Image forming device
The image forming apparatus addresses density unevenness by adjusting developing and charging voltages within specific thresholds, reducing fogging and carrier adhesion, thus enhancing image quality and maintenance efficiency.
Patent Information
- Application Number
- JP2021184235
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-11
- Publication Date
- 2025-10-29
- Estimated Expiration
- 2041-11-11
AI Technical Summary
Modulating charging or developing voltage to correct periodic density unevenness in electrophotographic image forming apparatuses can lead to fogging and excessive carrier adhesion on the photosensitive drum, which affects image quality and maintenance intervals.
An image forming apparatus that includes a detection system to identify density unevenness, adjusts the developing and charging voltages within specific thresholds to correct periodic density variations while preventing fogging and carrier adhesion, using a control mechanism to limit the amplitude of voltage corrections based on detected unevenness and environmental conditions.
The solution effectively reduces density unevenness, minimizes fogging, and suppresses carrier adhesion, maintaining image quality and extending maintenance intervals by balancing voltage corrections within allowable ranges.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an image forming apparatus for forming a toner image on a sheet. [Background technology]
[0002] In recent years, electrophotographic image forming apparatuses have begun to spread in the printing industry, and the demand for high-speed output and high image quality is rapidly increasing. Among the requirements for high image quality, uniformity of image density within a page (reduction of density unevenness) is particularly noteworthy. Density unevenness can occur periodically due to, for example, uneven rotation of rotating bodies such as a developing sleeve, a photosensitive drum, and a charging roller. Patent Document 1 proposes a method for correcting such periodic density unevenness. Patent Document 1, in particular, describes modulating the developing voltage or charging voltage to offset the periodic density unevenness. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent Publication No. 2000-098675 Summary of the Invention [Problem to be solved by the invention]
[0004] However, modulating the charging voltage or developing voltage to improve the periodic density unevenness that occurs on the developing sleeve can result in fogging or excessive adhesion of carrier from the two-component developer to the photosensitive drum. Fog is a phenomenon in which toner adheres to unexposed areas of the photosensitive drum surface. If more carrier than expected adheres to the photosensitive drum, the carrier can interfere with toner transfer or shorten the cleaning or replacement period for the cleaning member that cleans the photosensitive drum surface. Therefore, an object of the present invention is to improve density unevenness while suppressing the occurrence of fogging and carrier adhesion. [Means for solving the problem]
[0005] The present invention is, for example, Rotate A photoreceptor; The surface of the photoreceptor band electric vinegar charging means; Charged by the charging means an exposure unit that exposes the surface of the photoreceptor to light to form an electrostatic latent image; Developer a developing rotor that rotates while carrying the developer, The toner contained in Using the electrostatic latent image Develop A developing means; an image forming means comprising: The aforementioned A detection film formed by an image forming means and used to detect density unevenness in the rotation direction of the photosensitive member. Toner image of A detection means for detecting; The developing rotor is current Image Voltage of generating means for generating; before Note Rotation direction of the photoconductor Density unevenness To suppress The DC component of the developing voltage is To correct First correction component the detection result of the detection toner image detected by the detection means Based on Control a control means; The control means so that the amplitude of the DC component of the development voltage corrected based on the first correction component does not exceed a first threshold value, The image forming apparatus is characterized in that the first correction component is limited. [Effects of the Invention]
[0006] According to the present invention, the occurrence of fogging and carrier adhesion are suppressed, and density unevenness is improved. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a diagram illustrating an image forming apparatus. [Figure 2] Diagram showing various potentials related to development [Figure 3] Development gamma characteristics [Figure 4] Diagram explaining Vback latitude [Figure 5] A diagram showing an example of the configuration of a concentration sensor [Figure 6] A diagram showing an example of the configuration of a phase sensor [Figure 7] Diagram showing the output signal of the phase sensor [Figure 8] A diagram illustrating a control device [Figure 9] Flowchart showing a method for correcting density unevenness [Figure 10] Diagram explaining test images [Figure 11] Diagram illustrating Vback latitude, Vth and Va [Figure 12] Diagram illustrating Vback latitude, Vth and Va [Figure 13] Diagram explaining the relationship between environmental conditions and Vback latitude [Figure 14] Flowchart showing a method for correcting density unevenness [Figure 15] Diagram explaining the relationship between environmental conditions and thresholds [Figure 16] Flowchart showing a method for correcting density unevenness DETAILED DESCRIPTION OF THE INVENTION
[0008] Hereinafter, embodiments will be described in detail with reference to the accompanying drawings. Note that the following embodiments do not limit the scope of the invention claimed. Although multiple features are described in the embodiments, not all of these multiple features are necessarily essential to the invention, and multiple features may be combined arbitrarily. Furthermore, in the accompanying drawings, the same reference numerals are used to designate the same or similar components, and redundant explanations will be omitted.
[0009] Example 1 [Image forming equipment] 1, the letters Y, M, C, and K added to the end of the reference numerals indicate the toner colors, such as yellow, magenta, cyan, and black. For example, a component with a reference numeral having a Y added to the end is involved in forming a yellow toner image. When it is not necessary to distinguish between colors in the description of a component, a reference numeral without the suffix letter is used.
[0010] The image forming apparatus 101 is a copier, multifunction peripheral, printer, or the like that forms an image on a recording material (hereinafter referred to as a sheet) using an electrophotographic process. The control circuit 40 is a controller that controls each component of the image forming apparatus 101. For example, the control circuit 40 converts image data to generate an image signal and supplies it to the exposure device 7. The photoconductor 1 is an image carrier that is driven by a drive source such as a motor to rotate clockwise and carries an electrostatic latent image and a toner image. The photoconductor 1 is also called a photosensitive drum because it is a cylindrical rotating body. The charging roller 2 is applied with a charging bias Vc by the control circuit 40, thereby charging the surface of the photoconductor 1 to a uniform potential (dark potential Vd). The exposure device 7 irradiates the photoconductor 1 with laser light corresponding to the image signal, thereby forming an electrostatic latent image on the surface (periphery) of the photoconductor 1. The developing sleeve 31 of the developing device 3 is applied with a developing bias Vdc, which causes toner to adhere to the electrostatic latent image, forming a toner image on the surface of the photoconductor 1. The developer contained in the developing device 3 is assumed to be a two-component developer containing toner and carrier. A primary transfer bias is applied to the primary transfer roller 6 by the control circuit 40, and the primary transfer roller 6 transfers the toner image from the photoconductor 1 to the intermediate transfer belt 8. The drum cleaner 4 is a member that removes and collects toner that has not been transferred to the intermediate transfer belt 8 and remains on the photoconductor 1. The photoconductor 1, developing sleeve 31, charging roller 2, and drum cleaner 4 may be housed and integrated within a cartridge. Such a cartridge is configured to be detachable from the main body of the image forming apparatus 101. The photoconductor 1, charging roller 2, exposure device 7, developing sleeve 31, and primary transfer roller 6 function as an image forming unit that forms an image on the intermediate transfer belt 8.
