The present disclosure relates to an image formation apparatus such as a printer, a copying machine, a facsimile machine, or a multi-function machine, and a conduction unit that is used for the image formation apparatus.
Spring contacts such as coil springs are sometimes used to electrically connect units having a photoconductive drum, a development member, and the like of an image formation apparatus. Japanese Patent Application Laid-Open No. 2009-109781 discusses a structure in which process units such as a charging unit having a charging member and a development unit having a development member and a high-voltage circuit board supplying high voltage power are connected together by using spring contacts in which coil springs are integrally formed at both ends of a conductive wire material.
In the connection structure described in Japanese Patent Application Laid-Open No. 2009-109781, the wire material and the coil springs may be separately provided to allow the units and the high-voltage circuit board to be connected by a simple configuration. In this case, the electrical connection can be easily achieved by holding the coil springs in contact with the wire material.
However, in the structure where the contact members are separately provided as described above, if a coil spring is touched unintentionally during assembly or maintenance of the units, the coil spring may fall off, thereby degrading the workability of assembly and maintenance.
An image formation apparatus disclosed herein works towards preventing the degradation of workability of assembly and maintenance, even in a case where coil springs are employed in electrical contact paths in an image formation apparatus.
According to an aspect of the present disclosure, an image formation apparatus includes a development unit configured to develop an electrostatic latent image formed on a photoconductive drum by using toner, a circuit board configured to supply a voltage to the development unit, a conduction member configured to electrically connect the development unit and the circuit board, a coil spring that includes a coil part in contact with the conduction member and an arm part of the coil spring provided integrally with the coil part and extending from an end of the coil part outward in a radial direction with respect to the coil part, and a holding member that includes a spring regulation part configured to regulate movement of the coil spring in the radial direction with respect to the coil part, wherein the holding member is configured to hold the coil spring such that the coil part and the conduction member are in contact with each other, and wherein the arm part of the coil spring includes a hook portion configured to engage with a portion of the holding member.
Further features of the present disclosure will become apparent from the following description of exemplary embodiments with reference to the attached drawings.
Hereinafter, preferred exemplary embodiments of the present disclosure will be described in detail with reference to the drawings. However, the dimensions, materials, shapes, and relative arrangements of components described in relation to the exemplary embodiments are not intended to limit the scope of the present disclosure thereto unless otherwise specified.
A first exemplary embodiment will be described.
The image reading device 150 can read an image in a document placed on a reading glass plate (not illustrated) and can also read an image in a document that is conveyed by the document conveyance device 300 and is passed through a flow reading glass plate. The image data read by the image reading device 150 is processed as image information by a controller circuit board (not illustrated). At this time, the user can instruct the image reading device 150 via the operation unit 200 to execute reading.
Cassettes 111 can store paper sheets and overhead transparencies (OHTs) as sheets S on which an image is to be formed and can be drawn toward the front side of the image formation apparatus 100.
The controller circuit board described above generates a signal to emit laser light from a laser scanner unit 142, based on image information read by the image reading device 150 or image information input from an external device such as a personal computer (PC).
Then, electrostatic latent images are formed by the laser light emitted from the laser scanner unit 142 on photoconductive drums 141. The electrostatic latent images on the photosensitive drums 141 are developed by development sleeves that are development units provided in development devices 143, thereby to form toner images on the photosensitive drums 141.
An image formation unit 140 has four stations of Y, M, C, and Bk. The stations of the image formation unit 140 are the same in configuration, except that the colors of toners used are different, which are cyan, magenta, yellow, and black. Therefore, the configuration of the image formation unit Y will be described below, and the detailed description of configurations of the image formation units M, C, and Bk will be omitted.
The toner images formed on the photosensitive drum 141 are subjected to predetermined pressuring forces and electrostatic load biases by a primary transfer device 144, so that the toner images are transferred onto an intermediate transfer belt 145.
Next, the intermediate transfer belt 145 will be described. The intermediate transfer belt 145 is driven and conveyed in a direction of arrow A illustrated in
In the meantime, the sheets S such as paper sheets or OHTs stacked and stored in the cassettes 111 are separated and fed one by one by sheet feeding units 110. The one fed sheet S is delivered to a first conveyance roller pair 120 and is conveyed toward a sheet skew correction device 10 arranged downstream in a sheet conveyance direction, so that the skew in the sheet S is corrected. Then, the sheet S is conveyed to the secondary transfer portion 130 by a second conveyance roller pair 30.
