Patent · US11520253B2 · B2 · US
Imaging system
- (11) Publication number
- US11520253B2
- (21) Application number
- 17/051,754
- (22) Filing date
- 2019-06-05
- (30) Priority date
- 2018-07-20
- (43) Publication date
- 2022-12-06
- (45) Date of grant
- 2022-12-06
- (51) IPC
- B65G 39/16; B65H 5/02; G03G 15/00; G03G 15/16
- (52) CPC
- G03G Electrography; electrophotography; magnetography: 15/1615, 15/5054, 15/6567, 2215/00143
- B65G Transport or storage devices, e.g. conveyors for loading or tipping, shop conveyor systems or pneumatic tube conveyors: 39/16
- B65H Handling thin or filamentary material, e.g. sheets, webs, cables: 2404/25, 2404/255, 2404/2561, 2511/214, 2511/52, 5/021
- (73) Assignee
- Hewlett Packard Development Co LP
- (72) Inventors
- Koji Miyake
- (54) Title
- Imaging system
- (57) Abstract
An imaging system includes: a steering roller located between a first belt roller and a second belt roller, that is inclinable around a fulcrum; and a sensor to detect an amount of displacement of the steering roller due to an inclination of the steering roller. A controller may output a command signal when the amount of displacement of the steering roller exceeds a reference value.
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Claims (15)
- An imaging system comprising: a steering roller located between a first belt roller and a second belt roller, the steering roller being inclinable around a fulcrum; a sensor to detect an amount of displacement of the steering roller due to an inclination of the steering roller; and a controller to output a command signal to stop a rotation of the first belt roller when the amount of displacement of the steering roller exceeds a reference value.
- The imaging system according to claim 1, wherein the command signal to be output by the controller comprises a command to stop the rotation of the first belt roller.
- The imaging system according to claim 1, wherein the sensor detects a position of an end of the steering roller as the amount of displacement of the steering roller.
- The imaging system according to claim 1, wherein the sensor is a contact-type sensor to detect the amount of displacement by detecting a contact with an end of the steering roller.
- The imaging system according to claim 4, the controller to count a number of times of contact of the contact-type sensor with the end of the steering roller, and the controller to determine that the amount of displacement exceeds the reference value when the number of times of contact per time unit exceeds a determination threshold value, wherein the command signal includes a command to stop a rotation of the first belt roller.
- The imaging system according to claim 1, wherein the sensor is a distance sensor to detect the amount of displacement by measuring a distance between the distance sensor and an end of the steering roller.
- The imaging system according to claim 1, further comprising: a light-shielding piece that is displaceable in conjunction with a position of an end of the steering roller, wherein the sensor is a light-shielding type sensor to detect the amount of displacement by detecting light-shielding by the light-shielding piece.
- The imaging system according to claim 7, the controller to count the number of times of detection by the light-shielding type sensor, and the controller to determine when the number of times of detection per unit time exceeds the reference value, wherein the command signal includes a command to stop a rotation of the first belt roller.
- The imaging system according to claim 1, wherein the command signal includes a command to output a notification that the amount of displacement of the steering roller exceeds the reference value.
- The imaging system according to claim 1, further comprising: the first belt roller and the second belt roller around which an endless belt is wound; an adjustment member that moves in a longitudinal direction of the first belt roller in accordance with a shifting movement of the endless belt in the longitudinal direction of the first belt roller; and a link mechanism to incline the steering roller in response to a movement of the adjustment member.
- A transfer belt system, comprising: a pair of belt rollers including a first belt roller and a second belt roller; an endless belt being wound about the first belt roller and the second belt roller; a steering roller located between the first belt roller and the second belt roller, the steering roller being inclinable about a fulcrum to displace an end of the steering roller; and a sensor to detect the amount of displacement of the end of the steering roller, the sensor being a contact-type sensor to detect the amount of displacement by detecting a contact with an end of the steering roller.
- The transfer belt system according to claim 11, further comprising: a controller to output a command signal when the amount of displacement of the end of the steering roller exceeds a threshold value.
