Charging device, process cartridge, and image forming apparatus
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- CANON KK
- Filing Date
- 2023-05-15
- Publication Date
- 2026-05-15
AI Technical Summary
Existing charging devices in electrophotographic image forming apparatuses face issues with charging roller contamination due to residual toner and charge control agents, leading to charging failures and image defects, particularly in configurations using cleaning rollers or sheets that are either costly or insufficient in cleaning effectiveness.
A charging device with a cleaning member that includes a surface layer containing roughening particles with a hardness equal to or higher than the toner components, ensuring effective removal of deposits by pressing and rubbing against the charging member during rotation.
The solution effectively suppresses charging roller staining, preventing image defects by loosening and uniformly dispersing residual toner and additives, maintaining image quality over the device's lifespan.
Smart Images

Figure 00000000_0001_ABST 
Figure 00000000_0000_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to a charging device, a process cartridge, and an image forming apparatus. [Background technology]
[0002] Conventionally, in electrophotographic image forming apparatuses, a process cartridge system has been adopted in which a photosensitive drum and a process means acting on the photosensitive drum are integrated into a cartridge, and the cartridge is detachably mountable to the image forming apparatus. Similarly, cartridges in which a developing device is also integrated have also been put to practical use. This process cartridge system allows the user to perform maintenance of the apparatus himself, which has significantly improved operability.
[0003] As a means for uniformly charging the photosensitive drum, a method in which a conductive rubber roller (hereinafter referred to as a charging roller) is rotated in contact with the photosensitive drum (so-called contact charging method) is generally known. Such a method of charging the photosensitive drum using a charging roller has the advantage of generating less ozone compared to a charging method using corona discharge. On the other hand, even after the transfer residual toner is cleaned by a cleaning means, a very small amount of toner, or a charge control agent or external additive contained in the toner, remains on the photosensitive drum. In the contact charging method, the residue on the photosensitive drum that is not cleaned by the cleaning means may adhere to the charging roller. In this case, charging failure may occur in which the photosensitive drum cannot be charged to the desired potential.
[0004] Therefore, Patent Document 1 discloses a configuration in which a cleaning roller is used as a member for cleaning the charging roller, and Patent Document 2 discloses a configuration in which a cleaning sheet made of a polyimide film or the like is used as a member for cleaning the charging roller. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Japanese Patent Application Publication No. 5-297690 [Patent Document 2] Patent No. 4856974 Summary of the Invention [Problem to be solved by the invention]
[0006] However, in the configuration using the cleaning roller of Patent Document 1, the cost of the cleaning member is high, and a supporting member for enabling the cleaning member to rotate is required, which leads to an increase in the size of the charging device.
[0007] The configuration using the cleaning sheet of Patent Document 2 can simplify and miniaturize the device. On the other hand, when there is a lot of toner remaining on the photosensitive drum after cleaning, or when there is a lot of adhesion of a charge control agent or external additives contained in the toner, the effect of suppressing the dirt on the charging roller may be insufficient. In addition, with the recent increase in the life span of image forming apparatuses and process cartridges, even minor cleaning defects may cause image defects by contaminating the charging roller over a long period of time.
[0008] The present invention has been made in consideration of the above-mentioned points, and has an object to provide a charging device capable of suppressing contamination of the charging roller with a simple configuration. [Means for solving the problem]
[0009] The present invention employs the following configuration. a charging member for charging the image carrier; a cleaning member that is pressed against the charging member and rubs against the surface of the charging member as the charging member rotates; A charging device having the cleaning member includes at least a first layer that contains roughening particles and is in contact with the charging member; the first layer has a Martens hardness higher than that of the surface of the charging member, The roughening particles have a Mohs hardness equal to or greater than the component with the highest Mohs hardness in the toner adhering to the surface of the charging member. The charging device is characterized by the above. Effect of the Invention
[0010] According to the present invention, it is possible to provide a charging device capable of suppressing contamination of a charging roller with a simple configuration. [Brief description of the drawings]
[0011] [Figure 1] 1 is a schematic diagram of an entire image forming apparatus according to a first embodiment. [Diagram 2] FIG. 2 is a control schematic block diagram of the image forming apparatus according to the first embodiment. [Diagram 3] FIG. 2 is a schematic view of a process cartridge according to the first embodiment. [Figure 4] FIG. 2 is a schematic diagram of a photosensitive drum unit and a developing unit according to the first embodiment. [Diagram 5] FIG. 2 is a schematic diagram of a sheet member according to a first embodiment. [Figure 6] 5 is a schematic diagram showing a method of attaching a sheet member in the first embodiment. FIG. [Figure 7] 5A to 5C are schematic diagrams illustrating a method of pressing a sheet member against a charging roller in the first embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0012] A preferred embodiment of the present invention will be described in detail below with reference to the drawings. However, unless otherwise specified, the dimensions, materials, shapes, relative positions, etc. of the components described in the embodiment are not intended to limit the scope of the present invention to those alone. Furthermore, the materials, shapes, etc. of the members once described in the following description are the same as those described initially, unless otherwise specified. Well-known or publicly known technologies in the relevant technical field can be applied to configurations and processes not particularly shown or described. Furthermore, duplicated descriptions may be omitted.
[0013] <Example 1> In this embodiment, a method for suppressing the occurrence of image defects caused by poor charging by making the hardness of particles applied to the surface layer of the sheet member as a cleaning sheet member for a charging roller equal to or greater than the hardness of the materials such as the charge control agent and external additives contained in the toner will be described. Hereinafter, as one embodiment of the present invention, a charging device and a process cartridge and an image forming apparatus using the same will be specifically described with reference to the drawings.
[0014] [Overall configuration of image forming device] The overall configuration of an image forming apparatus 120 according to this embodiment will be briefly described with reference to Fig. 1. Fig. 1 is an explanatory diagram of the overall configuration of a monochrome laser printer, which is one form of the image forming apparatus 120.
[0015] A paper feed cassette 7 containing recording material P such as paper is disposed at the bottom of the image forming apparatus main body 90. Along the conveyance path of the recording material P, in this order, a paper feed roller 8, a pair of conveyance rollers 9, a top sensor 10, a pre-transfer guide 11, a transfer roller 12, a conveyance guide 13, a fixing device 14, a paper discharge roller 15, and a conveyance guide 16 are arranged. The transfer roller 12 and the photosensitive drum 1 are disposed in the photosensitive drum 1. ...