[0011] The intermediate transfer belt 8 is an endless belt, and is sometimes called an intermediate transfer body. The intermediate transfer belt 8 is driven by a drive source such as a motor to rotate counterclockwise. The toner images from the four photosensitive drums 1 are transferred onto the intermediate transfer belt 8 in a superimposed state, forming a full-color toner image on the intermediate transfer belt 8. The toner images transferred onto the intermediate transfer belt 8 are transported to a secondary transfer section. The secondary transfer section is a nip formed by the intermediate transfer belt 8 and a secondary transfer roller 11.
[0012] The image forming apparatus 101 has a feed cassette 13, which is a feed tray for feeding sheets. The feed cassette 13 is a storage container that stores a large number of sheets P. A feed roller 14 sends the sheet P from the feed cassette 13 to a conveying path 15 in accordance with instructions from a control circuit 40. The sheet P is conveyed to a secondary transfer unit by conveying rollers 16 and 18 provided along the conveying path 15. The conveying roller 18 is sometimes called a registration roller. A sheet sensor 23 may be provided downstream of the conveying roller 18 in the conveying direction of the sheet P.
[0013] A secondary transfer bias is applied to the secondary transfer roller 11 by the control circuit 40, and the secondary transfer roller 11 transfers the toner image from the intermediate transfer belt 8 to the sheet P. The belt cleaner 9 removes and collects toner that has not been transferred to the sheet P and remains on the intermediate transfer belt 8. The secondary transfer roller 11 transports the sheet P to the fixing device 17. The fixing device 17 has two rotating bodies (a fixing roller 22 and a pressure roller 21) and applies heat and pressure to the sheet P and the toner image, thereby fixing the toner image to the sheet P. As the fixing roller 22 and the pressure roller 21 rotate, the sheet P is transported to the discharge rollers 20. The discharge rollers 20 discharge the sheet P to the outside of the image forming apparatus 101.
[0014] The density sensor 70 detects the density of the test image formed on the surface of the intermediate transfer belt 8. The environmental sensor 80 detects the environmental conditions (e.g., temperature, humidity, absolute moisture content) of the environment in which the image forming apparatus 101 is installed.
[0015] [Development gamma characteristics, Vback latitude] FIG. 2 shows the relationship between the potential of the photoconductor 1 and the development bias in the developing device 3 when density unevenness correction is not performed. The surface of the photoconductor 1 has an exposed area, which is an area irradiated with laser light, and an unexposed area, which is an area not irradiated with laser light. The surface potential of the unexposed area is called the charging potential (dark area potential Vd). The potential of the exposed area is called the exposure potential (light area potential Vl). The DC component of the development voltage applied to the developing sleeve is called the development bias Vdc. In this embodiment, to improve developability, an AC component is superimposed on the DC component of the development voltage. For example, the frequency of the AC component is 1.4 kHz, and the peak-to-peak voltage of the AC component is 1.5 kV. As such, the development voltage has a DC component and an AC component, and in this specification, this DC component is referred to as the development bias.
[0016] As shown in Figure 2, the development contrast Vcont is defined as the potential difference (voltage) between the light area potential Vl and the development bias Vdc. The development contrast Vcont is an index of the toner driving force in the developing device 3. The larger the development contrast Vcont, the more toner adheres to the photosensitive member 1. As a result, the image density increases. As shown in Figure 2, the fog removal voltage Vback is defined as the potential difference between the development bias Vdc and the dark area potential Vd.
[0017] Figure 3 shows the relationship between the development contrast Vcont and the reflectance of a toner image (hereinafter referred to as the development gamma characteristic). The horizontal axis represents the development contrast Vcont, and the vertical axis represents the reflectance. As the development contrast Vcont increases, the reflectance of the toner image also increases.
[0018] "Fogging" is a phenomenon in which toner adheres to the non-exposed areas of the photoreceptor 1. If the fogging removal voltage Vback is low, the amount of toner adhering to the non-exposed areas increases. If the fogging removal voltage Vback is high, the amount of carrier adhering to the non-exposed areas increases. Fog reduces image quality by creating a toner image that does not exist in the original image. Excessive carrier adhesion to the photoreceptor 1 reduces the image transfer performance of the primary transfer section and the cleaning ability of the drum cleaner 4. Therefore, the fogging removal voltage Vback needs to be set within an appropriate range (hereinafter referred to as the Vback latitude).
[0019] Figure 4 shows the relationship between the fog removal voltage Vback and the reflectance, and the relationship between the fog removal voltage Vback and the number of attached carriers. The horizontal axis shows the fog removal voltage Vback. The left vertical axis shows the fog reflectance. The right vertical axis shows the number of attached carriers. The white circles show the relationship between the fog removal voltage Vback and the reflectance. The black circles show the relationship between the fog removal voltage Vback and the number of attached carriers.
[0020] The Vback latitude refers to the range of the fog removal voltage Vback in which the reflectance of the fog on the photoreceptor 1 and the amount of carrier adhesion on the photoreceptor 1 satisfy predetermined conditions. In Example 1, the reflectance of the fog on the photoreceptor 1 is 1.5% or less, and the number of carrier adhesion on the photoreceptor 1 is 10 particles / cm. 2The range of the fog removal voltage Vback that satisfies the following is defined as the Vback latitude. In other words, the Vback latitude is the difference between the lower limit of the allowable Vback and the upper limit of the allowable Vback. A margin may be taken into consideration for the Vback latitude. In this case, the Vback latitude that takes the margin into consideration is obtained by subtracting the margin from the original Vback latitude. In the example shown in FIG. 4, the lower limit of the fog removal voltage Vback that satisfies the conditions of the fog reflectivity and the amount of carrier adhesion is 100V, and the upper limit is 180V. In other words, the Vback latitude is 80V. If the margin is 10V, the lower limit of the fog removal voltage Vback is 105V, and the upper limit of the fog removal voltage Vback is 175V. Therefore, the Vback latitude is 70V. In the following, the Vback latitude will be described assuming that the margin is taken into consideration.
