Nip forming member, fixing device and image forming apparatus

The nip forming member with a sealed anodized aluminum coating addresses sliding and deformation issues, ensuring high-quality images and a compact, lightweight fixing device for high-speed image formation.

JP7735751B2Active Publication Date: 2025-09-09RICOH CO LTD
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Patent Information

Application Number
JP2021153761
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-22
Publication Date
2025-09-09
Estimated Expiration
2041-09-22

AI Technical Summary

Technical Problem

Conventional nip forming members in fixing devices experience issues with maintaining good sliding properties, leading to poor image quality and increased torque due to deformation and lubricant loss, while also being bulky and heavy, which is unsuitable for high-speed image formation.

Method used

A nip forming member with an aluminum base and sealed anodized coating, having a thickness of 0.40 mm to 1.20 mm and anodized coating thickness of 22 μm to 45 μm with 20% or less thickness variation, ensuring uniformity and preventing lubricant loss and deformation.

Benefits of technology

The solution maintains good sliding properties, enabling high-quality image formation over a long period with a lightweight and compact fixing device.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Patent Text Reader

Abstract

To provide a nip formation member which can excellently keep the slidability with a belt and allows a fuser to be small and light-weight and perform high-quality image formation over a long term when used in the fuser.SOLUTION: A nip formation member 27 used in a fuser 20 comprises: an endless belt 21; a pressure member 22 which is provided on the outer side of the belt and opposed to the belt; a heating member 23 which heats the belt; and the nip formation member 27 which is provided on the inner side of the belt and forms a fixation nip between the belt and the pressure member. In the nip formation member, a base material is aluminum, an anodic oxide film to which pore-sealing is applied on a surface where at least the fixation nip is formed, the thickness of a portion where the fixation nip is formed is between 0.40 mm and 1.20 mm, inclusive, the thickness of the anodic oxide film to which the pore-sealing is applied on the surface where the fixation nip is formed is between 22 μm and 45 μm, inclusive, and the variation of the thickness is equal to or less than 20%.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a nip forming member, a fixing device, and an image forming apparatus. [Background technology]

[0002] Various image forming apparatuses using electrophotography have been devised and are well known as image forming apparatuses such as copiers, facsimiles, printers, and combination machines thereof. The image forming process involves forming an electrostatic latent image on the surface of a photosensitive drum, which is an image carrier, developing the electrostatic latent image on the photosensitive drum with a developer such as toner to make it visible, transferring the developed image to a recording medium (also called paper, recording paper, sheet, or recording material) using a transfer device to carry the image, and then fixing the toner image on the recording medium using a fixing device.

[0003] The fixing device includes a fixing member maintained at a predetermined temperature by, for example, a heating member, and a pressure member that is in pressure contact with the fixing member. Such a fixing device heats and fixes a recording medium carrying an unfixed toner image while sandwiching and conveying the recording medium in a nip portion formed by the pressure contact between the pressure member and the fixing member.

[0004] Among these fixing devices, a fixing device with a short warm-up time and low power consumption is known that has an endless belt (fixing belt), a pressure member that is provided on the outside of the belt and faces the belt, a heating member that heats the fixing belt, and a nip forming member that is provided inside the belt and forms a fixing nip between the belt and the pressure member (for example, Patent Document 1).

[0005] Known methods for heating the inner surface of the fixing belt include a method in which the pressure member doubles as a heating member and heats only the rear surface of the fixing nip, and a method in which areas other than the pressure member are heated using a lamp heater or the like. While the method of heating only the rear surface of the fixing nip is preferable because it consumes less energy, it has the disadvantage that the heated area is limited, making the temperature of the fixing nip unstable in image forming apparatuses with high printing speeds. On the other hand, the method of heating areas other than the rear surface of the fixing nip can heat a wide area of ​​the fixing belt, making it easier to stabilize the temperature of the fixing nip even in image forming apparatuses with high printing speeds, and is therefore highly preferable.

[0006] The nip forming member and the fixing belt slide with a lubricant interposed between them. Because the fixing belt reaches high temperatures, silicone oil, silicone grease, fluorine oil, and fluorine grease are used as lubricants.

[0007] The nip forming member is required to have sufficient mechanical strength because it is subjected to a large force from the pressure member during image formation. In addition, since the nip forming member is in contact with the inner surface of the fixing belt, it is desirable that the surface of the nip forming member be smooth.

[0008] Aluminum, which has good thermal conductivity, is lightweight, and inexpensive, is used for the nip forming member. Because aluminum is a relatively soft material among metals, using thick aluminum is necessary to make the nip forming member. However, even with thick aluminum, it has been difficult to meet the social needs of higher image formation speeds and longer device lifespans.

[0009] In response to this, for example, Patent Document 2 proposes a fixing device in which aluminum whose surface has been anodized is used as a nip forming member. Anodizing is a processing method for forming an anodic oxide film (aluminum oxide film) on the aluminum surface. The anodic oxide film formed by anodizing is very hard and has been thought to be suitable for nip forming members.

[0010] Generally, anodized aluminum coatings are made up of a collection of minute pores that extend vertically from the surface, giving them a high specific surface area. This allows them to blend well with lubricants, and they perform extremely well as nip-forming materials, especially under conditions where image formation is repeated continuously.

[0011] Patent Document 3 discloses a nip-forming member in which the diameter of the pores in the anodized film is smaller than the diameter of the thickener in the fluorine grease applied between the nip-forming member and the fixing belt. This is said to maintain good sliding properties between the inner surface of the film and the surface of the nip-forming member for a long period of time. Summary of the Invention [Problem to be solved by the invention]

[0012] However, conventional techniques have not provided a nip forming member that can maintain good sliding properties with the belt and, when used in a fixing device, can make the fixing device small, lightweight, and capable of forming high-quality images over a long period of time.