[0016] The photosensitive drum 1 is rotatably supported by the image forming apparatus main body 90, and is rotationally driven in the direction of arrow R1 at a process speed of 250 mm / sec by a drive motor 180. Around the photosensitive drum 1, a charging roller 2 as a charging device, an exposure device 3, a developing unit 20, and a cleaning device 5 are arranged in this order along the rotation direction.
[0017] [Image formation operation] Next, the image forming operation by the image forming apparatus 120 having the above-mentioned configuration will be described. FIG. 2 is a schematic block diagram showing the control mode of the main parts of the image forming apparatus 120. In this embodiment, a control unit 140 (control circuit) as a control means provided in the apparatus body 90 of the image forming apparatus 120 controls the operation of each part of the image forming apparatus 120 in an integrated manner. The control unit 140 is configured to have a CPU 141 as an arithmetic control means, a ROM 142 as a storage means, a RAM 143, etc. The ROM 142 stores programs executed by the CPU 141 and various data. The RAM 143 is used as a working memory for the CPU 141. The control unit 140 is connected to the charging power supply 150, the developing power supply 160, the transfer power supply 170, the drive motor 180, the exposure device 3, etc., described above.
[0018] The photosensitive drum 1, which is rotated in the direction of the arrow R1 by the driving motor 180, is uniformly charged to a predetermined polarity and a predetermined potential by the charging roller 2 as a charging device. The photosensitive drum 1 used in this embodiment is a negatively charged organic (OPC: Organic Photoconductor) photoconductor with an outer diameter of φ24 mm. The charging roller 2 employs a contact DC charging method and contacts the photosensitive drum 1 with a predetermined pressure to form a charging nip. The applied DC voltage is set to a value such that the potential difference between the surface of the photosensitive drum 1 and the charging bias applied to the charging roller 2 is equal to or greater than the discharge start voltage, and specifically, a DC voltage of −1100 V is applied as the charging bias. At this time, the surface of the photosensitive drum 1 is uniformly contact-charged to a charging potential (dark potential) Vd=−550 V.
[0019] When the surface of the photosensitive drum 1 after charging is exposed to an image by a laser beam L based on image information by an exposure device 3 such as a laser scanner, the charge of the exposed portion is removed and an electrostatic latent image is formed. In this embodiment, the laser output is adjusted so that the potential Vl=-100V, which is the potential when the uniformly charged surface of the photosensitive drum 1 is fully exposed to the laser beam L. Next, a developer is supplied to the electrostatic latent image formed on the photosensitive drum 1 by the developing unit 20. In this case, a negative polarity magnetic toner is used as the developer. Development can be performed by a developing roller 21 as a developing member to which a developing bias (Vdc) of -300V is applied from a developing power source 160 as a voltage application means for applying a voltage to the developing member.
[0020] The recording material P is stored in a paper feed cassette 7, fed one by one by a paper feed roller 8, conveyed by a pair of conveying rollers 9, and conveyed to a transfer nip portion formed by the photosensitive drum 1 and the transfer roller 12 while being guided by a pre-transfer guide 11. A transfer bias having a polarity opposite to the charge polarity of the toner is applied from a transfer power source 170 to the core metal 12a of the transfer roller 12, and the toner image on the photosensitive drum 1 is transferred to a predetermined position on the recording material P. The transfer roller 12 used in this embodiment has an outer diameter of φ14 mm, a core metal diameter of φ5 mm, an elastic layer thickness of 4.5 mm, and a hardness of 30° (Asker C hardness). The core metal is made of SUS, and the elastic layer is made of a mixed rubber material of NBR and epichlorohydrin.
[0021] The recording material P carrying an unfixed toner image on its surface by the transfer section is conveyed along a conveying guide 13 to a fixing device 14. The fixing device 14 is made up of a pressure roller 14a and a fixing roller 14c incorporating a heater 14b, and applies heat and pressure to the passing recording material P to fix the unfixed toner image. The toner image is fixed. After the toner image is fixed, the recording material P is discharged by a discharge roller 15 onto a discharge tray 16 on the top surface of the device main body 90. Meanwhile, the toner (residual toner) remaining on the surface of the photosensitive drum 1 without being transferred to the recording material P is collected by a cleaning device 5 into a waste toner container 6. By repeating the above operations, images can be formed one after another.
[0022] [Process cartridge configuration] Next, the process cartridge 50 in this embodiment will be described in detail with reference to Figs. 3 and 4. Fig. 3 shows the entire process cartridge. Fig. 4(a) shows the details of the photosensitive drum unit 4. Fig. 4(b) shows the details of the developing unit 20. As shown in Fig. 3, the process cartridge 50 includes the photosensitive drum 1, the photosensitive drum unit 4 equipped with a charging roller 2 as a charging device and a cleaning device 5, and the developing unit 20 having a developing roller 21 that develops the electrostatic latent image on the photosensitive drum 1.
[0023] As shown in FIG. 4(a), the photosensitive drum unit 4 includes a charging roller 2 arranged around the photosensitive drum 1 for uniformly charging the surface of the photosensitive drum 1, and a cleaning device 5 arranged around the photosensitive drum 1 for removing toner remaining on the photosensitive drum.
[0024] The charging roller 2 is a core metal 2a of φ6, on which a conductive elastic layer made of NBR rubber with a thickness of about 2 mm and a release layer made of acrylic resin with a thickness of about 5 μm are formed. The thickness of the surface layer can be measured by cutting out the cross section of the charging member with a sharp blade and observing it with an optical microscope or an electron microscope. The high resistance layer of the charging roller 2 may be made of acrylic resin, nylon resin, fluororesin, etc., in addition to urethane rubber. The charging roller 2 is arranged almost parallel to the photosensitive drum 1. Both ends of the core metal are rotatably supported by conductive support members (not shown), and the support members are further moved and biased toward the photosensitive drum 1 by spring members (not shown). As a result, the charging roller 2 is pressed against the photosensitive drum 1 with a predetermined pressing force to form a charging nip portion, and rotates following the rotation of the photosensitive drum 1.