[0021] [Test image detection] 1, the image forming apparatus 101 includes a density sensor 70 that detects the reflectance of the intermediate transfer belt 8. The density sensor 70 may include four reflective optical sensors corresponding to yellow, magenta, cyan, and black. The four sensors basically have a common configuration.
[0022] As shown in FIG. 5, the density sensor 70 is disposed opposite the intermediate transfer belt 8. The LED 71 is a light-emitting element (light source) that outputs infrared light. The PDs 72 and 73 are light-receiving elements (e.g., photodiodes) that receive reflected light 75 reflected by the intermediate transfer belt 8 or the toner pattern 74. The incident angle of the infrared light from the LED 71 toward the intermediate transfer belt 8 is 20°. The PD 72 receives specularly reflected light, which has a reflection angle of -20°, from the reflected light originating from the light irradiated onto the intermediate transfer belt 8 and the toner pattern 74. The PD 73 receives diffusely reflected light, which has a reflection angle of 50°. The incident angles and reflection angles are merely examples.
[0023] The concentration sensor 70 may have a drive circuit that supplies a current to the LED 71, and an IV conversion circuit that converts the current flowing through the PDs 72 and 73 into a voltage in accordance with the amount of received light.
[0024] [Phase detection] As shown in FIG. 6, photoconductors 1Y-1K, charging rollers 2Y-2K, and developing sleeves 31Y-31K may be provided with a phase sensor 50 that detects the rotational phase. An output shaft 55 of a motor 54 is connected to a shaft 53 that forms the rotation center of a rotating body such as the photoconductor 1 via a coupling mechanism or the like. The phase sensor 50 has a photointerrupter 51 and a light-shielding member 52. The light-shielding member 52 is provided integrally with the shaft 53 and rotates in accordance with the rotation of the shaft 53. When the light-shielding member 52 reaches a predetermined rotational position due to the rotation of the shaft 53, the light-shielding member 52 is detected by the photointerrupter 51. The phase sensor 50 detects the rotational phase of the rotating body based on the output of the photointerrupter 51.
[0025] 6 employs a direct drive system in which the shaft 53 of the photosensitive member 1 and the output shaft 55 of the motor 54 are directly connected, but this is merely an example. A speed reduction mechanism may be inserted between the shaft 53 of the photosensitive member 1 and the output shaft 55 of the motor 54. A similar drive system can be employed for the charging roller 2 and the developing sleeve 31. However, the charging roller 2 may be rotated by being driven by the photosensitive member 1, in which case the motor 54 for the charging roller 2 is not required. If a charging member of another shape is employed instead of the charging roller 2, the motor 54 and phase sensor 50 for the charging roller 2 are also not required.
[0026] FIG. 7 shows an example of the output of the photointerrupter 51. The light-shielding member 52 rotates in synchronization with a rotating body such as the photosensitive member 1. When the light-shielding member 52 passes the photointerrupter 51, the output of the photointerrupter 51 drops to approximately 0 V. The falling edge of the output at this time is defined as the home position of the rotational phase of the photosensitive member 1. The period from one falling edge to the next falling edge is one cycle T0. The period during which the light-shielding member 52 passes the photointerrupter 51 is Tg. One cycle T0 corresponds to a rotational phase of 2π. Therefore, it is possible to calculate the relative rotational phase with the home position as the reference.
[0027] [controller] 8 shows an example of the control circuit 40. The CPU 801 is a processing circuit that controls the image forming apparatus 101 in accordance with a control program stored in a ROM (read-only memory) of the memory 802. The memory 802 may include a RAM (random access memory) or the like. The image processing unit 803 converts image data output from an external computer or an image reader to generate an image signal for the exposure device 7. Furthermore, the image processing unit 803 may be configured to generate an image signal of a test image for measuring density unevenness.
[0028] The CPU 801 causes the density sensor 70 to detect a test image formed on the intermediate transfer belt 8, creates a density unevenness profile based on the detection results of the density sensor 70, and stores the profile in the memory 802. The CPU 801 may also be responsible for controlling the on / off of the LED 71 of the density sensor 70 and converting signals output from the PDs 72 and 73. The CPU 801 acquires environmental data about the image forming apparatus 101 using the environmental sensor 80. The CPU 801 calculates the rotational phase of the rotating body using the output signal of the phase sensor 50 and a timer 805. The operation unit 804 includes a display device that outputs information to the user and an input device that accepts instructions from the user. The actuator group 808 includes the motor 54 and solenoids provided within the image forming apparatus 101. The high-voltage power supply 809 is a power supply circuit that generates various high voltages required in the image formation process, such as a charging bias, a developing bias, and a transfer bias.
[0029] The CPU 801 executes a control program to achieve various functions. The acquisition unit 811 creates a profile by associating the rotational phase (phase Φ) detected by the phase sensor 50 with the density (amplitude D) output from the density sensor 70, and stores the profile in the memory 802. The threshold determination unit 812 determines the threshold Vth required by the correction determination unit 813 based on environmental conditions. For example, the threshold Vth may be half the Vback latitude. Thus, if the Vback latitude is 70 V, the threshold Vth is determined to be 35 V. The correction determination unit 813 determines a correction bias ΔVdc for correcting the development bias Vdc based on the profile and the threshold Vth. The correction bias ΔVdc is a correction component used to modulate the development bias Vdc. The correction component may be, for example, a function of time or a function of the rotational phase, similar to the profile. The correction determination unit 813 determines a correction bias ΔVc for correcting the charging bias Vc based on the profile and the threshold Vth′. The correction bias ΔVc is a correction component used to modulate the charging bias Vc.
[0030] When the amplitude Va of the correction bias ΔVdc exceeds a threshold Vth, the amplitude correction unit 814 corrects the amplitude Va to a value equal to or less than the threshold Vth. Note that, because the development bias Vdc is a DC component of the development voltage, the amplitude Va of the correction bias ΔVdc and the amplitude of the modulated development bias Vdc have the same value. When the amplitude Vb of the correction bias ΔVc exceeds a threshold Vth′, the amplitude correction unit 814 corrects the amplitude Vb to a value equal to or less than the threshold Vth′. The bias setting unit 815 sets the high-voltage power supply 809 so that the development bias Vdc and the charging bias Vc are output. The bias setting unit 815 adds the correction bias ΔVdc to the initial value of the development bias Vdc, or adds the correction bias ΔVc to the initial value of the charging bias Vc. As a result, the high-voltage power supply 809 outputs the modulated development bias Vdc and the modulated charging bias Vc. For example, assume that the initial value of the dark potential Vd is -700V and the allowable range of Vback is -595V or more and -525V or less. In this case, the Vack latitude is 70V and the threshold Vth is 35V. The initial value of the development bias Vdc is -560V. If the amplitude Va of the correction component ΔVdc (i.e., the amplitude Va of the development bias Vdc modulated by the correction component ΔVdc) exceeds 35V, the amplitude Va of the correction component ΔVdc is limited (reduced).