The sheet S conveyed to the secondary transfer portion 130 is nipped between a secondary transfer inner roller 131 and a secondary transfer outer roller 132 with the intermediate transfer belt 145 in between, so that the full-color toner image is secondarily transferred onto the sheet S by the secondary transfer portion 130.
Then, the sheet S is conveyed to a fixing device 155. The fixing device 155 melts and fixes the toner on the sheet S by applying a predetermined pressing force from a substantially opposing roller or belt and by bringing a heating effect of a heat source such as a heater, in general.
The sheet S with the thus obtained fixed image passes through a post-fixing conveyance unit 160 and is discharged by a discharge roller 161 directly to a sheet discharge tray 170. In order to form images on both sides of the sheet S, the discharge roller 161 is reversely rotated to convey the sheet S with the image on one side to a reverse conveyance device 180, and then the sheet S is conveyed again by the first conveyance roller pair 120 to the secondary transfer portion 130 where the image is formed on the other side of the sheet S.
The units described above are held in a frame body 500 described below.
Next, high-voltage power supply paths to drum units 600 having the photosensitive drums 141 in the image formation apparatus 100 of the present disclosure will be described with reference to
The frame body 500 has a back side plate 501 provided on the rear side of the image formation apparatus 100, a front side plate 502 that is on the front side of the image formation apparatus 100 and supports the units together with the back side plate 501, and stays 503a to 503c that couple the back side plate 501 and the front side plate 502.
A high-voltage power supply path unit 410 is fixed to the back side plate 501 of the frame body 500 and is covered with a rear cover (not illustrated) constituting the outer appearance of the image formation apparatus 100. The high-voltage power supply path unit 410 has a high-voltage path holding member 411 and a duct 412 for exhausting the air in the image formation apparatus 100 to the outside. A high-voltage circuit board unit 400 is fixed to the high-voltage power supply path unit 410. The high-voltage circuit board unit 400 is an example of a first unit.
An exhaust fan unit 450 includes a fan and a duct (not illustrated), which are connected to the duct 412 of the high-voltage power supply path unit 410, and is fixed to the back side plate 501.
The drum units 600 include the photosensitive drums 141 and are supported by drum rails 510 provided on the frame body 500. The drum units 600 are guided along the drum rails 510 in the direction of rotation axes of the photosensitive drums 141 and are detachably attached to the image formation apparatus 100.
The high-voltage circuit board unit 400 has a casing 401 for holding the circuit boards, and a retainer 404 for preventing the circuit boards from falling off the casing 401. The casing 401 holds a charging high-voltage circuit board 402 which is a circuit board for high-voltage power supply to the drum units 600 and a development high-voltage circuit board 403 which is a circuit board for high-voltage power supply to the development devices 143 (
The high-voltage power supply path unit 410 includes compression springs 420a to 420d as contacts having conduction paths for power supply from the high-voltage circuit boards and connected to the charging high-voltage circuit board 402 for electric continuity, and compression springs 421a to 421d as contacts that are connected to the drum units 600Bk, 600C, 600M, and 600Y for electric continuity. The compression springs 420a to 420d and the compression springs 421a to 421d are capable of conduction by connection with solder-plated soft copper wires (hereinafter, called jumper wires). The structure of connection among the compression springs 420a to 420d, the compression springs 421a to 421d, and the jumper wires 413a to 413d will be described below in detail. In the present exemplary embodiment, the jumper wires 413a to 413d are an example of conduction members, and the compression springs 420a to 420d are an example of coil springs.
The high-voltage power supply path unit 410 includes compression springs 422a to 422d as contacts to be in electric continuity with the development high-voltage circuit board 403, and compression springs 423a to 423d as contacts to be in electric continuity with the development devices 143Bk, 143C, 143M, and 143Y. The compression springs 422a to 422d and the compression springs 423a to 423d are electrically connected (continuous) with each other, respectively, via the jumper wires 414a to 414d.
