The present invention relates to a heater suitable for performing a post-fusing process in a printing apparatus
It is known in the art that the use of non-evaporating co-solvents in aqueous (latex based) ink compositions for preventing drying of the ink in the nozzles which may cause nozzle clogging may impart the final robustness (resistance towards mechanical damaging) of the printed matter.
The co-solvents need to be absorbed by the print substrate. In particular for low porosity print substrates, such as off-set coated paper, the absorption is a slow process that can be speeded up by lowering the viscosity of the ink composition, for example by drying/fixating at a high(er) temperature.
A downside of using a higher temperature in the drying stage of the printing process is that at such temperatures the evaporation rate of water increases, potentially leading to over-drying of unprinted parts of the print substrates, hence leading to deformation of the printed matter.
It is therefore an object of the present invention to find a solution to the above described dilemma: creating high quality prints with ink jet, the prints showing both a high robustness and a low print substrate deformation.
This object can be, at least partly, achieved by treating the printed matter in a fixation unit as claimed in claim 1. Such a heater comprises a nip belt transport mechanism that enables full and airtight enclosure of the printed substrate, at least those parts of the substrate that are heated (e.g. long substrates or continuous substrates (webs) are only in an airtight enclosure for the part that is in the heating zone of the fixation unit). The used transport belts forming the airtight nip are impermeable to ink components and hence are capable of keeping all liquids that might evaporate during heating in the enclosed (part of) the substrate. In this way, absorption of co-solvents into the print substrate is promoted while evaporation of water is prevented. Due to high temperature heating that can be used, the ink may further contain high MFFT (film formation at higher temperatures) latex compositions. In this way, film formation during printing and during other process steps performed at lower temperatures, e.g. (first) drying step, may be prevented which is an enhancement for color efficiency (i.e. pigment efficiency is relative amount of pigment with respect to total ink composition for obtaining a predefined desired color strength) of ink compositions Further, the end robustness of the printed matter may be enhanced after being treated in a fixation unit according to the present invention. In general, (speed of) film formation will also benefit from high temperature treatment of the printed matter.
A (heated part of the) printed substrate can be completely enclosed in the transport mechanism of the claimed heater. Hence further evaporation of water present in the print substrate and/or the ink layer printed thereon is prevented by a full and air tight enclosure of the printed substrate in the belt nip comprised in the fixation unit. This enables fixation at higher temperatures, without increasing the risk of over-drying the printed substrate and hence without increasing the risk of print substrate deformation as a consequence thereof.
In an embodiment, at least a surface of the belts that in operation comes in direct contact with printed matter comprises a material having a low surface energy for good release properties of the printed matter from the surfaces of the belts Pollution of the belts with ink residues is then prevented or at least mitigated
The belt system can be folded into a compact module hence compact fixation module is enabled (small footprint).
Fast heating by conductive contact between belts and printed substrate is enabled. High MFFT latex resins being implemented in ink compositions is hence enabled
In another aspect the present invention relates to a printing system comprising a printing module (comprising an image forming unit e.g. comprising ink-jet print heads), a substrate transport device arranged for transporting the substrate through the printing system; and a fixation module, comprising a fixation unit according to the present invention, the fixation module is arranged downstream of the printing module.
In an embodiment, the printing system comprises a drying module, arranged downstream of the printing module and upstream of the fixation module. The drying module comprises a drying device, e.g. (hot) air impingement device and uses mild heating conditions for drying printed substrates until the printed matter is robust enough to be handled further in the printing system.
In another aspect the present invention relates to a printing method, wherein the method comprises the steps of:
In the context of the present invention, the term ‘robust enough’ in the drying step is to be interpreted as being able to touch the print without damaging it, which is dependent on print substrate-ink combination.
In an embodiment, the drying step is performed at a drying temperature of between 40° C. and 70° C., preferably between 45° C. and 60° C., more preferably between 50° C. and 55° C., for 0.5-4 seconds, preferably for 1-3 seconds (i.e. exposure time), which are considered to be mild heating conditions.
The higher the selected temperature of the drying step is, the shorter the exposure time needs to be in order to prevent or at least mitigate the above disclosed over-drying of unprinted parts of the print substrate and hence prevent or at least mitigate deformation of the printed matter.
In an embodiment, the fixation step is performed at a temperature of above the MFFT of the polymer dispersion (latex) used in the ink.
In an embodiment, the fixation step is performed at a temperature of between 60° C. and 140° C., preferably between 65° C. and 120° C., more preferably between 70° C. and 100° C. for 0.5-4 seconds, preferably for 1-3 seconds, which are considered ‘high heat’ conditions.
For a more complete understanding of the invention and the advantages thereof, exemplary embodiments of the invention are explained in more detail in the following description with reference to the accompanying drawing figures, in which like reference characters designate like parts and in which:
The fixation unit further comprises a temperature sensor 10 and a heater 11 which are both connected to a controller 12. The controller 12 is arranged to control the temperature in the interior of the substantially closed box 2 of the fixation unit 1, based on the temperature sensed by the temperature sensor 10 and by providing heat with heater 11 accordingly to achieve a set point temperature inside the interior of the substantial closed box. Additionally, the temperature control may be assisted by the use of heated rollers (not shown, one or more of the rollers 5, 5′, 5″, 5′″, 9, 9′, 9″ and 9′″ may be heated rollers, the arranged heaters are then connected to controller 12. Alternatively, the temperature may be assisted by the above disclosed plates by implementing them as heated plates).
All modules are equipped with transport devices (not shown) and couplings of the transport devices between the units (not shown) for enabling transport of a print substrate through the printing system as indicated with arrow 31. In case of cut sheet printing duplex printing is enabled by a return path indicated with arrows 32, 32′ and 32″. For duplex printing also a reverse loop is arranged in the transport path (not shown).
The embodiment shown in
After step S400, the prints are robust and not over-dried, because evaporation of water during fixation is prevented or at least mitigated and absorption of co-solvents into the print substrate is enhanced. Optionally, the prints are cooled and returned to the printing module 21 for duplex printing and/or added to the stack of prints in the stacking module (not shown in
Number | Date | Country | Kind |
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20195828 | Sep 2020 | EP | regional |
Number | Name | Date | Kind |
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5927189 | Jones | Jul 1999 | A |
20040017454 | Yoshizawa et al. | Jan 2004 | A1 |
20150105504 | Verheggen et al. | Apr 2015 | A1 |
Number | Date | Country |
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WO 2017178600 | Oct 2017 | WO |
Entry |
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Search Report issued in European priority application 20195828 dated Feb. 4, 2021. |
Number | Date | Country | |
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20220080746 A1 | Mar 2022 | US |