The entire disclosure of Japanese Patent Application Nos. 2018-34422, filed Feb. 28, 2018 and 2018-198982, filed Oct. 23, 2018 are expressly incorporated by reference herein.
The present disclosure relates to a recording apparatus such as, for example, an ink jet type printer or the like.
In the related art, a recording apparatus of this type as described in JP-A-2014-14943, for example, is known. Such a recording apparatus includes a power supply unit disposed in a housing of the apparatus main body, a carriage disposed in the housing, and a recording head attached to a lower portion of the carriage. Then, printing of a paper sheet is performed by ejection of an ink droplet from a nozzle of a recording head onto a paper sheet transported along a predetermined transport path, while the carriage is made to reciprocate in the main scanning direction by the electricity supplied from the power supply unit.
However, in the recording apparatus described above, the power supply unit is disposed at the lower portion in the housing, so that when ink leaks in the housing, there is a problem that the leaking ink may penetrate into the power supply unit into a bottom surface, a wall surface, a structure or the like in the housing.
According to an aspect of the disclosure, a recording apparatus includes a recording head that performs recording on a recording medium by ejecting a liquid, a carriage that reciprocates in one direction while supporting the recording head, and a power supply unit that supplies electricity to driving targets including a driving source of the carriage and the recording head, in which the power supply unit is disposed such that at least a part thereof overlaps with a moving region of the carriage on an upper side.
The disclosure will be described with reference to the accompanying drawings, wherein like numbers reference like elements.
Hereinafter, a first embodiment of the recording apparatus will be described with reference to the drawings.
As shown in
The automatic document feeding device 14 includes a set section (not shown) in which a plurality of documents G can be set in a stacked state and a discharge section 15 disposed on a lower side of the set section. A plurality of document G set in the set section in a stacked state are read by an image reading section 16 disposed in a document reading device 13 through a process of being sequentially fed to a discharge section 15 through a document feed path (not shown) reversed. As the image reading section 16, a contact type image sensor module (CISM: contact image sensor module) can be used.
At a front portion of the casing 12, from the lower side upwards, an opening/closing cover 17, a mounting port 19 to which a paper cassette 18 which accommodates paper sheet P, which is an example of a recording medium, is attachably/detachably mounted, a discharge port 20 from which a printed paper sheet P is discharged, and an attachment section 21 to which an operation panel (not shown) that performs a variety of operations is attached are provided. The front surface of the casing 12 has height and width and serves as a side surface on which a user mainly operates the ink jet type printer 11. Further, in the present embodiment, a direction parallel to a discharge direction in which the paper sheet P is discharged from the discharge port 20 is defined as a depth direction X, a direction orthogonal to both the depth direction X and the vertical direction Z is defined as a width direction Y. The depth direction X and the width direction Y go along a horizontal plane practically.
As shown in
Then, recording is performed on the paper sheet P by the ejection of ink toward the paper sheet P from the recording head 25 that reciprocates together with the carriage 23 in the width direction Y while the paper sheet P supplied from the paper cassette 18 to the region facing the recording head 25 is transported by the transport section (not shown) in the discharge direction. The paper sheet P (recorded paper sheet P) recorded by the recording head 25 is discharged from the discharge port 20.
As shown in
The power supply unit 30 is disposed such that at least a part thereof overlaps with the moving region R on an upper side. In accordance with the embodiment, the power supply unit 30 is disposed at a position (corresponding position) where a part of the power supply unit 30 overlaps with an end portion on an opposite side from the standby position HP side in the moving region R in the vertical direction Z. That is, in accordance with the embodiment, the power supply unit 30 is disposed at a position where the power supply unit 30 does not overlap with the standby position HP of the carriage 23 at all in the vertical direction Z. In this case, the power supply unit 30 is disposed at a position roughly directly below the image reading section 16. That is, the image reading section 16 is disposed above the power supply unit 30.
As shown in
The four ink accommodation bodies 32 are configured with an ink accommodation body 32B in which blank ink is accommodated, an ink accommodation body 32C in which cyan ink is accommodated, an ink accommodation body 32M in which magenta ink is accommodated, and an ink accommodation body 32Y in which yellow ink is accommodated. Since the black ink is used more frequently than any other ink, the ink accommodation body 32B is configured to be bigger than ink accommodation bodies 32C, 32M and 32Y. The ink accommodation bodies 32C, 32M, and 32Y are of the same size.
