This invention relates to improved apparatus for cooling a fuser belt in a process for producing electrophotographic toner images on a substrate. The images are produced by passing a substrate bearing an image through a fusing zone to fuse fusible toner particles comprising an image to produce a substrate bearing a fused toner image and passing the substrate bearing the fused toner image through a cooling zone to produce a cooled substrate, which is thereafter passed to a release zone where it is released to produce the substrate bearing the toner image.
The present invention is directed to an improved cooler for use between the fusing zone and the release zone to cool the fuser belt.
The present invention also relates to a system wherein a high efficiency cooling apparatus is used in combination with a high efficiency heating system to cool the fuser belt moving from the fuser roller toward the release roller and heat the fuser belt moving from the release roller toward the fuser roller.
Various methods are known for fusing toner particle images on substrates. In conventional fusing systems, one or both of a fuser roller and a pressure roller may be heated and are somewhat compliant to create a wide nip to allow sufficient heating area. Such conventional fusing systems typically provide gloss levels less than about 20 at a 20° measurement. Furthermore, the wide nip prevents obtaining sufficiently high pressure to remove the image relief in these materials.
Finishing color images containing fusible toner particles has been attempted in typical fusing systems. In these fusing systems, as noted above, typically the gloss is relatively low. As a result, systems for fusing colored images using methods and apparatus that result in fusing the black images to the substrate do not provide the desired gloss. Alternate methods have been used to produce enhanced gloss images by fusing the toner particle images and thereafter passing the substrate bearing the fused toner image to a cooling zone and then passing the cooled substrate bearing the fused toner image to a release zone where the cooled substrate bearing an enhanced gloss image is released.
Typically the cooling has been achieved by the use of a cooling device which has an air inlet with a plurality of downwardly directed small air inlets which are positioned above the fuser belt between the fuser roller and a release roller so that as the belt passes beneath the cooler with the substrates stuck to the bottom of the belt, the cooling air is blown downwardly onto the upper surface of the fuser belt to cool the belt. Coolers of this type have been widely used but are not efficient since the air blown downwardly toward the belt at most can travel one-half the width of the cooling device to the edge of the belt. As a result the cooling efficiency of the air is relatively low. Since it is desirable that a significant amount of cooling be achieved, improved methods and apparatus for achieving such cooling have been sought.
The present invention provides a high efficiency cooling device for a belt fuser, the device comprising: a coolant chamber wherein a coolant is passed in heat exchange with a fuser belt; a coolant inlet into a first end of the coolant chamber; and, a coolant outlet from a second end of the coolant chamber, the second end of the coolant chamber being upstream from the first end of the coolant chamber relative to movement of the fuser belt.
The present invention further provides a high efficiency cooling and heating system for use with a belt fuser, the belt fuser including a fusing section having a fuser roller and a pressure roller and a fuser belt around the fuser roller and a release roller, the system comprising: a coolant chamber between the fuser roller and the release roller and downstream from the fuser roller relative to movement of the fuser belt wherein a coolant is passed in heat exchange with the fuser belt; a coolant inlet into a first end of the coolant chamber; a coolant outlet from a second end of the coolant chamber, the second end of the coolant chamber being upstream from the first end of the coolant chamber relative to movement of the fuser belt; a heat exchange chamber between the release roller and the fuser roller and downstream from the release roller relative to movement of the fuser belt wherein a heat exchange fluid is passed in heat exchange with the fuser belt; a heated fluid inlet into a first end of the heat exchange chamber; a fluid outlet from a second end of the heat exchange chamber, the second end of the heat exchange chamber being up-stream from the first end of the heat exchanger relative to movement of the fuser belt; and, a line in fluid communication with the coolant outlet and the heated fluid inlet.
The invention also provides a method for efficient operation of a belt fuser system, the system including a fusing section having a fuser roller and a pressure roller and a fuser belt around the fuser roller and a release roller, the method comprising: passing a coolant fluid in heat exchange with the fuser belt between the fuser roller and the release roller and downstream from the fuser roller relative to movement of the fuser belt to cool the fuser belt and produce a heated fluid; and, passing the heated fluid in heat exchange with the fuser belt between the release roller and the fuser roller and downstream from the release roller relative to the movement of the fuser belt.
In the present invention, the same numbers will be used to refer to the same or similar components throughout to the extent consistent with an accurate disclosure. Further, not all components required for the actual fabrication of the devices have been shown since their description is not necessary to a full understanding of the invention. In the description of the heat exchange apparatus, the apparatus is described as a cooling system but it should be understood that the heat exchange apparatus may also be used for heating.
In
In
In
In this embodiment a length 47 of chamber 34 can be much greater than the width of the air cooler described in
In
In
In
In
In
In
Any of the embodiments discussed above may be used as an air-cooling or a heating and cooling apparatus. As noted, in at least one embodiment, liquid may also be used as a coolant in the cooling system although the system will be discussed with reference to a gas coolant and a gas heating fluid.
The heated gas recovered from the cooler is passed via a transfer line 72 to a heater 70 where it heats fuser belt 22 between release roller 24 and fuser roller 12. The heating fluid is introduced via an inlet into a first end 76 of heater 70 and discharged through an outlet 74 at second end 78 of heater 70. First end 76 is downstream from second end 78. Desirably, the fuser belt is reheated upstream from fuser roller 12 and at fuser roller 12 to reach a suitable temperature to fuse images 28 on substrate 26 at the nip between fuser roller 12 and pressure roller 18. The discharged heat exchange fluid may be discarded by any suitable means or recycled as a coolant.
Desirably, the heating of fuser belt 22 by heater 70 is at least from about 20 to about 30° C. This is a substantial heat recovery and reduces the heat load on the heater for fuser roller 12 and results in better fusing of the substrates passed through the fusing nip.
The air cooler has been discussed above by reference to the use of air as a gas, although in some embodiments, as clearly disclosed, liquids could be used. Suitable liquids are water or any other desirable heat exchange fluid. Similarly, gases other than air could be used if desired. Preferably air and water are used since both are economical, readily available and readily disposed of after passing through the system.
Accordingly, the apparatus of the present invention is effective to carry out a method for cooling a fuser belt at a desired point and reheating the fuser belt at a second downstream point. The method comprises passing a coolant fluid in heat exchange with the fuser belt between the fuser roller and the release roller and downstream from the fuser roller relative to movement of the fuser belt to cool the fuser belt and produce a heated fluid and passing the heated fluid in heat exchange with the fuser belt between the release roller and the fuser roller and downstream from the release roller relative to the movement of the fuser belt.
In some instances the heat exchange fluid may be in direct contact with the fuser belt and in those instances it is desirable that a gas heat exchange fluid be used. In other instances the heat exchange fluid is not in contact with the fuser belt but is in contact with the chamber, which is in heat exchange contact with the fuser belt.
Further, additional configurations of belt fusers may be suitable for use in the present invention. In such systems, the same steps are accomplished in substantially the same sequence and the heating and cooling may be accomplished by the use of the heat exchange apparatus disclosed in the present invention. In many instances, only cooling may be used but in those instances the increased efficiency achieved by the cooling apparatus of the present invention is considered to be a significant improvement.
As also noted previously, the heat exchange apparatus disclosed may be used for cooling or heating and cooling.
While the present invention has been described by reference to certain of its preferred embodiments, it is pointed out that the embodiments described are illustrative rather than limiting in nature and that many variations and modifications are possible within the scope of the present invention. Many such variations and modifications may be considered obvious and desirable by those skilled in the art based upon a review of the foregoing description of preferred embodiments.
Number | Name | Date | Kind |
---|---|---|---|
6771926 | Ishikawa et al. | Aug 2004 | B1 |
Number | Date | Country | |
---|---|---|---|
20060039725 A1 | Feb 2006 | US |