[0013] Therefore, the present invention provides a nip forming member that can maintain good sliding properties with a belt and, when used in a fixing device, can make the fixing device small, lightweight, and capable of forming high-quality images over a long period of time. [Means for solving the problem]

[0014] In order to solve the above-mentioned problems, the nip forming member of the present invention is a nip forming member used in a fixing device having an endless belt, a pressure member provided on the outside of the belt and facing the belt, a heating member that heats the belt, and a nip forming member provided on the inside of the belt and forming a fixing nip between the belt and the pressure member, wherein the nip forming member has an aluminum base material and a sealed anodized coating formed on at least the surface that forms the fixing nip, the thickness of the portion of the nip forming member that forms the fixing nip is 0.40 mm or more and 1.20 mm or less, the thickness of the sealed anodized coating formed on the surface that forms the fixing nip is 22 μm or more and 45 μm or less, and the thickness variation is 20% or less. [Effects of the Invention]

[0015] According to the present invention, a nip forming member can be provided that can maintain good sliding properties with a belt and, when used in a fixing device, can make the fixing device small, lightweight, and capable of forming high-quality images over a long period of time. [Brief explanation of the drawings]

[0016] [Figure 1] 1 is a schematic diagram illustrating an example of an image forming apparatus according to the present invention. [Figure 2] FIG. 2 is a schematic view illustrating an example of a fixing device according to the present invention. [Figure 3] FIG. 4 is a schematic view showing another example of a fixing device according to the present invention. [Figure 4] FIG. 4 is a schematic view showing another example of a fixing device according to the present invention. [Figure 5] 4 is an electron microscope photograph of an example of an anodized film on a surface of a nip forming member that forms a fixing nip. [Figure 6] 1 is an electron microscope photograph of an example of an anodized coating that has been subjected to a pore-sealing treatment on a surface of a nip forming member that forms a fixing nip. [Figure 7]10 is an electron microscope photograph of another example of an anodized coating that has been subjected to a pore-sealing treatment on the surface of the nip forming member that forms the fixing nip. [Figure 8] 1 is a schematic view illustrating an example of a nip forming member according to the present invention. [Figure 9] 5 is a schematic view showing another example of a nip forming member according to the present invention. FIG. DETAILED DESCRIPTION OF THE INVENTION

[0017] The nip forming member, fixing device, and image forming apparatus according to the present invention will be described below with reference to the drawings. Note that the present invention is not limited to the following embodiments, and other modifications, additions, corrections, deletions, and other changes can be made within the scope of what one skilled in the art can conceive. Any embodiment that achieves the functions and effects of the present invention is within the scope of the present invention.

[0018] In the prior art technology disclosed in Patent Document 2, the oil component of the lubricant applied between the nip forming member and the fixing belt gradually penetrates the minute pores in the anodized coating, causing problems such as oil shortage or an increase in the viscosity of the grease. When oil shortage occurs, the sliding ability between the nip forming member and the fixing belt significantly decreases, and the inner surface of the fixing belt is scraped, resulting in a deterioration in image quality. Furthermore, the scraping dust on the inner surface of the fixing belt causes a rapid increase in torque.

[0019] In particular, when fluorine grease is used as the lubricant, the lubricant is prone to running out of oil. Because the fluorine oil base oil undergoes large volume changes due to temperature, when the temperature of the fixing device drops to around room temperature after image formation is completed, the fluorine oil penetrates into the minute pores in the anodized film, causing the lubricant to run out of oil.

[0020] An anodic oxide film is formed by oxidizing the aluminum substrate. It is known that the thickness of an anodic oxide film is approximately twice the thickness of the aluminum in the oxidized portion in the direction perpendicular to the substrate. As a result, a large volume change occurs in the anodic oxide film when it is formed, which makes it prone to variations in thickness.

[0021] In this embodiment, anodizing aluminum may also be referred to as anodizing treatment or anodizing processing. Anodizing is a processing method for forming an anodized film (aluminum oxide film) on the surface of aluminum. The anodized film (aluminum oxide film) formed by anodizing aluminum may also be referred to as an anodized layer.

[0022] The anodized film formed by anodizing is very hard and was thought to be suitable for nip forming members. However, there is a large difference in strength between aluminum and anodized film, so if the thickness of the anodized film is uneven, the nip forming member will be more likely to deform as image formation is repeated. When the nip forming member deforms, image quality deteriorates and the inner surface of the fixing belt becomes more susceptible to abrasion, resulting in problems such as a sudden increase in torque due to the abrasives.

[0023] On the other hand, in the prior art of Patent Document 3, the diameter of the pores in the anodic oxide film is smaller than the diameter of the thickener, which is thought to make it difficult for the lubricant to run out of oil. However, although the smaller pores in the anodized film slow down the rate at which the oil component of the lubricant applied between the nip forming member and the fixing belt penetrates the fine pores in the anodized film, the oil runs out or the viscosity of the grease increases, which causes the inner surface of the fixing belt to be worn away, degrading image quality, and causing problems such as a rapid increase in torque due to the shavings on the inner surface of the fixing belt.

[0024] Furthermore, in Patent Document 3, as in Patent Document 2, if there is variation in the thickness of the anodized film, the nip forming member becomes more likely to deform as image formation is repeated. When the nip forming member deforms, image quality deteriorates and the inner surface of the fixing belt becomes more susceptible to abrasion, resulting in a problem of a rapid increase in torque due to the abrasives.

[0025] The present inventors have learned that pores in anodized films can be sealed by sealing the anodized aluminum. The inventors conducted an electron microscope observation of the anodized film surface before and after sealing. They found that, as shown in Figure 5 (discussed below), the entire surface of the anodized film is covered with minute pores. However, as shown in Figure 6 (discussed below), sealing the anodized film fills most of the pores and even the interiors of the few remaining holes.

[0026] The inventors have fabricated a fixing device using a nip-forming member made of an anodized aluminum coating that has been sealed. In this fixing device, the lubricant applied between the nip-forming member and the inner surface of the fixing belt almost never runs out of oil or the viscosity of the grease increases.

[0027] The present inventors have investigated various nip forming members with pore-sealing treatments on anodized aluminum coatings in order to develop a fixing device that can meet the social needs of higher image formation speeds and longer device life. As a result, they have found that the performance of these nip forming members varies widely.

[0028] Upon investigating the nip forming member in which the defect occurred, it was found that the cause was a small partial deformation of the nip forming member. When investigating the micro-deformation that occurs locally, we found that, as mentioned above, when an anodized film is formed on an aluminum surface, the anodized aluminum expands to approximately twice its original size to form the anodized film. Because the anodized film is hard, any variations in the thickness of the anodized film cause mechanical stress to build up, and this stress cannot be relieved even by sealing. Repeated image formation under these conditions resulted in micro-deformation of the nip forming member locally. This phenomenon can be solved by making the aluminum very thick, but making the aluminum thicker increases the size and weight of the fixing device, and is not preferable in terms of cost.

