Image forming device
By modifying the exhaust duct design with a cutout near the potential sensor attachment, the capacitance issue is mitigated, resulting in improved accuracy of photosensitive drum potential detection in image forming apparatuses.
Patent Information
- Application Number
- JP2021164395
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-06
- Publication Date
- 2025-09-08
- Estimated Expiration
- 2041-10-06
AI Technical Summary
The proximity of the exhaust duct to the potential sensor in image forming apparatuses affects the measurement accuracy of the photosensitive drum potential due to capacitance between the exhaust duct resin and the detection electrode, leading to unstable potential sensor measurements.
The exhaust duct is designed with a cutout near the potential sensor attachment, positioning the sensor to protrude towards the photosensitive drum, with varying distances between the sensor and the drum to minimize capacitance effects.
This configuration improves the detection accuracy of the photosensitive drum potential by reducing the influence of capacitance, thereby enhancing the precision of potential measurements.
Smart Images

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Abstract
Description
[Background technology]
[0001] Conventionally, in order to stabilize image quality, image forming apparatuses measure the surface potential of a photosensitive member using a potential sensor or the like, and adjust the output of charging voltage, developing voltage, and exposure intensity during image formation based on the measurement results.
[0002] A block diagram of a surface potential measurement system for a photosensitive drum in a conventional image forming apparatus is shown in Fig. 2. In Fig. 2, reference numeral 1' denotes a photosensitive drum, reference numeral 8' denotes a potential sensor for measuring the surface potential of the photosensitive drum, reference numeral 107 denotes a potential sensor control unit 107 for controlling the potential sensor 8', and reference numeral 111 denotes a controller 111 for controlling the entire apparatus body.
[0003] The operation of Figure 2 will be explained using Figure 3. In Figure 3, when the remote signal input from the controller 111 is turned ON, the operation of the potential sensor 8' and the potential sensor control unit 107 begins. First, the drive signal Drv is input to the potential sensor 8 by the drive circuit 8h. This causes the tuning fork vibrator 8e to start vibrating, and its tip vibrates in the directions of the arrows 8c and 8d on the left and right, respectively.
[0004] Meanwhile, as the tuning-fork vibrator 8e vibrates, the capacitance between the measurement electrode 8f and the photosensitive drum 1' periodically changes C(t), which in turn changes the amount of charge on the measurement electrode 8f. This change in charge is converted into voltage by the detection resistor RS in the detection circuit 8g, obtaining an AC voltage signal proportional to the potential difference between the photosensitive drum 1' and the measurement electrode 8f. This signal is then amplified and output to the potential sensor control unit 107. The potential sensor 8' operates using the output of the high-voltage power supply 107b as its reference potential.
[0005] The potential sensor control unit 107 controls the output of the high-voltage power supply 107b based on the AC detection signal output from the detection circuit 8g so that the amplitude of this AC detection signal becomes zero. Here, the state where the amplitude of the AC detection signal is zero means that the tuning fork vibrator 8e is vibrating and the electrostatic capacitance between the measurement electrode 8f and the photosensitive drum 1' is periodically changing, but the amount of charge on the measurement electrode 8f does not change. This state means that the surface potential of the photosensitive drum 1' and the potential of the measurement electrode 8f, i.e., the surface potential of the photosensitive drum 1' and the output of the high-voltage generation unit 107b, are at the same potential. This makes it possible to obtain the surface potential of the photosensitive drum 1'. (Zero Method) The potential sensor control unit 107 converts the output of the high voltage generating unit 107b at this time into a detected output signal generating unit (not shown) in accordance with the relationship shown in FIG. 4, for example, and outputs the converted signal to the controller 111. Fig. 4 shows the relationship between the detection value, which is the output of the potential sensor control unit 107, and the surface potential of the photosensitive drum 1. In the case of Fig. 4, there is a linear relationship between the measurement result and the detection value, such that when the measurement result of the potential sensor control unit 107 is 50V, the output of the detection output signal generation unit 107c is 0V, and when it is -900V, the output of the detection output signal generation unit 107c is 2.85V.
[0006] Therefore, the controller 111 can obtain surface potential information of the photosensitive drum 1' by converting the signal input from the potential sensor control unit 107 based on the relationship in Fig. 4. Then, based on this information, the controller 111 sets the output values of the charging high voltage and the developing high voltage during image formation, and the exposure intensity to obtain a predetermined density.
