This application claims priority from Japanese Patent Application Nos. 2022-140404 and 2022-140405 both filed on Sep. 2, 2022. The entire content of each of the priority applications is incorporated herein by reference.
An image forming apparatus that forms an image and fixes the image on a sheet is known.
An image forming apparatus includes a photosensitive drum, a development device, a transfer roller, a fuser, and a transfer material guide. The transfer material guide guides a transfer material (for example, a sheet) that has passed between the photosensitive drum and the transfer roller toward the fuser. The transfer material guide is movable to a retracted position to allow bending (deflection) of the transfer material.
In the image forming apparatus described above, a solenoid or the like for moving the transfer material guide to the retracted position is arranged below the transfer material guide.
Thus, it is difficult to suppress an increase in size of the image forming apparatus.
In view of the foregoing, an example of an object of this disclosure is to provide an image forming apparatus configured to stably convey a sheet between a transfer nip and a fixing nip while suppressing an increase in size.
Another image forming apparatus includes a photosensitive drum, a development device, a transfer roller, a fuser, a first guide section, and a conductive member. The first guide section guides a sheet having passed between the photosensitive drum and the transfer roller toward the fuser. The first guide section has an inclined surface that faces the sheet that has passed between the photosensitive drum and the transfer roller. The inclined surface has a plurality of ribs. The conductive member is disposed between the ribs.
In the image forming apparatus described above, there are cases where it is desired that the first guide section be located further downward in order to allow bending of the sheet conveyed from the transfer roller toward the fuser.
However, if the first guide section is located downward, the first guide section is separated from the sheet having passed between the photosensitive drum and the transfer roller. Thus, as the first guide section is located further downward, it becomes more difficult to draw the sheet that has passed between the photosensitive drum and the transfer roller toward the first guide section.
In view of the foregoing, another example of an object of this disclosure is to provide an image forming apparatus configured to reliably draw a sheet that has passed through a transfer nip toward a chute while allowing the sheet to bend between the transfer nip and the fixing nip.
According to one aspect, this specification discloses an image forming apparatus. The image forming apparatus includes a photosensitive drum, a development device, a transfer roller, a fuser, a chute, a drive source, and a reciprocating mechanism. The photosensitive drum is rotatable about an axis extending in a first direction. The development device is configured to supply toner to the photosensitive drum. The transfer roller is configured to transfer toner on the photosensitive drum to a sheet. The transfer roller is located on one side of the photosensitive drum in a second direction crossing the first direction. The transfer roller is configured to contact the photosensitive drum. The fuser is configured to fix toner on the sheet. The fuser includes a heater configured to heat the sheet and a pressure roller configured to press the sheet. The chute is located between the transfer roller and the fuser in a third direction crossing both the first direction and the second direction. The chute causes the sheet having passed through a transfer nip to be directed toward a fixing nip. The transfer nip is a nip between the photosensitive drum and the transfer roller. The fixing nip is a nip between the heater and the pressure roller. The chute is movable in the second direction between a first position and a second position shifted from the first position toward the one side in the second direction. The chute located at the second position is farther away from an imaginary plane than the chute located at the first position, the imaginary plane passing through the transfer nip and the fixing nip. The reciprocating mechanism is located on an other side of the chute in the second direction. Thus, the reciprocating mechanism is arranged efficiently by utilizing a space between the photosensitive drum and the fuser. Thus, an increase in the size of the image forming apparatus in the second direction is suppressed. The reciprocating mechanism is configured to reciprocate by drive force from the drive source and to press the chute to move between the first position and the second position. Thus, the sheet is stably conveyed between the transfer nip and the fixing nip.
According to another aspect, this specification discloses an image forming apparatus. The image forming apparatus includes a photosensitive drum, a development device, a transfer roller, a fuser, a chute, and a conductive member. The photosensitive drum is rotatable about an axis extending in a first direction. The development device is configured to supply toner to the photosensitive drum. The transfer roller is configured to transfer toner on the photosensitive drum to a sheet. The transfer roller is located on one side of the photosensitive drum in a second direction crossing the first direction. The transfer roller is configured to contact the photosensitive drum. The fuser is configured to fix toner on the sheet. The fuser includes a heater configured to heat the sheet and a pressure roller configured to press the sheet. The chute is located between the transfer roller and the fuser in a third direction crossing both the first direction and the second direction. The chute causes the sheet having passed through a transfer nip to be directed toward a fixing nip. The transfer nip is a nip between the photosensitive drum and the transfer roller. The fixing nip is a nip between the heater and the pressure roller. The chute is movable in the second direction between a first position and a second position shifted from the first position toward the one side in the second direction. The chute located at the second position is farther away from an imaginary plane than the chute located at the first position, the imaginary plane passing through the transfer nip and the fixing nip. The conductive member is located on a surface of the chute on an other side in the second direction. The chute is configured to move from the first position to the second position after a leading end of the sheet reaches the chute. Thus, the sheet having passed through the transfer nip is attracted toward the conductive member on the chute while allowing the sheet to bend between the transfer nip and the fixing nip.
An image forming apparatus 1 includes a main housing 2, a sheet storage portion 3, a photosensitive drum 4, a charger 5, an exposure device 6, a development device 7, a transfer roller 8, and a fuser (fixing device) 9.
1.1 Main Housing 2
The main housing 2 accommodates the sheet storage portion 3, the photosensitive drum 4, the charger 5, the exposure device 6, the development device 7, the transfer roller 8, and the fuser 9.
1.2 Sheet Storage Portion 3
The sheet storage portion 3 is configured to store sheets S therein. The sheet S is, for example, printing paper. The sheet S in the sheet storage portion 3 is conveyed toward the photosensitive drum 4.
1.3 Photosensitive Drum 4
The photosensitive drum 4 extends in a first direction. The photosensitive drum 4 has a cylindrical shape. The photosensitive drum 4 is rotatable about an axis A1. The axis A1 extends in the first direction.
1.4 Charger 5
The charger 5 charges a circumferential surface of the photosensitive drum 4. In this embodiment, the charger 5 is a scorotron charger. The charger 5 may be a charging roller.
1.5 Exposure Device 6
The exposure device 6 exposes the circumferential surface of the photosensitive drum 4 charged by the charger 5. The exposure device 6 is specifically a laser scan unit. The exposure device 6 may be an LED array.
1.6 Development Device 7
The development device 7 supplies toner to the circumferential surface of the photosensitive drum 4. Specifically, the development device 7 supplies toner to the circumferential surface of the photosensitive drum 4 exposed by the exposure device 6. The development device 7 includes a development housing 71 and a development roller 72.
1.6.1 Development Housing 71
The development housing 71 is configured to contain toner.
1.6.2 Development Roller 72
The development roller 72 is configured to supply the toner in the development housing 71 to the circumferential surface of the photosensitive drum 4. The development roller 72 contacts the photosensitive drum 4. The development roller 72 extends in the first direction. The development roller 72 has a cylindrical shape. The development roller 72 is rotatable about an axis A2. The axis A2 extends in the first direction.
1.7 Transfer Roller 8
The transfer roller 8 transfers the toner on the circumferential surface of the photosensitive drum 4 onto the sheet S. The transfer roller 8 is located on one side of the photosensitive drum 4 in a second direction. The second direction crosses the first direction. The transfer roller 8 contacts the photosensitive drum 4. The sheet S in the sheet storage portion 3 is conveyed to the fuser 9 through a transfer nip N1. The transfer nip N1 is a nip between the photosensitive drum 4 and the transfer roller 8. The transfer roller 8 transfers the toner on the circumferential surface of the photosensitive drum 4 onto the sheet S passing through the transfer nip N1. The transfer roller 8 extends in the first direction. The transfer roller 8 has a cylindrical shape. The transfer roller 8 is rotatable about an axis A3. The axis A3 extends in the first direction.
1.8 Fuser 9
The fuser 9 is located away from the transfer roller 8 in a third direction. The third direction crosses both the first direction and the second direction. The fuser 9 heats and presses the sheet S on which the toner has been transferred, thereby fixing the toner onto the sheet S. As shown in
Next, details of the fuser 9 will be described.
As shown in
2.1 Heating Unit 91
The heating unit 91 heats the sheet S on which toner has been transferred. The heating unit 91 includes a belt 911, a heater 912, and a holder 913.
2.1.1 Belt 911
The belt 911 heats the sheet S on which the toner has been transferred. The belt 911 is tubular. The belt 911 extends in the first direction. The belt 911 is movable with respect to the heater 912. The belt 911 is rotatable around the holder 913. The belt 911 has an inner surface S1 and an outer surface S2.
2.1.2 Heater 912
The heater 912 heats the belt 911. The heater 912 is located inside the belt 911. The heater 912 contacts the inner surface S1 of the belt 911. The heater 912 is plate-shaped. The heater 912 extends in the first direction. Specifically, the heater 912 has a base board and a heating element. The base board is made of metal such as stainless steel, for example. The surface of the base board is covered with an insulating layer. The heating element is located on the insulating layer of the base board. The heating element generates heat when energized. The heating element is a resistance heating element. The heating element is made of, for example, a silver-palladium alloy.
2.1.3 Holder 913
The holder 913 is located inside the belt 911. The holder 913 supports the heater 912. The holder 913 is made of resin.
2.2 Pressure Roller 92
The pressure roller 92 contacts the outer surface S2 of the belt 911. The pressure roller 92 presses the sheet S passing through a fixing nip N2 toward the heater 912. The fixing nip N2 is a nip between the belt 911 of the heating unit 91 and the pressure roller 92. The fixing nip N2 is located on the other side of the transfer nip N1 in the second direction. The pressure roller 92 rotates by receiving power from a motor (not shown) inside the main housing 2. The belt 911 of the heating unit 91 rotates by following rotation of the pressure roller 92. The pressure roller 92 is a rubber roller. Specifically, the pressure roller 92 includes a roller core 921 and a rubber layer 922.
The roller core 921 extends in the first direction. The roller core 921 has a cylindrical shape. The roller core 921 is made of metal.
The rubber layer 922 is located on the circumferential surface of the roller core 921. The rubber layer 922 covers the circumferential surface of the roller core 921. The rubber layer 922 extends in the first direction and in the circumferential direction of the roller core 921.
2.3 Fixing Guide 93
The fixing guide 93 guides the sheet S entering the fixing nip N2 to the fixing nip N2. The fixing guide 93 extends in the third direction. The fixing guide 93 is inclined with respect to an imaginary plane I passing through the transfer nip N1 and the fixing nip N2. The fixing guide 93 has one end 93A and an other end 93B in the third direction. The other end 93B is located between the one end 93A and the fixing nip N2 in the third direction. The fixing guide 93 approaches the imaginary plane I from the one end 93A toward the other end 93B in the third direction.
Next, details of the image forming apparatus 1 will be described with reference to
In the image forming apparatus 1, the conveyance speed of the sheet S in the fuser 9 is set slower than the conveyance speed of the sheet S by the photosensitive drum 4 and the transfer roller 8. This is to prevent the fuser 9 from pulling the sheet S passing through the transfer nip N1 in a state where the sheet S that has entered the fixing nip N2 has not passed through the transfer nip N1 (see
In particular, in a case where a rubber roller is employed as the pressure roller 92 as in the fuser 9 of this embodiment, the rubber layer 922 is heated by the heating unit 91 and the rubber layer 922 expands, and the circumferential speed of the pressure roller 92 may increase. If the circumferential speed of the pressure roller 92 increases, the conveyance speed of the sheet S in the fuser 9 increases. For this reason, the conveyance speed of the sheet S in the fuser 9 is set even slower than the conveyance speed of the sheet S by the photosensitive drum 4 and transfer roller 8, so that the fuser 9 does not pull the sheet S passing through the transfer nip N1 even when the conveyance speed of the sheet S in the fuser 9 increases.
Thus, as shown in
Here, in a case where a chute is fixed away from the imaginary plane I so as to allow the bending of the sheet S, the chute is separated from the imaginary plane I. Thus, the chute cannot support the sheet S before the leading edge of the sheet S enters the fixing nip N2.
Then, there is a possibility that a failure occurs such as the sheet S being jammed between the transfer nip N1 and the fixing nip N2 before the leading edge of the sheet S enters the fixing nip N2.
In this regard, in the image forming apparatus 1, as shown in
As shown in
As shown in
3.1 First Frame 11 and Second Frame 12
As shown in
The second frame 12 is located inside the main housing 2. The second frame 12 is located apart from the first frame 11 in the first direction. The second frame 12 extends in the second direction and the third direction. The second frame 12 supports the drive source 20. The second frame 12 supports the other end of the duct 14 in the first direction.