- A non-transitory memory device having instructions stored thereon that, in response to execution by a processor, cause the processor to perform operations comprising: detect an amount of displacement of a steering roller for an endless belt, due to an inclination of the steering roller; determine that the amount of displacement of the steering roller exceeds a reference value; and generate a command signal to stop a rotation of a first belt roller when the amount of displacement of the steering roller exceeds the reference value.
- The non-transitory memory device according to claim 13, wherein the command signal includes a command to stop the rotation of the first belt roller.
- The non-transitory memory device according to claim 13, wherein the command signal includes a command for a notification that the amount of displacement of the steering roller exceeds the reference value.
Description
An imaging system includes a belt driving device. The belt driving device includes a first belt roller and a second belt roller around which an endless belt is wound.
FIG. 1 is a front view of an example belt abnormality detection device for an imaging system.
FIG. 2 is a front view illustrating components of an example belt abnormality detection device including a contact-type sensor.
FIG. 3 is a front view illustrating components of an example belt abnormality detection device including a distance sensor.
FIG. 4 is a side view illustrating components an example belt abnormality detection device including a light-shielding type sensor.
FIG. 5 is a side view of components of an example belt driving device in an imaging system.
FIG. 6 is a plan view of an example belt driving device.
FIG. 7 is a plan view illustrating an example belt position adjustment mechanism.
FIG. 8 is a cross-sectional view illustrating of the example belt position adjustment mechanism taken along line VIII-VIII.
FIG. 9 is a side view illustrating components of an example belt position adjustment mechanism.
FIG. 10 is a cross-sectional view illustrating components of an example belt position adjustment mechanism.
FIG. 11 is a cross-sectional view of the components shown in FIG. 10, taken along line VI-VI.
FIG. 12 is a block diagram illustrating components of an imaging system including a controller of a belt abnormality detection device.
FIG. 13 is a flowchart illustrating an example procedure carried out by the controller.
Citations (11)
- JP2009139952A
- JP2012063427A
- JP2014016282A
- JP2014066841A
- JP2014106282A
- US9442410B2
- JP2016009161A
- JP2017049383A
- JP2017203805A
- JP2017203901A
- JP2018097355A
Record as JSON
{
"publication_number": "US11520253B2",
"country": "US",
"kind": "B2",
"title": "Imaging system",
"abstract": "An imaging system includes: a steering roller located between a first belt roller and a second belt roller, that is inclinable around a fulcrum; and a sensor to detect an amount of displacement of the steering roller due to an inclination of the steering roller. A controller may output a command signal when the amount of displacement of the steering roller exceeds a reference value.",
"claims": [
"1. An imaging system comprising: a steering roller located between a first belt roller and a second belt roller, the steering roller being inclinable around a fulcrum; a sensor to detect an amount of displacement of the steering roller due to an inclination of the steering roller; and a controller to output a command signal to stop a rotation of the first belt roller when the amount of displacement of the steering roller exceeds a reference value.",
"2. The imaging system according to claim 1, wherein the command signal to be output by the controller comprises a command to stop the rotation of the first belt roller.",
"3. The imaging system according to claim 1, wherein the sensor detects a position of an end of the steering roller as the amount of displacement of the steering roller.",
"4. The imaging system according to claim 1, wherein the sensor is a contact-type sensor to detect the amount of displacement by detecting a contact with an end of the steering roller.",
"5. The imaging system according to claim 4, the controller to count a number of times of contact of the contact-type sensor with the end of the steering roller, and the controller to determine that the amount of displacement exceeds the reference value when the number of times of contact per time unit exceeds a determination threshold value, wherein the command signal includes a command to stop a rotation of the first belt roller.",
"6. The imaging system according to claim 1, wherein the sensor is a distance sensor to detect the amount of displacement by measuring a distance between the distance sensor and an end of the steering roller.",
"7. The imaging system according to claim 1, further comprising: a light-shielding piece that is displaceable in conjunction with a position of an end of the steering roller, wherein the sensor is a light-shielding type sensor to detect the amount of displacement by detecting light-shielding by the light-shielding piece.",