[0029] The present inventors have conducted extensive research into what a practical thickness of a nip forming member with a sealed anodized aluminum coating should be, and have found that it is important to make the thickness of the anodized aluminum coating uniform, as this applies mechanical stress to the nip forming member.

[0030] The nip forming member of the present invention is a nip forming member used in a fixing device having an endless belt, a pressure member provided on the outside of the belt and facing the belt, a heating member that heats the belt, and a nip forming member provided on the inside of the belt and forming a fixing nip between the belt and the pressure member, wherein the nip forming member has an aluminum base material and a sealed anodized coating formed on at least the surface that forms the fixing nip, the thickness of the portion of the nip forming member that forms the fixing nip is 0.40 mm or more and 1.20 mm or less, the thickness of the sealed anodized coating formed on the surface that forms the fixing nip is 22 μm or more and 45 μm or less, and the thickness variation is 20% or less.

[0031] According to the present invention, a nip forming member can be provided that can maintain good sliding properties with a belt and, when used in a fixing device, can make the fixing device small, lightweight, and capable of forming high-quality images over a long period of time.

[0032] It has been found that it is preferable to form an anodized film and seal the pores not only on the surface of the nip forming member facing the fixing belt but also on the opposite side and side of the fixing belt.

[0033] The present invention also provides a fixing device and an image forming apparatus equipped with the nip forming member of the present invention. The fixing device and image forming apparatus of the present invention are small and lightweight, and can form high-quality images over a long period of time.

[0034] First, the overall configuration and operation of an image forming apparatus according to an embodiment of the present invention will be described with reference to Fig. 1. The image forming apparatus 1 shown in Fig. 1 is a color laser printer, and four image forming units 4Y, 4M, 4C, and 4K are provided in the center of the device body. Each of the image forming units 4Y, 4M, 4C, and 4K has the same configuration, except that it contains developers of different colors: yellow (Y), magenta (M), cyan (C), and black (K), which correspond to the color separation components of a color image.

[0035] Specifically, each of the imaging units 4Y, 4M, 4C, and 4K includes a drum-shaped photoconductor 5 as a latent image carrier, a charging device 6 that charges the surface of the photoconductor 5, a developing device 7 that supplies toner to the surface of the photoconductor 5, and a cleaning device 8 that cleans the surface of the photoconductor 5. Note that in FIG. 1, only the photoconductor 5, charging device 6, developing device 7, and cleaning device 8 included in the black imaging unit 4K are labeled with reference numerals, and the reference numerals are omitted for the other imaging units 4Y, 4M, and 4C.

[0036] Below each of the imaging units 4Y, 4M, 4C, and 4K, an exposure device 9 is disposed to expose the surface of the photosensitive member 5. The exposure device 9 has a light source, a polygon mirror, an f-θ lens, a reflecting mirror, etc., and is configured to irradiate the surface of each photosensitive member 5 with laser light based on image data.

[0037] A transfer device 3 is disposed above each of the image forming units 4Y, 4M, 4C, and 4K. The transfer device 3 includes an intermediate transfer belt 30 as a transfer body, four primary transfer rollers 31 as primary transfer means, a secondary transfer roller 36 as secondary transfer means, a secondary transfer backup roller 32, a cleaning backup roller 33, a tension roller 34, and a belt cleaning device 35.

[0038] The intermediate transfer belt 30 is an endless belt, and is stretched around a secondary transfer backup roller 32, a cleaning backup roller 33, and a tension roller 34. Here, the rotation of the secondary transfer backup roller 32 causes the intermediate transfer belt 30 to run (rotate) in the direction indicated by the arrow in the figure.

[0039] The four primary transfer rollers 31 each sandwich the intermediate transfer belt 30 between themselves and the corresponding photosensitive member 5 to form a primary transfer nip. A power supply (not shown) is connected to each primary transfer roller 31, and a predetermined direct current (DC) voltage and / or alternating current (AC) voltage is applied to each primary transfer roller 31.

[0040] The secondary transfer roller 36 forms a secondary transfer nip by sandwiching the intermediate transfer belt 30 between itself and the secondary transfer backup roller 32. Similar to the primary transfer roller 31, the secondary transfer roller 36 is also connected to a power source, and a predetermined direct current (DC) voltage and / or alternating current (AC) voltage is applied to the secondary transfer roller 36.

[0041] The belt cleaning device 35 has a cleaning brush and a cleaning blade that are disposed so as to contact the intermediate transfer belt 30. A waste toner transport hose extending from the belt cleaning device 35 is connected to the entrance of a waste toner container.

[0042] A bottle storage unit 2 is provided at the top of the printer body, and four toner bottles 2Y, 2M, 2C, and 2K containing replenishment toner are removably attached to the bottle storage unit 2. A supply path is provided between each of the toner bottles 2Y, 2M, 2C, and 2K and each of the developing devices 7, and toner is supplied from each of the toner bottles 2Y, 2M, 2C, and 2K to each of the developing devices 7 via this supply path.

[0043] Meanwhile, at the bottom of the printer body, there are provided a paper feed tray 10 that stores paper P as a recording medium, and a paper feed roller 11 that conveys paper P from the paper feed tray 10. Here, the recording media include, in addition to plain paper, cardboard, postcards, envelopes, thin paper, coated paper (coated paper, art paper, etc.), tracing paper, transparency sheets, etc. Although not shown, a manual paper feed mechanism may also be provided.

[0044] A transport path R is provided within the printer body for transporting paper P from the paper feed tray 10 through the secondary transfer nip and out of the device. On the transport path R, upstream of the secondary transfer roller 36 in the paper transport direction, a pair of registration rollers 12 are provided as transport means for transporting paper P to the secondary transfer nip.

[0045] Further, downstream in the paper transport direction from the position of the secondary transfer roller 36, there is disposed a fixing device 20 for fixing the unfixed image transferred onto the paper P. Furthermore, downstream in the paper transport direction of the transport path R from the fixing device 20, there is disposed a pair of paper discharge rollers 13 for discharging the paper outside the device. Also, on the top surface of the printer body, there is disposed a paper discharge tray 14 for stocking the paper discharged outside the device.