The high-voltage circuit board unit 400 also includes, as illustrated in
The contact plate springs 405a to 405d are connected to the drum units 600Bk, 600C, 600M, and 600Y, respectively, via the high-voltage power supply path unit 410 and the contact plate springs 406a to 406d are connected to the paths to the development devices 143Bk, 143C, 143M, and 143Y, respectively, via the high-voltage power supply path unit 410.
In the present exemplary embodiment, the contact plate spring 405a is connected to the path to the drum unit 600Bk, the contact plate spring 405b is connected to the path to the drum unit 600C, the contact plate spring 405c is connected to the path to the drum unit 600M, and the contact plate spring 405d is connected to the path to the drum unit 600Y.
In the present exemplary embodiment, the contact plate spring 406a is connected to the path to the development device 143Bk, the contact plate spring 406b is connected to the path to the development device 143C, the contact plate spring 406c is connected to the path to the development device 143M, and the contact plate spring 406d is connected to the path to the development device 143Y.
The high-voltage circuit board unit 400 is fixed to the high-voltage power supply path unit 410 by fixing attachment surfaces 401a and 401b of the casing 401 via screws to tapped bosses 411a and 411b for screwing in the high-voltage power supply path unit 410. In this manner, when the high-voltage circuit board unit 400 is fixed to the high-voltage power supply path unit 410, the contact plate springs 405a to 405d and the contact plate springs 406a to 406d come into abutment with the compression springs 420a to 420d and the compression springs 422a to 422d, respectively, which leads to a connection state.
Next, the state of contact between the drum unit 600 and the high-voltage power supply path unit 410 will be described. The structures for contact between the drum units 600Bk, 600C, 600M, 600Y and the high-voltage power supply path unit 410 are the same. Hereinafter, the state of contact between the drum unit 600Bk for black and the high-voltage power supply path unit 410 will be described, and descriptions of contact states of the drum units 600C, 600M, and 600Y will be omitted.
The drum unit 600 is detachably attached to the image formation apparatus 100 by being guided on the drum rails 510 along the forward and backward direction (the Y direction in the drawing) of the image formation apparatus 100. In a state where the drum unit 600 is located at a position of attachment to the image formation apparatus 100, the contact 600a of the drum unit 600 and the compression spring 421a, which is a contact of the high-voltage power supply path unit 410, come into contact with each other. In this example, the position of attachment to the image formation apparatus 100 is a position where a coupling (not illustrated) in the drum unit 600 and a coupling (not illustrated) in the image formation apparatus 100 are coupled together. The photosensitive drum 141 of the drum unit 600 is rotated with a driving force from a driving unit (not illustrated) in the image formation apparatus 100 via the couplings at the position of attachment.
As above, in the state where the drum unit 600 is located at the position of attachment, the contact 600a and the compression spring 421a contact each other so that a charging roller (not illustrated) in the drum unit 600 is supplied with power to charge the photosensitive drum 141. The drum unit 600 is an example of a charging unit having a charging roller. In the present exemplary embodiment, the charging roller is supported by the drum unit 600. Alternatively, the photosensitive drum 141 and a unit supporting the charging roller may be separated.
Next, the high-voltage power supply path from the charging high-voltage circuit board 402 to the drum unit 600 will be described in detail.
As shown in
The high-voltage generated by the charging high-voltage circuit board 402 is delivered to the jumper wire 402a, which is a contact provided on the circuit board. The jumper wire 402a is in contact with the contact plate spring 405a provided on the high-voltage circuit board unit 400.
The compression spring 420a provided on the high-voltage power supply path unit 410 is in contact with the contact plate spring 405a. The compression spring 420a is in contact with one end side of the jumper wire 413a held by the high-voltage path holding member 411. The other end side of the jumper wire 413a is contact with the compression spring 421a, which is a contact on the drum side, provided in the high-voltage power supply path unit 410.
The compression spring 421a provided on the high-voltage power supply path unit 410 and the contact 600a of the drum unit 600 come into contact with each other to supply high-voltage power from the charging high-voltage circuit board 402 to the drum unit 600.
As above, in the present exemplary embodiment, the boundaries between the units are the compression springs that provide a structure for contact using a biasing force. Accordingly, even in a case where the relative positions of the units are shifted due to tolerances or the like, it is possible to secure continuity in a stable manner.
A high-voltage path configuration in the high-voltage power supply path unit 410 will now be described in detail.