[0031] It is not essential that both the developing bias Vdc and the charging bias Vc be modulated; it is sufficient to modulate either one of them. If there is very little density unevenness, it is not necessary to modulate both the developing bias Vdc and the charging bias Vc.
[0032] [Density Unevenness Correction] FIG. 9 is a flowchart showing a method for correcting density unevenness in the first embodiment. Density unevenness correction is a process for modifying image formation conditions (process conditions) so as to reduce density unevenness based on the detection results of a test image. Specifically, the density of a test image formed with a constant developing bias Vdc is detected. Next, a density unevenness component dependent on the rotation period of the developing sleeve 31, which is included in the density unevenness, is extracted from the detection results. A method for modulating the developing bias Vdc is determined based on the extraction results so as to cancel out density unevenness caused by the developing sleeve 31.
[0033] However, when the developing bias Vdc is modulated, the fog removal voltage Vback, which is based on the developing bias Vdc, changes. Therefore, it is necessary to modulate the developing bias Vdc so that the amplitude Va of the modulated developing bias Vdc does not deviate from the allowable range (Vback latitude). This achieves a balance between reducing density unevenness, reducing fog, and suppressing carrier adhesion.
[0034] When a predetermined start condition is satisfied, the CPU 801 executes the following process. Note that the predetermined start condition may be that an explicit start instruction is input from the operation unit 804, that a consumable part or the like is replaced, or that the cumulative number of formed images reaches a predetermined number.
[0035] In S901, the CPU 801 detects the home position of the rotation phase of the developing sleeve 31 based on the detection result of the phase sensor 50. The CPU 801 may store the relationship between the timing of the home position and the position of the test image in the memory 802. This relationship may indicate the time difference (standby time) from the timing when the home position is detected to the timing when the test image is detected by the density sensor 70. In other words, the CPU 801 may start sampling the density by the density sensor 70 when the standby time has elapsed since the timing when the home position was detected.
[0036] In S902, the CPU 801 forms a test image on the intermediate transfer belt 8 without modulating the development bias Vdc. FIG. 10 shows an outline of the test image Tp. The test image Tp is a monochromatic, single-tone, band-shaped image extending along the sub-scanning direction Ar1. The gradation level of the test image Tp is set to a gradation level with a large gradient of the development gamma characteristic shown in FIG. 3. This makes it possible to detect density unevenness occurring in the developing device 3 with high sensitivity. In the first embodiment, the density of the test image for each color is set to 50% of the maximum image density.
[0037] As shown in FIG. 10, four density sensors 70Y-70K are arranged to simultaneously detect four-color test images. The four density sensors 70Y-70K are arranged at different positions in the main scanning direction, which is perpendicular to the sub-scanning direction Ar1. Incidentally, multiple rotating bodies are responsible for the density unevenness that periodically occurs in the sub-scanning direction Ar1. The multiple rotating bodies generally have different circumferential lengths. For example, the circumferential length Lp of the photoconductor 1 is longer than the circumferential lengths of the developing sleeve 31 and the charging roller 2. In other words, the test image must be able to detect density unevenness caused by the maximum circumferential length. Therefore, the length of the test image Tp in the sub-scanning direction is set to be at least twice the circumferential length Lp of the photoconductor 1. A test image Tp of this length can also reduce the effects of unexpectedly occurring streaky toner images, other noise images, and uneven reflectivity of the intermediate transfer belt 8, which serves as the background for the test image Tp.
[0038] In S903, the CPU 801 detects the density of the test image Tp using the density sensor 70. The densities of the cyan, magenta, and yellow test images TpC, TpM, and TpY are measured by the PD 73, which receives diffusely reflected light. The density of the black test image TpK is measured by the PD 72, which receives specularly reflected light. The PD 72 detects both the specularly reflected light component and the diffusely reflected light component. Therefore, the CPU 801 obtains the specularly reflected light component by removing the diffusely reflected light component detected by the PD 73 from the detection result of the PD 72. There is a lot of light reflected from the intermediate transfer belt 8, and very little light reflected from the toner. Therefore, as the density of the toner image increases, the specularly reflected light component detected by the PD 72 decreases. The memory 802 stores the relationship between the density of the toner image and the diffusely reflected light and specularly reflected light of each color. The CPU 801 references this relationship to calculate the density of the toner image based on the detected diffusely reflected light and specular reflected light. The CPU 801 obtains the density profile of each of the test images TpY to TpK by sequentially detecting the density of the toner image at a predetermined sampling rate.
[0039] In S904, the CPU 801 detects periodic density unevenness related to the developing sleeve 31 from the density profiles of the test images TpY to TpK. For example, the CPU 801 extracts the relationship between the amplitude and phase of the density (unevenness). Specifically, the CPU 801 performs a Fourier transform on the density profile to determine the amplitude and phase of each frequency component, and extracts the density unevenness component caused by the rotation period of the developing sleeve 31 based on this amplitude and phase. As an example, assume that the process speed of the image forming apparatus 101 is 240 mm / s, the diameter of the developing sleeve 31 is 20 mm, and the peripheral speed ratio of the developing sleeve 31 to the photoconductor 1 is 180%. In this case, the rotation period of the developing sleeve 31 is 145 ms. The CPU 801 stores the amplitude D and phase Φ of the density unevenness component caused by the developing sleeve 31 in the memory 802.
[0040] In S905, the CPU 801 determines a correction bias ΔVdc for correcting the developing bias Vdc based on the amplitude D and the phase Φ. Here, correcting the developing bias Vdc means determining the correction amount (correction bias ΔVdc) of the developing bias Vdc for each rotation phase of the developing sleeve 31.