[0025] The image forming apparatus main body 90 includes a charging power source 150 as a voltage application means for applying a charging bias to the charging roller 2. In this embodiment, a DC voltage is applied to the core metal 2a from the charging power source 150. In this embodiment, the charging roller 2 rotates following the rotation of the photosensitive drum 1, but a means for driving the charging roller 2 to rotate may be used. In that case, a peripheral speed difference may be created by rotating the charging roller 2 and the photosensitive drum 1 at different rotation speeds.
[0026] The cleaning device 5 in this embodiment has a so-called blade cleaning configuration, with a rubber blade 5a attached to the tip of a support member 5b made of SUS. Residual toner removed from the surface of the photosensitive drum 1 by the cleaning device 5 is stored in a waste toner container 6. At this time, a small amount of toner remaining on the photosensitive drum 1 without being removed by the cleaning device 5, or a charge control agent or external additives contained in the toner may adhere to the charging roller 2. For this reason, in this embodiment, the photosensitive drum unit 4 is provided with a sheet member 60 for the purpose of removing adhesions from the surface of the charging roller 2.
[0027] 4(b), the developing unit 20 includes a developing roller 21 that contacts the photosensitive drum 1 and rotates in the direction of the arrow Y, a toner supply roller 23 that contacts the developing roller 21 and rotates in the direction of the arrow Z, a developing blade 24, and a toner container 22 that contains toner. Further, a toner transport means 25 is provided in the toner container 22 for stirring the contained toner and transporting it to the toner supply roller 23.
[0028] During development, the stored toner is transported to the toner supply roller 23 by the toner transport means 25. Then, the toner supply roller 23 rotating in the direction of the arrow Z supplies the toner to the developing roller 21 by rubbing against the developing roller 21 rotating in the direction of the arrow Y, and the toner is carried on the developing roller 21. The toner carried on the developing roller 21 comes into contact with the developing blade 24 as the developing roller 21 rotates, and the developing blade 24 imparts an electric charge to the toner and forms a thin toner layer of a predetermined thickness. The thin toner layer formed on the developing roller 21 is then transported to a developing section where the photosensitive drum 1 and the developing roller 21 come into contact, and in the developing section, the toner is developed in accordance with the electrostatic latent image formed on the surface of the photosensitive drum 1 by a DC developing bias applied to the developing roller 21 from a developing power source 160.
[0029] The toner remaining on the surface of the developing roller 21 without contributing to development is returned to the toner container 22 as the developing roller 21 rotates, and is peeled off from the developing roller 21 at the rubbing portion with the toner supply roller 23 and collected. The collected toner is stirred and mixed with the remaining toner by the toner conveying means 25. In a contact development method in which the photosensitive drum 1 and the developing roller 21 come into contact with each other to perform development, it is preferable that the photosensitive drum 1 is a rigid body and the developing roller 21 used therefor is a roller having an elastic body. As this elastic body, a single layer of solid rubber or a solid rubber layer coated with a resin in consideration of the ability to impart charge to the toner is used. The toner supply roller 23 is an elastic roller made of a core metal part and a foamed material such as sponge.
[0030] [toner] The binder resin of the toner may be styrene-acrylic, styrene-methacrylic copolymer resin, polyester resin, etc. The colorant of the toner may be carbon black, iron oxide such as magnetite, maghematite, ferrite, or other known pigments or dyes.
[0031] In addition, other external additives may be added to the toner as necessary in order to impart appropriate powder characteristics. For example, resin fine particles or inorganic fine powders that act as charge control agents, caking prevention agents, release agents during fixing in a fixing device, lubricants, and abrasives are included. For example, charge control agents include silica, alumina, titanium oxide, hydrotalcite compounds, and di-tertiary butyl salicylic acid aluminum complexes. For example, release agents include low molecular weight polyethylene, low molecular weight polypropylene, microcrystalline wax, paraffin wax, and other hydrocarbon waxes. For example, lubricants include polyfluorinated ethylene fine particles, zinc stearate fine particles, and polyvinylidene fluoride fine particles. For example, abrasive agents include cerium oxide fine particles, silicon carbide fine particles, and strontium titanate fine particles.
[0032] In this embodiment, the external additives used were 1.5 parts by mass of silica, 0.1 parts by mass of a hydrotalcite compound, and 0.1 parts by mass of strontium titanate, relative to 100 parts by mass of toner.
[0033] [Charging roller deposits] As described above, the toner remaining on the photosensitive drum 1 is cleaned and removed by the cleaning device 5. However, even after cleaning, a very small amount of toner, or a charge control agent, external additives, etc. contained in the toner still remains on the photosensitive drum 1. Some of the residues after cleaning adhere to and accumulate on the charging roller 2. In this embodiment, when the deposits accumulated on the charging roller 2 are analyzed, there are cases where the charge control agent, silica, and the external additives, hydrotalcite and strontium titanate, are electrostatically adhered, and cases where the charge control agent and external additives are physically fixed while being mixed with the resin component of the toner.
[0034] [Conventional cleaning sheet materials] A sheet member conventionally used as a cleaning member for the charging roller 2 will be described. According to Prior Art Document 2, when the work functions of the charging roller 2, polyimide sheet, and silica satisfy the relationship of "sheet material > silica > charging roller," the polyimide sheet is easily charged to the negative polarity side relative to the silica, and the charging roller is easily charged to the positive polarity side, so that the silica repels the polyimide sheet and is attracted to the charging roller 2, thereby preventing the occurrence of vertical streaks in charging defects.
[0035] However, in the conventional sheet members, there were cases where the occurrence of image defects caused by charge control agents, external additives, etc. was not suppressed. This is thought to be because the work functions of deposits other than silica could not be made to have the desired relationship, and when the amount of deposits was large, the deposits were physically compressed by the contact pressure between the photosensitive drum 1 and the charging roller 2, causing the deposits to accumulate on the charging roller 2. In this way, when the charge control agents, external additives, etc. accumulate on the charging roller 2, it becomes impossible to charge the photosensitive drum 1 to the desired potential, and image quality is significantly reduced.