[0046] Next, the basic operation of the printer according to this embodiment will be described with reference to FIG. When the image formation operation starts, each photoconductor 5 in each of the image forming units 4Y, 4M, 4C, and 4K is rotated clockwise by a drive device, and the surface of each photoconductor 5 is uniformly charged to a predetermined polarity by a charging device 6. The charged surface of each photoconductor 5 is irradiated with laser light from an exposure device 9, and an electrostatic latent image is formed on the surface of each photoconductor 5.

[0047] At this time, the image information exposed to each photoconductor 5 is monochrome image information obtained by separating a desired full-color image into color information of yellow, magenta, cyan, and black. By supplying toner to the electrostatic latent image thus formed on each photoconductor 5 by each developing device 7, the electrostatic latent image is developed (visible) as a toner image.

[0048] Furthermore, when the image formation operation is started, the secondary transfer backup roller 32 is driven to rotate counterclockwise in the figure, causing the intermediate transfer belt 30 to travel in the direction indicated by the arrow in the figure. A constant voltage or constant current controlled voltage of a polarity opposite to the toner charge polarity is applied to each primary transfer roller 31. This forms a transfer electric field in the primary transfer nip between each primary transfer roller 31 and each photoconductor 5.

[0049] Thereafter, as each photoconductor 5 rotates, when the toner images of each color on the photoconductor 5 reach the primary transfer nip, the toner images on each photoconductor 5 are transferred in order onto the intermediate transfer belt 30 in a superimposed state by the transfer electric field formed at the primary transfer nip. Thus, a full-color toner image is carried on the surface of the intermediate transfer belt 30. In addition, any toner remaining on each photoconductor 5 that has not been transferred to the intermediate transfer belt 30 is removed by the cleaning device 8. Thereafter, the surface of each photoconductor 5 is neutralized by the neutralization device, and the surface potential is initialized.

[0050] At the bottom of the image forming apparatus, paper feed roller 11 starts to rotate, and paper P is sent from paper feed tray 10 to transport path R. Paper P sent to transport path R is timed by registration roller 12 to be sent to the secondary transfer nip between secondary transfer roller 36 and secondary transfer backup roller 32. At this time, a transfer voltage of a polarity opposite to the toner charge polarity of the toner image on intermediate transfer belt 30 is applied to secondary transfer roller 36, and a transfer electric field is thereby formed in the secondary transfer nip.

[0051] Thereafter, as the intermediate transfer belt 30 rotates, when the toner image on the intermediate transfer belt 30 reaches the secondary transfer nip, the toner image on the intermediate transfer belt 30 is transferred all at once onto the paper P by the transfer electric field formed at the secondary transfer nip. At this time, any residual toner on the intermediate transfer belt 30 that was not transferred to the paper P is removed by the belt cleaning device 35, and the removed toner is transported to a waste toner container and collected.

[0052] Thereafter, the paper P onto which the toner image has been transferred is transported to the fixing device 20, and the fixing device 20 fixes the toner image on the paper P to the paper P. Then, the paper P is discharged outside the device by the paper discharge rollers 13 and stocked on the paper discharge tray 14.

[0053] The above description is of the image forming operation when forming a full-color image on paper, but it is also possible to form a monochrome image using any one of the four image forming units 4Y, 4M, 4C, and 4K, or to form a two-color or three-color image using two or three image forming units.

[0054] Next, the configuration of the fixing device of the present invention will be described. The fixing device of the present invention includes an endless belt, a pressure member disposed on the outside of the belt and facing the belt, a heating member that heats the belt, and a nip forming member disposed on the inside of the belt and forming a fixing nip between the belt and the pressure member. The endless belt may also be called a fixing belt, an endless belt, or simply a belt.

[0055] In the present invention, it is preferable that a lubricant be applied between the inside of the endless belt and the nip forming member. Examples of the lubricant include silicone oil, silicone grease, fluorine oil, and fluorine grease. The presence of the lubricant maintains good sliding properties, making it possible to provide a fixing device and an image forming apparatus that are capable of forming high-quality images for a long period of time.

[0056] The pressure member may be in the form of, for example, a roller, and when the pressure member rotates, the endless belt heated by the heating member also rotates.

[0057] The paper P onto which the toner image has been transferred passes through a fixing nip between a rotating heating member and an endless belt heated by the heating member, whereby the toner image is fixed to the paper P.

[0058] A specific embodiment of the fixing device of the present invention will be described with reference to FIG. FIG. 2 is a schematic cross-sectional view showing an embodiment of the fixing device 20 of the present invention. The fixing device 20 includes a fixing member 21 (hereinafter also referred to as a "fixing belt"), a heat source 23 (23A, 23B), a nip forming unit, and an opposing rotating body 22 (hereinafter also referred to as a "pressure roller"). The fixing member 21 is a rotatable endless belt-like fixing member. The heating source 23 (23A, 23B) heats the fixing belt 21. The nip forming unit is disposed inside the fixing belt 21 . The counter rotating body 22 forms a fixing nip N between the fixing belt 21 and the nip forming unit.

[0059] Both the fixing belt 21 and the pressure roller 22 have a shape that extends perpendicular to the rotation axis, that is, perpendicular to the plane of the paper in Fig. 2, and is longer than the width of the paper P. The paper P is sandwiched between them and transported.

[0060] The fixing belt 21 is heated by radiant heat from halogen heaters serving as a plurality of heat sources 23 (23A, 23B) provided inside (inside the loop). Note that the heat sources 23 are not limited to halogen heaters.

[0061] The reflecting plates 28 (28A, 28B) reflect the radiant heat of the halogen heater, and can heat the fixing belt 21 efficiently.

[0062] A nip forming unit is disposed inside the fixing belt 21. The nip forming unit includes at least a nip forming member 27, and may also include a base member 24, a stay member 25, and the like, as required. The nip forming member 27 abuts against the inner circumferential surface of the fixing belt 21, and the thickness of the nip forming member 27 does not change due to the pressure of the pressure roller 22, and heat transfer occurs. The base member 24 is provided on the surface of the nip forming member 27 opposite to the surface that comes into contact with the fixing belt 21 . The stay member 25 reinforces the base member 24 .

[0063] The illustrated nip forming member 27 has a U-shaped cross section, but may have a plate-like shape or other shapes as long as the surface that forms the nip is flat.

[0064] The nip forming member used in the present invention has an aluminum substrate, and is provided with an anodized film that has been subjected to a pore-sealing treatment on at least the surface that forms the fixing nip. 8 is a schematic diagram of an example of nip forming member 27 used in the present invention. Base material 27a is aluminum, and an anodized coating 27b that has been subjected to a pore-sealing treatment is formed on surface 27c that forms the fixing nip. The double-headed arrow in the figure also schematically indicates the thickness of the portion of nip forming member 27 that forms fixing nip N (nip forming portion). 9 is a schematic diagram of another example of nip forming member 27 used in the present invention. In the example shown in Fig. 9, an anodized coating 27b that has been subjected to a pore-sealing treatment is formed on the entire surface of substrate 27a.

[0065] The thickness of the portion of the nip forming member 27 that forms the fixing nip N (nip forming portion) must be 0.40 mm or more and 1.20 mm or less, and preferably 0.45 mm or more and 1.00 mm or less. The thickness of the nip forming portion includes the thickness of the anodized coating that has been subjected to a sealing treatment. If the thickness of the nip forming portion of the nip forming member 27 is thinner than 0.40 mm, it becomes difficult to keep the nip forming portion of the nip forming member 27 flat, and it becomes difficult to maintain a uniform temperature distribution in the nip forming portion during image formation. If the thickness of the nip forming portion is greater than 1.20 mm, the weight of the nip forming member 27 will be heavy, the cost will be high, the fixing device will be large, and it will take time to raise the temperature of the nip forming portion to the specified temperature when the device is started up.

[0066] The width of nip forming member 27 is preferably 10 mm or more and 25 mm or less, and more preferably 15 mm or more and 20 mm or less, so that a sufficient nip can be formed when pressure roller 22 is applied. If the width of nip forming member 27 is less than 10 mm, a sufficient nip cannot be formed, making it difficult to form high-quality images. If the width of nip forming member 27 is greater than 25 mm, the fixing device becomes large, and it takes time to raise the temperature of the nip forming portion to the specified temperature when the device is started up.

[0067] The thickness of the anodized film formed on the surface of the nip forming member 27 that forms the fixing nip N must be 22 μm or more and 45 μm or less, and preferably 25 μm or more and 40 μm or less. If the thickness of the anodized film in the nip forming portion is thinner than 22 μm, the thickness of the anodized film is likely to vary, which reduces the smoothness of the nip forming portion. As a result, as image formation is repeated, the inner surface of the fixing belt 21 is scraped away, and the resulting scraping dust is likely to cause an increase in torque, which is undesirable. If the thickness of the anodized film in the nip forming portion is greater than 45 μm, it takes a long time to form the anodized film, which increases manufacturing costs. Also, the smoothness of the nip forming portion deteriorates, which causes the inner surface of the fixing belt 21 to be scraped as image formation is repeated, and the resulting scraping dust is likely to cause an increase in torque, which is undesirable.

[0068] The thickness variation of the anodized film formed on the surface of the nip forming member 27 that forms the fixing nip N must be 20% or less, and preferably is 2% or more and 10% or less. If the thickness variation of the anodized coating in the nip forming portion of nip forming member 27 exceeds 20%, the smoothness of the nip forming portion deteriorates. As a result, as image formation is repeated, the inner surface of fixing belt 21 is scraped away, and the resulting scraping dust is likely to cause an increase in torque, which is undesirable.

[0069] The smaller the variation in the thickness of the anodized film in the nip-forming area, the better, but since the surface of the aluminum base material is uneven before the anodized film is formed, a certain degree of variation in the thickness of the anodized film is acceptable. However, the variation in the thickness of the anodized film in the nip-forming area must not exceed 20%.

[0070] The anodized coating is formed by electrolysis using aluminum as the anode in a solution. Therefore, it is preferable to ensure a sufficient distance between the nip-forming member (anode) on which the anodized coating is formed and the counter electrode (cathode), and to avoid current concentration during electrolysis by not increasing the current density too much. In this way, the nip-forming member of this embodiment that satisfies the above requirements can be obtained.

[0071] The anodic oxide film can be sealed using conventional sealing methods such as pressurized steam sealing, boiling water sealing, nickel acetate sealing, and cobalt acetate sealing.

[0072] Electron microscope photographs (SEM (scanning electron microscope) photographs) of an example of an anodized coating on the surface of a nip forming member that forms the fixing nip are shown in FIGS. 5 and 6. FIG. 5 is an electron microscope photograph of an example of an anodized coating, and FIG. 6 is an electron microscope photograph of an example of an anodized coating after a pore-sealing treatment. As shown in FIG. 5, the anodized coating is covered with tiny pores all over, whereas as shown in FIG. 6, by sealing the anodized coating, most of the pores are filled, and the interiors of the few remaining holes are also filled. In this way, whether or not the anodized coating formed on the nip forming portion of the nip forming member has been sealed can be determined by observing it with an electron microscope.

[0073] The thickness of the anodized film at the nip forming portion of the nip forming member 27 and the variation in the thickness of the anodized film are measured by observing the cross section of the nip forming portion using an SEM. The cross section of the nip formation portion can be prepared by various methods such as mechanical polishing, chemical etching, and dry etching, but the present inventors prepared the cross section using an SM-09010 cross section polisher (manufactured by JEOL Ltd.). The cross section polisher uses dry etching with Ar ions, so it is possible to prepare a sharp cross section without damaging the anodic oxide film.

[0074] The thickness of the anodized film in the nip formation region can be determined as the average film thickness in a 100 μm wide SEM image taken with the surface of the nip forming member facing up. The variation in the thickness of the anodized film in the nip formation region can be determined as the difference between the maximum and minimum film thicknesses of the anodized film in a 100 μm wide SEM image taken with the surface of the nip forming member facing up, divided by the average film thickness.

[0075] The thickness and variation of the anodized film in the nip formation region are preferably measured at many locations in the nip formation region, but measurements at three locations are sufficient, and if the manufacturing method is stable, measurements at only one location are sufficient. When measurements are taken at multiple locations, the thickness and variation of the anodized film at all locations are required to be within the range of the present invention. The thickness and variation of the anodized film in the examples and comparative examples of the present invention were taken as the average values ​​of the values ​​measured at three locations in the nip formation region.

[0076] FIG. 7 shows a cross-sectional SEM image of the nip forming portion of the nip forming member 27 used in the present invention. As shown in the figure, the interface between the aluminum substrate and the anodized film is clearly visible. FIG. 7 also shows measurements of an anodized film that had been subjected to a sealing treatment. In the example shown in FIG. 7, the thickness of the anodized film is 31.1 μm, with a variation of 9.0%.

[0077] The thickness and variation of the anodized film are preferably measured at multiple locations in the nip formation area and the average value of the multiple measurement locations is used. For the nip formation member used in Figure 7, the thickness and variation of the anodized film were measured at two other locations in the nip formation area. The results showed that the thicknesses of the anodized film were 31.2 μm and 31.1 μm, respectively, with variations of 9.0% and 8.9%, indicating that the anodized film was formed uniformly.

[0078] A supplementary explanation will be given for the example of the nip forming member used in FIG. 7. As described above, in the measurement of FIG. 7, the thickness of the anodized film was 31.1 μm, with a variation of 9.0%, which can be said to satisfy the requirements of the present invention. Measurements were also performed at two other locations on this nip forming member, and as described above, the thicknesses of the anodized film were 31.2 μm and 31.1 μm, respectively, with variations of 9.0% and 8.9%, respectively. The average thickness value at multiple locations is calculated by averaging 31.1 μm, 31.2 μm, and 31.1 μm, and the average thickness variation value at multiple locations is calculated by averaging 9.0%, 9.0%, and 8.9%. In this embodiment, it is preferable to calculate such average values.

[0079] The anodized coating in the nip portion of the nip forming member used in the present invention is subjected to a pore-sealing treatment as described above. The pore-sealing treatment is performed by a conventional method, and the pore-sealing treatment can prevent the lubricant applied between the nip forming member and the inner surface of the fixing belt from running out of oil or the viscosity of the grease from increasing.

[0080] As described above, it is preferable that a pore-sealed anodized coating be formed on the surface of nip forming member 27, even on surfaces other than the nip forming portion. In other words, it is preferable that a pore-sealed anodized coating be formed on surfaces of the nip forming member other than the surface that forms the fixing nip. This reduces the mechanical stress that accompanies volume changes when an anodized film is formed. As long as the thickness and thickness variation of the anodized film on the surface other than the nip formation area are not extremely thick, there is no need to specially manage them; the formation of an anodized film is sufficient to reduce the mechanical stress.

[0081] A coating may be applied to the sealed anodized coating of the nip-forming member to improve sliding properties, provide corrosion resistance, and retain grease through physical shaping. The coating typically contains a solid lubricant such as carbon material, graphite, polytetrafluoroethylene, boron nitride, or molybdenum sulfide as a filler, and uses a heat-resistant resin such as polyamide-imide resin, epoxy resin, or acrylic resin as a binder.

[0082] It is preferable that a lubricant such as heat-resistant oils such as silicone oil or fluorine oil, silicone grease, or fluorine grease be applied between the contact surfaces of nip forming member 27 and fixing belt 21. The presence of fluorine grease is preferable in terms of chemical stability and heat resistance.

[0083] The fixing device in FIG. 2 does not have a special location for storing fluorine grease, so excessive supply can be prevented, and the amount of expensive fluorine grease used can be reduced, which is economically advantageous.

[0084] In this embodiment, the base member 24, which is disposed across the width of the fixing belt 21, is fixed and supported by the stay members 25. This prevents the base member 24 from being deflected by the pressure from the pressure roller 22, and a uniform nip width is obtained across the axial direction (longitudinal direction) of the pressure roller 22.

[0085] The base member 24 is preferably made of a heat-resistant material with high mechanical strength and a heat resistance temperature of 200°C or higher, particularly a heat-resistant resin such as polyimide (PI) resin or polyether ether ketone (PEEK) resin, reinforced with glass fiber. This prevents deformation of the base member 24 due to heat in the toner fixing temperature range, ensures a stable state of the fixing nip N, and stabilizes the output image quality.

[0086] Further, the stay member 25 and the halogen heaters 23A and 23B are fixed at both ends in the longitudinal direction to the side plates of the fixing device 20 or to a separately provided holder.

[0087] The fixing belt 21 may be a metal belt made of nickel, SUS, or the like, or an endless belt (or film) made of a resin material such as polyimide.

[0088] The surface layer of the fixing belt 21 may have a release layer such as a layer made of PFA (tetrafluoroethylene-perfluoroalkyl vinyl ether copolymer) or PTFE (polytetrafluoroethylene). In this case, the surface layer can have release properties to prevent toner from adhering to the belt.

[0089] The fixing belt 21 may have an elastic layer formed of a silicone rubber layer or the like between the belt substrate and the release layer. Without the silicone rubber layer, the heat capacity is reduced and the fixing performance is improved, but when the unfixed image is crushed and fixed, minute irregularities on the belt surface are transferred to the image, resulting in a problem of orange peel-like uneven gloss (orange peel image) remaining in the solid areas of the image. To improve this, it is preferable to provide a silicone rubber layer of 100 μm or more. The deformation of the silicone rubber layer absorbs the minute irregularities, improving the orange peel image. The fixing belt 21 has the same belt configuration as that shown in FIG.

[0090] The pressure roller 22 has, for example, an elastic rubber layer provided on the outer periphery of a core metal, and a release layer (PFA or PTFE layer) provided on the surface to ensure release properties. The pressure roller 22 is pressed against the fixing belt 1 by, for example, a spring, and the elastic rubber layer is crushed and deformed to have a predetermined nip width. The pressure roller 22 rotates by a driving force transmitted via gears from a driving source such as a motor provided in the image forming apparatus.

[0091] The pressure roller 22 may be a hollow roller, and may have a heat source such as a halogen heater. The elastic rubber layer may be solid rubber, but sponge rubber may also be used if there is no heater inside the pressure roller 22. Sponge rubber is more preferable because it has better heat insulation properties and is less likely to lose heat to the fixing belt. The pressure roller 22 has the same roller configuration as that shown in FIG. 3 and FIG.

[0092] FIG. 3 is a structural diagram showing another example of the fixing device of the present invention. The fixing device has a pressure member (pressure roller 22) and a belt (fixing belt 21). The fixing belt 21 is directly heated by radiation from the inner periphery side of a heat source (halogen heater 23). A nip forming unit is disposed inside the fixing belt 21.