[0041] ΔVdc=Va×cos(ωt+θ) (1) Here, Va is called the development contrast difference and is a potential difference (amplitude) equivalent to the amplitude D in the gradient of the development gamma characteristic. ω is the angular velocity of the developing sleeve 31. t is time. The phase θ is defined by the following equation. θ=Φ-ω×Δt+π (2) Here, Δt is the time difference between when an image is formed and when it is detected by the density sensor 70. Δt is calculated from the process speed S and the distance ds from the developing device 3 to the density sensor 70 using the following formula. Δt=ds / S (3) The development bias Vdc is modulated in the opposite phase to the density unevenness so as to generate a development contrast Vcont corresponding to the amplitude D of the density unevenness. This cancels out the density unevenness component dependent on the development sleeve 31. Note that the phase difference corresponding to the time difference from the developing device 3 to the density sensor 70 is also taken into consideration. More specifically, the CPU 801 calculates a development contrast difference (amplitude Va) corresponding to the amplitude D from the amplitude D and the slope of the development gamma characteristic. The CPU 801 stores the development contrast difference (amplitude Va), angular velocity ω, and phase θ in the memory 802.
[0042] In S906, the CPU 801 determines whether the amplitude Va of the correction bias ΔVdc exceeds the threshold Vth. As an example, if the Vback latitude is 80V, the threshold Vth is determined to be 40V. However, if a margin (allowance) of about 10V is secured, the threshold Vth is set to 35V ((80V-10V) / 2=35V). If the amplitude Va exceeds the threshold Vth, the CPU 801 proceeds to S907. If the amplitude Va does not exceed the threshold Vth, the CPU 801 proceeds to S908.
[0043] In S907, the CPU 801 corrects (limits) the amplitude Va so that the fog removal voltage Vback falls within the Vback latitude. This corresponds to correcting the amplitude Va to be equal to or less than the threshold value Vth. For example, the CPU 801 may replace the amplitude Va in equation (1) with the threshold value Vth. ΔVdc=Vth×cos(ωt+θ) (4) In S908, the CPU 801 stores the correction bias ΔVdc in the memory 802. That is, the CPU 801 may store the formula (1) or (4), which is a correction formula for the development bias Vdc, in the memory 802. For example, the correction bias ΔVdc for each rotation phase based on the home position may be calculated in advance and stored in the memory 802. A set of multiple pairs of the rotation phase and the correction bias ΔVdc may be called a correction bias waveform.
[0044] [Operation after density unevenness correction] When a user instructs image formation, the CPU 801 detects the home position, reads out from the memory 802 a correction bias ΔVdc for each rotation phase based on the home position, and corrects the developing bias Vdc. For example, the developing bias Vdc is modulated by adding the correction bias ΔVdc to the initial value of the developing bias Vdc. The correction bias ΔVdc for each rotation phase may be calculated from a formula or coefficients stored in the memory 802.
[0045] [Effects of the invention] According to the first embodiment, the threshold value Vth is set with a margin for the Vback latitude. As shown in Fig. 11A, if the amplitude of the developing bias Vdc is equal to or less than the threshold value Vth, the fog removal voltage Vback falls within the range from the lower limit to the upper limit of the Vback latitude. In other words, fog is reduced and excessive carrier adhesion is suppressed.
[0046] When the slope of the development gamma characteristic is 0.004, the development contrasts Vcont corresponding to amplitudes D = 0.2 and D = 0.4 are 50V and 100V respectively. These values become Va. When D = 0.2, Va < Vth holds. As shown in FIG. 11(B), even if the development bias Vdc is modulated with an amplitude Va, the development bias Vdc remains within the range of the Vback latitude.
[0047] On the other hand, when D = 0.4, Va ≥ Vth holds. If the correction bias ΔVdc is not changed, as shown in FIG. 12(A), the amplitude Va of the development bias Vdc exceeds the threshold Vth. That is, there is a possibility that the overdevelopment voltage Vback deviates from the allowable range (Vback latitude).
[0048] In Example 1, when the amplitude Va exceeds the threshold Vth, the amplitude Va is replaced with the threshold Vth. As shown in FIG. 12(B), the development bias Vdc is modulated with the correction bias ΔVdc of the amplitude Va. Therefore, the amplitude Va of the corrected development bias Vdc becomes below the threshold Vth, and the overdevelopment voltage Vback remains within the Vback latitude.
[0049] According to Example 1, based on the periodic density variation information extracted from the density information of the test image, the correction bias ΔVdc of the development bias Vdc is determined. It is determined so that the amplitude Va of the development bias Vdc does not exceed the threshold Vth. Therefore, the periodic density unevenness is reduced within the range where the fogging is reduced and the excessive adhesion of carriers is suppressed. Thereby, the reduction of the periodic density unevenness, the reduction of the fogging, and the suppression of the carrier adhesion are balanced.
[0050] In the first embodiment, density unevenness caused by the developing sleeve 31 is extracted from the detection results of the test image, and the developing bias Vdc is modulated by the correction bias ΔVdc so as to reduce the extracted density unevenness. However, this is merely one example. Based on the detection results, the image forming conditions may be corrected so that the amplitude Va is equal to or less than the threshold value Th. For example, periodic density unevenness components caused by the photoconductor 1 may be extracted from the detection results of the test image, and the charging bias Vc may be modulated based on the extraction results.
[0051] In the first embodiment, the density of the test image formed on the intermediate transfer belt 8 is detected, but this is merely an example. The density of the test image formed on the sheet P may also be detected. In this case, the test image may be read by an image scanner or by a density sensor 70 disposed downstream of the fixing device 17.
[0052] <Example 2> [overview] In the first embodiment, the modulation amplitude (amplitude Va) of the development bias Vdc is determined based on the threshold Vth in density unevenness correction. The threshold Vth is determined based on the Vback latitude, which is affected by environmental conditions. Therefore, in the second embodiment, it is proposed to adaptively control the threshold Vth according to the ambient environment of the image forming apparatus 101. The description of the first embodiment is used to explain matters common to the second embodiment and the first embodiment.
[0053] 1, the image forming apparatus 101 includes an environmental sensor 80. The environmental sensor 80 is disposed near the outer surface of the housing of the image forming apparatus 101. This allows the CPU 801 to accurately measure the environmental conditions (e.g., temperature and relative humidity) around the image forming apparatus 101.