As shown in
A connection section 35 to which an AC power supply cord (not shown) is connected is provided at an end portion on the opposite side from the standby position HP of the carriage 23 in the width direction Y on an upper side of each pump 34 on the rear surface of the casing 12. A plurality of interfaces 36 for connecting a variety of types of hardware (not shown) are provided on the upper side of the connection section 35 on the rear surface of the casing 12. The connection section 35 and the interface 36 are disposed at positions lower than the power supply unit 30.
Each tube 33 extending from the lower portion at the rear portion of the casing 12 extends upward through the side portion on the opposite side from the standby position HP of the carriage 23 in the width direction Y, passes below the power supply unit 30, winds around a side portion of the standby position HP of the carriage 23 in the power supply unit 30, and then extends to a height position of an upper end of the power supply unit 30 (upper surface 37d of case 37 to be described later) in the casing 12. Subsequently, each of tube 33 that has passed the height position of the upper end of the power supply unit 30 extends straight horizontally to a side portion of the standby position HP of the carriage 23 in the width direction Y in the casing 12, and then curves downward to be connected to the recording head 25 supported by the carriage 23.
As shown in
In order to suppress the penetration of the mist of ink ejected from the recording head 25 into the case 37, it is preferable that the power supply unit 30 be shielded from the outside air at least on the lower surface 37e and the first side surface 37b (region outside the power supply unit 30 in the casing 12) of the case 37. This is because the lower surface 37e and the first side surface 37b of the case 37 directly confront the moving region R of the carriage 23 so that the possibility that the mist of ink penetrates is relatively high. Therefore, in accordance with the embodiment, the power supply unit 30 is shielded from the outside air on the front surface 37a, the upper surface 37d, the lower surface 37e and the first side surface 37b of the case 37.
Further, in order to secure ventilation inside the case 37 while suppressing the penetration of the mist of ink ejected from the recording head 25 into the case 37, it is preferable that the power supply unit 30 be provided with an opening for communicating with the outside of the case 37 on a surface other than the lower surface 37e and the first side surface 37b of the case 37. This is because a surface other than the lower surface 37e and the first side surface 37b of the case 37 does not directly confront the moving region R of the carriage 23 so that the possibility that the mist of ink penetrates is relatively low. Therefore in accordance with the embodiment, the power supply unit 30 is provided with a first opening 42 and a second opening 43 respectively for communicating with the outside of the case 37 on the second side surface 37c and the rear surface 37f of the case 37. The first opening 42 and the second opening 43 are configured with a collection of a plurality of through holes.
A fan 44 that discharges the air inside the case 37 from the first opening 42 to the outside of the case 37 is disposed inside the first opening 42 of the case 37. For the fan 44, an axial flow fan is used, for example. A rectangular plate-shaped filter 45 is attachably/detachably disposed on the outer surface of the second opening 43 in the case 37. A filter 45 covers the second opening 43. For the filter 45, a non-woven fabric is used.
When the fan 44 is driven, the air inside the case 37 is discharged from the first opening 42 to the outside of the case 37. Then, the pressure inside the case 37 gets lower than the pressure outside the case 37, so that the air outside the case 37 is filtered through the filter 45 and drifts into the case 37 from the second opening 43 by the pressure difference inside/outside the case 37. As a result, the ventilation of the case 37 is carried out well and the temperature inside the case 37 goes down, so that the power supply unit 30 is cooled.
A rectangular third opening 46 is formed on the rear side of the first opening 42 on the second side surface 37c of the case 37. Inside the third opening 46 in the case 37, a second connector 47 to which an AC input cable (not shown) extending from the connection section 35 on the rear surface of the casing 12 to the case 37 is connected through the third opening 46 is disposed.
Next, the operation of the ink jet type printer 11 will be described.
When the recording onto the paper sheet P is performed by the ink jet type printer 11, ink is ejected from the recording head 25 that reciprocates together with the carriage 23 in the width direction Y onto the paper sheet P supplied from the paper cassette 18 to the region facing the recording head 25. As a result, recording is performed onto the paper sheet P, and the paper sheet P is discharged from the discharge port 20 at the time or recording. In this case, since the power supply unit 30 is disposed above the moving region R of the carriage 23 and the tube 33, even when the ink leaks from the carriage 23 and the recording head 25, the leaking ink does not penetrate inside the case 37 of the power supply unit 30.