[0036] Furthermore, as described above, even when the adhesion of the adhering matter increases due to the charge control agent or external additive being mixed with the resin component of the toner, it becomes difficult to electrostatically transfer the adhering matter from the charging roller 2 to the photosensitive drum 1. In this case as well, it becomes impossible to charge the photosensitive drum 1 to a desired potential, and image quality is significantly degraded.
[0037] [Cleaning Sheet Member of the Present Example] The cleaning sheet member of this embodiment is a cleaning sheet that can suppress the occurrence of image defects caused by insufficient charging even under conditions where the polyimide sheet described above would cause deposits to accumulate on the charging roller. The inventors have found through extensive research that by making the hardness of the particles applied to the surface layer of the sheet member equal to or greater than the hardness of the charge control agent, external additives, and other materials contained in the toner, it is possible to obtain the effect of loosening adhered deposits and the effect of uniformly dispersing deposits on the charging roller 2 without being restricted by the work function of the material, and that this can suppress the occurrence of image defects caused by insufficient charging.
[0038] The cleaning sheet member will be described in detail below. As the sheet member 60 of this embodiment, a sheet member 60 having a surface layer with a certain degree of roughness and using a hard material for the surface layer will be described. The surface layer of the sheet member 60 in this embodiment includes at least a layer formed on the surface of the side that forms the contact surface with the charging roller 2.
[0039] First, the characteristic of using a hard material for the surface layer of the sheet member 60 will be described in detail. Many of the materials used as charge control agents and external additives are sufficiently harder than materials such as polyimide and polyphenylene sulfide (PPS) used as conventional sheet members 60. For example, in terms of Mohs hardness, which is a general index of hardness, inorganic substances such as silica (silicon dioxide) and strontium titanate have a Mohs hardness of 5 to 6, whereas organic substances such as polyimide and crystalline plastics such as PPS are soft, with a Mohs hardness of 1 to 2. Therefore, since the deposits on the charging roller 2 are harder than the sheet member 60, the effect of loosening the adhered deposits and the effect of uniformly dispersing the deposits on the charging roller 2 described above could not be obtained.
[0040] Therefore, in the sheet member 60 of this embodiment, a hard material is used for the surface layer of the sheet member. In this case, the sheet member 60 has a base layer (second layer) and a surface layer (first layer), and a flexible material (Mohs hardness: 1) is used for the base layer like conventional sheet members, and a hard material (Mohs hardness: 7) is used for the surface layer. In this way, by using a flexible material for the base layer, it becomes easier to control the pressing pressure of the sheet member 60 against the charging roller 2. For example, a sheet member 60 made of a single layer of a hard material may be used, but in that case, it is necessary to make the thickness of the sheet member 60 very thin in order to control the pressing pressure against the charging roller 2. In that case, the sheet member 60 formed very thin becomes the first layer, but it becomes a very hard thin film sheet. As a result, it is difficult to process and breaks easily, making it difficult to obtain and use. In this embodiment, polyethylene terephthalate (PET) is used for the base layer of the sheet member 60, and the thickness of the base layer is set to 25 to 150 μm. The thickness of the sheet member 60 is not limited to this and can be changed depending on the material selected, and it is sufficient that the sheet member 60 can be pressed against the charging roller 2 with a desired contact pressure.
[0041] Next, the surface layer of the sheet member 60 of this embodiment will be described in more detail. As described above, the sheet member 60 is preferably flexible in consideration of pressing it against the charging roller 2. Therefore, it is necessary to maintain the flexibility of the sheet member 60 while using a hard material for the surface layer. Therefore, as the sheet member 60 of this embodiment, particles of a hard material are applied as the surface layer on the PET layer which is the base layer. At this time, the hardness of the particles applied to the surface layer is preferably equal to or greater than the hardness of the charge control agent, external additive, etc. contained in the toner. In other words, since silica, which is commonly and widely used as a charge control agent, external additive, etc., has a Mohs hardness of 5, titanium has a Mohs hardness of 5 to 5.5, and strontium titanate, etc., has a general Mohs hardness of 6, it is preferable that the Mohs hardness of the particles applied to the surface layer of the sheet member 60 is 6 or more. Furthermore, since the general new Mohs hardness (modified Mohs hardness) of silica (silicon dioxide) is 7 and the new Mohs hardness of strontium titanate and the like is 6, it is preferable that the new Mohs hardness of the particles applied to the surface layer of the sheet member 60 is 7 or more. For example, as particles applied to the surface layer of the sheet member 60, silicon dioxide, magnesium oxide, cerium oxide, zirconium oxide, chromium oxide, aluminum oxide, silicon carbide, boron carbide, diamond, etc. can be used.
[0042] Further, the surface roughness of the sheet member 60 will be described in detail. By having a certain roughness on the contact surface of the sheet member 60 with the charging roller 2 as described above, it is possible to suppress the occurrence of image defects caused by charging defects. Specifically, the surface roughness of the sheet member 60 is preferably an arithmetic mean roughness Ra of 0.18 μm or more and 2.41 μm or less. Here, if the surface roughness is too small, the effect of loosening the stuck deposits cannot be obtained. On the other hand, if the surface roughness is too large, the degree of loosening the stuck deposits varies greatly, so that the deposits cannot be uniformly dispersed. Therefore, in this embodiment, in order to achieve both the effect of loosening the stuck deposits and the effect of uniformly dispersing the deposits on the charging roller 2, the surface roughness is set to the above range.
[0043] FIG. 5 shows a cross-sectional view of the sheet member 60 of this embodiment, and will be described. The sheet member 60 has a structure in which a surface layer 64 is provided on a flexible base layer 61, and particles 63 are uniformly applied with an adhesive 62 such as a polymer adhesive. This allows a hard material to be disposed on the contact surface S of the surface layer 64 of the sheet member 60 with the charging roller 2 while maintaining the flexibility of the sheet member 60. Furthermore, the surface roughness of the sheet member 60 (roughness of the contact surface S) can be adjusted by the particle size of the particles applied to the surface layer 64 of the sheet member 60. At this time, there is no limit to the particle size of the particles to be applied, but in order to stably obtain the desired surface roughness Ra, it is preferable to use particles having a particle size of 0.3 μm or more and 12.0 μm or less.
