This application is related to the application Ser. No. 12/243,380 entitled “Variable Rate Fuser Release Fluid Application”, which is filed on the same date as the present application, which is commonly assigned to the assignee of the present application, and which is incorporated herein by reference in its entirety.
The present disclosure relates generally to fluid film release in imaging systems. More particularly, the present disclosure describes an apparatus, method, and system useful for providing variable rate fluid film release in ink jet imaging systems.
The fluid film release rate may be an important parameter for ink jet operation. Normally, ink jet fluid applicators are designed for a nominal rate that is not easily adjusted or tuned. As a result, ink jet fluid applicators are vulnerable to release fluid rate variability due to part variations and wear as well as effects of different media. Moreover, given media and/or job type, there is an optimum release fluid rate, but for fixed rate release fluid application systems, the rate has to be chosen so that the most demanding job within the operating specifications receives sufficient release film fluid. Consequently, many other job types will get more release film fluid, such as silicone oil, than is needed, which often contributes to secondary negative effects, such as prints getting oily and/or objects failing to stick to the paper and/or excess oil getting spread to other components when duplexing, for example.
According to various illustrative embodiments, an apparatus for ink jet printing, as well as corresponding method and system for are described. The apparatus includes a source of fluid film, a fluid film metering roller supported for contact with the source of fluid film, a variable speed drive arranged to effect movement of the fluid film metering roller in an endless path at different surface velocities, a donor roller supported in contact with the fluid film metering roller, an ink jet printhead configured to emit ink, and a print assembly rotatably supported in the apparatus, the print assembly having a print assembly surface coupled to the donor roller, the print assembly configured to receive ink from the ink jet printhead and produce an image on media using the ink, wherein the donor roller is configured to convey the fluid film from the fluid film metering roller to the print assembly surface at various rates depending on a surface velocity of the fluid film metering roller, and at least one of the following: an amount of fluid film left on the donor roller, a film thickness of the fluid film on the fluid film metering roller, and a speed ratio between the fluid film metering roller and the donor roller, wherein the variable speed drive is operative independently of the print assembly.
The following figures form part of the present specification and are included to further demonstrate certain aspects of the disclosed features and functions, and should not be used to limit or define the disclosed features and functions. Consequently, a more complete understanding of the present embodiments and further features and advantages thereof may be acquired by referring to the following description taken in conjunction with the accompanying drawings, wherein:
It is to be noted, however, that the appended drawings illustrate only typical embodiments of the disclosed subject matter and are, therefore, not to be considered limiting of the scope of the disclosed subject matter, as the disclosed subject matter may admit to other equally effective embodiments.
Illustrative embodiments are described in detail below. In the interest of clarity, not all features of an actual implementation are described in this specification. It will of course be appreciated that in the development of any such actual embodiment, numerous implementation-specific decisions must be made to achieve the developers' specific goals, such as compliance with system-related and business-related constraints, which will vary from one implementation to another. Moreover, it will be appreciated that such a development effort might be complex and time-consuming, but would nevertheless be a routine undertaking for those of ordinary skill in the art having the benefit of the present disclosure.
Embodiments include an apparatus useful in ink jet printing. The apparatus includes a source of fluid film, a fluid film metering roller supported for contact with the source of fluid film, a variable speed drive arranged to effect movement of the fluid film metering roller in an endless path at different surface velocities, a donor roller supported in contact with the fluid film metering roller, an ink jet printhead configured to emit ink, and a print assembly rotatably supported in the apparatus, the print assembly having a print assembly surface coupled to the donor roller, the print assembly configured to receive ink from the ink jet printhead and produce an image on media using the ink, wherein the donor roller is configured to convey the fluid film from the fluid film metering roller to the print assembly surface at various rates depending on a surface velocity of the fluid film metering roller, and at least one of the following: an amount of fluid film left on the donor roller, a film thickness of the fluid film on the fluid film metering roller, and a speed ratio between the fluid film metering roller and the donor roller, wherein the variable speed drive is operative independently of the print assembly.
Embodiments also include a method for variable rate fluid film application in an ink jet printer. The method includes supporting a fluid film metering roller for contact with a supply of fluid film, arranging a variable speed drive to effect movement of the fluid film metering roller in an endless path at different surface velocities, and supporting a donor roll in contact with the fluid film metering roller and a print assembly, the donor roller arranged to convey the fluid film from the fluid film metering roller to the print assembly at various rates depending on a surface velocity of the fluid film metering roller, and at least one of the following: an amount of fluid film left on the donor roller, a film thickness of the fluid film on the fluid film metering roller, and a speed ratio between the fluid film metering roller and the donor roller, wherein the variable speed drive is operative independently of the print assembly.