[0007] Furthermore, in image forming apparatuses using the aforementioned potential sensor, a non-contact corona charger 2' is used to charge the photosensitive drum 1'. When the corona charger 2' is used to charge the photosensitive drum 1', atmospheric discharge occurs, generating ozone. Ozone can cause image defects. For this reason, many image forming apparatuses employ a configuration that removes ozone using a fan and exhaust duct.
[0008] When miniaturizing an image forming apparatus with such a configuration, the exhaust duct is placed between the corona charger and the developing unit, close to each other. If the developing unit and the exhaust duct are placed close to each other, there is a possibility that toner scattered near the developing unit may be sucked in by the exhaust duct. Therefore, by facing the exhaust duct's intake port toward the corona charger, ozone is exhausted while suppressing scattered toner.
[0009] In the image forming apparatus described above, it has been proposed that the potential sensor be attached to the ozone exhaust duct due to space limitations and for reasons such as cost reduction. [Prior art documents] [Patent documents]
[0010] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-39450 Summary of the Invention [Problem to be solved by the invention]
[0011] The potential of the above-mentioned potential sensor is almost the same as the drum potential, and is approximately 0 to -900V as shown in Figure 4, so the exhaust duct needs to be floated from the housing (GND potential) of the image forming apparatus. For this reason, a resin member is used for the attachment part of the potential sensor on the exhaust duct to float it from the GND potential of the image forming apparatus. A resin member that is floated from the GND of the image forming apparatus will have an unstable potential relative to the GND of the image forming apparatus.
[0012] When the resin material of the exhaust duct is located near the tuning fork and detection electrode of the potential sensor, it is affected by the capacitance Cd(t) between the detection electrode 8f and the resin material 150e of the exhaust duct near the potential sensor, in addition to the capacitance C(t) between the detection electrode 8f and the photosensitive drum 1 as described in Fig. 3. This capacitance Cd(t) affects the measurement results of the photosensitive drum potential measured by the potential sensor, which is a problem. [Means for solving the problem]
[0013] The image forming apparatus according to the present invention includes a photosensitive member that rotates around a rotation axis, a corona charger that charges the photosensitive member by corona discharge, a developing unit that develops an electrostatic latent image formed on the photosensitive member with toner, a duct having an opening facing the corona charger, and a potential sensor attached to the duct that measures the potential of the photosensitive member, wherein the corona charger, the duct, and the developing unit are arranged in this order from upstream to downstream in the rotation direction of the photosensitive member, and the duct has a first surface that faces the photosensitive member and a second surface that faces downstream in the rotation direction. a second surface facing the corona charger in the rotation direction and having the opening, and a third surface facing the developing unit in the rotation direction and having the potential sensor attached thereto, the first surface of the duct facing the photosensitive member includes a first portion corresponding to the position where the potential sensor is attached in the direction along the rotation axis, and a second portion at a position different from the first portion in the direction along the rotation axis, and a first distance between the first portion and the photosensitive member is longer than a second distance between the second portion and the photosensitive member. the potential sensor protrudes from the first portion of the first surface of the duct toward the photosensitive member, and a third distance between the potential sensor and the photosensitive member is shorter than the first distance and the second distance. It is characterized by: [Effects of the Invention]
[0014] According to the present invention, by forming a cutout in the exhaust duct where the potential sensor is attached near the detection electrode of the potential sensor and the tuning fork, it is possible to reduce the effect of the capacitance generated between the exhaust duct resin member and the detection electrode and tuning fork of the potential sensor, thereby improving the detection accuracy of the potential sensor for detecting the photosensitive drum potential. [Brief explanation of the drawings]
[0015] [Figure 1] FIG. 1 is a diagram illustrating an example of a schematic configuration of an image forming apparatus. [Figure 2] FIG. 1 is a block diagram of a surface potential measurement system for a photosensitive drum in a conventional image forming apparatus. [Figure 3] 10A and 10B are diagrams illustrating an overview of a potential sensor and a control unit of the potential sensor in a conventional image forming apparatus. [Figure 4]10 is a diagram illustrating the characteristics of a detection output signal generating unit of a potential sensor control unit. FIG. [Figure 5] 2 is a schematic diagram of the periphery of a photosensitive drum of the image forming apparatus according to the present embodiment. [Figure 6] 10A and 10B are diagrams illustrating the shape of a portion of a conventional exhaust duct in the vicinity of where a potential sensor is attached. [Figure 7] 4A and 4B are diagrams illustrating the shape of a portion of the exhaust duct in the vicinity of where the potential sensor is attached according to the present embodiment. [Figure 8] 6A and 6B are diagrams illustrating the detection results of the potential sensor and the distance relationship between the potential sensor and the photosensitive drum. DETAILED DESCRIPTION OF THE INVENTION
[0016] Hereinafter, embodiments of the present invention will be described with reference to the drawings. However, the dimensions, materials, shapes, relative positions, etc. of the components described in the following embodiments may be changed as appropriate depending on the configuration of the device to which the present invention is applied and various conditions, and are not intended to limit the scope of the present invention to those alone.
