Japanese Patent Applications No. 2006-202668 filed Jul. 26, 2006 and No. 2006-5312 filed Jan. 15, 2007 of which the entire contents including specifications, drawings, and abstracts are incorporated herein by reference.
The present invention relates to an image forming apparatus and an image forming method capable of smoothly and reasonably conducting image formation in case of using a lens (lenses) of which optical magnification is minus.
Generally, a toner image forming means of electrophotographic type comprises a photoreceptor as an image carrier having a photosensitive layer on its outer surface, a charging means for uniformly charging the outer surface of the photoreceptor, an exposing means for selectively exposing the outer surface, uniformly charged by the charging means, to form an electrostatic latent image, and a developing means for applying a toner as a developer on the electrostatic latent image, formed by the exposure means, to form a visible image (toner image).
As a tandem-type image forming apparatus for forming a color image, there is an image forming apparatus of a type employing an intermediate transfer belt. The image forming apparatus comprises a plurality of (for example, four) toner image forming means as mentioned above which are disposed relative to the intermediate transfer belt. Toner images on the photoreceptors formed by the unicolor toner image forming means are transferred sequentially to the intermediate transfer belt so that the toner images of plural colors (for example, yellow, cyan, magenta, and black) are superposed on each other on the intermediate transfer belt, thereby forming a color image on the intermediate transfer belt.
In the tandem-type color image forming apparatus (printer), it is known to use a light emitter array as the exposure means (line head). For example, in an example disclosed in JP-A-2001-63139, light emitted from light emitting elements which are two-dimensionally aligned in a light emitter array is enlarged by a single lens and a photoreceptor is irradiated with the enlarged light to form a latent image. On the other hand, in an example disclosed in JP-A-8-166555, the writing position on an image surface (image carrier) is inverted from the position of a light emitting source by microlens arrays which are aligned in the longitudinal direction of an LED array chip.
In the light emitter array described in JP-A-2001-63139, light outputted from a light emitting member 1 is inverted in the main scanning direction by a single lens 14 and is irradiated to a photoreceptive drum 15. That is, the single lens 14 is composed of a microlens of which optical magnification is minus. Therefore, this case is different from a case that light outputted from light emitting elements is irradiated to an image carrier in the optical axial direction, that is, the optical magnification is plus, like a SLA (SELFOC lens array).
In case of using a light emitter array provided with a microlens in an optical system as a line head as described in JP-A-2001-63139, a specified memory arrangement and a sequence of reading image data, for defining how to read out the image data stored in a memory to achieve desired printing, are required to smoothly conduct image formation. However, JP-A-2001-63139 describes only an arrangement using the single lens and does not describe a specified example of a memory arrangement and a sequence of reading out image data in case of using light emitting sources which are two-dimensionally aligned and using a plurality of lenses. In JP-A-8-166555, inversing the writing position on the image carrier in case of light emitting sources aligned linearly is just generally described. Therefore, there is a problem that it is not known how to handle and how to store data in a memory in case that light emitting elements in the light emitting source are two-dimensionally aligned.
The invention was made for solving the aforementioned problems of the prior arts. It is an object of the invention to provide an image forming apparatus and an image forming method capable of smoothly and reasonably forming an image in case of using a single lens of which optical magnification is minus. It is also an object of the present invention to provide an image forming apparatus and an image forming method capable of smoothly and reasonably forming an image in case using light emitting sources which are two-dimensionally aligned and using a plurality of lenses of which optical magnification is minus.
An image forming apparatus of the invention for achieving the aforementioned object, comprises: a line head having a light emitter array, including a plurality of light emitting element lines arranged in a direction (sub scanning direction) perpendicular to an axial direction of an image carrier, and lenses of which optical magnification is minus, each light emitting element line including a plurality of light emitting elements which are aligned in the axial direction (main scanning direction) of the image carrier, wherein said lenses are plural in the axial direction and in the direction perpendicular to the axial direction, and wherein a light emitter block composed of “m×n” (in number) light emitting elements is disposed relative to each lens, said “m×n” light emitting elements being aligned in “n” (in number) light emitting element lines arranged in the direction perpendicular to the axial direction, each light emitting element line including “m” (in number) light emitting elements aligned in the axial direction. The image forming apparatus is characterized by further comprising: a control means for inversing lights emitted from said respective light emitting elements in the axial direction and the direction perpendicular to the axial direction to form an image on said image carrier.
