Abstract:
A collection vessel 124 has intermediate transfer body collection ports 134 and developing machine collection ports 136. Collected developer occurrence sections placed in intermediate transfer bodies and developing machines are connected to the collection ports 134 and 136. At least two of the collection ports 134 and 136 are formed so that they are arranged in a longitudinal direction. Collection spaces 148a to 148f to which the collection ports 134 and 136 are connected are separated by partition walls 146, and the collection capacities of the collection spaces 148a to 148f are set according to the heights and shapes of the partition walls 146.
Abstract:
A collection vessel 124 is formed with a plurality of collection spaces 148a to 148f separated by partition walls 146, and collection ports 134 and 136 are connected to the collection spaces 148a to 148f. The collection spaces 148a to 148f are made to communicate with each other through a communication part 152. A developer intake section 154 implementing a full condition detector is placed below the communication part 152. A detection vessel is placed in the developer intake section 154 for detecting a full condition based on the developer overflowing the collection spaces 148a to 148f.
Abstract:
An image forming device is provides, which comprises a body to be scanned that moves in a sub-scanning direction; a writing means for scanning the body in a main scanning direction with a light beam according to image information to form a reference image on the body and repeating the scanning plural times to form plural images; and a second body on which the plural images are overlaid to form a color image. The writing means starts writing the reference image at a start time ty1 when a main scanning synchronizing signal is firstly generated by the writing means after a time tx1 when a predetermined time has lapsed from detection of an image forming start signal of the sub-scanning direction for the reference image. A start time for an image other than the reference image is changed depending on the start time of the reference image.
Abstract:
An image forming apparatus comprises developing units of a plurality of colors, at a developing position, to develop the electrostatic latent images, a rotation member for retaining the developing units of the plurality of colors along a rotating direction, and rotating to sequentially move the developing units to the developing position, an intermediate transfer member for sequentially superposing and transferring the developer images formed on the image carrier, and transferring the superposed and transferred developer images together to an image-transferred member, and a plurality of recovery devices retained on the rotation member, between the developing units of the plurality of colors, for recovering developers after the transfer of the developer images to the intermediate transfer member, and making the recovered developers return to the developers of the same colors as the colors of the developers.
Abstract:
An image forming apparatus according to an embodiment of the present invention comprises a plurality of developing devices, a plurality of developing device assemblies, and a controller. At least one developing device is provided for each type of toners to form the multi-color images. Each developing device assembly carries a plurality developing devices. The controller switches the developing devices carried by one of the developing device assemblies, while the developing devices carried by another developing device assembly are operating.
Abstract:
A multi-color printer (and a method therefor) includes a drum-shaped photosensitive body for black toner, a belt-shaped toner carrier for non-black color toner, a first transferring unit for transferring a color-toner image formed on the belt-shaped toner carrier to a medium, a second transferring unit for transferring a black toner image formed on the drum-shaped photosensitive body, the drum-shaped photosensitive body being disposed near the belt-shaped toner carrier, and a fusing unit for fusing to the medium the black toner image and the color toner image transferred to the paper.
Abstract:
In order to provide a miniature full-color recorder excellent in color reproducibility and provides a full-color recorder having a wider color reproduction range beyond the range of subtraction color mixing of the three primary colors, the first and second potential split developing processes are continuously arranged for one recording medium.
Abstract:
Developing devices are provided adjacent to a light sensitive element. An intermediate transfer drum is provided adjacent to the light sensitive elements. After exposure of the light sensitive element, a first color or third color image is formed on the light sensitive element. On the other hand, after exposure of the light sensitive element, a second color or fourth color image can be formed on the light sensitive element. The first color image is transferred from the transfer unit to the intermediate transfer drum at the first transfer portion, and the second color image is transferred from the transfer unit at the second transfer portion so as to be superimposed on the first color image. Similarly, the third color image is transferred so as to be superimposed on the second image and the fourth color image is transferred so as to be superimposed on the third color image to the intermediate transfer drum. Accordingly, the first to fourth color images are superimposed. Thereby, downsizing of the device and cost reduction are achieved and image formation speed is facilitated.
Abstract:
Full process color imaging is provided with the use of two xerocolography engines in tandem. Each of the two xerocolography engines is capable of creating three perfectly registered latent images with subsequent development thereof in a spot next to spot manner. Each engine is provided with three developer housing structures containing five different color toners including the three subtractive primary colors of yellow, cyan and magenta. Two of the primary colors plus black are used with one of the engines. The third primary color is used with the second tandem engine which also uses one of the primary colors used with the first engine as well as a fifth color which may be a logo or a gamut extending color. The full process color imaging capability provided is effected without any constraints regarding the capability of the laser imaging device to image through previously developed components of a composite image. Also, the development and cleaning field impracticalities imposed by quad and higher level imaging of the prior art are avoided. Moreover, the number of required image registrations compared to conventional tandem color imaging is minimal. Therefore, only one registration is required compared to three or four by conventional tandem engine imaging systems.
Abstract:
A double-sided image forming method is disclosed which comprising; a first image primary transfer step (A) for transferring a first image (T1) carried by a first image carrier (1) to a first intermediate transfer member (2); a second image primary transfer step (B) for transferring a second image (T2) carried by a second image carrier (3) to a second intermediate transfer member (4); and a secondary image transfer step (C) for secondarily transferring the primarily transferred images (T1) and (T2) from the respective intermediate transfer members (2) and (4) to both sides of recording material (5), in the area where the first intermediate transfer material (2) and the second intermediate transfer material (4) come into contact with or in proximity to each other.