[0044] [Method of pressing sheet member against charging roller] Next, a method of pressing the sheet member 60 against the charging roller 2 will be described with reference to Figs. 6 and 7. The sheet member 60 has a length dimension that is approximately the same as the length dimension along the rotation axis of the elastic layer portion of the charging roller 2. The upper longitudinal edge portion is supported by being attached to a sheet member attachment base 70 with double-sided tape so as to prevent waviness. The sheet member attachment base 70 is fixedly supported by a support member 5b of the cleaning blade of the cleaning device 5. The sheet member 60 is abutted with an appropriate pressing force so that the belly of the sheet member 60 contacts the charging roller 2 in the forward direction with respect to the rotation direction R2 of the charging roller 2. The charging roller 2 and the sheet member 60 are arranged so that there is no partial gap between them at the contact portion. As a result, the sheet The member 60 rubs against the rotating charging roller 2, loosening and uniformly dispersing the deposits adhering to the charging roller 2.
[0045] As shown in FIG. 7, the free length n, the contact length m, and the intrusion amount Δ are specified for the sheet member 60. The free length n is the portion of the sheet member 60 that is not attached to the sheet member attachment base 70. The contact length m is the distance from the end of the sheet member attachment base 70 at the free length n to the contact point with the charging roller 2. The intrusion amount Δ is the distance between the point where the sheet member 60 exists when the charging roller 2 is not in contact with the sheet member 60 and the point where the sheet member deformed by the contact with the charging roller 2 exists in a direction perpendicular to the direction in which the sheet member 60 extends, based on the contact point. In this embodiment, the free length n is 6 to 10 mm, the contact length m with the charging roller 2 is 4 to 8 mm, and the intrusion amount Δ is 1 to 2 mm. These values should be appropriately determined according to the device configuration, size, material, and desired performance.
[0046] [Surface hardness of sheet material and charging roller] In this embodiment, the hardness of the surface layer of the sheet member 60 is harder than the hardness of the surface layer of the charging roller 2. The hardness of the surface layer of the sheet member 60 and the hardness of the surface layer of the charging roller 2 are measured in Martens hardness HM (N / m) using a microhardness tester (product name: Picodentor HM500, manufactured by Helmut Fischer) based on ISO14577. 2) was measured. The reason for comparing Martens hardness is that the Mohs hardness is 1 for both, making it an index where the difference in hardness does not appear numerically. Martens hardness HM is measured while a test load is applied. Martens hardness HM is determined from the value obtained by increasing the test load and then, if possible, reaching a preset load, then calculating the load vs. indentation depth. Specifically, it is as follows.
[0047] Martens hardness HM is defined as the quotient of the applied test force (F) and the surface area of the indentation A (h) by formula (1). The surface area of the indentation A (h) is calculated from the indentation depth (h). A square pyramidal diamond Vickers indenter is used. HM=F / As(h)=F / (26.43×h2) ···(1) The device was set to a maximum indentation depth h2 of 2 μm, a maximum test load Fmax of 100 mN, and a test time of 30 s, and measurements were performed at a test temperature / humidity of 23° C. / 50% RH.
[0048] The Martens hardness HM calculated by the above measurement method is 200 N / mm 2 On the other hand, the HM of the surface of the charging roller 2 is 1.0 N / mm 2 The sheet member 60 is sufficiently hard. Zirconium oxide, which is an example of particles used for applying to the surface layer 64 of the sheet member 60, has a Martens hardness HM of 3000 N / mm 2 Aluminum oxide has a Martens hardness HM of 9000N / mm 2 As shown by the Mohs hardness, these are sufficiently harder than the surface layer of the charging roller 2 and the sheet member 60.
[0049] [Evaluation experiment 1] In order to confirm the effects of this embodiment, evaluation experiments 1, 2, and 3 were performed. First, the evaluation results of evaluation experiment 1, which confirmed the effect of the surface roughness Ra of the sheet member 60, will be described. In evaluation experiment 1, a wrapping film sheet (manufactured by 3M) was used as the sheet member 60. This wrapping film sheet is composed of a base layer and a surface layer, with the base layer being made of polyethylene terephthalate (PET) having a thickness of 75 μm, and the surface layer having aluminum oxide particles uniformly applied with a molecular adhesive or the like. The general Mohs hardness of aluminum oxide is 9, and the new Mohs hardness is 12. Here, ten types of wrapping film sheets, sheets 1 to 10, below, which have different particle sizes of aluminum oxide particles applied to the surface layer, were prepared.
[0050] As shown in Table 1, seven types of sheets, sheets 1 to 7, are used as the sheet member 60 of this embodiment. Sheets 1 to 7 were prepared by coating the surface of the sheet with aluminum oxide particles having particle sizes of 0.3 μm (#10000), 1.0 μm (#8000), 2.0 μm (#6000), 3.0 μm (#4000), 5 μm (#3000), 9 μm (#2000), and 12 μm (#1200), respectively. In addition, three types of sheets, sheets 8, 9, and 10, were prepared as comparative examples. Sheets 8 and 9 were prepared by coating the surface of the sheet with aluminum oxide particles having particle sizes of 15 μm (#1000) and 30 μm (#600), respectively. Sheet 10 was prepared by processing sheet 1. Specifically, two sheets of sheet 1 were prepared, and the coated surfaces of the aluminum oxide particles were aligned with each other and rubbed against each other.
[0051] The surface roughness of sheets 1 to 10 was measured as the arithmetic mean roughness Ra (μm, JIS B0601) using a surface roughness measuring device (product name: Surfcorder, manufactured by Kosaka Laboratory Co., Ltd.). The measurement conditions were an evaluation length of 4 mm, a cutoff value of 0.8 mm, and a feed rate of 0.1 mm / s. Table 1 shows the grain size and surface roughness Ra measurement results for each of sheets 1 to 9. [Table 1]
[0052] As shown in Table 1, the particle size of the particles applied to the surface layer is not necessarily correlated with the surface roughness Ra of the sheet member 60. For example, when comparing sheets 5 and 6, the particle size of the particles applied to the surface layer of sheet 6 is larger, but the Ra of the sheet surface layer is larger in sheet 5. This phenomenon can occur because the surface roughness Ra of the sheet member is determined by the amount of particles 63 protruding from the adhesive 62.