[0093] The nip forming unit has at least a nip forming member 27, and may also have a base member 24, a stay member 25, etc. as required. The nip forming member 27 abuts against the inner peripheral surface of the fixing belt 21, and the thickness of the nip forming member 27 does not change due to the pressure of the pressure roller 22, and heat transfer occurs. The base member 24 is provided on the surface of the nip forming member 27 opposite to the surface that abuts against the fixing belt 21 . The stay member 25 reinforces the base member 24.

[0094] In this embodiment, the base member 24, which is disposed across the width of the fixing belt 21, is fixed and supported by the stay members 25. This prevents the base member 24 from being deflected by the pressure from the pressure roller 22, and a uniform nip width is obtained across the axial direction (longitudinal direction) of the pressure roller 22.

[0095] A heating mechanism may be provided on the base member 24 of the fixing device shown in Fig. 3. In this case, it becomes possible to set the output of the halogen heater 23 low, and in some cases, it becomes possible to omit the halogen heater 23.

[0096] FIG. 4 is a structural diagram showing another example of the fixing device 20 of the present invention. The fixing device 20 is mainly composed of a fixing belt 121, an external induction heating unit of an IH heater (IH coil unit 44), a pressure roller 22, a separation unit 40, and the like.

[0097] Here, a nip forming unit is disposed inside the fixing belt 121. The nip forming unit has at least a nip forming member 27, and may also have a base member 24, a stay member 25, etc. as required. The nip forming member 27 abuts against the inner circumferential surface of the fixing belt 121, and the thickness of the nip forming member 27 does not change due to the pressure of the pressure roller 22, and heat transfer occurs. The base member 24 is provided on the surface of the nip forming member 27 opposite to the surface that abuts against the fixing belt 121 . The stay member 25 reinforces the base member 24 .

[0098] The above-mentioned fluorine grease is applied between the contact surfaces of nip forming member 27 and fixing belt 121. Specifically, the above-mentioned fluorine grease is present on the entire contact surface between nip forming member 27 and fixing belt 121.

[0099] In this embodiment, base member 24, which is disposed across the width of fixing belt 121, is fixed and supported by stay members 25. This prevents base member 24 and nip forming member 27 from being deflected by the pressure from pressure roller 22, and a uniform nip width is obtained across the axial direction (longitudinal direction) of pressure roller 22.

[0100] As in the above example, the pressure roller 22 is rotated in the direction of the arrow in the figure by the drive unit, and accordingly the fixing belt 121 also rotates in the direction of the arrow in the figure.

[0101] The fixing belt 121 is configured for IH fixing, and is an endless belt (endless belt) having a multi-layer structure including, from the inside, a base layer, a heat generating layer, a composite functional layer, an elastic layer, and a release layer.

[0102] In this example, the layers are as follows, but are not limited to these. The base layer was made of seamless polyimide with a diameter of 30 mm. The heat generating layer was made of copper, a thin film non-magnetic metal. The composite functional layer was made of nickel. The elastic layer was made of silicone rubber. The release layer was made of PFA resin. The release layer ensures release from the toner. The overall thickness was approximately 300 μm.

[0103] A temperature-sensitive magnetic alloy 50 and an aluminum magnetic field shielding plate 51 are provided inside the fixing belt 121 at a position facing the IH coil unit 44. The temperature-sensitive magnetic alloy 50 is provided without contacting the fixing belt 121.

[0104] As shown in the figure, the IH coil unit 44 is provided outside the fixing belt 121, on the opposite side to the fixing nip.

[0105] In the IH fixing method of this example, the IH fixing belt 121 and the IH coil unit 44 are sandwiched between two ferromagnetic materials, soft ferrite 45 and temperature-sensitive magnetic alloy 50. In this example, the fixing belt 121 is heated by efficiently converting the magnetic flux generated by the IH coil unit 44 into thermal energy.

[0106] In the fixing device of this example, the paper P is transported to the fixing nip, which is the contact point between the fixing belt 121 and the pressure roller 22. A separation unit 40 may be provided on the exit side of the fixing nip. The separation unit 40 guides the transport of the paper P and separates the paper P from the fixing belt 21.

[0107] Further, a non-contact temperature detection means 29 may be installed near the IH coil unit 44. The non-contact temperature detection means 29 detects the surface temperature (fixing temperature) of the fixing belt 121. In this example, the IH heater temperature is controlled based on the detected surface temperature (fixing temperature) of the fixing belt 121.

[0108] Although the fixing devices in FIGS. 2 to 4 are of a type that heats only the fixing belt, preferable performance can also be obtained with a type that heats the nip forming member. [Example]

[0109] The present invention will be explained in more detail below by showing examples, but the present invention is not limited to these examples.

[0110] (Examples 1 and 2, Comparative Examples 1 and 2) A fixing device was removed from a color laser printer SP C840 (manufactured by Ricoh Co., Ltd.) and a test machine was fabricated incorporating the fixing device 20 shown in FIG.

[0111] Example 1 The nip forming member 27 in the fixing device 20 had an aluminum base and was anodized (anodized) and sealed on its entire surface. The thickness of the nip forming portion of the nip forming member that had been anodized and sealed with boiling water was 0.65 mm. The thickness of the anodized film (anodized layer) that had been sealed on the nip forming portion of the nip forming member was 32.2 μm, with a thickness variation of 11.0%.

[0112] The amount of coating per unit area of ​​the coating is 10 to 45 mg / cm on the sliding portion between the inner surface of the fixing belt 21 and the nip forming member 27. 2 The fluorine grease was applied so that the fluorine grease would be uniform. The applied fixing device 20 was then installed in the color laser printer SP C840, and a running test was conducted in a temperature environment of 12°C. The running test consisted of a series of processes: printing five consecutive sheets followed by a 50-second pause, and the progress of the fixing torque (of the fixing belt 21) was measured multiple times. A torque detector SS-050 (manufactured by Ono Sokki) was used to measure the torque. The progress of the fixing torque was then used to evaluate whether the specified number of sheets (300,000 sheets) could be printed. It was confirmed that high-quality images could be formed even at the specified number of sheets.