3.2 Fan 13
The fan 13 is attached to the first frame 11. The fan 13 faces an air discharge port 2A of the main housing 2. The fan 13 is located between the air discharge port 2A and the duct 14 in the first direction. The fan 13 sends the air in the duct 14 toward the air discharge port 2A. Thereby, the fan 13 discharges the air in the duct 14 through the air discharge port 2A.
3.3 Duct 14
As shown in
3.3.1 Duct Body 141
As shown in
As shown in
As shown in
As shown in
3.3.2 Contact Portion 142
As shown in
3.3.3 Attachment Portion 143
As shown in
3.4 Chute 15
As shown in
As shown in
As shown in
In a state where the chute 15 is located at the first position, the second end E2 of the chute 15 is separated from the fixing guide 93. In a state where the chute 15 is located at the first position, the second end E2 of the chute is located between the transfer nip N1 and the other end 93B of the fixing guide 93 in the second direction. In a state where the chute 15 is located at the first position, the transfer nip N1, the second end E2 of the chute 15, and the fixing nip N2 are aligned along the imaginary plane I. In a state where the chute 15 is located at the first position, the second end E2 of the chute 15 is located between the transfer nip N1 and the fixing nip N2 in the second direction. This allows the second end E2 of the chute 15 to support the leading edge of the sheet S near the fixing nip N2 in the second direction in a state where the chute 15 is located at the first position. Thus, the leading edge of the sheet S passes near the imaginary plane I toward the fixing nip N2. As a result, the leading edge of the sheet S smoothly enters the fixing nip N2.
As shown in
As shown in
The chute body 151 extends in the first direction and the third direction. The chute body 151 has a plate shape. The chute body 151 has one surface and an other surface in the second direction.
The plurality of ribs 152 are located on the other surface of the chute body 151 in the second direction. The plurality of ribs 152 are arranged at intervals in the first direction. Each of the plurality of ribs 152 protrudes from the other surface of the chute body 151 in the second direction. Each of the plurality of ribs 152 extends in the third direction.
The contact portion 153 is located at the other end of the chute 15 in the first direction. The contact portion 153 is located on the other side of the chute body 151 in the first direction. The contact portion 153 extends in the first direction. The contact portion 153 extends from the other end of the chute body 151 in the first direction. As shown in
3.5 Conductive Member 16
As shown in
3.6 Torsion Springs 17A, 17B
The torsion spring 17A is attached to one end of the chute 15 in the first direction. Specifically, the torsion spring 17A is attached to one end of the chute body 151 in the first direction. The torsion spring 17A presses the chute 15 from the second position (see
The torsion spring 17B is attached to the other end of the chute 15 in the first direction. Specifically, the torsion spring 17B is attached to the other end of the chute body 151 in the first direction. The torsion spring 17B presses the chute 15 from the second position (see
3.7 Support Frame 18
As shown in
3.8 Static Eliminator 19
As shown in
3.9 Drive Source 20
As shown in
3.10 Movement Mechanism 21
As shown in
As shown in
Specifically, the movement mechanism 21 presses the chute 15 from the other side in the second direction, thereby moving the chute 15 from the first position to the second position against the force of the torsion springs 17A and 17B (see
The movement mechanism 21 allows the chute 15 to move from the second position to the first position by releasing the pressure on the chute 15. Thus, when the movement mechanism 21 releases the pressure on the chute 15, the chute 15 moves from the second position to the first position due to the force of the torsion springs 17A and 17B. Thus, the movement mechanism 21 is an example of a reciprocating mechanism that causes the chute 15 to reciprocate between the first position and the second position.
As shown in
3.10.1 Attachment 210
The first member 211, the second member 212, and the pull spring 213 are attached to the attachment 210. The attachment 210 is attached to the attachment portion 143 of the duct 14 in a state where the first member 211, the second member 212, and the pull spring 213 are attached. The attachment 210 extends in the first direction and the second direction. The attachment 210 has a flat plate shape.
3.10.2 First Member 211
The first member 211 is movable in the first direction. The first member 211 is connected to the plunger 202 of the drive source 20. Specifically, the first member 211 extends in the first direction. The first member 211 has one end 211A and an other end 211B in the first direction. The one end 211A of the first member 211 in the first direction has a hook shape. The other end 211B of the first member 211 in the first direction is connected to the plunger 202 of the drive source 20.
As shown in
3.10.3 Second Member 212
As shown in
Specifically, as shown in
As shown in
As shown in
The rotation shaft 212A is located at one end of the second member 212 in the first direction. The rotation shaft 212A is located away from the second frame 12 in the first direction. The rotation shaft 212A extends in the third direction. The rotation shaft 212A has a cylindrical shape.
As shown in
In a state where the movement mechanism 21 releases the pressure on the chute 15, the second arm 212C extends in the second direction from the rotation shaft 212A toward the first member 211. The one end 211A of the first member 211 in the first direction is hooked on the second arm 212C. Thereby, the second member 212 is connected to the first member 211.
A distance L1 between the axis A11 and a connection portion P1 between the third member 214 and the first arm 212B is longer than a distance L2 between the axis A11 and a contact portion P2 between the first member 211 and the second arm 212C. Thereby, the distance over which the first arm 212B moves the third member 214 is made longer than the distance over which the first member 211 moves the second arm 212C. Thus, when the movement mechanism 21 presses the chute 15, the moving distance of the third member 214 is made longer than the moving distance of the first member 211.
The third arm 212D extends from the rotation shaft 212A. In a state where the movement mechanism 21 releases the pressure on the chute 15, the third arm 212D is located on the opposite side of the drive source 20 with respect to the second arm 212C in the first direction.
3.10.4 Pull Spring 213
As shown in
3.10.5 Third Member 214
As shown in
3.11 Conveyance Roller 22
As shown in
3.12 Sensors 23A and 23B
The sensor 23A is located on the opposite side of the transfer roller 8 with respect to the conveyance roller 22 in the third direction. The sensor 23A detects the sheet S.
The sensor 23B is located between the conveyance roller 22 and the transfer roller 8 in the third direction. The sensor 23B detects the sheet S.
3.13 Controller 24
As shown in
Specifically, as shown in
Specifically, when the image forming apparatus 1 executes print processing, the sheet S is conveyed by the conveyance roller 22 toward the transfer nip N1. At this time, the leading edge of the sheet S contacts the sensor 23B. Then, the sensor 23B changes from an OFF state to an ON state.
As shown in
As shown in
As shown in
By locating the chute 15 at the second position after the sheet S reaches the fuser 9, as shown in
After the sheet S passes through the transfer nip N1, the controller 24 moves the chute 15 from the second position to the first position (see
Specifically, when the trailing edge of the sheet S separates from the sensor 23B, the sensor 23B changes from the ON state to the OFF state.
As shown in
Then, as shown in
As shown in
As shown in
As shown in
As shown in
(1) According to the image forming apparatus 1, as shown in
Thus, the movement mechanism 21 is arranged efficiently by utilizing the space between the photosensitive drum 4 and the fuser 9.
This suppresses an increase in the size of the image forming apparatus 1 in the second direction, compared with a case where the chute 15 is located on one side of the imaginary plane I in the second direction and a movement mechanism is located on one side of the chute 15 in the second direction.
As a result, the sheet S is stably conveyed between the transfer nip N1 and the fixing nip N2 while suppressing an increase in the size of the image forming apparatus 1 in the second direction.
(2) According to the image forming apparatus 1, as shown in
Thus, the duct 14 between the photosensitive drum 4 and the fuser 9 is utilized to position the chute 15 at the first position.
Thus, the positional accuracy of the chute 15 with respect to the fuser 9 is ensured with a simple configuration.
(3) According to the image forming apparatus 1, as shown in
This allows the second end E2 of the chute 15 to support the leading edge of the sheet S near the fixing nip N2 in the second direction, in a state where the chute 15 is located at the first position.
This allows the leading edge of the sheet S to smoothly enter the fixing nip N2.
(4) According to the image forming apparatus 1, as shown in
This allows the sheet S having entered the fixing nip N2 to bend farther toward one side in the second direction than the transfer nip N1 in a state where the chute 15 is located at the second position.
(5) According to the image forming apparatus 1, as shown in
Thus, as shown in
Thus, the moving distance of the third member 214 is made longer than the moving distance of the first member 211 depending on the radius of rotation of the second member 212.
This resultantly reduces the space for moving the first member 211 and suppresses an increase in the size of the image forming apparatus 1.
(6) According to the image forming apparatus 1, as shown in
Thus, the space inside the duct 14 is utilized to arrange the movement mechanism 21.
As a result, an increase of the size of the image forming apparatus 1 is further suppressed.
(7) According to the image forming apparatus 1, as shown in
Thus, although a part of the movement mechanism 21 is located inside the duct 14,
the air between the photosensitive drum 4 and the fuser 9 is taken into the duct 14 through the space between the movement mechanism 21 and the first frame 11, and the air is discharged by the fan 13.
(8) According to the image forming apparatus 1, as shown in
Thus, as shown in
(9) According to the image forming apparatus 1, as shown in
After that, as shown in
Thus, the chute 15 is located at the second position in a state where the sheet S is attracted to the chute 15.
As a result, as shown in
(10) According to the image forming apparatus 1, as shown in
Thus, the conductive member 16 is grounded by using the torsion spring 17A for moving the chute 15 from the second position to the first position.
Thus, the conductive member 16 is grounded while suppressing an increase in the number of parts.
While the invention has been described in conjunction with various example structures outlined above and illustrated in the figures, various alternatives, modifications, variations, improvements, and/or substantial equivalents, whether known or that may be presently unforeseen, may become apparent to those having at least ordinary skill in the art. Accordingly, the example embodiments of the disclosure, as set forth above, are intended to be illustrative of the invention, and not limiting the invention. Various changes may be made without departing from the spirit and scope of the disclosure. Thus, the disclosure is intended to embrace all known or later developed alternatives, modifications, variations, improvements, and/or substantial equivalents. Some specific examples of potential alternatives, modifications, or variations in the described invention are provided below. In the modifications described below, the same reference numerals are given to the same members as in the embodiment described above, and the description thereof is omitted.
(1) As shown in
In a state where the chute 15 is located at the second position, the first guide 101 guides the sheet S to the fixing nip N2. In a state where the chute 15 is located at the second position, the first guide 101 is located between the chute 15 and the fixing nip N2 in the third direction. The first guide 101 extends in the third direction. The first guide 101 is inclined with respect to the imaginary plane I. The first guide 101 has a third end E3 and a fourth end E4 in the third direction. The fourth end E4 is located between the third end E3 and the fixing nip N2 in the third direction. The first guide 101 approaches the imaginary plane I from the third end E3 toward the fourth end E4 in the third direction. In a state where the chute 15 is located at the second position, the second end E2 of the chute 15 is located between the third end E3 of the first guide 101 and the fourth end E4 of the first guide 101 in the second direction. This suppresses the leading edge of the sheet S being jammed between the chute 15 and the first guide 101 when the leading edge of the sheet S is conveyed from the chute 15 to the first guide 101.
In a state where the chute 15 is located at the second position, the second guide 102 guides the sheet S to the fixing nip N2 in cooperation with the first guide 101. The second guide 102 is located between the first guide 101 and the fixing nip N2 in the third direction. The second guide 102 extends in the third direction. The second guide 102 is inclined with respect to the imaginary plane I. The second guide 102 has a fifth end E5 and a sixth end E6 in the third direction. The sixth end E6 is located between the fifth end E5 and the fixing nip N2. The second guide 102 approaches the imaginary plane I from the fifth end E5 toward the sixth end E6 in the third direction. The fourth end E4 of the first guide 101 is located between the fifth end E5 of the second guide 102 and the sixth end E6 of the second guide 102 in the second direction. This suppresses the leading edge of the sheet S being jammed between the first guide 101 and the second guide 102 when the leading edge of the sheet S is conveyed from the first guide 101 to the second guide 102.
In this modification, too, the same effects as the above-described embodiment are obtained.
(2) The development device 7 may be a development cartridge. The image forming apparatus 1 may include a drum cartridge including the photosensitive drum 4, the charger 5, and the transfer roller 8. The drum cartridge is attachable to and detachable from the main housing 2. The development cartridge is attachable to and detachable from the drum cartridge or the main housing 2.
In this case, the fuser 9 may include a shutter. The shutter opens and closes an opening 9A of the fuser 9 (see
(3) The fuser 9 may include a pressure belt as an example of a pressure device instead of the pressure roller 92.
Number | Date | Country | Kind |
---|---|---|---|
2022-140404 | Sep 2022 | JP | national |
2022-140405 | Sep 2022 | JP | national |