[0053] Next, the evaluation conditions will be described in detail. The paper used for printing was A4 size with a basis weight of 80 g / m 2 Red Label (Canon) was used. In addition, a process cartridge capable of printing 5,500 sheets at a printing rate of 4% was prepared. Process cartridges equipped with each of the sheet members 60 of sheets 1 to 7 were prepared and comparative evaluations were performed.
[0054] For comparative evaluation, the occurrence of image defects due to charging failure at the end of the life of the process cartridge was confirmed. First, 5,000 sheets of an image with 4 mm wide horizontal lines arranged at 96 mm intervals were printed to bring the process cartridge into the end of its life. Next, in order to confirm the effect of each sheet member 60 in suppressing adhesion of the charge control agent, external additives, etc. to the charging roller 2, For the image evaluation, 10 halftone images were printed to check for the occurrence of image defects due to charging failure. The image evaluation was performed every 500 prints. The results of evaluation experiment 1 are shown in Table 2. [Table 2]
[0055] As shown in Table 2, in the process cartridge equipped with sheets 1 to 7 of this embodiment, no image defects due to improper charging occurred, and good images were obtained. On the other hand, in the process cartridge equipped with sheets 8, 9, and 10 of the comparative examples, image defects due to improper charging occurred at 4,500 sheets, 3,000 sheets, and 3,000 sheets, respectively. When the surface of the charging roller 2 was checked at this time, the accumulation of deposits was suppressed in the process cartridge equipped with sheets 1 to 7 of this embodiment. On the other hand, the accumulation of deposits in the form of streaks was observed in the process cartridge equipped with sheets 8, 9, and 10 of the comparative examples.
[0056] From the observation results of the charging roller 2 and the sheets in the evaluation experiment and the results of the study leading to the present invention, it is considered that, in the case of the sheets 8 and 9, when the surface roughness Ra is too large, the degree of loosening of the adhered matter can be loosened, but the adhered matter cannot be uniformly dispersed because the degree of loosening of the adhered matter varies widely. On the other hand, in the case of the sheet 10, when the surface roughness Ra is too small, the effect of loosening the adhered matter was not obtained in the first place. Also, it is considered that, in the range of the surface roughness Ra of the sheets 1 to 7 according to this embodiment, both the effect of loosening the adhered matter and the effect of uniformly dispersing the adhered matter could be obtained. In the evaluation experiment, no significant effect was observed in the range of the surface roughness of the sheets 1 to 7. From the above, it is preferable that the surface roughness Ra of the sheet member 60 is 0.18 μm or more and 2.41 μm or less.
[0057] [Evaluation experiment 2] Next, evaluation experiment 2 will be described. In evaluation experiment 2, the effect of the hardness of the surface layer material of the sheet member 60 was confirmed. In evaluation experiment 2, the following four types of sheets C, D, E, and F were prepared as the sheet member 60 of this embodiment. In addition, the following two types of sheets A and B were prepared as sheet members of a comparative example. Only sheet A was a single-layer sheet made of polyimide, with a sheet thickness of 75 μm and a surface layer with a predetermined roughness. Sheets B, C, D, E, and F consist of a base layer and a surface layer, with the base layer made of polyethylene terephthalate (PET) with a thickness of 75 μm, and the surface layer having particles uniformly applied with a molecular adhesive or the like. Sheets A, E, For F, a commercial product was used, and for sheets B, C, and D, the following method was used. Specifically, polyethylene terephthalate resin was used as the binder resin, and methyl ethyl ketone was used as the solvent. The resin was mixed with the coating particles, degassed, and bar-coated on the substrate to obtain a sheet. The surface roughness of each sheet member was set to Ra of 0.18 μm or more and 2.41 μm or less. As the substrate, in addition to polyethylene terephthalate, for example, polybutylene terephthalate, polyethylene naphthalate, polyethylene, polypropylene, polycarbonate, polyvinyl chloride, polyvinylidene chloride, polystyrene, polyacrylonitrile, ABS resin, nylon, etc. can be used. As the binder resin, in addition to polybutylene terephthalate resin, for example, urethane resin, butyral resin, etc. can be used. As the solvent, in addition to methyl ethyl ketone, for example, toluene, xylene, methyl isobutyl ketone, ethyl acetate, butyl acetate, etc. can be used. As the coating method, in addition to bar coating, for example, spray coating, roll coating, knife coating, die coating, etc. can be used.
[0058] <Sheet A> (Comparative example) Material: Polyimide (Mohs hardness of surface material: 1, new Mohs hardness: 1) Surface layer Ra: 0.52μm (Manufactured by UBE Corporation, Product name: Upilex)
[0059] <Sheet B> (Comparative example) Coating particles: Calcium carbonate (Mohs hardness of the coating particles, which is the surface material: 3, New Mohs hardness: 3) Particle size: 1.0μm Surface layer Ra: 0.55μm
[0060] <Sheet C> Coating particles: Zirconium oxide (Mohs hardness of the coating particles, which is the surface material: 7, New Mohs hardness: 7) Particle size: 1.0μm Surface layer Ra: 0.50μm
[0061] <Sheet D> Coating particles: Chromium oxide (Mohs hardness of the coating particles, which is the surface material: 6, New Mohs hardness: 7) Particle size: 1.0 μm Surface layer Ra: 0.41μm
[0062] <Sheet E> Coating particles: Aluminum oxide (Mohs hardness of the coating particles, which is the surface material: 9, New Mohs hardness: 12) Particle size: 1μm Surface layer Ra: 0.33μm (3M, product name: wrapping film #8000)
[0063] <Sheet F> Coating particles: Silicon carbide (Mohs hardness of the coating particles, which is the surface material: 9, New Mohs hardness: 13) Particle size: 1μm Surface layer Ra: 0.21μm (Manufactured by Sankyo Rika Kagaku Co., Ltd., Product name: Wrapping Film #8000)
[0064] Next, the evaluation conditions will be described in detail. The paper used for printing was A4 size with a basis weight of 80 g / m 2Red Label (Canon) was used. A process cartridge capable of printing 5,500 sheets at a print rate of 4% was prepared. Two types of toner were prepared for use in the process cartridge. The first was the toner in this embodiment, in which 1.5 parts by mass of silica, 0.1 parts by mass of a hydrotalcite compound, and 0.1 parts by mass of strontium titanate were added as external additives to 100 parts by mass of toner (referred to as toner 1). The second was the toner in which 1.8 parts by mass of silica and 0.1 parts by mass of a hydrotalcite compound were added as external additives to 100 parts by mass of toner (referred to as toner 2).