An image forming apparatus of the invention is characterized in that lights outputted from the “m×n” light emitting elements disposed relative to each lens arranged in the axial direction are controlled by said control means to form images to be aligned in a single line along said axial direction of said image carrier.
An image forming apparatus of the invention is characterized in that lights outputted from the “m×n” light emitting elements disposed relative to each lens arranged in said axial direction and the direction perpendicular to the axial direction are controlled by said control means to form images aligned in single lines extending along said axial direction of said image carrier wherein the single lines are plural in the direction perpendicular to the axial direction.
An image forming apparatus of the invention is characterized in that the (m×n)-th light emitting element of the light emitter block disposed relative to each lens is located at the front end in said axial direction of said light emitting array and on the first line in the direction perpendicular to said axial direction and the first light emitting element of said light emitter block is located at the rear end in said axial direction and on the (n)-th line in the direction perpendicular to said axial direction.
An image forming apparatus of the invention is characterized by further comprising a storing means for storing image data to be supplied to said respective light emitting elements, wherein said storing means stores image data in such a manner as to form images to be sequentially aligned in a single line along the axial direction from a writing start position in the axial direction of said image carrier.
An image forming apparatus of the invention is characterized in that said storing means stores image data in such a manner as to form images to be sequentially aligned in a single line along the axial direction from a writing start position in the axial direction of said image carrier, and wherein said single lines are plural in the direction perpendicular to said axial direction.
An image forming apparatus of the invention is characterized in that said control means reads out the image data stored in said storing means in the order of the (n)-th line, the (n−1)-th line, . . . the 1st line of each light emitter block to actuate the corresponding light emitting elements.
An image forming apparatus of the invention is characterized in that said predetermined timing is determined based on the moving speed of said image carrier and the distance between said light emitting element lines in the direction perpendicular to said axial direction of the light emitting elements.
An image forming apparatus of the invention is characterized in that a plurality of said line heads are disposed for respective colors to form images of plural colors on the image carrier at once.
An image forming apparatus of the invention is characterized in that said light emitting elements are organic EL elements.
An image forming apparatus of the invention comprises: a plurality of line heads for respective colors, wherein each line head has a light emitter array, including a plurality of light emitting element lines arranged in a direction (sub scanning direction) perpendicular to an axial direction of an image carrier, and a single lens of which optical magnification is minus, each light emitting element line including a plurality of light emitting elements which are aligned in the axial direction (main scanning direction) of the image carrier. The image forming apparatus is characterized by further comprising: a storing means for storing image data to be supplied to said respective light emitting elements, wherein assuming that a line on the upstream side of said image carrier is the 1st line and a line on the downstream side is the 2nd line, said storing means has a memory table in which the image data are stored in a state categorized into first data, to be supplied to light emitting elements on the light emitting element line for the second line, and second data to be supplied to light emitting elements on the light emitting element line for the first line, and further comprising: a control means for controlling said image data such that focused spots formed by said light emitting elements have positions inversed in said axial direction and such that, after a predetermined timing from the formation of focused spots on the image carrier by reading out said first image data or said second image data, focused spots having positions inversed in the direction perpendicular to said axial direction are formed by the other image data, thereby forming images of plural colors on the image carrier at once.
An image forming apparatus of the invention is characterized in that said control means forms focused spots aligned in a single line along said axial direction.
An image forming apparatus of the invention is characterized in that said predetermined timing is determined based on the moving speed of said image carrier and the distance between said light emitting element lines in the direction perpendicular to said axial direction of the light emitting elements.
An image forming apparatus of the invention is characterized in that said predetermined timing is adjusted finely by said control means.
An image forming apparatus of the invention is characterized in that the image data are stored in said memory table to form focused spots aligned in lines which are plural in the direction perpendicular to said axial direction of the image carrier.
An image forming apparatus of the invention is characterized by further comprising at least two image forming stations each comprising said image carrier and an image forming unit around said image carrier, said image forming unit including a charging means, the line head, a developing means, and a transfer means, wherein a transfer medium passes through the respective image forming stations so as to conduct image formation of a tandem type.
