This application is based on and claims the benefit of priority from Japanese patent application No. 2014-167075 filed on Aug. 20, 2014, the entire contents of which are incorporated herein by reference.
The present disclosure relates to a fixing device fixing a toner image on a recording medium and an image forming apparatus including the fixing device.
Conventionally, an electrographic image forming apparatus, such as a copying machine, a printer, a facsimile or a multifunction peripheral, includes a fixing device fixing a toner image on a recording medium, such as a sheet.
For example, there is a fixing device including a fixing belt, a pressuring member configured to come into pressure contact with the fixing belt so as to form a fixing nip and a heat source configured to heat the fixing belt.
With regard to the fixing device with above-mentioned configuration, when rotation of the fixing belt is stopped, a nearest part to the heat source of the fixing belt is heated by the heat source, and there is a concern that the fixing belt overshoots (overheats). Especially, when the rotation of the fixing belt is suddenly stopped according to occurrence of a JAM (paper jamming) or the like, the fixing belt is more likely to overshoot.
In accordance with an embodiment of the present disclosure, a fixing device includes a fixing belt, a pressuring member, a heat source, a moving member and a biasing member. The fixing belt is configured to be rotatable. The pressuring member is configured to be rotatable and to come into pressure contact with the fixing belt so as to form a fixing nip. The heat source is configured to radiate a radiant heat to the fixing belt. The moving member is movable between a first position where the moving member blocks the radiant heat from the heat source to a nearest part to the heat source of the fixing belt and a second position where the moving member does not block the radiant heat from the heat source to the nearest part to the heat source of the fixing belt. The moving member is configured to come into contact with the fixing belt. The biasing member is configured to bias the moving member to the first position. The moving member moves from the first position to the second position by a friction force between the fixing belt and the moving member against a biasing force of the biasing member when the fixing belt is rotated. The moving member moves from the second position to the first position by the biasing force of the biasing member when a rotation of the fixing belt is stopped.
In accordance with an embodiment of the present disclosure, an image forming apparatus includes the above-mentioned fixing device.
The above and other objects, features, and advantages of the present disclosure will become more apparent from the following description when taken in conjunction with the accompanying drawings in which a preferred embodiment of the present disclosure is shown by way of illustrative example.
First, with reference to
The printer 1 includes a box-like formed printer main body 2. In a lower part of the printer main body 2, a sheet feeding cartridge 3 storing sheets (recording mediums) is installed and, in a top face of the printer main body 2, an ejected sheet tray 4 is formed. To the top face of the printer main body 2, an upper cover 5 is openably/closably attached at a lateral side of the ejected sheet tray 4 and, below the upper cover 5, a toner container 6 is installed.
In an upper part of the printer main body 2, an exposure device 7 composed of a laser scanning unit (LSU) is located below the ejected sheet tray 4. Below the exposure device 7, an image forming part 8 is arranged. In the image forming part 8, a photosensitive drum 10 as an image carrier is rotatably arranged. Around the photosensitive drum 10, a charger 11, a development device 12, a transfer roller 13 and a cleaning device 14 are located along a rotating direction (refer to an arrow X in
Inside the printer main body 2, a conveying path 15 for the sheet is arranged. At an upstream end in the conveying path 15, a sheet feeding part 16 is positioned. At an intermediate stream part in the conveying path 15, a transferring part 17 composed of the photosensitive drum 10 and transfer roller 13 is positioned. At a downstream part in the conveying path 15, a fixing device 18 is positioned. At a downstream end in the conveying path 15, a sheet ejecting part 19 is positioned. Below the conveying path 15, an inversion path 20 for duplex printing is arranged.
Next, the operation of forming an image by the printer 1 having such a configuration will be described.
When the power is supplied to the printer 1, various parameters are initialized and initial determination, such as temperature determination of the fixing device 18, is carried out. Subsequently, in the printer 1, when image data is inputted and a printing start is directed from a computer or the like connected with the printer 1, image forming operation is carried out as follows.
