrated in
Meanwhile, when the position of the medium guide 21 is aligned with the minimum size paper P mounted on the mounting portion 4, the medium guide 21 is in a state as close to the light receiving part 12 as possible (the light reactive portion 33 is positioned at point D). In this state, the distance in the front and back direction between the light L refracted by the light refractor 33 and the light receiving part 12 is a minimum. Then, the amount of light L incident on the light receiving part 12 is a maximum, and the value of the voltage output from the light receiving part 12 is maximum. Thus, when the size determining part 14 detects a minimum output voltage, the size determining part 14 determines that the minimum size (for example, postcard size) paper P is mounted on the mounting portion 4.
Furthermore, when the position of the medium guide 21 is aligned with vertically placed A4 sized paper P mounted on the mounting portion 4, and when the light refractor 33 is positioned at point B separated at only a predetermined distance from reference position E, the voltage value output from the light receiving part 12 becomes a predetermined voltage value due to the change in distance in front and back direction between the light L refracted by the light refractor 33 and the light receiving part 12. In addition, when the position of the medium guide 21 is aligned with the vertically placed B5 sized paper P mounted on the mounting portion 4, and when the light refractor 33 is positioned at point C separated only a predetermined distance from the reference point E, a voltage larger than in the case of the A4 size is output from the light receiving part 12. Thus, the size determining part 14 determines the size of each paper P mounted on the mounting portion 4 by the voltage value output from the light receiving part 12.
Note that in
Then, as illustrated in
As described above, the light refractor 33 is provided between the light emitter 11 and the light receiving part 12, and functions as a change portion that changes the amount of light based on the paper P on the mounting portion 4 when the light L from the light emitter 11 is incident on the light receiving part 12. Then, in the printer 1 according to this embodiment, it is possible to easily align the position of each paper P mounted on the mounting surface 4a on the mounting portion 4 using the medium guide 21. Along with that, due to the light refractor 33 (change portion) moving along with the medium guide 21, because the amount of light L incident on the light receiving part 12 changes based on the paper P on the mounting portion 4, the paper size can be reliably and easily determined. Furthermore, in the printer 1 according to this embodiment, because it may be configured to provide the one of the light emitters 11 and the light receiving part 12, the mechanism for detecting the paper size can be simplified, and cost of the entire device body in the printer 1 can be reduced.
Furthermore, in the light refractor 33, the light L output from the light emitter 11 is incident on the incident surface 34 and passes through the inside of the light refractor 33 along the direction of the straight line M. Meanwhile, the light L passing through the inside of the light refractor 33 is refracted toward the front side of the housing 3 by the emission surface 35 at only a predetermined angle with respect to the direction of the straight line M. In addition, the light refractor 33 is integrally provided with the medium guide 21, and is configured so as to move along the straight line M along with the medium guide 21. Therefore, due to the medium guide 21 being caused to move, while maintaining an angle of the incident surface 34 and the emission surface 35 with respect to the straight line M, it is possible for the light refractor 33 (incident surface 34 and emission surface 35) to move closer to or separate farther from the light receiving part 12. Meanwhile, when the light L is refracted by the emission surface 35 at a position where the light refracting portion 33 is separated far from the light receiving part 12 (for example, position of point A illustrated in
Furthermore, the light receiving part 12 is composed of a phototransistor, and outputs a predetermined voltage value corresponding to the amount of input light. Then, when the position of the medium guide 21 is aligned with the minimum sized paper P mounted on the mounting portion 4, the medium guide 21 is as close as possible to the light receiving part 12. Therefore, when the position of the medium guide 21 is aligned with the minimum size paper P, the amount of light L incident on the light receiving part 12 by being refracted by the light refractor 33 is a maximum. That is, the voltage output from the light receiving part 12 is a maximum. By such a configuration, when the position of the medium guide 21 is aligned with the minimum size paper P mounted on the mounting portion 4, the size determining part 14 can determine the size of each paper P mounted on the mounting portion 4 using the voltage output from the light receiving part 12 as a reference.
In this embodiment, an aspect is illustrated where one light emitter 11 composed of an LED element is used as the light source, but it is not limited to this. That is, as described in the first example described above, an illumination light and the like mounted on the outside of the housing 3 may be used as the light source.
In each of the embodiments described above, an example is given of the printer 1, which is one embodiment for the image forming apparatus, but it is not limited to this. For example, one or more embodiments of the present invention may be applied to an image forming apparatus such as a compound device integrally combined with a scanner or printer function, and the like.
Embodiments for the present invention are described above, but the present invention is not limited to the above embodiments, and can have various variations within the scope of the invention.
Although the disclosure has been described with respect to only a limited number of embodiments, those skilled in the art, having benefit of this disclosure, will appreciate that various other embodiments may be devised without departing from the scope of the present invention. Accordingly, the scope of the invention should be limited only by the attached claims.
One or more embodiments of the present invention is industrially applicable, for example, as an inkjet printer.
Number | Date | Country | Kind |
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2016-160495 | Aug 2016 | JP | national |