Further, since the power supply unit 30 generates heat while the ink jet type printer 11 is used, the temperature of the air in the casing 12, the temperature around the power supply unit 30 in particular, gets higher than the temperature of the air in other regions. In this regard, in accordance with the embodiment, the air around the moving region R and the power supply unit 30 is stirred by the reciprocation of the carriage 23 in the width direction Y in the casing 12. Therefore, the temperature of the air around the power supply unit 30 goes down, so that the power supply unit 30 is cooled. That is, the power supply unit 30 is cooled by the stirring of the air caused by the reciprocation of the carriage 23.
According to the embodiment described above in detail, the following effect can be obtained.
(1) The power supply unit 30 is disposed such that at least a part thereof overlaps with the moving region R of the carriage 23 on the upper side. With this configuration, since the power supply unit 30 is disposed at a position higher than the carriage 23, if the ink leaks from the carriage 23, the penetration of the leaking ink into the power supply unit 30 can be suppressed. In addition, the reciprocation of the carriage 23 in the width direction Y can stir the air of relatively high temperature around the power supply unit 30 in the casing 12. Therefore, the temperature of the air around the power supply unit 30 can be lowered, so that the power supply unit 30 can be cooled.
(2) The tube 33 that supplies ink from below the moving region R of the carriage 23 to the recording head 25 passes below the power supply unit 30 and supplies ink to the recording head 25. With this configuration, if ink leaks from the tube 33, the penetration of the leaking ink into the case 37 of the power supply unit 30 can be suppressed.
(3) The tube 33 passes below the power supply unit 30 and passes the height position of the upper end of the power supply unit 30, and then curves downward to be connected to the carriage 23. With this configuration, the curvature of the tube 33 can be reduced. Therefore, the load on the tube 33 can be reduced, so that the life of the tube 33 can be extended. In addition, since the curvature of the tube 33 can be reduced, the load received by the tube 33 when the carriage 23 moves can be reduced.
(4) The power supply unit 30 is disposed at a position where the power supply unit 30 does not overlap with the standby position HP of the carriage 23 in the vertical direction Z. With this configuration, an adverse impact of the heat generated by the power supply unit 30 on the recording head 25 standing by at the standby position of the carriage 23 can be suppressed.
(5) The power supply unit 30 is disposed at a position where the power supply unit 30 confronts the end portion of the moving region R of the carriage 23 in the width direction Y, and at least the lower surface 37e and the first side surface 37b of the case 37 are shielded. With this configuration, since the lower surface 37e and the first side surface 37b of the case 37 susceptible to wind generated by the movement of the carriage 23 are shielded, the penetration of the mist of ink ejected from the recording head 25 into the case 37 of the power supply unit 30 can be suppressed effectively.
(6) The power supply unit 30 is provided with the first opening 42 and the second opening 43 that communicate with the outside of the case 37 respectively on the second side surface 37c and the rear surface 37f of the case 37. With this configuration, since the first opening 42 and the second opening 43 are respectively provided on the second side surface 37c and the rear surface 37f of the case 37 which hardly receives the wind generated by the movement of the carriage 23, ventilation can be secured inside the case 37 of the power supply unit 30, so that penetration of the mist of ink into the case 37 can be suppressed.
(7) The power supply unit 30 has the fan 44 that discharges the air in the case 37 from the first opening 42 to the outside of the case 37. With this configuration, the inside of the case 37 of the power supply unit 30 can be forced to cool by the driving of the fan 44.
Next, the ink jet type printer 11 in accordance with the second embodiment will be described with reference to
As shown in
As shown in
The rear portion of the casing 12 is a portion that easily takes in the outside air into the casing 12, like the supply port 28 that enables the communication of the inside of the casing 12 with the outside. In the present example, the supply port 28 open at the rear portion of the casing 12 is used as an intake port of outside air when the power supply unit 30 shown in
As shown in
In addition, as shown in
As shown in
Hereinafter, the cooling structure of the power supply unit 30, the connection structure of the main substrate 61 and the relay substrate 62, the partition plate structure of the slot 70, the grounding structure of the slot 70 and the disposition structure of the hard disk drive 90 will be described one by one.