First, the surface of the photosensitive drum 10 is electrically charged by the charger 11. Then, exposure corresponding to the image data is carried out to the photosensitive drum 10 by a laser light (refer to a two-dot chain line P in
On the other hand, a sheet picked up from the sheet feeding cartridge 3 by the sheet feeding part 16 is conveyed to the transferring part 17 in a suitable timing for the above-mentioned image forming operation, and then, the toner image on the photosensitive drum 10 is transferred onto the sheet in the transferring part 17. The sheet with the transferred toner image is conveyed to a downstream side in the conveying path 15 to be inserted to the fixing device 18, and then, the toner image is fixed onto the sheet in the fixing device 18. The sheet with the fixed toner image is ejected from the sheet ejecting part 19 to the ejected sheet tray 4. The toner remained on the photosensitive drum 10 is collected by the cleaning device 14.
Next, the fixing device 18 will be described in detail. Hereinafter, a near side of
As shown in
The fixing frame 21 (see
As shown in
The fixing belt 22 (refer to
As shown in
The pressuring roller 23 (refer to
The pressuring roller 23 is arranged at a lower side (an outer diameter side) of the fixing belt 22. The pressuring roller 23 comes into pressure contact with the fixing belt 22 and, between the fixing belt 22 and the pressuring roller 23, a fixing nip 43 is formed. The pressuring roller 23 is rotatably supported by the fixing frame 21. The pressuring roller 23 is connected with a drive source 44 composed of a motor or the like, and the drive source 44 is configured to rotate the pressuring roller 23.
The heater 24 (see
The reflecting member 25 (see
The pressing member 26 (see
The supporting member 27 (see
The moving member 28 (see
As shown in
As shown in
Each blocking member 29 (see
As shown in
As shown in
Each coil spring 30 (see
When a sheet is fixed to a toner image in the fixing device 18 applying the above-mentioned configuration, the drive source 44 rotates the pressuring roller 23 (see arrow B in
Further, when a toner image is fixed to a sheet, the heater 24 is activated. When the heater 24 is activated in this way, a radiant heat radiated from the heater 24 heats the fixing belt 22. When the sheet passes through the fixing nip 43 in this state, the sheet and the toner image are heated and pressured, so that the toner image is fixed to the sheet.
By the way, when a rotation of the fixing belt 22 is stopped in the fixing device 18 applying the above-mentioned configuration, there is a concern that the nearest part to the heater 24 of the fixing belt 22 is heated by the heater 24 and the fixing belt 22 overshoots (overheats). Especially, when the rotation of the fixing belt 22 is suddenly stopped according to occurrence of a JAM (sheet jamming) or the like, the fixing belt 22 is more likely to overshoot. Hence, in the present embodiment, the fixing belt 22 is prevented from overshooting as follows.
As shown in
By contrast with this, when an operation of fixing a toner image to a sheet is performed (when the sheet passes though the fixing device 18), as shown in
In a state where the moving member 28 is in the second position as described above, a radiant heat radiated from the heater 24 to the upper end part 41a of the passing region 41 (the nearest part to the heater 24 of the passing region 41) of the fixing belt 22 arrives at and is absorbed by the upper end part 41a of the passing region 41 of the fixing belt 22 without being blocked by the main body part 50 of the moving member 28 as indicated by arrow D in
Meanwhile, when the rotation of the fixing belt 22 is stopped, as shown in
Further, when the moving member 28 moves from the second position to the first position as described above, the second detecting part 37 does not detect that the moving member 28 is in the second position and the first detecting part 36 detects that the moving member 28 is in the first position. According to this, energization of the heater 24 is stopped, and radiation of a radiant heat from the heater 24 is also stopped.
In the present embodiment, as described above, during a rotation of the fixing belt 22, the heater 24 can heat the upper end part 41a of the passing region 41 of the fixing belt 22, so that it is possible to quickly rise the temperature of the fixing belt 22. Meanwhile, when a rotation of the fixing belt 22 is stopped, it is possible to prevent the heater 24 from heating the upper end part 41a of the passing region 41 of the fixing belt 22, so that it is possible to effectively prevent the passing region 41 of the fixing belt 22 from overshooting.
Further, by the friction force which works between the inner circumferential face of the fixing belt 22 and the outer circumferential face of the moving member 28, and the biasing force of each coil spring 30, the moving member 28 is rotated between the first position and the second position. Hence, compared to a case where the moving member 28 is rotated by using a drive source, such as a motor, it is possible to simplify a configuration of the fixing device 18.