[0017] Example 1 The image forming apparatus of this embodiment has a schematic configuration as shown in Figure 1. The apparatus of this embodiment is an image forming apparatus for electrophotographic processes. In Figure 1, 1a to 1d indicate photosensitive members, 2a to 2d indicate primary chargers, 8a to 8d indicate potential sensors, 3a to 3d indicate exposure units, 4a to 4d indicate developers, 53a to 53d indicate primary transfer units, and 6a to 6d indicate cleaners. Also, 51 indicates an intermediate transfer belt, 55 indicates an intermediate transfer belt cleaner, and 56 and 57 indicate secondary transfer units.
[0018] After the photoconductor is uniformly charged by the primary charger, an exposure unit applies exposure according to an image signal to form an electrostatic latent image on the photoconductor. Potential sensors 8a to 8d are provided between the exposure and development stages to measure the potential of the electrostatic latent image.
[0019] The electrostatic latent image is then developed into a toner image by a developing unit, and the toner images on the four photosensitive members are multiply transferred to an intermediate transfer belt by a transfer unit, and then transferred to a recording material P by a secondary transfer unit. Residual toner remaining on the photosensitive members is collected by a cleaner, and residual toner remaining on the intermediate transfer belt is collected by an intermediate transfer belt cleaner 55. The toner images transferred to the recording material P are fixed by a fixing unit 7, thereby forming a color image.
[0020] As shown in FIG. 5, the corona charger 2 includes a shield plate 2e as the corona charger housing, a discharge wire 2f, and a grid 2g. The corona charger 2 is electrically charged by corona discharge with the photosensitive drum 1. The discharge wire 2f is a tungsten wire with a diameter of approximately 50 μm. Note that the discharge wire may also be made of other conductive materials (which may have an anti-oxidation layer on their surface). It may also be in the shape of a needle electrode, sawtooth electrode, or other similar shape. The grid 2g is made of a conductive metal material edged with a specific pattern, such as a mesh. In this embodiment, the charger 2 charges the surface of the photosensitive drum 1 to approximately -850 V. A discharge occurs when a current is passed through the discharge wire 2f, generating ozone.
[0021] Next, the air flow around the corona charger will be explained. An intake fan 160 attached to the main body sends intake air A from outside the main body to the corona charger 2.
[0022] This intake air A is blown into the corona charger from an opening at the top of the corona charger 2. An exhaust duct 150 is disposed downstream of the corona charger 2 in the direction of rotation (arrow) of the photosensitive drum 1. This exhaust duct 150 exhausts ozone generated from the discharge wire 2f to the outside of the main body.
[0023] As can be seen from FIG. 5, the gap between the shield 2e of the corona charger 2 and the photosensitive drum 1 varies between the upstream side and the downstream side in the rotation direction of the photosensitive drum 1.
[0024] In this way, ozone is sent by intake air A from the opening at the bottom of the corona charger 2 to the exhaust duct 150 downstream in the rotation direction of the photosensitive drum 1. Exhaust air B sent to the exhaust duct 150 passes through an ozone filter (not shown) at the rear of the main body and is exhausted to the outside of the image forming apparatus.
[0025] In addition, an opening 150a for exhausting air is provided on the side surface of the exhaust duct 150 on the corona charger side. By providing the opening 150a on the side surface of the exhaust duct 150 in this manner, the exhaust duct is prevented from attracting developer scattered near the sleeve 4e, which is the developer carrier of the developing unit 4.
[0026] If the developer is exhausted from the opening 150a through the exhaust duct 150, the developer may scatter further inside the main body or leak out of the machine, so it is desirable to locate the opening 150a farther away from the developing device 4.