The high-voltage path holding member 411 includes cylindrical guides 415a to 415d that hold the compression springs 420a to 420d in contact with the contact plate springs 405a to 405d of the high-voltage circuit board unit 400, and cylindrical guides 416a to 416d that hold the compression springs 422a to 422d in contact with the contact plate springs 406a to 406d.
Provided near the cylindrical guides 415a to 415d are reception surfaces 417a to 417d where the compression springs 420 are seated, grapple parts 425a to 425d that grapple the jumper wires 413a to 413d, and bosses 426a to 426d around which the jumper wires 413a to 413d are wound. Opening portions 427a to 427d necessary for processing and forming the grapple parts 425a to 425d are provided adjacent to the cylindrical guides 415a to 415d. The cylindrical guides 415a to 415d are an example of spring regulation parts that regulate the movement of the compression springs 420a to 420d in a direction orthogonal to the axial direction (extension/contraction direction or free-length direction) of the compression springs 420a to 420d.
Provided near the cylindrical guides 416a to 416d are reception surfaces 432a to 432d where the compression springs 422 are seated, grapple parts 435a to 435d that grapple the jumper wires 414a to 414d, bosses 436a to 436d around which the jumper wires 414a to 414d are wound, and opening parts 437a to 437d.
The jumper wires 413a to 413d and the jumper wires 414a to 414d are held in different paths by the high-voltage path holding member 411, but are substantially the same in basic configuration. Thus, hereinafter, the jumper wires 413a and 414a will be described in detail as an example, and description of the other jumper wires 413b to 413d and 414b to 414d will be omitted. The cylindrical guides 415a to 415d and 416a to 416d are an example of spring regulation parts that regulate the movement of the compression springs 420a to 420d in the direction orthogonal to the axial direction (extension/contraction direction or free-length direction) of the compression springs 420a to 420d and 422a to 422d.
As illustrated in
As illustrated in
As illustrated in
The compression spring 421a includes an arm part 421aa that protrudes radially outward from the cylindrical part of the spring. Similarly, the compression spring 423a includes an arm part 423aa that protrudes radially outward from the cylindrical part of the spring. Caps 440a to 440d and 441a to 441d are attached to the compression springs 421a to 421d and 423a to 423d, respectively, which are insulators to prevent leakage to the frame body 500 of the image formation apparatus 100. The cap 440a is attached to retain the arm part 421aa of the compression spring 421a illustrated in
Next, a structure of the high-voltage path holding member 411 for holding the compression springs by the cylindrical guides 415 will be described. First, as a comparative example, a structure of a conventional high-voltage path holding member 411x for holding a compression spring 480 by a cylindrical guide 415x will be described.
As illustrated in
However, as illustrated in
If, while being hooked on the cylindrical guide 415x at a position as illustrated in
Thus, in the present exemplary embodiment, description will be provided as to a compression spring 420 which is capable of preventing a compression spring and a jumper wire from becoming contactless even if the compression spring and the jumper wire are configured as separate parts.
In the description of the present exemplary embodiment, the compression spring 420d is taken as an example. However, the compression springs 420a to 420c and compression springs 422a to 422d described above are similar in shape to the compression spring 420d, and are engaged with the high-voltage path holding member 411 in similar configurations.
As illustrated in
As illustrated in
The first portion db1 of the arm part 420db extends from one end of the spring cylindrical part 420da seen in the free-length direction. The second portion db2 of the arm part 420db is formed by bending the arm part 420db at the first bend portion dbm1 in a direction toward the spring cylindrical part 420da with respect to the first portion db1 such that the angle formed between the second portion db2 and the first portion db1 becomes an acute angle. The third portion db3 of the arm part 420b is formed by bending the arm part 420db at the second bend portion dbm2 in a direction away from the spring cylindrical part 420da with respect to the second portion db2 such that the angle formed between the third portion db3 and the second portion db2 becomes substantially a right angle. The fourth portion db4 of the arm part 420db is formed by bending the arm part 420db at the third bend portion dbm3 in a direction of arrow Y with respect to the third portion db3 such that the angle formed between the fourth portion db4 and the third portion db3 becomes substantially a right angle. Substantially a right angle in the present exemplary embodiment indicates not only 90° but also includes a range of tolerances at the time of manufacture of parts. In the present exemplary embodiment, substantially a right angle is defined an angle between 85° and 95°.
The arm part 420db thus configured nips the reception surface 417d between the first portion db1 and the second portion db2. This regulates the movement of the compression spring 420d in the direction of arrow Y (the free-length direction and extension/contraction direction of the compression spring 420d) with respect to the reception surface 417d of the compression spring 420d. Accordingly, even when the compression spring 420d is radially rotated with respect to the cylindrical guide 415d or is pulled in the direction of arrow Y, the compression spring 420d has the arm part 420db engaged with the reception surface 417 so that the compression spring 420d can be prevented from falling off the cylindrical part of the high-voltage path holding member 411.
Next, a method of attaching the compression spring 420 to the high-voltage path holding member 411 according to the present exemplary embodiment will be described with reference to
The compression spring 420d is aligned with the high-voltage path holding member 411 such that the spring cylindrical part 420da is fitted into the cylindrical guide 415d in which the jumper wire 413d is wired, and is pushed into the reception surface 417d in the direction opposite to the direction of arrow Y. The movement of the compression spring 420d in the direction parallel to the reception surface 417d is regulated by the cylindrical guide 415d.
As the compression spring 420d is further pushed in, the third portion db3 of the arm part 420db of the compression spring 420d abuts on an edge line between the reception surface 417d and an end face 418d of the reception surface 417d.
In this example, the presence of the third bend portion dbm3 between the third portion db3 and the fourth portion db4 of the arm part 420db prevents the leading edge of the arm part from directly striking and getting caught on the reception surface 417d, which would lead to a degradation in the workability of assembly.
When the compression spring 420d is further pushed into the reception surface 417d from the state illustrated in
Since the compression spring 420d has the second bend portion dbm2 provided to form the third portion db3 extending in a direction away from the axis of the compression spring 420da, the arm part 420db naturally widens along the slope of the third portion db3 when the spring is pushed in. This improves the workability of assembly at the time of attaching the compression spring 420d to the cylindrical guide 415d of the high-voltage path holding member 411.
As the compression spring 420d is continuously pushed in, the second bend portion dbm2 between the second portion db2 and the third portion db3 comes over the end face 418d and enters the state illustrated in
As described above, by causing the second portion db2 of the arm part 420db to get caught on the back side 419d and nipping the reception surface 417d between the first portion db1 and the second portion db2 of the arm part 420db, the movement of the compression spring 420d with respect to the reception surface 417d in the axial direction of the spring cylindrical part 420da of the compression spring 420d (the extension/contraction direction and free-length direction of the spring cylindrical part 420da) can be regulated.
According to the configuration described above, even in a case where the spring cylindrical part 420da of the compression spring 420d is pulled, the compression spring 420d can be prevented from falling off the high-voltage path holding member 411 as compared to the conventional example illustrated in
In addition, in the state where the compression spring 420d is attached, the spring cylindrical part 420da of the compression spring 420d treads on the jumper wire 413d on the reception surface 417d, and the reception surface 417d is nipped by the arm part 420db to fix the compression spring 420d, and in the state where the high-voltage circuit board unit 400 is attached to the high-voltage path holding member 411, the compression spring 420d is biased to the jumper wire 413d to provide reliable contact between the compression spring 420d and the jumper wire 413d and secure continuity between the two.
The compression spring 420d has been described as an example of the present exemplary embodiment. However, the above-described compression springs 420a to 420c and compression springs 422a to 422d have similar shapes. Therefore, the above compression springs 420a to 420c and compression springs 422a to 422d can also be configured to be prevented from falling off the cylindrical guides 415b to 415d or 416a to 416d of the high-voltage path holding member 411 as described above.
As described above, configuring the jumper wires 413a to 413d and the compression springs 420a to 420d as separate parts improves the ease of assembling the contact members to the high-voltage path holding member 411. In addition, since the compression springs 420a to 420d are shaped as illustrated in
In the first exemplary embodiment, the movement of the compression spring 420 in the direction parallel to the reception surface (the direction orthogonal to the extension/contraction direction of the compression spring and the radial direction of the compression spring) is regulated by supporting the spring outer diameter by the cylindrical guide 415. However, the compression spring may be supported by another structure. A second exemplary embodiment will be described.