First, the cooling structure of the power supply unit 30 will be described with reference to
As shown in
In accordance with the embodiment, the power supply unit 30 includes the rectangular parallelepiped case 37 like in the first embodiment and a power supply substrate 54 accommodated in the case 37. As shown in
Like in the first embodiment, in order to secure an airflow in the case 37 while suppressing the penetration of the mist of ink ejected from the recording head 25 in the case 37, the power supply unit 30 has an opening for communicating with the outside of the case 37 on a surface other than the lower surface 37e and the first side surface 37b of the case 37. In an example in
As shown in
In the examples shown in
As shown in
In the examples shown in
Further, as shown in
When the fan 44 is driven, the outside air is sucked into the case 37 from the second opening 43. Then, since the pressure inside the case 37 gets higher than the outside pressure, the air inside the case 37 drifts out to the outside from the first opening 42 due to the pressure difference between the inside/outside of the case 37. In this way, by the cold air sucked into the case 37 from the outside through the second opening 43 by the fan 44, an airflow denoted by a dotted chain line in
A part of the airflow taken into the power supply unit 30 by the fan 44 hits the first surface which is the rear surface of the heat sink 56, drifts along the fins and the recessed grooves of the first surface in the width direction Y, and is discharged from the first opening 42. At this time, the airflow of the cold air taken in from the outside by the fan 44 drifts along the first surface of each of the plurality of heat sinks 56. Therefore, the converter 55, which is a heat generating component, is cooled effectively in contact with the second surface of the heat sink 56.
Further, the other part of the air taken into the power supply unit 30 passes above the heat sinks 56 and through the gap between the heat sink 56 and drifts downstream (forward) of the transport direction X. The airflow drifting ahead of the heat sink 56 cools other electronic components 38 including the electronic components 38 which are in contact with the heat sink 57 mounted on the front side of the substrate 39 and is discharged from the opening made of a gap or through holes that are open on the front surface 37a of the case 37. Therefore, the power supply unit 30 is cooled effectively.
In the first embodiment, the fan 44 is configured to discharge the air in the power supply unit 30 to the outside, so that heated air in the power supply unit 30 is discharged to the outside. Therefore, air is taken into the power supply unit 30 at a relatively low rate of flow in accordance with the inside/outside pressure difference, so that it is difficult to actively cool the heat generating components such as the converter in the power supply unit 30. On the other hand, in the second embodiment, the fan 44 is configured to suck the outside air into the power supply unit 30, so that the converter 55 which is a heat generating component can be aggressively cooled by the airflow of cold air.
Next, the connection structure between the main substrate 61 and the relay substrate 62 will be described with reference to
Further, the relay substrate 62 that serves as a relay between the main substrate 61 and the driving targets is provided in the casing 12. The relay substrate 62 operates in accordance with the instructions from the CPU or the like mounted on the main substrate 61 so as to control the driving targets of the ink jet type printer 11. In the case of the present example in which the ink jet type printer 11 adopts a serial printing method, the recording head 25, the carriage motor 24, the feed motor, the transport motor, and the like are driving targets. In addition, in the embodiment, the hard disk drive 90 is also a driving target.
The relay substrate 62 is disposed at a position adjacent to the main substrate 61. The relay substrate 62 is disposed in such a direction that the substrate surface thereof intersects with the vertical direction Z. In contrast to the main substrate 61 being disposed longitudinally such that the substrate surface thereof is parallel to the vertical direction Z, the relay substrate 62 is disposed latitudinally such that the substrate surface thereof intersects with the vertical direction Z. The relay substrate 62 is disposed in a state to abut the main substrate 61 disposed longitudinally such that an upper end portion of the main substrate 61 and one side end portion of the relay substrate 62 intersect with each other. Therefore, the substrate surface of the main substrate 61 and the substrate surface of the relay substrate 62 are orthogonal to each other.
As shown in
The relay substrate 62 is assembled by a screwing of a plurality of screws 68 into the frame 67 provided in the casing 12. An elongated hole 69 into which the screw 68 can be inserted is formed on the substrate 65 that constitutes the relay substrate 62. In the example shown in
In an assembled state, on the main substrate 61, the first connector 64C is provided in the vicinity of a position where the side end portion of the relay substrate 62 faces the main substrate 61. Further, the second connector 66C capable of connecting with the first connector 64C is provided on the relay substrate 62 at a position where the second connector 66C confronts the first connector 64C of the main substrate 61. When the relay substrate 62 is slid along the elongated hole 69 in the first direction Y1 to approach the main substrate 61 in a state where the screw 68 is loosened, the second connector 66C and the first connector 64C are coupled. Further, when the relay substrate 62 is slid in the second direction Y2 which is an opposite direction to the first direction Y1 in a state where the screw 68 is loosened, the second connector 66C and the first connector 64C are uncoupled.