[0065] Each sheet member 60 of sheets A, B, C, D, E, and F was attached, and process cartridges using toner 1 and toner 2 were prepared, and a comparative evaluation was performed. As a comparative evaluation, the occurrence of image defects due to poor charging at the end of the life of the process cartridge was confirmed. First, 5,000 sheets of an image with 4 mm wide horizontal lines arranged at 96 mm intervals were printed, and the process cartridge was placed in the end of its life. Next, an image evaluation was performed to confirm the effect of each sheet member 60 in suppressing the adhesion of charge control agents, external additives, etc. to the charging roller 2. As an image evaluation, 10 sheets of halftone images were printed, and the occurrence of image defects due to poor charging was confirmed.
[0066] The results of the evaluation experiment are shown in Table 3. Table 3 shows the general Mohs hardness and new Mohs hardness of the surface layer material used for each sheet member 60, along with the occurrence or non-occurrence of image defects due to charging defects. [Table 3]
[0067] As shown in Table 3, in the process cartridge equipped with the sheets C, D, E, and F of this embodiment, no image defects due to poor charging occurred, and good images were obtained. On the other hand, in the process cartridge equipped with the sheets A and B of Comparative Example 1, image defects due to poor charging occurred. When the surface of the charging roller 2 was checked at this time, a large amount of deposits was observed in the process cartridge equipped with the sheets A and B, while the deposits were suppressed in the sheets C, D, E, and F. However, in the configuration of the sheet D in the cartridge using the toner 1, deposits were slightly deposited. In addition, when the contact surface of the sheet member 60 with the charging roller 2 after the evaluation experiment was checked, surface wear was observed in the sheets A and B, while surface wear was not observed in the sheets C, D, E, and F.
[0068] The reason why the surface wear was observed for sheets A and B is that the hardness of the charge control agent and external additives contained in the toner is harder than the hardness of the particles applied to the surface of the sheet material, and the surface layer of the sheet was scraped off by the adhesions on the surface of the charging roller 2. Also, the reason why slight deposits were accumulated in the configuration of Sheet D in the cartridge using Toner 1 is thought to be that Toner 1 contains a harder external additive (strontium titanate: Mohs hardness 6), which makes it difficult to obtain the effect of loosening the deposits stuck to the charging roller 2.
[0069] From the above, it is possible to suppress the occurrence of image defects caused by insufficient charging by making the hardness of the particles applied to the surface layer of the sheet member 60 equal to or greater than the hardness of the materials such as the charge control agent and external additives contained in the toner. In this case, the surface roughness Ra of the sheet member 60 is preferably 0.18 μm or more and 2.41 μm or less.
[0070] <Example 2> In this embodiment, in a condition where the durability of the sheet member 60 is more important, such as when the process cartridge has a longer life than that of the process cartridge described in the first embodiment, a method is described in which the hardness of the particles applied to the surface layer of the sheet member as a cleaning sheet member for the charging roller is made harder than the hardness of the charge control agent and external additives contained in the toner, thereby suppressing the occurrence of image defects caused by charging defects. The configuration of the image forming apparatus is the same as that of the first embodiment. Therefore, a duplicated description other than the different parts will be omitted.
[0071] In a condition where the durability of the sheet member 60 is more important, such as when the life of the process cartridge is extended, the effect of the hardness of the surface layer material of the sheet member 60 was confirmed. Evaluation experiment 3 will be described below.
[0072] [Evaluation experiment 3] In evaluation experiment 3, four types of sheet members were prepared, similar to sheets C, D, E, and F used in the above-mentioned evaluation experiment 2. Sheets E and F were prepared as sheet members 60 of the present embodiment, and sheets C and D were prepared as comparative examples. The paper to be printed is A4 size with a basis weight of 80 g / m 2 Red Label (Canon) was used. A process cartridge capable of printing 10,500 sheets at a print rate of 4% was prepared. Process cartridges equipped with each of the sheet members 60 of sheets C, D, E, and F were prepared and comparative evaluation was performed. The toner used was Toner 1 in Example 1.
[0073] For comparative evaluation, the occurrence of image defects due to charging failure at the end of the life of the process cartridge was confirmed. First, 10,000 images with 4 mm wide horizontal lines arranged at 96 mm intervals were printed to bring the process cartridge into the end of its life. Next, image evaluation was performed to confirm the effect of each sheet member 60 in suppressing adhesion of charge control agent, external additives, etc. to the charging roller 2. For image evaluation, 10 halftone images were printed to confirm the occurrence of image defects due to charging failure.
[0074] The results of the evaluation experiment are shown in Table 4. Table 4 shows the general Mohs hardness and new Mohs hardness of the surface layer material used for each sheet member 60, along with the presence or absence of image defects caused by charging defects. [Table 4]
[0075] As shown in Table 4, in the process cartridge equipped with the sheets E and F of this embodiment, no image defects due to poor charging occurred, and good images were obtained. On the other hand, in the process cartridge equipped with the sheets C and D of Comparative Example 3, image defects due to poor charging occurred. When the surface of the charging roller 2 was checked at this time, a large amount of deposits was observed in the process cartridge equipped with the sheets C and D, while the deposits were suppressed in the sheets E and F. In addition, when the contact surface of the sheet member 60 with the charging roller 2 after the evaluation experiment was checked, surface wear was observed in the sheets C and D, but no surface wear was observed in the sheets E and F. This is because the sheets were used for a longer period of time than in Example 1, and therefore further wear resistance was required. In other words, it is considered that although the effect of loosening deposits stuck to the charging roller 2 can be obtained by making the hardness of the materials equal to or greater than that of the charge control agent and external additives contained in the toner, if the hardness is similar, wear deterioration occurs depending on the period of use.