Further, both when the fixing belt 22 is rotated and when the fixing belt 22 is not rotated, a radiant heat radiated from the heater 24 to the non-passing region 42 of the fixing belt 22 is blocked by the blocking members 29 as indicated by arrows F in
Further, the fixing device 18 includes the pressing member 26 which presses the fixing belt 22 to the lower side (the side of the pressuring roller 23), and the supporting member 27 which supports the pressing member 26, and each blocking member 29 is fixed to the supporting member 27. By applying such a configuration, it is possible to reduce a heat capacity of the fixing device 18 and fix each blocking member 29 by using a simple configuration.
Further, the curved part 53 of each blocking member 29 is provided at an interval from the inner circumferential face of the non-passing region 42 of the fixing belt 22. By applying such a configuration, it is possible to prevent a heat of the fixing belt 22 from escaping to each blocking member 29, so that the heater 24 can efficiently heat the fixing belt 22.
Further, the fixing device 18 includes the first detecting part 36 which can detect that the moving member 28 is in the first position, and, when the first detecting part 36 detects that the moving member 28 is in the first position, radiation of a radiant heat from the heater 24 is stopped. By applying such a configuration, it is possible to reliably prevent the heater 24 from heating the fixing belt 22 in a rotation stop state. Further, it is possible to detect whether or not the fixing belt 22 is rotating without using a complicated circuit, so that it is possible to simplify the configuration of the fixing device 18.
Furthermore, the fixing device 18 further includes the second detecting part 37 which can detect that the moving member 28 is in the second position. Consequently, it is possible to more reliably detect whether or not the fixing belt 22 is rotating.
Further, the heater 24 is arranged at an inner diameter side of the fixing belt 22, and the moving member 28 comes into contact with the inner circumferential face of the fixing belt 22 and is provided to be rotatable between the first position and the second position. By applying such a configuration, it is possible to effectively use a space at the inner diameter side of the fixing belt 22 as an arrangement space for the heater 24 and the moving member 28.
Further, the guide hole 34 which is curved in an arc shape is provided to each guide plate 33, and each extending part 51 of the moving member 28 is inserted into this guide hole 34. By applying such a configuration, it is possible to rotate the moving member 28 by using a simple configuration.
In the present embodiment, the position in the front and rear direction of the curved part 53 of each blocking member 29 does not overlap with the position in the front and rear direction of the main body part 50 of the moving member 28. In another embodiment, the position in the front and rear direction of the curved part 53 of each blocking member 29 may partially overlap with the position in the front and rear direction of the main body part 50 of the moving member 28. By applying such a configuration, it is possible to guide the moving member 28 by each blocking member 29 and to make a rotation orbit of the moving member 28 stable.
Further, in another embodiment, each extending part 51 of the moving member 28 may be guided by the curved part 53 of each blocking member 29. By applying such a configuration, it is possible to make a rotation orbit of the moving member 28 stable.
In the present embodiment, the fixing device 18 includes the first detecting part 36 and the second detecting part 37. In another embodiment, the fixing device 18 may include either one of the first detecting part 36 or the second detecting part 37
In the present embodiment, the curved part 53 of each blocking member 29 is provided at an interval from the inner circumferential face of the non-passing region 42 of the fixing belt 22. In another embodiment, the curved part 53 of each blocking member 29 may come into contact with the inner circumferential face of the non-passing region 42 of the fixing belt 22.
In the present embodiment, the heater 24 is arranged at an inner diameter side of the fixing belt 22, and the moving member 28 comes into contact with the inner circumferential face of the fixing belt 22. In another embodiment, a heat source, such as the heater 24 or the like, may be arranged at an outer diameter side of the fixing belt 22, and the moving member 28 may come into contact with the outer circumferential face of the fixing belt 22.
In the present embodiment, the halogen heater is used as a heater 24. In another embodiment, a ceramic heater or the like may be used as the heater 24.
In the present embodiment, the configuration of the present disclosure is applied to the printer 1. In another embodiment, the configuration of the present disclosure may be applied to another image forming apparatus, such as a copying machine, a facsimile or a multifunction peripheral.
While the present disclosure has been described with reference to the particular illustrative embodiments, it is not to be restricted by the embodiments. It is to be appreciated that those skilled in the art can change or modify the embodiments without departing from the scope and spirit of the present disclosure.
Number | Date | Country | Kind |
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2014-167075 | Aug 2014 | JP | national |
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2009-258203 | Nov 2009 | JP |