Embodiments further include a system for variable rate fluid film application in an ink jet printer, the system including a fluid film metering roller supported for contact with a supply of fluid film, a variable speed drive arranged to effect movement of the fluid film metering roller in an endless path at different surface velocities, a donor roller supported in contact with the fluid film metering roller and a print assembly, the donor roller arranged to convey fluid film from the fluid film metering roller to the printer assembly at various rates depending on a surface velocity of the fluid film metering roller, and at least one of the following: an amount of fluid film left on the donor roller, a film thickness of fluid film on the fluid film metering roller, and a speed ratio between the fluid film metering roller and the donor roller, wherein the variable speed drive is operative independently of the print assembly, and an ink jet printhead configured to emit ink to the print assembly.
In various illustrative embodiments, as shown in
In various illustrative embodiments, the donor roller 340 may be elastomer covered. In various illustrative embodiments, the donor roller 340 may be driven by the print assembly 350. In various illustrative embodiments, the donor roller 340 may slip relative to the fluid film metering roller 320. In various illustrative embodiments, the fluid film metering roller 320 may include a metal having a ground, extruded, molded, or turned surface. In various other illustrative embodiments, the fluid film metering roller 320 may include plastic, aluminum, ceramic or other material having a ground, extruded, molded, or turned surface.
In various illustrative embodiments, the fluid film 315 may be picked up from the supply 310 by the fluid film metering roller 320 and then the film thickness of the fluid film 315 may be lowered by a contacting doctor or metering blade 325, as shown in
In various illustrative embodiments, if the rotational speed of the fluid film metering roller 320 is very low, at least two effects will combine to lower the amount of the fluid film 315 that is delivered to the print assembly 350. One effect is that the film thickness of the fluid film 315 left on the fluid film metering roller 320 after the doctor blade 325 will decrease as the rotational speed decreases due to lubrication theory. Another effect is that the rate of transporting the film thickness of the fluid film 315 on the fluid film metering roller 320 to the donor roller 340 is reduced. As the fluid film metering roller 320 rotational speed is increased, the film thickness of the fluid film 315 on the fluid film metering roller 320 will increase and the rate of presenting this film of the fluid film 315 to the donor roller 340 increases. As a result, the rate of the application of the fluid film 315 to the printer assembly 350 may be substantially continuously adjustable and variable.
In various illustrative embodiments, the fluid film metering roller 320 may be driven by the variable speed drive 330 at an independently controlled rotational speed. By doing so, the relative motion between the donor roller 340, which may be driven by friction with the print assembly 350, and the fluid film metering roller 320 may be varied. As the rotational speeds vary, the sheer plane within the fluid film material 315 layer between the fluid film metering roller 320 and the donor roller 340 changes as well as the overall amount of the fluid film 315 being pulled from the supply 310 by the fluid film metering roller 320. This results in an adjustable amount of fluid film 315 being applied to the print assembly 350.
In various illustrative embodiments, as shown in
The printing mechanism 911 can further include a substrate guide 961 and a media preheater 962 that guides a print media substrate 964, such as paper, through a nip 965, formed between opposing actuated surfaces of a roller 968, such as the pressure roll 370, and the intermediate transfer surface 946 supported by the print drum 948. Stripper fingers or a stripper edge 969 can be movably mounted to assist in removing the print medium substrate 964 from the intermediate transfer surface 946 after an image 960 comprising deposited ink drops is transferred to the print medium substrate 964.
A print controller 970 can be operatively connected to the printhead 942. The print controller 970 can transmit activation signals to the printhead 942 to cause selected individual drop generators of the printhead 942 to eject drops of ink 944. The activation signals can energize individual drop generators of the printhead 942.
Embodiments can provide for an efficient and cost effective way to vary fluid film rate on media while maintaining a good release surface for media on a print assembly and alleviating dependency on metering blade edge quality. In addition, embodiments can provide a robust solution to space constraints in print subsystems and can provide improved methods of controlling and maintaining a uniform fluid film layer on inside and outside paper path areas to minimize image quality artifacts associated with switching media size.
In accordance with the present disclosure, an apparatus, system, and method useful for variable fluid film application in an ink jet printer are disclosed. In various aspects, an apparatus in accordance with the present disclosure may include means for variable rate fluid film application and means for enabling the means for variable rate fluid film application, both the means for variable rate fluid film application and the means for enabling the means for variable rate fluid film application covering corresponding structures and/or materials described herein and equivalents thereof.
It will be appreciated that various of the above-disclosed and other features and functions, or alternatives thereof, may be desirably combined into many other different systems or applications. Various presently unforeseen or unanticipated alternatives, modifications, variations, or improvements therein may be subsequently made by those skilled in the art which are also intended to be encompassed by the following claims.
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Number | Date | Country | |
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20100079561 A1 | Apr 2010 | US |