[0054] [Development gamma characteristics and Vback latitude] FIG. 13 shows the relationship between the fog removal voltage Vback and the reflectance of the fog, and the relationship between the fog removal voltage Vback and the number of adhered carriers. The definition of Vback latitude is as explained in Example 1. The open triangles indicate the reflectance of the fog in the non-exposed area in a low moisture environment. A low moisture environment is, for example, an environment where the temperature is 23°C, the relative humidity is 5% RH, and the absolute moisture content is 1 g / m 3 The black triangles indicate the number of carriers adhering to the non-exposed area in a low moisture environment. The white squares indicate the fogging reflectance in the non-exposed area in a high moisture environment. A high moisture environment is, for example, an environment where the temperature is 30°C, the relative humidity is 80% RH, and the absolute moisture content is 22 g / m 3 The black squares indicate the number of carriers adhering to the non-exposed area in the high moisture content environment.
[0055] According to Fig. 13, the fog removal voltage Vback that is within the allowable range for fog and carrier in a low moisture environment is between 70V and 170V. In other words, the Vback latitude LL in a low moisture environment is 100V. On the other hand, the fog removal voltage Vback that is within the allowable range for fog and carrier in a high moisture environment is between 130V and 185V. In other words, the Vback latitude LH in a high moisture environment is 55V.
[0056] [Density Unevenness Correction] Fig. 14 is a flowchart showing a method for correcting density unevenness in embodiment 2. Compared to Fig. 9, Fig. 14 differs in that steps S1401 and S1402 are added before step S901.
[0057] In S1401, the CPU 801 acquires the environmental conditions using the environmental sensor 80. Here, the environmental conditions may be parameters correlated with the Vback latitude. Here, the temperature and relative humidity are detected. The CPU 801 further calculates the absolute water content Awc based on the temperature T (°C) and the relative humidity Rh (%) using the following formula:
[0058] Awc = (Rws×Rh) / (T+273) (5) Rws = 6.1164×10^C (6) C = (7.591×(T+273)) / (240.7+(T+273))····(7) In S1402, the CPU 801 determines the threshold value Vth based on the absolute water content Awc. For example, a table describing the relationship between the threshold value Vth and the absolute water content Awc may be stored in the ROM area of the memory 802. The CPU 801 refers to this table and determines the threshold value Vth corresponding to the absolute water content Awc.
[0059] Figure 15 shows the relationship between the threshold Vth and the absolute water content Awc. The threshold Vth is set with a margin of 10 V for the Vback latitude corresponding to the absolute water content Awc. In other words, the margin is subtracted from the Vback latitude to obtain the difference, and the difference is then divided by 2 to set the threshold Vth.
[0060] [Effects of the invention] In the second embodiment, the threshold value Vth is adaptively controlled depending on the environmental conditions. Therefore, even if the installation environment of the image forming apparatus 101 changes, fogging is reduced, excessive carrier adhesion is suppressed, and density unevenness caused by the rotating body is reduced.
[0061] 1, the environmental sensor 80 is arranged to detect the environmental conditions of the installation environment of the image forming apparatus 101. However, this is just one example. The environmental sensor 80 may be arranged to detect the environmental conditions in the vicinity of the developing device 3. This is because the Vback latitude changes because the toner, carrier, and charging performance are affected by the environmental conditions.
[0062] Example 3 [overview] In the first embodiment, it is assumed that the density unevenness component caused by the developing sleeve 31 is detected from the density information of the test image. In the third embodiment, it is assumed that the density unevenness component caused by the developing sleeve 31 and the density unevenness component caused by the photoconductor 1 are detected from the density information of the test image. That is, a correction bias ΔVdc for the developing bias Vdc and a correction bias ΔVc for the charging bias Vc are calculated. In the third embodiment, the amplitude of the developing bias Vdc and the amplitude of the charging bias Vc are each modulated so as not to deviate from the Vback latitude. That is, the amplitude Va of the correction bias ΔVdc is limited by the threshold value Vth, and the amplitude Vb of the correction bias ΔVc is limited by the threshold value Vth'. When multiple density unevenness components with different periods exist in the density unevenness, the density unevenness component with high visibility is preferentially reduced. If the amplitude of the density unevenness component with high visibility is less than the threshold value, the density unevenness component with low visibility is also reduced.
[0063] In the third embodiment, the process speed of the image forming apparatus 101 is assumed to be 240 mm / s. The diameter of the developing sleeve 31 is assumed to be 20 mm. The diameter of the photoconductor 1 is assumed to be 30 mm. The peripheral speed ratio between the developing sleeve 31 and the photoconductor 1 is assumed to be 180%. In this case, the peripheral length of the developing sleeve 31 is 35 mm. The peripheral length of the photoconductor 1 is 94 mm. Therefore, the density unevenness component caused by the developing sleeve 31 is more visible than the density unevenness component caused by the photoconductor 1. Therefore, in the third embodiment, priority is given to correcting the density unevenness component caused by the developing sleeve 31. In the third embodiment, the explanations of the first and second embodiments are cited for matters common to the first and second embodiments.
[0064] [Density Unevenness Correction] Fig. 16 is a flowchart showing a method for correcting density unevenness in embodiment 3. In Fig. 16, explanations of matters common to Fig. 9 will be omitted.
[0065] In S1601, the CPU 801 detects periodic density unevenness based on the detection results (density profile) of the test image. Here, density unevenness components caused by the developing sleeve 31 and density unevenness components caused by the photoconductor 1 are detected. As described above, these density components are composed of amplitude and phase information. The rotation period of the developing sleeve 31 is 145 ms, and the rotation period of the photoconductor 1 is 392 ms. The amplitude of the density unevenness for the developing sleeve 31 is represented as Ds, and its phase is represented as Φs. Similarly, the amplitude of the density unevenness for the photoconductor 1 is represented as Dd, and its phase is represented as Φd.
[0066] In S1602, the CPU 801 determines a correction bias ΔVdc for the developing bias Vdc and a correction bias ΔVc for the charging bias Vc. The correction bias ΔVdc is calculated from equation (1). The correction bias ΔVc is calculated from the following equation.
[0067] ΔVc=Vb×cos(ω2t+θ2) (8) Here, Vb is called the development contrast difference and is a potential difference (amplitude) equivalent to the amplitude Dd in the gradient of the development gamma characteristic. ω2 is the angular velocity of the photosensitive member 1. The phase θ2 is defined by the following equation. θ2=Φd-ω2×Δt+π (9) If the amplitude Va exceeds the threshold value Vth in S906, the CPU 801 proceeds to S907. In S907, the amplitude Va is corrected to the threshold value Vth. Thereafter, in S1603, the CPU 801 restricts the correction of the charging bias Vc. For example, the CPU 801 may prohibit the correction of the charging bias Vc by substituting zero for ΔVc. Thereafter, the CPU 801 proceeds to S908.