Under a condition that line heads are provided relative to respective colors, each line head comprising a plurality of lenses of which optical magnification is minus and which are arranged in an axial direction of an image carrier and in a direction perpendicular to said axial direction and light emitter blocks each disposed relative to each lens, each light emitting element being composed of “m×n” (in number) light emitting elements, said “m×n” light emitting elements being aligned in “n” (in number) light emitting element lines arranged in the direction perpendicular to the axial direction, each light emitting element line including “m” (in number) light emitting elements aligned in the axial direction, an image forming method of the invention is characterized by comprising the following steps of: storing image data in a storing means in such a manner as to form images to be sequentially aligned in a single line along the axial direction from a writing start position in the axial direction of said image carrier and to form a plurality of said single lines in the direction perpendicular to said axial direction; reading out the image data stored in said storing means; actuating light emitting elements according to said read out image data to emit lights to be inversed in said axial direction and the direction perpendicular to the axial direction; and forming images of plural colors on said image carrier at once.
An image forming method of the invention is characterized in that said image data are read out in the order of the (n)-th line, the (n−1)-th line, . . . the 1st line of each light emitter block.
An image forming method of the invention is an image forming method for forming images of plural colors on an image carrier at once. Under a condition that line heads are provided relative to respective colors, each line head comprising a light emitter array, including a plurality of light emitting element lines arranged in a direction perpendicular to an axial direction of the image carrier, and a single lens of which optical magnification is minus, each light emitting element line including a plurality of light emitting elements which are aligned in the axial direction of the image carrier, and a storing means for storing image data to be supplied to said light emitting elements is provided, the image forming method is characterized by comprising the following steps of:
inputting said image data into a memory table of said storing means in such a manner that, for each line of focused spots formed on the image carrier, focused spots are formed on said image carrier by said light emitting elements to have positions inversed in the axial direction and, assuming that a line on the upstream side of said image carrier is the 1st line and a line on the downstream side is the 2nd line, inputting said image data in a state categorized into first image data, to be supplied to light emitting elements on the light emitting element line for the second line, and second image data to be supplied to light emitting elements on the light emitting element line for the first line;
determining which line of said lines image data are read out;
reading out the first image data or the second image data corresponding to said determined line from said memory table to form focused spots on the image carrier;
reading out the other image data from said memory table after a predetermined timing, to form focused spots having positions inversed in the direction perpendicular to said axial direction on the image carrier; and forming focused spots aligned in a single line in the axial direction of said image carrier.
In an embodiment of the invention, image formation in case of using a single lens of which optical magnification is minus and using light emitting element lines which are plural in the sub scanning direction can be smoothly conducted by using a memory table having the aforementioned arrangement. The memory table can handle a special case of using a single lens of which optical magnification is minus to form focused spots, inversed from the positions of light emitting elements, on the image carrier and enables reasonable readout of image data.
According to the arrangement of the embodiment of the invention, smooth image formation is enabled using existing parameter, thereby preventing deterioration of image quality. The embodiment can also handle a case of forming images in a plurality of lines on the image carrier. In addition, since image data are stored in the storing means in a form suitably for the aforementioned image forming apparatus and the image data are read out from the storing means to actuate the light emitting elements to emit lights to be inversed in the axial direction and the direction perpendicular to the axial direction, a desired image prepared by a controller or the like can be formed exactly on the image carrier.
In an embodiment of the invention, an image forming apparatus employing a line head can smoothly and reasonably conduct the image formation. The line head comprises lenses which are plural in the axial direction (main scanning direction) of the image carrier and in the direction (sub scanning direction) perpendicular to the axial direction and light emitter blocks which are each composed of “m×n” (in number) light emitting elements and are each disposed relative to each lens, wherein the “m×n” light emitting elements are aligned in “n” (in number) light emitting element lines arranged in the sub scanning direction and each light emitting element line includes “m” (in number) light emitting elements aligned in the main scanning direction.
In an embodiment of the invention, a color image forming apparatus of a tandem type can smoothly conduct image formation in case of using a single lens or a plurality of lenses of which optical magnification is minus. An image forming apparatus having an intermediate transfer medium can smoothly conduct image formation in case of using a single lens or a plurality of lenses of which optical magnification is minus.