The second connector 66C is coupled with the first connector 64C of the main substrate 61 at the coupling position shown in
In the embodiment, since the main substrate 61 and the relay substrate 62 are separated, when the relay substrate 62 fails, for example, the relay substrate 62 may be replaced and there is no need to replace the main substrate 61. Also, when there is a need to remove the main substrate 61 due to a failure or maintenance of the mounted components, the screws 68 of the relay substrate 62 are loosened, the relay substrate 62 is slid along the elongated hole 69 from the coupling position shown in
In such an embodiment, when the main substrate 61 is removed, there is no need to remove the relay substrate 62. Further, there is no need to connect the connectors of both the main substrate 61 and the relay substrate 62 with a wire such as a flexible flat cable. When the main substrate 61 is attached at a predetermined assembly position of the casing 12 for the replacement or the assembly after maintenance, the relay substrate 62 is slid from the retreat position shown in
Next, the partition structure of the slot 70 will be described with reference to
In the embodiment, there are two types of slots 70. One is a slot for network communication and the other one is a slot for facsimile. In the example, there are two types of additional interface unit 71, namely a network communication unit 71A as shown in
As shown in
As shown in
As shown in
Further, as shown in
Further, as shown in
While being guided in the depth direction X by the engagement of the protruding guide section 83 with the groove section of the rail 82, the interface unit 71 is inserted straight into the slot 70. Further, while being guided in the depth direction X by the engagement of the partition plate 80 with the groove section of the rail 82, the lid member 73 is inserted straight into the slot 70. As compared with the configuration in which a dedicated partition member is provided for partitioning the slot 70, an integral provision of the partition plate 80 in the lid member 73 removes the need for a space to dispose an extra member such as a partition member, so that the space to dispose a plurality of slots 70 is kept small.
On the other hand, in the embodiment, as shown in
Next, the grounding structure of the slot 70 will be described with reference to
As shown in
Next, the disposition structure of the hard disk drive 90 will be described with reference to
Therefore, a drop impact is applied to the casing 12 when the ink jet type printer 11 is moved, or vibration is generated in the width direction Y by the reciprocation of the carriage 23 at the time of print operation of the ink jet type printer 11. Since the hard disk drive 90 is installed in such a direction that the disk surface 91, susceptible to an impact of the vertical direction, is parallel to the vertical direction Z which is the falling direction and the width direction Y which is the main scanning direction of the carriage 23, even if the hard disk drive 90 is subjected to this type of vibration, breakdown thereof hardly comes about.
Next, the operation of the ink jet type printer 11 of the second embodiment will be described.
When the fan 44 is driven, air is sucked in from the supply section 26. That is, air is taken into the casing 12 from the supply port 28 of the supply section 26. The air sucked in from the supply port 28 is sucked into the case 37 from the second opening 43 through the flow path 29. The air which is filtered by the filter 45 is sucked into the case 37 from the second opening 43. Since the pressure inside the case 37 gets lower than the pressure outside the case 37, the air inside the case 37 drifts out of the case 37 from the first opening 42 due to the pressure difference inside/outside the case 37. Therefore, the airflow is generated from the second opening 43 to the first opening 42 in the case 37. As a result, since the case 37 is ventilated well and the temperature in the case 37 goes down, the power supply unit 30 is cooled.
Since relatively clean air is sucked into the case 37, there is no concern of contamination by the ink mist or the like in the power supply unit 30. For example, when the configuration is such that the air is taken in from the front, the air intake port is on the moving region R side of the carriage 23, so that the filter disposed at the air intake port is clogged early by the ink mist or the like, as compared with the configuration in which the air intake port is disposed on the rear side. In other words, since the air intake port is disposed on the rear side, the filter is hard to clog as compared with the configuration in which the air intake port is disposed on the front side, and it is possible to suck in the necessary flow amount of the clean air with extremely little ink mist over a long period of time.
Further, as shown in
Further, since an opening or an air discharge hole also exists on the front surface 37a of the power supply unit 30, a part of the airflow sucked in from the fan 44 drifts above the heat sink 56 or through the gaps among heat sinks 56 forward in the power supply unit 30. As a result, the electronic component 38 mounted at a position in front of the heat sink 56 is also cooled by the airflow. Therefore, the electronic component 38 in the power supply unit 30 is cooled evenly regardless of the position in the depth direction X. Therefore, the heat generation of the power supply unit 30 can be suppressed effectively.