[0027] Most of the intake air A containing ozone is collected in the exhaust duct 150. However, since it is a gas (fluid), it is not possible to collect all of the gas in the exhaust duct 150. In particular, as the photosensitive drum 1 rotates, the exhaust air C that is not collected in the exhaust duct 150 flows into the gap between the exhaust duct 150 and the photosensitive drum 1 shown in FIG.
[0028] This exhaust air C also contains ozone. Therefore, when the exhaust air C flows into the gap, ozone floats in the gap between the exhaust duct 150 and the photosensitive drum 1 and in the vicinity of the developing unit, which is a position downstream from that position in the rotation direction of the photosensitive drum.
[0029] When ozone adheres to the photosensitive drum, it causes a loss of sensitivity of the photosensitive drum, resulting in an image defect known as image deletion, in which the formed image appears white. For this reason, it is desirable to place the exhaust duct opening 150a as close as possible to the photosensitive drum to reduce the amount of exhaust air C.
[0030] 6A and 6B are diagrams illustrating the shape of a conventional exhaust duct near where a potential sensor is attached. Fig. 6A is a view of the photosensitive drum 1 and exhaust duct 150 as seen from the corona charger 2 side. The potential sensor 8 is attached to the center of the exhaust duct 150 when viewed in the axial direction of the photosensitive drum 1.
[0031] The potential sensor 8 is attached to the developing device side of the exhaust duct 150, and the dotted line portion in Figure 6(a) is the portion that cannot be seen when the exhaust duct 150 is viewed from the corona charger 2 side, and the solid line portion is the portion that can be seen. Area 8i of the potential sensor 8 is the portion where the detection electrode 8f and tuning fork 8e are arranged.
[0032] As described above, in the conventional configuration, the area 8i of the potential sensor 8, where the detection electrode 8f and tuning fork 8e are located, is close to the exhaust duct. This causes a large effect on the drum potential measurement results of the potential sensor due to the capacitance between the resin part of the exhaust duct and the detection electrode 8f and tuning fork 8e.
[0033] The opening 150a of the exhaust duct has a generally rectangular shape extending along the rotation axis of the photosensitive drum 1. The opening 150a is provided on the opposite side of the rotation direction of the photosensitive drum 1 from the part where the potential sensor 8 is attached.
[0034] Fig. 6(b) is an enlarged view of the vicinity of the exhaust duct in Fig. 5. In the case of this image forming apparatus, the distance D between the photosensitive drum 1 and the potential sensor is 2 mm, and the distance E between the exhaust duct 150 and the drum is 4.8 mm.
[0035] 7A and 7B are diagrams illustrating the shape of the exhaust duct in the vicinity of where the potential sensor is attached according to this embodiment. Fig. 7A is a view of the photosensitive drum 1 and the exhaust duct 150 as viewed from the corona charger 2 side. The potential sensor 8 is attached to the center of the exhaust duct 150 when viewed in the axial direction of the photosensitive drum 1.
[0036] The potential sensor 8 is attached to the developing device side of the exhaust duct 150, and the dotted line portion in Figure 7(a) is the portion that is not visible when the exhaust duct 150 is viewed from the corona charger 2 side, and the solid line portion is the portion that is visible. In this way, also in this embodiment, the potential sensor 8 protrudes from the exhaust duct 150 toward the photosensitive drum 1 side.
[0037] Area 8i of potential sensor 8 is the portion where detection electrode 8f and tuning fork 8e are arranged. In this embodiment, the portion of exhaust duct 150 where potential sensor 8 is attached, near detection electrode 8f of the potential sensor and tuning fork 8e, is shaped (cut out) as shown in Figure 7(a). This makes it possible to suppress the influence of capacitance generated between the exhaust duct resin material and the detection electrode and tuning fork of the potential sensor, thereby improving the detection accuracy of the photosensitive drum potential by the potential sensor.
[0038] The opening of the exhaust duct 150 has a shape including a straight section 150a where the distance relationship with the photosensitive drum is the same as in the conventional case, a section 150b where the distance with the photosensitive drum changes in a sloped manner, and an inclined section 150c where the distance with the photosensitive drum is longer than in the conventional configuration.
[0039] Figure 7(b) is an enlarged view of the vicinity of the exhaust duct in Figure 5. The dotted line portion of exhaust duct 150 is the portion other than the vicinity where potential sensor 8 is attached, and exhaust air B1 is exhausted from opening 150a. The solid line portion of exhaust duct 150 is the vicinity where potential sensor 8 is attached, and exhaust air B2 is exhausted from opening 150c.
[0040] In this embodiment, the distance D between the photosensitive drum 1 and the potential sensor is 2 mm, the distance E between the exhaust duct 150 at opening 150a and the drum is 4.8 mm, and the distance F between the exhaust duct 150 at opening 150c and the drum is 9.2 mm, but other dimensions may be used. In other words, the distance between the photosensitive drum 1 and the part of the duct 150 facing the photosensitive drum 1 where the potential sensor 8 is attached is longer than the distance between the other parts and the photosensitive drum 1.
[0041] Figure 8 shows the relationship between the detection result of the potential sensor and the distance between the potential sensor and the photosensitive drum. The drum potential in Figure 8 is -900 V. The horizontal axis of Figure 8 shows the distance between the potential sensor and the photosensitive drum, and the vertical axis shows the difference between the actual drum potential and the detection result of the potential sensor (equivalent to the drum potential) (the value obtained by subtracting the actual drum potential from the detection result of the potential sensor).
[0042] The triangular points in FIG. 8 represent the results when the potential sensor 8 is attached to the conventional exhaust duct 150, and the circular points represent the results when the potential sensor 8 is attached to the exhaust duct 150 of this embodiment.
[0043] When the distance between the potential sensor 8 and the photosensitive drum 1 becomes larger or smaller than 2 mm, a deviation occurs between the drum potential and the detection result of the potential sensor 8. However, as shown in Fig. 8, in either case, the detection result of this embodiment shows a smaller deviation in the measured drum potential than the conventional example, making it possible to improve the detection accuracy of the photosensitive drum potential by the potential sensor 8.
[0044] As described above, in this embodiment, by cutting out the portion of the exhaust duct where the potential sensor is attached near the detection electrode of the potential sensor and the tuning fork, it is possible to reduce the effect of the capacitance generated between the resin material of the exhaust duct and the detection electrode and tuning fork of the potential sensor, thereby improving the accuracy with which the potential sensor detects the photosensitive drum potential.
[0045] In this embodiment, the exhaust duct is cut out only in a limited area around the potential sensor, which minimizes the amount of ozone that flows between the photosensitive drum and the exhaust duct and toward the developing device, making it less likely that image defects (image deletion) will occur due to ozone adhering to the drum. [Explanation of symbols]
[0046] 1 Photosensitive drum 2 Corona charger 4 Developer 8 Potential Sensor 150 Exhaust duct
Claims
1. a photoreceptor that rotates around a rotation axis; a corona charger that charges the photosensitive member by corona discharge; a developing device that develops the electrostatic latent image formed on the photosensitive member with toner; a duct having an opening for the corona charger; a potential sensor attached to the duct for measuring a potential of the photosensitive member; the corona charger, the duct, and the developing unit are arranged in this order from upstream to downstream in the rotation direction of the photosensitive member, the duct has a first surface facing the photosensitive member, a second surface facing the corona charger in the rotation direction and having the opening, and a third surface facing the developing unit in the rotation direction and having the potential sensor attached thereto; the first surface of the duct facing the photosensitive member includes a first portion corresponding to a position where the potential sensor is attached in a direction along the rotation axis, and a second portion at a position different from the first portion in a direction along the rotation axis; a first distance between the first portion and the photosensitive member is greater than a second distance between the second portion and the photosensitive member; the potential sensor protrudes from the first portion of the first surface of the duct toward the photoreceptor; a third distance between the potential sensor and the photosensitive member is shorter than the first distance and the second distance; An image forming apparatus characterized by:
2. an edge of the opening on the side of the photosensitive member has a linear portion extending along the rotation axis and an inclined portion inclined relative to the linear portion; 2. The image forming apparatus according to claim 1, wherein the image forming apparatus is a recording medium.
3. the potential sensor is attached at a position including a center of the duct in a direction along the rotation axis; 3. The image forming apparatus according to claim 1, wherein the image forming apparatus is a recording medium.
4. the duct draws in air containing ozone generated by the corona discharge through the opening.
4. The image forming apparatus according to claim 1, wherein the first and second ink cartridges are arranged on the first and second ink cartridges.
5. Further provided with an ozone filter, The air drawn into the duct from the opening passes through the ozone filter and is discharged to the outside.
5. The image forming apparatus according to claim 4.
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