In an embodiment of the invention, organic EL elements are used as the light emitting elements. Since it is not necessary to reduce the diameter of a light emitting part, great power of the light emitting part is obtained. Therefore, organic EL material having lower luminous efficiency can be used.
FIGS. 1(a) and 1(b) are illustrations showing an embodiment of the invention;
FIGS. 19(a)-(c) are illustrations showing an embodiment of the invention;
FIGS. 20(d)-(f) are illustrations showing the embodiment of the invention;
In the embodiment shown in
The light emitter block 4 is disposed relative to a microlens 5. As the light emitting elements 2, for example, organic EL elements are employed. Since it is not necessary to reduce the diameter of a light emitting part, the organic EL elements can provide great power of the light emitting part. Therefore, organic EL material having lower luminous efficiency can be used. Light outputted from the respective light emitting elements is inverted in the main scanning direction by the microlens 5 and is incident on the image carrier.
The light outputted from the respective light emitting elements is inverted also in the sub scanning direction by the microlens 5 and is incident on the image carrier. Description will be made as regard to this point with reference to
That is, a light outputted from a light emitting element, numbered with {circle around (1)}, which is arranged at an upstream side in the sub scanning direction in
When the plurality of light emitting element lines 3 are arranged relative to the microlens 5 as shown in
In order to form the focused spots aligned in a single line in the main scanning direction of the image carrier, it is required to control the timing of light emission of the light emitting elements (odd-numbered) on the first line of
FIGS. 1(a)-1(b) are illustrations relating to this embodiment of the invention.
The first image data (2, 4, 6, 8) corresponding to the light emitting elements in the second line of the light emitting element group shown in
In this manner, the focused spots of the first line on the image carrier are formed in the same line as the focused spots of the second line in the main scanning direction. That is, as shown in
When there are a plurality of lines of focused spots formed on the image carrier, the following processes are taken. For example, the read-out procedure when the aforementioned time T1 corresponds to the time taken for the image carrier to move a distance corresponding to a single line in the sub scanning direction is as follows: (1) reading out image data corresponding to light emitting elements (even-numbered) on the second line for a line 1 and making the light emitting elements to emit lights; (2) reading out image data corresponding to light emitting elements (odd-numbered) on the first line for the line 1 and reading out image data corresponding to light emitting elements (even-numbered) on the second line for a line 2 and making the respective light emitting elements to emit lights; and (3) repeating the aforementioned process (2).
In the embodiment of the present invention, the table arrangement of the memory storing image data to be supplied to the respective light emitting elements is designed to respond to a case that a plurality of lines of light emitting elements are provided in the sub scanning direction relative to the single microlens. That is, the memory addresses are divided into an even number group and an odd number group. For example, image data in the even number group are read out at once and are transmitted to the corresponding light emitting elements. After a predetermined time, image data in the odd number group are read out at once and are set to the corresponding light emitting elements.
The image data in the even number group and the odd number group are sorted to be sent to the light emitting elements lines which are plural in the sub scanning direction relative to the single microlens. Considering that the focused spots on the image carrier are inversed ones of the light emitting elements in the main scanning direction, the places of image data in the memory address are set. By setting the arrangement of the memory table and the timings of reading out image data from the memory table as mentioned above, the focused spots can be formed in a single line in the main scanning direction of the image carrier when light emitting element lines which are plural in the sub scanning direction are formed relative to the single microlens. Though the aforementioned description was made as regard to the arrangement in which the light emitting element lines formed relative to the single microlens are two in the sub scanning direction, an arrangement in which the light emitting element lines are three or more in the sub scanning direction may be employed.
Accordingly, the focused spots of the first line and the focused spots of the second line are misaligned so that the line of the focused spots is distorted as shown in
T1=|(d×β)/S|
where the above parameters are as follows:
A read-out timing calculating circuit 26 calculates read-out timing time T1 based on a signal from an image carrier (photoreceptor) speed detecting means 25 and positional data 27 about distance “d” in the sub scanning direction between light emitting elements. Based on the Heq signal, a read-out enable control circuit 22 generates a read-out enable signal. According to the read-out enable signal of the read-out enable control circuit 22, a second-line data transmitting module 24 reads out data for the second line shown in
After the time T1 from the read-out enabling process for the second line, a first-line image data transmitting module 28 reads out data for the first line shown in
Based on the image carrier (photoreceptor) speed S and the distance “d” in the sub scanning direction between the light emitting elements, a read-out timing time T1 is calculated (S7). After the time T1 from the read-out enabling process, the image data corresponding to the first line are read out (S8) and are transmitted to the line head (S9). Then, it is determined whether or not the counted value of Hreq signals is a value satisfying printing on one page (S10). If the determination result is Yes, the procedure is terminated (S11). If the determination result is No, the procedure is returned to the step (S2).
The aforementioned description was made as regard to the case in which light emitting element lines which are two in the sub scanning direction are arranged relative to the microlens, wherein each light emitting element line is composed of four light emitting elements 2 in the main scanning direction. In the embodiment of the invention, however, light emitting element lines which are more than two may be arranged relative to the microlens 5.
In an embodiment of the invention, a plurality of microlenses are arranged in the main scanning direction and the sub scanning direction of a light emitter array used as a line head based on the embodiment described with reference to
The numbers 1 through 32 marked on the respective light emitting element in
The focused spots 9 should be aligned in a single line in the main scanning direction as shown in
Assuming that four light emitting element lines are provided in the sub scanning direction as shown in
(c) After a time T, only video data (3, 7, . . . ) corresponding to the light emitting elements on the 3rd line are read out from the line buffer memory. (d) Further after a time T, only video data (2, 6, . . . ) corresponding to the light emitting elements on the 2nd line are read out from the line buffer memory. (e) Further after a time T, only video data (1, 5, . . . ) corresponding to the light emitting elements on the 1st line are read out from the line buffer memory. (f) Video data for the next line in the main scanning direction are stored in the line buffer memory. As mentioned above, in the embodiment of the present invention, the control means reads out image data stored in the table of the memory in the order of n-th line, (n−1)-th line, . . . 1st line of the light emitter block to actuate the corresponding light emitting elements so as to form images aligned in a single line in the axial direction of the image carrier.
Now, the memory control as shown in
The control unit 20 comprises a counter 31 for counting image data in a light emitter block (group) formed in the sub scanning direction, a group detecting device 32 for detecting a light emitter block, an inversion circuit 36 for inverting an image for each light emitter block, a group-to-group timing controlling device 34 for controlling a light emitting timing between light emitter blocks, a line detecting device (not shown) for detecting the number of lines in the light emitting element group (light emitter block), a line timing controlling device (not shown) for controlling a light emitting timing between lines of the light emitter block, a line buffer memory 23 for storing image data only for a time of the aforementioned timing, a horizontal synchronizing (Hsync) signal generating device 35, and an adder device 37.
The actions of the controlling unit 20 will be described, that is, as follows: (a) conducting group detection based on a group detecting signal from the controller 30; (b) generating a group detecting signal based on a counted value of pixels of image data by the counter 31; (c) making the inversion circuit 36 to conduct the inversion process of the light emitter block based on group identifying signals; (d) making the inversion circuit 36 to conduct the inversion process in both the X axis (the main scanning direction) and the Y axis (the sub scanning direction); (e) determining a light emitting timing for the light emitting element group based on the group identifying signals and the Hsync signals; (f) determining light emitting timings for the other light emitting element groups based on the light emitting timing for the first light emitting element group; and (g) adjusting the light emitting timing between light emitting element groups at a frequency higher than the image data clock frequency.
The writing module P comprises a writing address counter 31a to be driven by video clock, a pointer counter 31b to be driven by Hsync signals, and an adder device 37a. Based on the counted values of the counters 31a, 31b, the video data from the controller 30 are written in predetermined addresses of the line buffer memory 23.
Then, the read-out module Q comprises a read-out address counter 31, a group detecting device 32 for controlling offset amount between groups (light emitter blocks) based on the counted value of the read-out video clock, an inversion circuit 36 for detecting each group and controlling the inversion for each group, an odd/even detecting device 39 for controlling the detection of odd-numbered elements and even-numbered elements, a boundary detecting device 40 for counting the read-out video clock and Hsync signals and controlling boundary data for an end of image, and an adder device 37b.