[0076] As described above, in conditions where the durability of the sheet member 60 is more important, such as when the life of the process cartridge is extended, the occurrence of image defects caused by poor charging can be suppressed by making the hardness of the particles applied to the surface layer of the sheet member 60 harder than the hardness of the charge control agent, external additives, etc. contained in the toner. In this case, it is preferable that the surface layer material has a general Mohs hardness of 7 or more, and a new Mohs hardness of 8 or more.
[0077] As described above, according to this embodiment, the hardness of the particles applied to the surface layer of the sheet member 60 as the cleaning sheet member of the charging roller 2 is set to be equal to or greater than the hardness of the charge control agent and external additives contained in the toner, thereby suppressing the occurrence of image defects caused by poor charging. This makes it possible to obtain a good image without image defects. In this case, the surface roughness Ra of the sheet member 60 is preferably 0.18 μm or more and 2.41 μm or less. In addition, it is preferable that the surface layer material has a general Mohs hardness of 6 or more and a new Mohs hardness of 7 or more. Furthermore, in conditions where the durability of the sheet member 60 is more necessary, such as when the life of the process cartridge is extended, it is preferable that the surface layer material has a general Mohs hardness of 7 or more and a new Mohs hardness of 8 or more.
[0078] As described above, the Mohs hardness and surface roughness of the surface layer material can be within a suitable range, but it is preferable to use a balanced Mohs hardness and surface roughness within an appropriate range depending on the specifications of the process cartridge (toner used, life, charging roller, etc.).
[0079] [others] The charging roller 2 equipped with the sheet member 60 described above has been described in a process cartridge that is detachably attached to the image forming apparatus main body 90, but the present invention is not limited to this. The same effects can be obtained in a process cartridge in which the photosensitive drum unit 4 and the developing unit 20 are independently detachably attached to the image forming apparatus main body 90. The same effects can also be obtained in a toner-replenishment type image forming apparatus in which the process cartridge is integrated with the image forming apparatus.
[0080] The image forming apparatus 120 described above has a monochrome configuration. However, the configuration of the present invention is not limited to this, and the same effects can be obtained even if it is applied to a color image forming apparatus that prints four colors (e.g., yellow, magenta, cyan, and black) by overlapping them. In this case, an intermediate transfer body such as an intermediate transfer belt may be used as a method of transferring the image to the recording material.
[0081] [Configuration 1] a charging member for charging the image carrier; a cleaning member that is pressed against the charging member and rubs against the surface of the charging member as the charging member rotates; A charging device having the cleaning member includes at least a first layer that contains roughening particles and is in contact with the charging member; the first layer has a Martens hardness higher than that of the surface of the charging member, The roughening particles have a Mohs hardness equal to or greater than the component with the highest Mohs hardness in the toner adhering to the surface of the charging member. A charging device characterized by: [Configuration 2] The cleaning member has the first layer and a flexible second layer supporting the first layer. 2. The charging device according to claim 1, [Configuration 3] The roughening member is applied to the second layer with an adhesive to form the first layer. 3. The charging device according to configuration 2. [Configuration 4] The toner component attached to the surface of the charging member includes an external additive of the toner. 4. The charging device according to claim 1, wherein the charging device is a charging device having a charging function. [Configuration 5] The roughening particles are made of a material having a Mohs hardness of 6 or more. 5. The charging device according to claim 1, wherein the charging device is a charging device having a charging function. [Configuration 6] The roughening particles are made of a material having a Mohs hardness of 7 or more. 6. The charging device according to configuration 5. [Configuration 7] The roughening particles are made of a material having a new Mohs hardness of 7 or more. 7. The charging device according to any one of configurations 1 to 6. [Configuration 8] The roughening particles are made of a material having a new Mohs hardness of 8 or more. 8. The charging device according to configuration 7. [Configuration 9] The surface roughness Ra of the first layer of the cleaning member is 0.18 μm or more and 2.41 μm or less. 9. The charging device according to any one of configurations 1 to 8. [Configuration 10] The particle size of the roughening particles is 0.3 μm or more and 12 μm or less. 10. The charging device according to any one of configurations 1 to 9. [Configuration 11] An image carrier; A charging device according to any one of configurations 1 to 10, A process cartridge comprising: [Configuration 12] An image carrier; A charging device according to any one of configurations 1 to 10, An image forming apparatus comprising: [Explanation of symbols]
[0082] 1: photosensitive drum, 2: charging roller, 60: sheet member, 61: base layer of sheet member, 62: adhesive for bonding the base layer of sheet member and particles, 63: particles of sheet member
Claims
1. A charging member for charging the image carrier, A cleaning member is pressed against the charging member and rubbed against the surface of the charging member as the charging member rotates, A charging device having, The cleaning member includes at least a first layer containing coarse particles that comes into contact with the charging member. The first layer has a higher Martens hardness than the surface of the charged member. The rough particles have a Mohs hardness equal to or greater than that of the component with the highest Mohs hardness in the toner adhering to the surface of the charged member. A charging device characterized by the following features.
2. The cleaning member comprises the first layer and a flexible second layer that supports the first layer. The charging device according to feature 1.
3. The first layer is formed when the rough particles are applied to the second layer with an adhesive. The charging device according to feature 2.
4. The toner components adhering to the surface of the charged member include the toner's external additives. A charging device according to any one of claims 1 to 3.
5. The aforementioned coarse particles are made of a material with a Mohs hardness of 6 or higher. A charging device according to any one of claims 1 to 3.
6. The aforementioned coarse particles are made of a material with a Mohs hardness of 7 or higher. The charging device according to feature 5.
7. The aforementioned coarse particles are made of a material with a new Mohs hardness of 7 or higher. A charging device according to any one of claims 1 to 3.
8. The aforementioned coarse particles are made of a material with a new Mohs hardness of 8 or higher. The charging device according to feature 7.
9. The surface roughness Ra of the first layer of the cleaning member is 0.18 μm or more and 2.41 μm or less. A charging device according to any one of claims 1 to 3.
10. The particle size of the aforementioned coarse particles is between 0.3 μm and 12 μm. A charging device according to any one of claims 1 to 3.
11. Image carrier and, A charging device according to any one of claims 1 to 3, A process cartridge characterized by comprising the following features.
12. Image carrier and, A charging device according to any one of claims 1 to 3, An image forming apparatus characterized by comprising: