This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2009-008449 filed Jan. 19, 2009.
The present invention relates to an image forming apparatus.
According to an aspect of the invention, there is provided an image forming apparatus including: an image carrier that carries an electrostatic latent image; plural developing devices that store respective developers of different colors and visualize the electrostatic latent image with the developers; a developing device switching mechanism that switches among the developing devices to allow one of the developing devices to visualize the electrostatic latent image carried by the image carrier; a transfer unit that transfers a developer image visualized by the one of the developing devices to a recording medium; a fixing device that fixes the developer image transferred by the transfer unit onto the recording medium; a first transporter that transports in a first direction the recording medium with the developer image fixed thereon by the fixing device; a second transporter that transports in a second direction the recording medium with the developer image fixed thereon by the fixing device; and a transporter switching mechanism that switches between the first transporter and the second transporter in conjunction with an operation of the developing device switching mechanism for switching among the developing devices.
Exemplary embodiments of the present invention will be described in detail based on the following figures, wherein:
Hereinafter, a first exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
The paper feed unit 14 is openable and closable about a shaft (not shown) provided on a lower portion thereof, and includes a paper cassette 17 for storing the recording media such as paper when opened (see
The recording media drawn from the paper cassette 17 by the pickup roller 18 are separated by a feed roller 20 and a separation member (not shown) to be transported one by one to a main transport path 22. The main transport path 22 serves as a recording medium passage from the pickup roller 18 to a fixing device 54 to be described later. Also, the main transport path 22 is selectively connected to an ejecting transport path 24 or a circulating transport path 26 on the downstream side of the fixing device 54 by a transport path switching mechanism 62 to be described later with reference to
The ejecting transport path 24 serves as a recording medium passage from the fixing device 54 to an ejection port 28. Also, an eject roller 29 is provided in the vicinity of the ejection port 28 of the main transport path 22. The circulating transport path 26 serves as a recording medium passage from the fixing device 54 to a merging point A into the main transport path 22, and includes transport rollers 30a and 30b for transporting the recording medium to form a circulating path for circulating the recording medium in combination with the main transport path 22.
An image carrier 32 and a transfer roller 34 having an elastic surface are provided on the upstream side of the fixing device 54 on the main transport path 22. The contact portion between the image carrier 32 and the transfer roller 34 corresponds to a transfer position B where a developer image carried by the image carrier 32 is transferred to the recording medium. A registration roller 36 is provided on the upstream side of the image carrier 32 and the transfer roller 34, and a transport roller 38 for transporting the recording medium is provided on the upstream side of the registration roller 36.
Thus, the recording medium drawn from the paper cassette 17 of the paper feed unit 14 by the pickup roller 18 is guided to the main transport path 22 to be transported to the transport roller 38. The recording medium is temporarily stopped by the registration roller 36 to pass between the image carrier 32 and the transfer roller 34 with a predetermined timing, where for example, a black developer image is transferred to the recording medium. The transferred black developer image is fixed onto the recording medium by the fixing device 54, and the recording medium is ejected from the ejection port 28 to the ejector 16 by the eject roller 29.
In the case where a developer image of the color other than black is transferred and fixed, however, the main transport path 22 is connected to the circulating transport path 26 by the transport path switching mechanism 62 to allow the recording medium to circulate through the circulating transport path 26.
A rotary development device 40 is provided, for example, at a substantially central lower portion in the image forming apparatus chassis 12. The rotary development device 40 includes a developing device 42Y for storing a yellow developer, a developing device 42M for storing a magenta developer, a developing device 42C for storing a cyan developer, and a developing device 42K for storing a black developer, and is configured to rotate (clockwise in
In front of the image carrier 32, there is provided an charging device 48 composed of, for example, a charging roller, for uniformly charging the image carrier 32. In other words, a developing bias is applied to the image carrier 32. Also, an image carrier cleaner 50 abuts on the image carrier 32 on the upstream side of the charging device 48 in the rotation direction of the image carrier 32. The image carrier cleaner 50 scrapes off the developer remaining on the image carrier 32 after transfer.
Between the rotary development device 40 and the charging device 48, there is provided an exposure device 52 for writing an electrostatic latent image on the image carrier 32 charged by the charging device 48, by means of light rays, such as laser beams. Also, the transfer roller 34 described above is disposed at the rear of the image carrier 32. The transfer roller 34 sequentially superimposes and transfers the developer images visualized by the developing devices 42Y, 42M, 42C, and 42K onto the recording medium at the transfer position B.
The fixing device 54, provided downstream of the transfer position B, includes a heating roller 56 and a pressure roller 58, and transports the recording medium with the developer image transferred by the image carrier 32 and the transfer roller 34 while holding the recording medium using a contact portion (nip portion: fixing position C) between the heating roller 56 and the pressure roller 58 to fix the developer image onto the recording medium by heating and pressing the developer image.
In the image forming apparatus chassis 12, a controller 60 for controlling respective components composing the image forming apparatus 10 is also provided.
Next, the transport path switching mechanism 62 will be described in detail.
The transport path switching mechanism 62 includes a cam 64, a first displacement member 66, a second displacement member 68, an elastic member 70, and a claw member 72.
The cam 64 is provided on the axial end of the rotary development device 40, and is configured to rotate about the shaft 44 serving as a rotary shaft of the rotary development device 40 together with the rotary development device 40. Also, the cam 64 includes, as shown in
The first displacement member 66 is rotatable about a shaft 78 fixed to the image forming apparatus chassis 12, and includes two arm portions 80 and 82 extending in different directions from the shaft 78. The arm portion 80 is brought into slidable contact with an outer peripheral surface of the cam 64. On the end of the arm portion 82 on the opposite side of the shaft 78, a protrusion 84 protruding in the direction parallel to the shaft 78 is provided so that the arm portion 82 is brought into slidable contact with the second displacement member 68.
The second displacement member 68 has one end fixed to a shaft 86 rotatably fixed to the image forming apparatus chassis 12, and is rotatable about the shaft 86. Also, the second displacement member 68 has the other end attached to one end of the elastic member 70.
Examples of the elastic member 70 include a spring. The elastic member 70, having one end attached to one end of the second displacement member 68, and the other end attached to a protruding portion 88 protruding from the image forming apparatus chassis 12, urges the end (the opposite side of the shaft 86) of the second displacement member 68 in a direction to approach the protruding portion 88.
The claw member 72 includes a first guide portion 90 composed of, for example, plural claws, and a second guide portion 92 in a recording medium traveling area shown in
A gear 94 to rotate about the shaft 44 is fixed to the rotary development device 40 on the opposite side of the cam 64. More specifically, when the rotary development device 40 receives a driving force of a driving source 98, such as a motor, through the gear 94 and a gear 96 to rotate, the cam 64 rotates.
Next, the operation of the transport path switching mechanism 62 will be described.
When the rotary development device 40 rotates so that the developing roller 46K is opposed to the image carrier 32 at the developing position as shown in
When the rotary development device 40 rotates so that the developing roller 46Y is opposed to the image carrier 32 at the developing position as shown in
Even when the rotary development device 40 rotates so that the developing roller 46M is opposed to the image carrier 32 at the developing position as shown in
Even when the rotary development device 40 rotates so that the developing roller 46C is opposed to the image carrier 32 at the developing position as shown in
Next, the entire operation (printing in black and white) of the image forming apparatus 10 will be described.
As shown in
When an image forming signal corresponding to black-and-white printing is transmitted to the image forming apparatus 10, the image carrier 32 is uniformly charged by the charging device 48, and then a light beam corresponding to a black image is emitted from the exposure device 52 to the charged image carrier 32 based on the image signal. The surface of the image carrier 32 is exposed to the light beam emitted from the exposure device 52, so that an electrostatic latent image is formed thereon. In the case of the black-and-white printing, the controller 60 rotates the rotary development device 40 so that the developing roller 46K of the developing device 42K is opposed to the image carrier 32, and applies a predetermined voltage (developing bias) to the developing roller 46K.
When the rotary development device 40 rotates so that the developing roller 46K of the developing device 42K is opposed to the image carrier 32, the cam 64 rotates to bring the displacement forming portion 76 into contact with the arm portion 80 as shown in
The electrostatic latent image carried by the image carrier 32 is developed with a black developer supplied to the developing roller 46K of the developing device 42K to be transferred to the recording medium supplied from the paper feed unit 14 through the main transport path 22. The developer remaining on the image carrier 32 is scraped and recovered by the image carrier cleaner 50. The recording medium with the black developer image transferred thereto is guided to the fixing device 54, at which the black developer image is fixed onto the recording medium by the heating roller 56 and the pressure roller 58.
The recording medium with the black developer image fixed thereon is guided to the ejecting transport path 24 connected to the main transport path 22 to be guided into the eject roller 29. The eject roller 29 ejects the recording medium from the ejection port 28 to the ejector 16.
Next, the entire operation (color printing) of the image forming apparatus 10 will be described.
As shown in
When an image forming signal corresponding to color printing is transmitted to the image forming apparatus 10, the image carrier 32 is uniformly charged by the charging device 48, and then a light beam corresponding to a yellow image is emitted from the exposure device 52 to the charged image carrier 32 based on the image signal. The surface of the image carrier 32 is exposed to the light beam emitted from the exposure device 52, so that an electrostatic latent image is formed thereon. In the case of the color printing, the controller 60 rotates the rotary development device 40 so that, for example, the developing roller 46Y of the developing device 42Y is first opposed to the image carrier 32, and applies a predetermined voltage (developing bias) to the developing roller 46Y.
When the rotary development device 40 rotates so that the developing roller 46Y of the developing device 42Y is opposed to the image carrier 32, the cam 64 rotates to bring the cylindrical portion 74 into contact with the arm portion 80 as shown in
The electrostatic latent image carried by the image carrier 32 is developed with a yellow developer supplied to the developing roller 46Y of the developing device 42Y to be transferred to the recording medium supplied from the paper feed unit 14 through the main transport path 22. The recording medium with the yellow developer image transferred thereto is guided to the fixing device 54, at which the yellow developer image is fixed onto the recording medium by the heating roller 56 and the pressure roller 58.
The recording medium with the yellow developer image fixed thereon is guided to the circulating transport path 26 connected to the main transport path 22 to be transported to the transfer position B through the merging point A into the main transport path 22, and the registration roller 36. The developer remaining on the image carrier 32 is scraped and recovered by the image carrier cleaner 50.
The image carrier 32 is uniformly charged again by the charging device 48, and then a light beam corresponding to a magenta image is emitted from the exposure device 52 to the charged image carrier 32 based on the image signal. The surface of the image carrier 32 is exposed to the light beam emitted from the exposure device 52, so that an electrostatic latent image is formed thereon.
The controller 60 rotates the rotary development device 40 so that the developing roller 46M of the developing device 42M is opposed to the image carrier 32, and a predetermined voltage (developing bias) is applied to the developing roller 46M.
When the rotary development device 40 is rotated so that the developing roller 46M of the developing device 42M is opposed to the image carrier 32, the cam 64 rotates with the cylindrical portion 74 brought into contact with the arm portion 80 as shown in
The electrostatic latent image carried by the image carrier 32 is developed with a magenta developer supplied to the developing roller 46M of the developing device 42M. The magenta developer image carried by the image carrier 32 is superimposed and transferred onto the recording medium with the yellow developer image transferred thereto.
The recording medium with the magenta developer image transferred thereto is guided to the fixing device 54, at which the magenta developer image is fixed onto the recording media by the heating roller 56 and the pressure roller 58.
The recording medium with the magenta developer image fixed thereon is guided to the circulating transport path 26 connected to the main transport path 22 to be transported to the transfer position B through the merging point A into the main transport path 22, and the registration roller 36. The developer remaining on the image carrier 32 is scraped and recovered by the image carrier cleaner 50.
The image carrier 32 is uniformly charged again by the charging device 48, and then a light beam corresponding to a cyan image is emitted from the exposure device 52 to the charged image carrier 32 based on the image signal. The surface of the image carrier 32 is exposed to the light beam emitted from the exposure device 52, so that an electrostatic latent image is formed thereon.
The controller 60 rotates the rotary development device 40 so that the developing roller 46C of the developing device 42C is opposed to the image carrier 32, and applies a predetermined voltage (developing bias) to the developing roller 46C.
When the rotary development device 40 rotates so that the developing roller 46C of the developing device 42C is opposed to the image carrier 32, the cam 64 rotates with the cylindrical portion 74 brought into contact with the arm portion 80 as shown in
The electrostatic latent image carried by the image carrier 32 is developed with a cyan developer supplied to the developing roller 46C of the developing device 42C. The cyan developer image carried by the image carrier 32 is further superimposed and transferred onto the recording medium with the magenta developer image transferred thereto.
The recording medium with the cyan developer image transferred thereto is guided to the fixing device 54, at which the cyan developer image is fixed onto the recording media by the heating roller 56 and the pressure roller 58.
The recording medium with the cyan developer image fixed thereon is guided to the circulating transport path 26 connected to the main transport path 22 to be transported to the transfer position B through the merging point A into the main transport path 22, and the registration roller 36. The developer remaining on the image carrier 32 is scraped and recovered by the image carrier cleaner 50.
The image carrier 32 is uniformly charged again by the charging device 48, and then a light beam corresponding to a black image is emitted from the exposure device 52 to the charged image carrier 32 based on the image signal. The surface of the image carrier 32 is exposed to the light beam emitted from the exposure device 52, so that an electrostatic latent image is formed thereon.
The controller 60 rotates the rotary development device 40 so that the developing roller 46K of the developing device 42K is opposed to the image carrier 32, and applies a predetermined voltage (developing bias) to the developing roller 46K.
When the rotary development device 40 rotates so that the developing roller 46K of the developing device 42K is opposed to the image carrier 32, the cam 64 rotates to bring the displacement forming portion 76 into contact with the arm portion 80 as shown in
The electrostatic latent image carried by the image carrier 32 is developed with a black developer supplied to the developing roller 46K of the developing device 42K to be transferred to the recording medium supplied from the paper feed unit 14 through the main transport path 22. The developer remaining on the image carrier 32 is scraped and recovered by the image carrier cleaner 50. The recording medium with the black developer image transferred thereto is guided to the fixing device 54, at which the black developer image is fixed onto the recording medium by the heating roller 56 and the pressure roller 58.
The recording medium with the black developer image fixed thereon is guided to the ejecting transport path 24 connected to the main transport path 22 to be guided into the eject roller 29. The eject roller 29 ejects the recording medium from the ejection port 28 to the ejector 16.
Hereinafter, a second exemplary embodiment of the present invention will be described with reference to the accompanying drawings.
The paper feed unit 114 includes a paper cassette 117 for storing recording media such as paper. The paper cassette 117 is designed to be extensible, and the maximum size of the recording medium capable of being stored therein is, for example, A4 size paper. Also, the paper cassette 117 is provided with a pickup roller 118 for drawing the recording medium from the paper cassette 117.
The recording media drawn from the paper cassette 117 by the pickup roller 118 are separated by a feed roller 120 and a separation member (not shown) to be transported one by one to a main transport path 122. The main transport path 122 serves as a recording medium passage from the pickup roller 118 to a fixing device 154 to be described later. Also, the main transport path 122 is selectively connected to an ejecting transport path 124 or a circulating transport path 126 on the downstream side of the fixing device 154 by a switching mechanism 162 to be described later with reference to
The ejecting transport path 124 serves as a recording medium passage from the fixing device 154 to an ejection port 128. Also, an eject roller 129 is provided in the vicinity of the ejection port 128 of the main transport path 122. The circulating transport path 126 serves as a recording medium passage from the fixing device 154 to a merging point A into the main transport path 122, and includes transport rollers 130a and 130b for transporting the recording medium to form a circulating path for circulating the recording medium in combination with the main transport path 122.
An image carrier 132 and a transfer roller 134 having an elastic surface are provided on the upstream side of the fixing device 154 on the main transport path 122. The contact portion between the image carrier 132 and the transfer roller 134 corresponds to a transfer position B where a developer image carried by the image carrier 132 is transferred to a recording medium. A registration roller 136 is provided on the upstream side of the image carrier 132 and the transfer roller 134, and a transport roller 138 for transporting the recording medium is provided on the upstream side of the registration roller 136.
Thus, the recording medium drawn from the paper cassette 117 of the paper feed unit 114 by the pickup roller 118 is guided to the main transport path 122 to be transported to the transport roller 138. The recording medium is temporarily stopped by the registration roller 136 to pass between the image carrier 132 and the transfer roller 134 with a predetermined timing, where for example, a black developer image is transferred to the recording medium. The transferred black developer image is fixed onto the recording medium by the fixing device 154, and the recording medium is ejected from the ejection port 128 to the ejector 113 by the eject roller 129.
In the case where a developer image of the color other than black is transferred and fixed, however, the main transport path 122 is connected to the circulating transport path 126 by the switching mechanism 162 to allow the recording medium to circulate through the circulating transport path 126.
In the image forming apparatus chassis 112, for example, on the generally central back side thereof, there are provided a developing device 142Y for storing a yellow developer, a developing device 142M for storing a magenta developer, a developing device 142C for storing a cyan developer, and a developing device 142K for storing a black developer. The developing devices 142Y, 142M, 142C, and 142K have respective developing rollers 146Y, 146M, 146C, and 146K, and sequentially visualize an electrostatic latent image carried by the image carrier 132, with the respective developers.
On an upper portion of the image carrier 132, there is provided an charging device 148 composed of, for example, a charging roller, for uniformly charging the image carrier 132. In other words, a developing bias is applied to the image carrier 132. Also, an image carrier cleaner 150 abuts on the image carrier 132 on the upstream side of the charging device 148 in the rotation direction of the image carrier 132. The image carrier cleaner 150 scrapes off the developer remaining on the image carrier 132 after transfer.
On an upper portion of the image carrier 132, there is provided an exposure device 152 for writing an electrostatic latent image on the image carrier 132 charged by the charging device 148, by means of light rays, such as laser beams. Also, the transfer roller 134 described above is disposed on a lower portion of the image carrier 132. The transfer roller 134 sequentially superimposes and transfers the developer images visualized by the developing devices 142Y, 142M, 142C, and 142K onto the recording medium at the transfer position B.
The fixing device 154, provided downstream of the transfer position B, includes a heating roller 156 and a pressure roller 158, and transports the recording medium with the developer image transferred by the image carrier 132 and the transfer roller 134 while holding the recording medium using a contact portion (nip portion: fixing position C) between the heating roller 156 and the pressure roller 158 to fix the developer image onto the recording medium by heating and pressing the developer image.
In the image forming apparatus chassis 112, a controller 160 for controlling respective components composing the image forming apparatus 100 is also provided.
Next, a driving system 164 for driving the developing rollers 146Y, 146M, 146C, and 146K, and the switching mechanism 162 will be described in detail.
A transmitting member 170Y is driven by the motor 166 through the gears 168, 172, 174, 176a to transmit a driving force of the motor 166 to a transmitted member 178Y fixed to the developing roller 146Y according to the operation of the switching mechanism 162 to be described in detail with reference to
That is to say, the transmitting members 170Y, 170M, 170C, and 170K are coupled to the transmitted members 178Y, 178M, 178C, and 178K, respectively to transmit a driving force of the motor 166 to the developing rollers 146Y, 146M, 146C, and 146K individually. Also, between the transmitting members 170Y, 170M, 170C, and 170K, and the transmitted members 178Y, 178M, 178C, and 178K, there are provided elastic members 180Y, 180, 180C, and 180K such as springs for urging the transmitting members 170Y, 170, 170C, and 170K in a direction to be separated from the transmitted members 178Y, 178M, 178C, and 178K, respectively.
The switching mechanism 162 includes a rotating plate 182, moving members 184Y, 184M, 184C, and 184K, a first displacement member 186, a second displacement member 188, an elastic member 190, and a claw member 192. The rotating plate 182 is driven by a motor 196 through a gear 194, thereby operating the switching mechanism 162.
The rotating plate 182 is supported rotatably about a shaft 200 on a partition plate 198 provided in the image forming apparatus chassis 112, and is rotatable generally parallel to the image forming apparatus chassis 112 and the partition plate 198. On the surface facing the partition plate 198 of the rotating plate 182, projecting portions 202a and 202b are opposed to each other across the shaft 200. Also, on the surface facing the image forming apparatus chassis 112 of the rotating plate 182, a cam 204 to rotate about the shaft 200 is provided.
The projecting portions 202a and 202b rotate about the shaft 200 in association with the rotation of the rotating plate 182. During one rotation of the rotating plate 182, each of the projecting portions 202a and 202b is brought into contact with the moving members 184Y, 184M, 184C, and 184K on a one-time basis to move the moving members 184Y, 184M, 184C, and 184K to the partition plate 198 on a one-time basis. When the moving members 184Y, 184M, 184C, and 184K are moved by the projecting portions 202a and 202b, a part of each of the moving members 184Y, 184M, 184C, and 184K passes sequentially through the partition plate 198, thereby sequentially connecting the transmitting members 170Y, 170M, 170C, and 170K (see
In other words, the transmitting member 170Y, 170M, 170C, or 170K moved by any one of the moving members 184Y, 184M, 184C, and 184K moved by the projecting portions 202a and 202b, is adapted to transmit a driving force to the corresponding transmitted member 178Y, 178M, 178C, or 178K.
The cam 204 includes a cylindrical portion 206 having a uniform distance from the shaft 200 to the outer peripheral surface thereof, and displacement forming portions 208a and 208b with a distance from the shaft 200 to the outer peripheral surface thereof longer than that of the cylindrical portion 206. The displacement forming portions 208a and 208b are opposed to each other across the shaft 200.
The first displacement member 186 is rotatable about a shaft 210 fixed to the image forming apparatus chassis 112, and includes two arm portions 212 and 214 extending in different directions from the shaft 210. The arm portion 212 is brought into slidable contact with an outer peripheral surface of the cam 204, so that the displacement forming portion 208a, the cylindrical portion 206, the displacement forming portion 208b, and the cylindrical portion 206 are sequentially brought into contact with the arm portion 212. On the end of the arm portion 214 on the opposite side of the shaft 210, a protrusion 216 protruding in the direction parallel to the shaft 210 is provided so that the arm portion 214 is brought into slidable contact with the second displacement member 188.
The second displacement member 188 has one end fixed to a shaft 218 rotatably fixed to the image forming apparatus chassis 112, and is rotatable about the shaft 218. Also, the second displacement member 188 has the other end attached to one end of the elastic member 190.
Examples of the elastic member 190 include a spring. The elastic member 190, having one end attached to an end of the second displacement member 188, and the other end attached to a protruding portion 220 protruding from the image forming apparatus chassis 112, urges the end (the opposite side of the shaft 218) of the second displacement member 188 in a direction to approach the protruding portion 220.
The claw member 192 includes a first guide portion 222 composed of, for example, plural claws, and a second guide portion 224 in a recording medium traveling area shown in
Next, the operation of the switching mechanism 162 will be described.
When the rotating plate 182 rotates about the shaft 200 to bring the projecting portions 202a into contact with the moving member 184K as shown in
Also, when the rotating plate 182 rotates about the shaft 200 to bring the projecting portion 202a into contact with the moving member 184K as shown in
In other words, the rotating plate 182 rotates so that the projecting portion 202a (or 202b) moves the moving member 184K to thereby connect the transmitting member 170K to the transmitted member 178K and transmit a driving force (
When the rotating plate 182 rotates about the shaft 200 to bring the displacement forming portion 208b into contact with the moving member 184Y as shown in
Also, when the rotating plate 182 rotates about the shaft 200 to bring the projecting portion 202b into contact with the moving member 184Y as shown in
In other words, the rotating plate 182 rotates so that the projecting portion 202b (or 202a) moves the moving member 184Y to thereby connect the transmitting member 170Y to the transmitted member 178Y and transmit a driving force (
When the rotating plate 182 rotates about the shaft 200 to bring the displacement forming portion 208b into contact with the moving member 184M as shown in
Also, when the rotating plate 182 rotates about the shaft 200 to bring the projecting portion 202b into contact with the moving member 184M as shown in
In other words, the rotating plate 182 rotates so that the projecting portion 202b (or 202a) moves the moving member 184M to thereby connect the transmitting member 170M to the transmitted member 178M and transmit a driving force (
When the rotating plate 182 rotates about the shaft 200 to bring the displacement forming portion 208b into contact with the moving member 184C as shown in
Also, when the rotating plate 182 rotates about the shaft 200 to bring the projecting portion 202b into contact with the moving member 184C as shown in
In other words, the rotating plate 182 rotates so that the projecting portion 202b (or 202a) moves the moving member 184C to thereby connect the transmitting member 170C to the transmitted member 178C and transmit a driving force (
As described above, by rotating the rotating plate 182 in a predetermined direction, the image forming apparatus 100 switches among the developing rollers 146Y, 146M, 146C, and 146K as the destination of the driving force, and also switches between the ejecting transport path 124 and the circulating transport path 126.
Next, the entire operation (printing in black and white) of the image forming apparatus 100 will be described.
When an image forming signal corresponding to black-and-white printing is transmitted to the image forming apparatus 100, the image carrier 132 is uniformly charged by the charging device 148, and then a light beam corresponding to a black image is emitted from the exposure device 152 to the charged image carrier 132 based on the image signal. The surface of the image carrier 132 is exposed to the light beam emitted from the exposure device 152, so that an electrostatic latent image is formed thereon. In the case of the black-and-white printing, the controller 160 rotates the rotating plate 182 so that the developing roller 146K of the developing device 142K is driven, and applies a predetermined voltage (developing bias) to the developing roller 146K.
When the rotating plate 182 rotates so that the developing roller 146K of the developing device 142K is driven, the cam 204 rotates to bring the displacement forming portion 208a (or 208b) into contact with the arm portion 212 as also shown in
The electrostatic latent image carried by the image carrier 132 is developed with a black developer supplied to the developing roller 146K of the developing device 142K to be transferred to the recording medium supplied from the paper feed unit 114 through the main transport path 122. The developer remaining on the image carrier 132 is scraped and recovered by the image carrier cleaner 150. The recording medium with the black developer image transferred thereto is guided to the fixing device 154, at which the black developer image is fixed onto the recording medium by the heating roller 156 and the pressure roller 158.
The recording medium with the black developer image fixed thereon is guided to the ejecting transport path 124 connected to the main transport path 122 to be guided into the eject roller 129. The eject roller 129 ejects the recording medium from the ejection port 128 to the ejector 113.
Next, the entire operation (color printing) of the image forming apparatus 100 will be described.
When an image forming signal corresponding to color printing is transmitted to the image forming apparatus 100, the image carrier 132 is uniformly charged by the charging device 148, and then a light beam corresponding to a yellow image is emitted from the exposure device 152 to the charged image carrier 132 based on the image signal. The surface of the image carrier 132 is exposed to the light beam emitted from the exposure device 152, so that an electrostatic latent image is formed thereon. In the case of the color printing, the controller 160 rotates the rotating plate 182 so that, for example, the developing roller 146Y of the developing device 142Y is first driven, and applies a predetermined voltage (developing bias) to the developing roller 146Y.
When the rotating plate 182 rotates so that the developing roller 146Y of the developing device 142Y is driven, the cam 204 rotates to bring the cylindrical portion 206 into contact with the arm portion 212 as also shown in
The electrostatic latent image carried by the image carrier 132 is developed with a yellow developer supplied to the developing roller 146Y of the developing device 142Y to be transferred to the recording medium supplied from the paper feed unit 114 through the main transport path 122. The recording medium with the yellow developer image transferred thereto is guided to the fixing device 154, at which the yellow developer image is fixed onto the recording medium by the heating roller 156 and the pressure roller 158.
The recording medium with the yellow developer image fixed thereon is guided to the circulating transport path 126 connected to the main transport path 122 to be transported to the transfer position B through the merging point A into the main transport path 122, and the registration roller 136. The developer remaining on the image carrier 132 is scraped and recovered by the image carrier cleaner 150.
The image carrier 132 is uniformly charged again by the charging device 148, and then a light beam corresponding to a magenta image is emitted from the exposure device 152 to the charged image carrier 132 based on the image signal. The surface of the image carrier 132 is exposed to the light beam emitted from the exposure device 152, so that an electrostatic latent image is formed thereon.
The controller 160 rotates the rotating plate 182 so that the developing roller 146M of the developing device 142M is driven, and applies a predetermined voltage (developing bias) to the developing roller 146M.
When the rotating plate 182 rotates so that the developing roller 146M of the developing device 142M is driven, the cam 204 rotates with the cylindrical portion 206 brought into contact with the arm portion 212 as shown in
The electrostatic latent image carried by the image carrier 132 is developed with a magenta developer supplied to the developing roller 146M of the developing device 142M. The magenta developer image carried by the image carrier 132 is superimposed and transferred onto the recording medium with the yellow developer image transferred thereto. The recording medium with the magenta developer image transferred thereto is guided to the fixing device 154, at which the magenta developer image is fixed onto the recording medium by the heating roller 156 and the pressure roller 158.
The recording medium with the magenta developer image fixed thereon is guided to the circulating transport path 126 connected to the main transport path 122 to be transported to the transfer position B through the merging point A into the main transport path 122, and the registration roller 136. The developer remaining on the image carrier 132 is scraped and recovered by the image carrier cleaner 150.
The image carrier 132 is uniformly charged again by the charging device 148, and then a light beam corresponding to a cyan image is emitted from the exposure device 152 to the charged image carrier 132 based on the image signal. The surface of the image carrier 132 is exposed to the light beam emitted from the exposure device 152, so that an electrostatic latent image is formed thereon.
The controller 160 rotates the rotating plate 182 so that the developing roller 146C of the developing device 142C is driven, and applies a predetermined voltage (developing bias) to the developing roller 146C.
When the rotating plate 182 rotates so that the developing roller 146C of the developing device 142C is driven, the cam 204 rotates with the cylindrical portion 206 brought into contact with the arm portion 212 as shown in
The electrostatic latent image carried by the image carrier 132 is developed with a cyan developer supplied to the developing roller 146C of the developing device 142C. The cyan developer image carried by the image carrier 132 is further superimposed and transferred onto the recording medium with the magenta developer image transferred thereto. The recording medium with the cyan developer image transferred thereto is guided to the fixing device 154, at which the cyan developer image is fixed onto the recording medium by the heating roller 156 and the pressure roller 158.
The recording medium with the cyan developer image fixed thereon is guided to the circulating transport path 126 connected to the main transport path 122 to be transported to the transfer position B through the merging point A into the main transport path 122, and the registration roller 136. The developer remaining on the image carrier 132 is scraped and recovered by the image carrier cleaner 150.
The image carrier 132 is uniformly charged again by the charging device 148, and then a light beam corresponding to a black image is emitted from the exposure device 152 to the charged image carrier 132 based on the image signal. The surface of the image carrier 132 is exposed to the light beam emitted from the exposure device 152, so that an electrostatic latent image is formed thereon. The controller 160 rotates the rotating plate 182 so that the developing roller 146K of the developing device 142K is driven, and applies a predetermined voltage (developing bias) to the developing roller 146K.
When the rotating plate 182 rotates so that the developing roller 146K of the developing device 142K is driven, the cam 204 rotates to bring the displacement forming portion 208a (or 208b) into contact with the arm portion 212 as also shown in
The electrostatic latent image carried by the image carrier 132 is developed with a black developer supplied to the developing roller 146K of the developing device 142K to be transferred to the recording medium supplied from the paper feed unit 114 through the main transport path 122. The developer remaining on the image carrier 132 is scraped and recovered by the image carrier cleaner 150. The recording medium with the black developer image transferred thereto is guided to the fixing device 154, at which the black developer image is fixed onto the recording medium by the heating roller 156 and the pressure roller 158.
The recording medium with the black developer image fixed thereon is guided to the ejecting transport path 124 connected to the main transport path 122 to be guided into the eject roller 129. The eject roller 129 ejects the recording medium from the ejection port 128 to the ejector 113.
The above-described second exemplary embodiment is in terms of the present image forming apparatus in which there are provided the motor 196 for driving the rotating plate 182, and the motor 166 for driving the developing rollers 146Y, 146M, 146C, and 146K. However, the present image forming apparatus is not limited to this structure, and may have a structure in which the driving force of a single motor is transmitted to the rotating plate 182, and the developing rollers 146Y, 146M, 146C, and 146K.
While the first and second exemplary embodiments have been described with reference to the case where a monochrome image or a color image is formed using four color developing devices, i.e., yellow, magenta, cyan and black developing devices, the developing devices are not limited to these colors. For example, a red developing device, as a single color developing device, may be added, and the switching mechanism may operate in a single color mode and a multiple-color mode. Also, developing devices such as a light magenta developing device, a light cyan developing device and the like may be added for forming high-resolution and high-definition color images.
The foregoing description of the exemplary embodiments of the present invention has been provided for the purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Obviously, many modifications and variations will be apparent to practitioners skilled in the art. The exemplary embodiments were chosen and described in order to best explain the principles of the invention and its practical applications, thereby enabling others skilled in the art to understand the invention for various embodiments and with the various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the following claims and their equivalents.
Number | Date | Country | Kind |
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2009-008449 | Jan 2009 | JP | national |
Number | Name | Date | Kind |
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20020076242 | Arcaro et al. | Jun 2002 | A1 |
Number | Date | Country |
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63-296067 | Dec 1988 | JP |
05-188728 | Jul 1993 | JP |
2006-349701 | Dec 2006 | JP |
Number | Date | Country | |
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20100183339 A1 | Jul 2010 | US |