"8. The imaging system according to claim 7, the controller to count the number of times of detection by the light-shielding type sensor, and the controller to determine when the number of times of detection per unit time exceeds the reference value, wherein the command signal includes a command to stop a rotation of the first belt roller.",
"9. The imaging system according to claim 1, wherein the command signal includes a command to output a notification that the amount of displacement of the steering roller exceeds the reference value.",
"10. The imaging system according to claim 1, further comprising: the first belt roller and the second belt roller around which an endless belt is wound; an adjustment member that moves in a longitudinal direction of the first belt roller in accordance with a shifting movement of the endless belt in the longitudinal direction of the first belt roller; and a link mechanism to incline the steering roller in response to a movement of the adjustment member.",
"11. A transfer belt system, comprising: a pair of belt rollers including a first belt roller and a second belt roller; an endless belt being wound about the first belt roller and the second belt roller; a steering roller located between the first belt roller and the second belt roller, the steering roller being inclinable about a fulcrum to displace an end of the steering roller; and a sensor to detect the amount of displacement of the end of the steering roller, the sensor being a contact-type sensor to detect the amount of displacement by detecting a contact with an end of the steering roller.",
"12. The transfer belt system according to claim 11, further comprising: a controller to output a command signal when the amount of displacement of the end of the steering roller exceeds a threshold value.",
"13. A non-transitory memory device having instructions stored thereon that, in response to execution by a processor, cause the processor to perform operations comprising: detect an amount of displacement of a steering roller for an endless belt, due to an inclination of the steering roller; determine that the amount of displacement of the steering roller exceeds a reference value; and generate a command signal to stop a rotation of a first belt roller when the amount of displacement of the steering roller exceeds the reference value.",
"14. The non-transitory memory device according to claim 13, wherein the command signal includes a command to stop the rotation of the first belt roller.",
"15. The non-transitory memory device according to claim 13, wherein the command signal includes a command for a notification that the amount of displacement of the steering roller exceeds the reference value."
],
"description_excerpt": "An imaging system includes a belt driving device. The belt driving device includes a first belt roller and a second belt roller around which an endless belt is wound.\n\nFIG. 1 is a front view of an example belt abnormality detection device for an imaging system.\n\nFIG. 2 is a front view illustrating components of an example belt abnormality detection device including a contact-type sensor.\n\nFIG. 3 is a front view illustrating components of an example belt abnormality detection device including a distance sensor.\n\nFIG. 4 is a side view illustrating components an example belt abnormality detection device including a light-shielding type sensor.\n\nFIG. 5 is a side view of components of an example belt driving device in an imaging system.\n\nFIG. 6 is a plan view of an example belt driving device.\n\nFIG. 7 is a plan view illustrating an example belt position adjustment mechanism.\n\nFIG. 8 is a cross-sectional view illustrating of the example belt position adjustment mechanism taken along line VIII-VIII.\n\nFIG. 9 is a side view illustrating components of an example belt position adjustment mechanism.\n\nFIG. 10 is a cross-sectional view illustrating components of an example belt position adjustment mechanism.\n\nFIG. 11 is a cross-sectional view of the components shown in FIG. 10, taken along line VI-VI.\n\nFIG. 12 is a block diagram illustrating components of an imaging system including a controller of a belt abnormality detection device.\n\nFIG. 13 is a flowchart illustrating an example procedure carried out by the controller.",
"cpc": [
"G03G 15/1615",
"B65G 39/16",
"B65H 2404/25",
"B65H 2404/255",
"B65H 2404/2561",
"B65H 2511/214",
"B65H 2511/52",
"B65H 5/021",
"G03G 15/5054",
"G03G 15/6567",
"G03G 2215/00143"
],
"ipc": [
"B65G 39/16",
"B65H 5/02",
"G03G 15/00",
"G03G 15/16"
],
"assignees": [
"Hewlett Packard Development Co LP"
],
"inventors": [
"Koji Miyake"
],
"filing_date": "2019-06-05",
"publication_date": "2022-12-06",
"grant_date": "2022-12-06",
"priority_date": "2018-07-20",
"application_number": "US-201917051754-A",
"family_id": "69164162",
"cited_by_count": 0,
"citations": [
"JP2009139952A",
"JP2012063427A",
"JP2014016282A",
"JP2014066841A",
"JP2014106282A",
"US9442410B2",
"JP2016009161A",
"JP2017049383A",
"JP2017203805A",
"JP2017203901A",
"JP2018097355A"
]
}
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