[0113] <Comparative Example 1> In Example 1, when the nip forming member 27 was produced, only the alumite treatment was performed on the entire surface, and no sealing treatment was performed. The thickness of the nip forming portion of the fabricated nip forming member was 0.65 mm. The thickness of the anodized aluminum layer at the nip forming portion of the nip forming member was 40.9 μm, and the thickness variation was 20.5%. An image forming apparatus similar to that of Example 1 was fabricated, except that such a nip forming member was used. When a running test was conducted using this device, a torque increase occurred before the specified number of sheets was reached, and image formation became impossible. When the fixing device was inspected at the point when image formation became impossible, it was found that there were areas where the fluorine grease was not present in the sliding portion between the inner surface of the fixing belt 21 and the nip forming member 27, and the inner surface of the fixing belt was severely worn away.

[0114] <Example 2> The nip forming member 27 in the fixing device 20 has an aluminum base, and the entire surface thereof is anodized (alumite treated) and sealed in the same manner as in Example 1. In Example 2, in the anodizing (anodizing) and sealing treatment of Example 1, the thickness of the nip forming member before the anodizing and sealing treatment, the current value of the anodizing, and the manufacturing conditions for the anodizing time were changed so that the thickness and thickness variation of the anodized film became the following values. The thickness of the nip forming portion of the nip forming member was 0.46 mm. The thickness of the anodized coating (anodized aluminum layer) that had been sealed in the nip forming portion of the nip forming member was 23.2 μm, with a thickness variation of 16.8%. An image forming apparatus similar to that of Example 1 was fabricated, except that such a nip forming member was used. When a running test was carried out using this device, high quality images could be formed even when printing the specified number of sheets.

[0115] <Comparative Example 2> The base material of the nip forming member 27 in the fixing device 20 was aluminum, and only the nip forming portion was subjected to anodization (alumite treatment) and pore sealing treatment similar to those in Example 1. The thickness of the nip forming portion of the nip forming member was 0.39 mm. The thickness of the anodized coating (anodized aluminum layer) that had been sealed in the nip forming portion of the nip forming member was 45.5 μm, with a thickness variation of 23.8%. An image forming apparatus similar to that of Example 1 was fabricated, except that such a nip forming member was used. When a running test was conducted using this device, a torque increase occurred before the set number of sheets was reached, and image formation became impossible. When image formation became impossible, the fixing device was examined and it was found that the inner surface of the fixing belt 21 had been worn away. Furthermore, the formed image had noticeable uneven glossiness, and the image quality was not satisfactory.

[0116] (Examples 3 to 7, Comparative Example 3) An image forming apparatus similar to that of Example 1 was fabricated and a running test was carried out, except that the nip forming member shown in Table 1 was used as the nip forming member in the fixing device 20. The results are shown in Table 1.

[0117] [Table 1]

[0118] In Table 1, A, B, and C respectively represent the following. A: The specified number of pages can be printed with ease. B: The specified number of pages can be printed C: The specified number of pages cannot be printed

[0119] The evaluation result "A" above, "capable of printing the specified number of sheets with ease," means that even if the specified number of sheets (the above 300,000 sheets) is printed, there is absolutely no degradation in image quality. Furthermore, the above evaluation result "B" indicating that the specified number of sheets can be printed means that, within the specified number of sheets printed (the above 300,000 sheets), slight fading and color shift occurs, but the image quality is within the acceptable range. Furthermore, the evaluation result "C" above, "unable to print the specified number of sheets," means that, out of the specified number of sheets printed (300,000 sheets above), unacceptable abnormal images occur, or a paper jam occurs, making printing impossible.

[0120] Example 8 A fixing device of a color laser printer SP C841 (manufactured by Ricoh Co., Ltd.) was removed and a test machine was fabricated incorporating fixing device 20 having the configuration shown in FIG. The nip forming member used in Example 1 was used, and the coating amount per unit area was 10 to 45 mg / cm 2 over the entire surface of the nip forming member 27 facing the fixing belt 121. 2The fluorine grease was applied so that the fluorine grease was uniform. The applied fixing device 20 was then installed in the color laser printer SP C841, and a running test was conducted in a temperature environment of 30°C. The running test consisted of a series of processes: printing 18 sheets continuously, followed by a 110-second pause, repeated multiple times, and the progress of the fixing torque (of the fixing belt 121) was measured. A torque detector SS-050 (manufactured by Ono Sokki) was used for torque measurement. Whether or not the specified number of sheets (300,000 sheets) could be printed was evaluated based on the progress of the fixing torque. As a result, it was possible to form images on the specified number of sheets with ample margin. Furthermore, the images obtained at the specified number of sheets were of high quality. [Explanation of symbols]

[0121] 1. Image forming device 2 Bottle storage section 3. Transcription device 4 Imaging section 5 Photoreceptor 6. Charging device 7. Developing device 8 Cleaning Device 9 Exposure equipment 10 Paper tray 14 Paper output tray 20 Fixing device 21 Fixing belt 22 Pressure roller 23 Heating source 24 Base member 25 Stay member 27 Nip forming member 30 Intermediate transfer belt [Prior art documents] [Patent documents]

[0122] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-096929 [Patent Document 2] Japanese Patent Application Laid-Open No. 2014-38311 [Patent Document 3] Japanese Patent Publication No. 2020-134744

Claims

1. An endless belt; a pressure member provided on the outside of the belt and facing the belt; a heating member for heating the belt; a nip forming member provided inside the belt and forming a fixing nip between the belt and the pressure member, the nip forming member being used in a fixing device, the nip forming member has an aluminum base material, and an anodized coating that has been subjected to a pore-sealing treatment is formed on at least the surface that forms the fixing nip; a thickness of a portion of the nip forming member that forms the fixing nip is 0.40 mm or more and 1.20 mm or less; A nip forming member characterized in that the thickness of the anodic oxide film that has been subjected to the pore sealing treatment and that is formed on the surface that forms the fixing nip is 22 μm or more and 45 μm or less, and the thickness variation is 20% or less.

2. 2. The nip forming member according to claim 1, wherein the anodic oxide film on which the pores have been sealed is also formed on a surface of the nip forming member other than the surface that forms the fixing nip.

3. A fixing device comprising: the belt; the pressure member; the heating member; and the nip forming member according to claim 1 or 2.

4. 4. The fixing device according to claim 3, wherein a lubricant is applied between the inside of the belt and the nip forming member.

5. 5. An image forming apparatus comprising the fixing device according to claim 3.

Citation Information

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