[0068] If the amplitude Va does not exceed the threshold Vth in S906, the CPU 801 proceeds to S1611. In S1611, the CPU 801 determines a threshold Vth' for the charging bias Vc. The threshold Vth' may be determined using, for example, the following equation. Vth'=Vth―Va (10) In S1612, the CPU 801 determines whether the amplitude Vb of the correction bias ΔVc exceeds the threshold Vth'. If the amplitude Vb does not exceed the threshold Vth', the CPU 801 proceeds to S908. On the other hand, if the amplitude Vb exceeds the threshold Vth', the CPU 801 proceeds to S1613.
[0069] In S1613, the CPU 801 modifies the amplitude Vb. For example, the CPU 801 replaces the amplitude Vb with the threshold value Vth′ in equation (8). ΔVc=Vth'×cos(ω2t+θ2) (11) Finally, in step S908, the CPU 801 stores the correction biases ΔVdc and ΔVc in the memory 802.
[0070] [Operation after density unevenness correction] The CPU 801 controls the high-voltage power supply 809 to output a bias that is the sum of the developing bias Vdc and the correction bias ΔVdc, and applies it to the developing sleeve 31. In parallel with this, the AC component of the developing voltage is also applied to the developing sleeve 31. In other words, the high-voltage power supply 809 outputs a voltage that is the sum of the AC component of the developing voltage, the developing bias Vdc, and the correction bias ΔVdc. Similarly, the CPU 801 controls the high-voltage power supply 809 to output a bias that is the sum of the charging bias Vc and the correction bias ΔVc, and applies it to the charging roller 2.
[0071] [Effects of the invention] In the third embodiment, when there are multiple density unevenness components with different periods, the density unevenness component that is visually noticeable is preferentially reduced. As a result, even when there are multiple density unevenness components with different periods, it is possible to achieve a balance between the reduction of fog, the reduction of the number of carrier particles attached, and the reduction of density unevenness. Note that the adaptive control of the threshold Vth according to the environmental conditions described in the second embodiment may also be adopted in the third embodiment.
[0072] In the third embodiment, priority is given to correcting the density unevenness component caused by the developing sleeve 31 over correcting the density unevenness component caused by the photoconductor 1, but this is merely an example. If the density unevenness component caused by the photoconductor 1 is visually more noticeable than the density unevenness component caused by the developing sleeve 31, the density unevenness component caused by the photoconductor 1 is corrected preferentially.
[0073] <Technical ideas derived from examples> [Point 1] The photoconductor 1, charging roller 2, developing device 3, and secondary transfer roller 11 are an example of an image forming unit that uses a rotating body to form a toner image on a sheet. In particular, the charging roller 2 is an example of a charging member (charging unit) that charges the surface of the photoconductor 1 to a uniform potential (dark potential). The exposure unit 7 is an example of an exposure unit that exposes the surface of the photoconductor 1 to light to form an electrostatic latent image. The developing sleeve 31 is an example of a developing unit that attaches toner contained in a developer to the electrostatic latent image to form a toner image on the surface of the photoconductor 1. The developing unit 3 is an example of a developing unit having a developing unit. The primary transfer roller 6, intermediate transfer belt 8, and secondary transfer roller 11 are examples of transfer units that transfer the toner image to a sheet or intermediate transfer body. The drum cleaner 4 is an example of a cleaning unit that cleans the photoconductor 1. The density sensor 70 is an example of a detection unit that detects density unevenness in the toner image. The high-voltage power supply 809 is an example of a generation unit that generates voltages (e.g., charging bias Vc, development bias Vdc) to be applied to the rotating body. In other words, the high-voltage power supply 809 functions as a generating unit that generates a developing voltage, which is a developing bias applied to the developing rotor and includes a DC component and an AC component, and a charging voltage supplied to the charging unit. The CPU 801 is an example of a control unit that controls the generating unit to modulate the voltage so as to reduce density unevenness. For example, the CPU 801 functions as a control unit that controls the generating unit to modulate the DC component of the developing voltage based on the first correction component so as to reduce density unevenness. The CPU 801 limits the amplitude of the voltage modulated to reduce toner fogging and adhesion of carrier contained in the developer that forms the toner image to the photoconductor. For example, the CPU 801 limits the first correction component (e.g., ΔVdc) used to modulate the DC component of the developing voltage so as to reduce toner fogging and carrier adhesion. This suppresses the occurrence of fogging and carrier adhesion while improving density unevenness.
[0074] [Point 2] The potential difference between the dark potential Vd, which is the charging potential in the non-exposed area of the surface of the photoconductor 1, and the development bias Vdc supplied to the developing means that carries the developer, is called the fogging voltage Vback. The CPU 801 may limit the amplitude of the voltage modulated so that the fogging voltage Vback falls within a predetermined range (Vback latitude).
[0075] [Point 3] The CPU 801 may be configured to detect a density profile, which is a collection of multiple densities sampled by the density sensor 70 at a predetermined sampling period. Here, the sampling period is set to less than half the shortest period among the periods of the multiple density unevenness components (sampling theorem). The CPU 801 modulates the DC component of the development voltage (development bias) with a correction amount (first correction component) according to the density profile. The density profile is a collection of densities for each rotation phase starting from the home position of the rotating body. The progression of time and the rotation phase are correlated parameters. Note that the collection of correction amounts calculated from the density profile is also a collection of correction values (correction amplitudes or modulation amplitudes) for each rotation phase starting from the home position of the rotating body. Furthermore, the correction values are parameters related to density. Therefore, in a broad sense, a collection of correction values is also a density profile.
[0076] [Points 4 and 5] The amplitude Va of the DC component of the developing voltage modulated by the first correction component may exceed the upper limit (e.g., Vth) of a predetermined range. In this case, the CPU 801 may limit the amplitude of the DC component of the developing voltage modulated by the first correction component by reducing the first correction component. For example, the first correction component (e.g., correction bias ΔVdc) is added to the DC component of the developing voltage, so that the DC component of the developing voltage is modulated by the first correction component. If the amplitude of the DC component of the developing voltage modulated by the first correction component exceeds a predetermined threshold, the CPU 801 replaces the first correction component with a predetermined value equal to or less than the threshold. In the above-described embodiment, the first correction component is replaced with a threshold, but the first correction component may also be replaced with a value lower than the threshold.