As illustrated in
Referring to
In the first exemplary embodiment, the first bend portion dbm1 is formed such that the angle between the first portion db1 and the second portion db2 of the arm part 420db of the compression spring 420 becomes an acute angle. However, the first bend portion dbm1 may be formed in another shape.
As illustrated in
The first portion fb1 of the arm part 420fb extends from one end of the spring cylindrical part 420fa in the free-length direction. The second portion fb2 of the arm part 420fb is formed by bending the arm part 420fb at the first bend portion fbm1 with respect to the first portion fb1 such that the angle formed between the second portion fb2 and the first portion fb1 becomes substantially a right angle. The third portion fb3 of the arm part 420fb is formed by bending the arm part 420fb at the second bend portion fbm2 in a direction toward the spring cylindrical part 420fa with respect to the second portion fb2 such that the angle formed between the third portion fb3 and the second portion fb2 becomes an obtuse angle. The fourth portion fb4 of the arm part 420fb is formed by bending the arm part 420fb at the third bend portion fbm2 in a direction away from the spring cylindrical part 420fa with respect to the third portion fb3 such that the angle formed between the fourth portion fb4 and the third portion fb3 becomes substantially a right angle. The fifth portion fb5 of the arm part 420fb is formed by bending the arm part 420fb at the fourth bend portion dbm4 in the direction of arrow Y with respect to the fourth portion fb4 such that the angle formed between the fifth portion fb5 and the fourth portion fb4 becomes substantially a right angle.
The thus configured arm part 420fb nips the reception surface 417 between the first portion fb1 and the third portion fb3. This regulates the movement of the compression spring 420f with respect to the reception surface 417 in a direction orthogonal to the horizontal direction (the free-length direction and extension/contraction direction of the compression spring 420f). Therefore, even in a case where the compression spring 420f is radially rotated with respect to the boss 490 or is pulled in the direction in which the compression spring 420f would fall off, the compression spring 420f can be prevented from falling off the high-voltage path holding member 411 because the reception surface 417 engages with the arm part 420fb. In the present exemplary embodiment, the first portion fb1, the first bend portion fbm1, the second portion fb2, the second bend portion fbm2, and the third portion fb3 are an example of a hook portion that engages with a portion of the high-voltage path holding member 411.
The arm part 420db in the first exemplary embodiment and the arm part 420fb in the second embodiment have angled hook portions. Alternatively, the hook portions may be arc-shaped as far as the hook portions engage with the back side 419d of the reception surface 417d of the high-voltage path holding member 411.
In the exemplary embodiments described above, the compression springs 420 constitute the contacts between the high-voltage circuit board unit 400 and the high-voltage power supply path unit 410 as an example. Alternatively, the compression springs provided at other positions may have the same shape as in the exemplary embodiments described above. For example, the compression springs 421 or the compression springs 423 that constitute the contact points between the high-voltage power supply path unit 410 and the detachably attached units such as the drum unit 600 or the development devices 143 may include arm parts of a similar shape. All the compression springs may have the same shape as in the exemplary embodiments described above or only the compression springs 420 may have the same shape as in the exemplary embodiments described above. Alternatively, only the compression springs 421 may have the same shape as in the exemplary embodiments described above or only the compression springs 423 may have the same shape as in the exemplary embodiments described above. In the exemplary embodiments described above, the high-voltage power supply paths are taken as an example. However, the present disclosure is not limited to this, and the compression springs described above may be used as contacts for grounding.
In the exemplary embodiments described above, the compression springs 420 contact the jumper wires 413 as conduction members for continuity. However, another form of conduction members may be used as far as the conduction members provide continuity with the compression springs 420. For example, metal plates may be used as parts to be in contact with the compression springs 420 and jumper wires may be brought into contact with the metal plates to provide continuity. In this manner, the conduction members may be formed not only from the jumper wires 413 but also by a plurality of parts.
According to the present disclosure, even in a case where coil springs are employed in electrical contact paths, it is possible to improve the workability during assembly and service maintenance.
While the present disclosure has been described with reference to exemplary embodiments, it is to be understood that the disclosure is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2020-153584, filed Sep. 14, 2020, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2020-153584 | Sep 2020 | JP | national |