According to the second embodiment described above in detail, the following effect can be obtained.
(8) In the ink jet type printer 11, the power supply unit 30 has the fan 44 that sucks in the outside air from an opening. With this configuration, since the outside air is sucked into the power supply unit 30 from the opening by the driving of the fan 44, the inside of the power supply unit 30 can be cooled effectively. By the efficient cooling of the power supply substrate 54, the capacity of the power supply can be increased and the automatic document feeding device 14 and print operation of the ink jet type printer 11 can be sped up.
(9) The ink jet type printer 11 has the supply section 26 that supplies the paper sheet P as an example of a recording medium at the rear portion of the apparatus, an opening is disposed on the supply section 26 side, and the fan 44 sucks in the air from the supply section 26. Therefore, the air sucked in from the supply section 26 by the driving of the fan 44 can be sucked into the power supply unit 30 smoothly. For example, in the case of a configuration in which the fan 44 is disposed on a side surface of the power supply unit 30, it is necessary to provide an opening from which the air is taken into the casing 12 on a side portion of the casing 12. In contrast, in the second embodiment, since the air can be taken in through the supply port 28 of the supply section 26 from which the paper sheet P is supplied, it is not necessary to provide an air intake port from which the air is taken in on a side portion or the like of the casing 12 separately.
(10) The power supply unit 30 accommodates the power supply substrate 54 on which the converter 55 which is a heat generating component and the heat sink 56 in contact with the converter 55 and the converter are mounted. The heat sink 56 is disposed along the surface on which the fan 44 is disposed. Therefore, since the airflow generated by the suction of the outside air from an opening into the power supply unit 30 by the driving of the fan 44 hits the heat sink 56, the heat sink 56 can be cooled efficiently. There the converter 55 which is a heat generating component in contact with the heat sink 56 can be cooled efficiently.
(11) A spring for grounding is provided at the entrance end portion of the slot 70. The additional interface unit 71 can be inserted into the slot 70 in a state of sliding in contact with the first spring 87 which is an example of a spring for grounding from the beginning to the end. Therefore, even if the user is charged with static electricity, the electric current flown by static electricity can be grounded through the first spring 87. Therefore, a failure of the interface unit 71 for an additional device by the static electricity can be avoided.
(12) The lid member 73 that closes the slot 70 includes a partition plate 80 that partitions the slot 70 from the adjacent slot 70. Therefore, when the user opens the lid member 73 of the slot 70 at the time of adding an additional interface unit 71, the inside of the adjacent slot 70 is not visible. For example, the user can avoid inserting a finger in the adjacent slot 70. Further, since the partition plate 80 is made of metal, the noise from the additional interface unit 71 inserted into the adjacent slot 70 can be blocked.
(13) The main substrate 61 and the relay substrate 62 are connected to each other by the connectors 64C and 66C, and the wire such as the flexible flat cable connecting the substrates 61 and 62 is eliminated. When the relay substrate 62 is fixed with the screw 68 through the elongated hole 69 and the relay substrate 62 is moved aside in the second direction Y2 by loosening the screw 68, the main substrate 61 can be removed.
(14) The hard disk drive 90 is disposed in such a direction that both the vertical direction Z and the width direction Y are perpendicular to the disk surface 91. Thus, even when the hard disk drive 90 is subjected to an impact caused by a fall of the ink jet type printer 11 or a vibration caused by the reciprocation of the carriage 23 in the width direction Y at the time of print operation, the failure of the hard disk drive 90 hardly comes about.
The embodiment described above can be modified into such a form as the modification example shown below. Further, a combination of the embodiment described above and the modification examples shown below as deemed appropriate can serve as a further modification example, and a combination of the modification examples shown below as deemed appropriate can serve as a further modification example.
Hereinafter, the technical concepts grasped from the embodiment and modification example will be described together with the effect.
The recording apparatus includes a recording head that performs recording on a recording medium by ejecting a liquid, a carriage that reciprocates in one direction while supporting the recording head, and a power supply unit that supplies electricity to driving targets including a driving source of the carriage and the recording head. A power supply unit is disposed such that at least a part thereof overlaps with a moving region of the carriage on the upper side.