The adder device 37b controls the entire read-out timing based on output signals from the group detecting device 32, and the inversion circuit 36, the odd/even detecting device 39 and the counted value of Hsync signals by the pointer counter 31b. When the image data are stored in the line buffer memory 23, the light emitting timing for each group may be adjusted to conduct image inversion. In addition, the light emitting timing for each group may be adjusted finely compared to the video clock, thereby enabling further fine timing adjustment. In case of compensating the inclination of the line head, it is better to adjust the light emitting timing for each group to conduct image inversion before the compensation of the inclination because the algorism becomes not so complex.
The embodiment of the invention addresses a line head to be used in a tandem-type color printer (image forming apparatus) in which four photoreceptors are exposed to light by four line heads to form images of four colors at once and the images are transferred to a single endless intermediate transfer belt (intermediate transfer medium).
As shown in
The alphabetic characters K, C, M, and Y added after the aforementioned reference numerals indicate black, cyan, magenta, and yellow, respectively so that the photoreceptors 41K, 41C, 41M, and 41Y are photoreceptors for black, cyan, magenta, and yellow, respectively. The same is true for the other components. The photoreceptors 41K, 41C, 41M, 41Y are driven to rotate in the direction of arrows (the clockwise direction), wherein the driving is synchronized with the driving of the intermediate transfer belt 50. Arranged around each photoreceptor 41 (K, C, M, Y) are a charging means (corona charger) 42 (K, C, M, Y) for uniformly charging the outer surface of the photoreceptor (K, C, M, Y) and a light emitter array (line head) 101 (K, C, M, Y), as mentioned above as the embodiment of the invention, of which driving is synchronized with the photoreceptor 41 (K, C, M, Y) to sequentially scan lines.
Also arranged around each photoreceptor 41 (K, C, M, Y) are a developing device 44 (K, C, M, Y) for applying toner as developer to an electrostatic latent image formed by the light emitting array (line head) 101 (K, C, M, Y) to form a visible image (toner image), a primary transfer roller 45 (K, C, M, Y) as a transfer means for sequentially transferring the toner image, developed by the developing device 44 (K, C, M, Y), to the intermediate transfer belt 50 as an object for primary transfer, and a cleaning device 46 (K, C, M, Y) as a cleaning means for removing toner remaining on the surface of the photoreceptor 41 (K, C, M, Y) after the transfer.
The light emitter array (line head) 101 (K, C, M, Y) is arranged such that the array direction of the light emitter array exposure head 101 (K, C, M, Y) extends along the generating line of the photoreceptive drum 41 (K, C, M, Y). The light emitter array (line head) 101 (K, C, M, Y) and the photoreceptor 41 (K, C, M, Y) are designed such that the emission energy peak wavelength of the light emitter array (line head) 101 (K, C, M, Y) and the sensitivity peak wavelength of the photoreceptor 41 (K, C, M, Y) substantially coincide with each other.
In the developing device 44 (K, C, M, Y), for example, a nonmagnetic single component toner is used as the developer. The developing device 44 (K, C, M, Y) transfers the single component toner to a development roller by a supply roller, for example, regulates the thickness of a developer layer on the surface of the development roller, and brings the development roller in contact with or to be pressed against the photoreceptor 41 (K, C, M, Y) to make the developer to adhere the photoreceptor 41 (K, C, M, Y) according to the potential level, thereby forming a toner image.
Toner images of black, cyan, magenta, and yellow, formed by unicolor toner image forming stations for the four colors, are sequentially transferred to the intermediate transfer belt 50 by primary transfer bias applied to the primary transfer rollers 45 (K, C, M, Y) and thus are sequentially superposed on the intermediate transfer belt 50 so as to form a full-color toner image. The full-color toner image is secondarily transferred to a recording medium P such as a paper by a secondary transfer roller 66 and is fixed to the recording medium P by passing through a fixing roller pair 61 as a fixing device. The recording medium P with the image is discharged onto a catch tray 68 formed at the top of the apparatus by a discharging roller pair 62.
In
Though the image forming apparatus and the image forming method of the invention have been described based on its principle and the embodiments, the invention is not limited to these embodiments and various modifications may be made.
Number | Date | Country | Kind |
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2007-005312 | Jan 2007 | JP | national |
2006-202668 | Jul 2006 | JP | national |