[0077] [Points 6 and 7] The environmental sensor 80 is an example of a detection unit that detects the environmental conditions in which the image forming apparatus 101 is installed. The CPU 801 may be configured to adjust a predetermined range (e.g., Vback latitude, Vth) according to the environmental conditions. This prevents fogging and carrier adhesion and improves density unevenness even when the environmental conditions change. The environmental condition may be absolute moisture content.
[0078] [Points 8, 9, 12] The CPU 801 controls the generating means to modulate at least one of the voltages of the charging bias and the developing bias. The CPU 801 limits the amplitude of the voltage so that the potential difference (e.g., Vback) between the dark potential Vd and the developing bias Vdc falls within a predetermined range (e.g., Vback latitude). For example, the CPU 801 may control the high-voltage power supply 809 to modulate the charging voltage (e.g., charging bias Vc) based on the second correction component (e.g., correction bias ΔVc) so as to reduce density unevenness. The CPU 801 may limit the second correction component so as to reduce toner fogging and carrier adhesion to the photoconductor.
[0079] [Point 10] As suggested in the third embodiment, there are cases where the density unevenness component caused by the photosensitive member 1 is greater than the density unevenness component caused by the rotating developing member. In this case, the CPU 801 may modulate the charging bias with priority over the developing bias. As specifically described in the third embodiment, there are cases where the density unevenness component caused by the photosensitive member is less than the density unevenness component caused by the rotating developing member. In this case, the CPU 801 may modulate the developing bias with priority over the charging bias.
[0080] [Point 11] As shown in equation (1), the CPU 801 may calculate a corrective bias ΔVdc of the developing bias for reducing density unevenness components caused by the developing rotor. If the amplitude Va of the corrective bias ΔVdc exceeds a first threshold (e.g., Vth), the amplitude Va of the corrective bias may be reduced, and the corrective bias ΔVc of the charging bias for reducing density unevenness components caused by the photosensitive member 1 may be set to zero. The amplitude Va of the corrective bias ΔVdc may not exceed the first threshold. In this case, the CPU 801 may calculate a second threshold (e.g., Vth') from the difference between the corrective bias ΔVdc and the first threshold. The corrective bias ΔVc of the charging bias for reducing density unevenness components caused by the photosensitive member 1 may exceed the second threshold. In this case, the CPU 801 may reduce the amplitude Vb of the corrective bias ΔVc.
[0081] [Point 12] It is also possible to correct only the charging bias without correcting the developing bias. The CPU 801 functions as a control means for modulating the charging voltage based on the correction component so as to reduce density unevenness by controlling the high-voltage power supply 809. The CPU 801 may limit the correction component (correction bias ΔVc) so as to reduce toner fogging and carrier adhesion to the photosensitive member.
[0082] [others] The memory 802 is an example of a storage unit that stores a profile representing the relationship between the rotation phase of the photoconductor 1 or the developing rotor and the amplitude of density unevenness based on the detection results of the test image by the detection unit. The CPU 801 functions as a correction unit that corrects the amplitude of the charging bias or developing bias in accordance with the profile so as to reduce density unevenness. The CPU 801 limits the correction of the amplitude of the charging bias or developing bias so as to reduce toner fogging and adhesion of carrier contained in the developer to the photoconductor. The CPU 801 may limit the correction of the amplitude of the charging bias or developing bias in accordance with the allowable range (Vback latitude) of the fogging voltage, which is the potential difference between the dark potential and the developing bias. The CPU 801 may limit the correction of the amplitude of the charging bias or developing bias to reduce density unevenness so that the fogging voltage falls within a predetermined allowable range. The CPU 801 may also function as an adjustment unit that adjusts the allowable range (Vback latitude) according to environmental conditions. That is, the CPU 801 modulates both or either of the charging bias and the developing bias on the condition that the fogging removal voltage Vback falls within the allowable range.
[0083] As explained in the third embodiment, if both the charging bias and the developing bias are corrected, the fog removal voltage may not fall within the allowable range. In this case, the CPU 801 may preferentially correct the bias that is more strongly involved in density unevenness, out of the charging bias and the developing bias.
[0084] The invention is not limited to the above-described embodiments, and various changes and modifications can be made without departing from the spirit and scope of the invention. Accordingly, the following claims are appended to apprise the public of the scope of the invention. [Explanation of symbols]
[0085] 70: Density sensor, 101: Image forming apparatus, 801: CPU, 809: High voltage power supply
Claims
1. A rotating photoreceptor; a charging means for charging the surface of the photoreceptor; an exposure unit for exposing the surface of the photoreceptor charged by the charging unit to light to form an electrostatic latent image; an image forming means including a developing means having a developing rotor that rotates while carrying a developer, and that develops the electrostatic latent image using toner contained in the developer; a detecting means for detecting a toner image for detection formed by the image forming means and used to detect density unevenness in the rotation direction of the photosensitive member; a generating means for generating a developing voltage to be applied to the developing rotary member; a control unit that controls a first correction component for correcting a DC component of the developing voltage based on a detection result of the detection toner image detected by the detection unit so as to suppress density unevenness in the rotation direction of the photosensitive member, The image forming apparatus is characterized in that the control means limits the first correction component so that the amplitude of the DC component of the development voltage corrected based on the first correction component does not exceed a first threshold value.
2. 2. The image forming apparatus according to claim 1, wherein the control means limits the first correction component so that a fog removal voltage, which is a potential difference between a dark potential, which is a surface potential in a non-exposed area of the surface of the photosensitive member, and a DC component of the development voltage supplied to the developing rotating body that carries the developer, falls within an allowable range.
3. the detecting means detects a concentration profile which is a detection result of a plurality of concentrations sampled at a predetermined sampling period; 2. The image forming apparatus according to claim 1, wherein the control means corrects the DC component of the developing voltage with the first correction component based on the density profile.
4. 2. The image forming apparatus according to claim 1, wherein the control means replaces the first correction component with a predetermined value less than the first threshold value when the amplitude of the DC component of the development voltage corrected based on the first correction component exceeds the first threshold value.
5. further comprising a detecting means for detecting an environmental condition in which the image forming apparatus is installed; 2. The image forming apparatus according to claim 1, wherein the control unit determines the first threshold value depending on the environmental conditions.
6. 6. The image forming apparatus according to claim 5, wherein the environmental condition is an absolute moisture content.
7. the generating means generates a charging voltage to be supplied to the charging means, 3. The image forming apparatus according to claim 2, wherein the control means limits the second correction component for correcting the charging voltage so that the potential difference between the dark potential and the DC component of the developing voltage falls within an allowable range.
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