With this configuration, since the power supply unit is disposed at a position higher than the carriage, when a liquid leaks from the carriage, the penetration of the leaking liquid into the power supply unit can be suppressed.
The recording apparatus includes a liquid supply path through which the liquid is supplied to the recording head from below the moving region, and the liquid supply path may pass below the power supply unit and supply the liquid to the recording head.
With this configuration, when a liquid leaks from the liquid supply path, the penetration of the leaking liquid into the power supply unit can be suppressed.
In the recording apparatus described above, the liquid supply path may curve downward and be connected to the carriage after passing below the power supply unit and passing the height position of the upper end of the power supply unit.
With this configuration, when the liquid supply path is configured with a flexible tube, the curvature of the tube can be reduced. Therefore, since the load applied to the tube can be reduced, the life of the tube can be extended.
In the recording apparatus described above, the power supply unit may be disposed at a position where the power supply unit does not overlap with the standby position of the carriage in the vertical direction.
With this configuration, the exertion of an adverse impact of the heat generated by the power supply unit on the recording head standing by at the standby position of the carriage can be suppressed.
In the recording apparatus described above, the image reading section that reads the image of the document may be disposed above the power supply unit, and the heat insulation member may be disposed between the power supply unit and the image reading section.
With this configuration, since the transmission of the heat generated by a power supply unit to the image reading section can be suppressed by a heat insulation member, the exertion of an adverse impact of the heat generated by the power supply unit on the image reading section can be suppressed.
In the recording apparatus described above, a heat dissipation section that dissipates the heat generated by the power supply unit may be provided on a lower surface of the power supply unit.
With this configuration, the heat dissipation efficiency of the power supply unit can be improved.
In the recording apparatus described above, a rib extending in a direction that intersects with the one direction may be provided at the upper end portion of the carriage.
With this configuration, since the stir efficiency of the air by the movement of the carriage can be improved, the rise of the ambient temperature of the power supply unit can be suppressed.
In the recording apparatus, the power supply unit may be disposed at a position where the power supply unit confronts an end portion of the moving region of the carriage in the one direction and at least a lower surface and a side surface on the center portion side of the moving region of the carriage in the one direction may be shielded.
With this configuration, the penetration of the mist of the liquid ejected from the recording head into the power supply unit can be suppressed.
In the recording apparatus described above, the power supply unit may have an opening for communicating with the outside on a surface other than the shielded surface.
With this configuration, the penetration of the mist of the liquid into the power supply unit can be suppressed while the ventilation in the power supply unit is secured.
In the recording apparatus described above, the power supply unit may have a fan that discharges the inside air to the outside from the opening.
With this configuration, the power supply unit can be cooled by the driving of the fan.
In the recording apparatus described above, the power supply unit may have a fan that sucks in the outside air from the opening.
With this configuration, since the outside air is sucked into the power supply unit from the opening by the driving of the fan, the inside of the power supply unit can be cooled effectively.
In the recording apparatus described above, the recording apparatus may have a supply section that supplies the recording medium to the recording medium at the rear portion of the apparatus, the opening may be disposed on the supply section side, and the fan may suck in the air from the supply section.
With this configuration, since the supply port through which the recording medium is supplied is positioned on the supply section side, the outside air can be smoothly sucked from the supply section into the power supply unit by the driving of the fan.
In the recording apparatus described above, the power supply unit may accommodate a power supply substrate on which a heat sink which connects a converter which is a heat generating component inside to the converter is mounted, and the heat sink may be disposed along a surface on which the fan is disposed in the power supply unit.
With this configuration, since the airflow generated by the suction of the outside air from the opening into the power supply unit by the driving of the fan hits the heat sink, the heat sink can be cooled efficiently. Therefore, the converter which is a heat generating component in contact with the heat sink can be cooled efficiently.
Number | Date | Country | Kind |
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2018-034422 | Feb 2018 | JP | national |
2018-198982 | Oct 2018 | JP | national |
Number | Name | Date | Kind |
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20140009550 | Togo et al. | Jan 2014 | A1 |
20170246869 | Shirota et al. | Aug 2017 | A1 |
Number | Date | Country |
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2004-034659 | Feb 2004 | JP |
2014-014943 | Jan 2014 | JP |
2017-149082 | Aug 2017 | JP |
Number | Date | Country | |
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20190263159 A1 | Aug 2019 | US |