EP2743087B2 - Imprimante avec habillage - Google Patents

Imprimante avec habillage Download PDF

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Publication number
EP2743087B2
EP2743087B2 EP13189031.1A EP13189031A EP2743087B2 EP 2743087 B2 EP2743087 B2 EP 2743087B2 EP 13189031 A EP13189031 A EP 13189031A EP 2743087 B2 EP2743087 B2 EP 2743087B2
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EP
European Patent Office
Prior art keywords
printing machine
air
cladding
printing
process air
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
EP13189031.1A
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German (de)
English (en)
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EP2743087A1 (fr
EP2743087B1 (fr
Inventor
Georg Gertlowski
Frank Winzinger
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Krones AG
Original Assignee
Krones AG
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Publication date
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J3/00Typewriters or selective printing or marking mechanisms characterised by the purpose for which they are constructed
    • B41J3/407Typewriters or selective printing or marking mechanisms characterised by the purpose for which they are constructed for marking on special material
    • B41J3/4073Printing on three-dimensional objects not being in sheet or web form, e.g. spherical or cubic objects
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J3/00Typewriters or selective printing or marking mechanisms characterised by the purpose for which they are constructed
    • B41J3/407Typewriters or selective printing or marking mechanisms characterised by the purpose for which they are constructed for marking on special material
    • B41J3/4073Printing on three-dimensional objects not being in sheet or web form, e.g. spherical or cubic objects
    • B41J3/40733Printing on cylindrical or rotationally symmetrical objects, e. g. on bottles

Definitions

  • the invention relates to a printing machine which is provided with a casing within which a predetermined atmosphere can be generated.
  • a printing machine which comprises individual capsules at each container station of the printing machine, which capsules can enclose a container received by the container station in order to reduce airflow during transport through the printing machine.
  • appropriate ventilation systems can also be provided in the capsules.
  • the individual capsules are extremely maintenance-intensive and error-prone and there is still a risk of injury to operating personnel, since the machine is freely accessible.
  • the invention is therefore based on the object of providing a cladding for printing machines which improves protection against undesirable environmental influences and at the same time meets the requirements of occupational safety.
  • the printing machine for direct printing of containers wherein the printing machine comprises a cladding which is designed so that it separates the printing machine located therein from the surrounding space, with at least one supply line to guide the containers in the space inside the cladding and one outlet option, in order to guide the containers out of this space, is characterized in that the cladding separates the printing machine from the surrounding space in such a way that a controlled atmosphere can be generated within the cladding.
  • This cladding allows printing to take place in a well-defined atmosphere.
  • the printing press is characterized in that it comprises a ventilation system with at least one main flow in which an air filter is arranged.
  • the ventilation system is optionally suitable for generating an overpressure in relation to the pressure prevailing outside within the casing.
  • the printing machine is characterized in that the ventilation system comprises a heating device for heating up recirculated process air, the heating device being arranged in a secondary flow branched off after the air filter, which returns the recirculated process air to the main flow upstream of the air filter. Since warmer air can absorb moisture better than less warm air, for example, it is advantageous to attach a heating device after an appropriate air filter, since the cold air, which per se can store less moisture than warm air, is first filtered and then heated up again to be able to be fed to the main flow before the air filter.
  • the ventilation system of the printing press is suitable for generating a constant temperature within the printing press and / or maintaining a constant air humidity and / or suppressing air currents that can lead to pressure mist distributions.
  • the printing press is characterized in that a heating device is provided in the main flow. Sufficient heating can be achieved with this heating device.
  • the printing machine comprises a wet separation system with at least one cooling system that can suck out process air and washout water, the washout water being able to be cooled by the cooling system to such an extent that the moisture content of the process air can be kept constant as it flows through the wet separation system . Appropriate cooling minimizes the ability of the process air to absorb moisture and a desired moisture content can be maintained. Even subsequent heating of the process air can no longer increase it as long as no additional water or moisture is added becomes.
  • the printing press is characterized in that a fine filter is provided in the main flow.
  • a fine filter is provided in the main flow.
  • deposits of residues, such as the ink used during printing or the adhesive can occur during printing. Cleaning the process air from these impurities by means of a fine filter can, on the one hand, prevent the accumulation of moisture on these impurities and, on the other hand, ensure that containers to be printed are not soiled before printing.
  • the wet separation system comprises a circulating pump and / or a Venturi scrubber which contains at least one Venturi nozzle. This ensures a particularly good separation of the wash water from the recirculated process air.
  • a direct printing process of containers can be implemented, a controlled atmosphere being generated within the cladding.
  • Direct printing under specified atmospheric conditions can lead to better and, in particular, always reproducible results, which can improve the quality of the products produced.
  • a ventilation system with at least one main flow, in which an air filter is arranged is used to generate an overpressure with respect to the pressure prevailing outside the printing press inside the printing press. This suppresses or partially prevents the ingress of possibly contaminated outside air.
  • the direct printing method is characterized in that recirculated process air is heated by a heating device, which is arranged in a bypass flow in the flow direction of the recirculated process air behind the air filter, and is passed through the bypass flow into the main flow in front of the air filter. Since the recirculated process air is only heated after it has passed through the air filter, the undesired absorption of humidity is prevented before it passes through the air filter, which means that it is less stressed and has a longer running time.
  • the ventilation system within the printing press maintains a constant temperature and / or maintains constant air humidity and / or suppresses air currents that can lead to pressure mist distribution. This ensures that printing is always carried out with a constant atmosphere within the framework of process-related fluctuations.
  • the recirculated process air passes through a heating device provided in the main stream while it is flowing through it. This enables targeted and complete heating of the recirculated process air, so that it can always be brought to the required process temperature.
  • the direct printing process is characterized in that the process air is sucked out of the printing machine together with washout water by a wet separation system and the washout water is cooled by the wet separation system to such an extent that the moisture content of the extracted process air when flowing through the wet Separation system remains constant. This ensures that a certain value of the moisture contained in the process air is maintained and that this value is maintained even with subsequent heating of the recirculated process air, provided that no additional source of air moisture follows.
  • the recirculated process air passes through a fine filter while the main flow is flowing through it.
  • dirt that cannot be removed by the air filter can be filtered out.
  • dirt and impurities in the process air that have arisen from particles released during printing can be cleaned up here.
  • Fig. 1 shows a system 100.
  • This system 100 consists of a machine 102 which can be used to manufacture or process containers.
  • the machine 102 is a printing machine for printing containers 120.
  • the printing machine can be operated cyclically, but it can also be a continuously rotating machine to increase performance.
  • These containers can, for example, be any type of packaging and in particular bottles.
  • the system 100 further comprises a casing 101 which separates the machine 102 located therein from the surrounding space 160. A space 170 is thereby created within the cladding 101.
  • the separation of the space 170 from the surrounding space 160 by the cladding 101 takes place in such a way that at least one feed line 103 for feeding the containers 120 is provided, for example by means of a conveyor belt 106, and furthermore a diversion option 104 for diverting the processed containers 120 ', for example likewise by means of a conveyor belt 105, is provided.
  • the space 170 “generated” within the cladding 101 is therefore not a closed or closed system in the physical sense.
  • the inlet possibility 103 and outlet possibility 104 are selected to be as small as possible, preferably so small that only the corresponding conveying devices 106 and 105 and the containers 120 or even only the containers 120 and 120 'can be guided through these openings.
  • a ventilation system 107 which can control the indoor air or the atmosphere within the cladding 101 in the room 170.
  • it is preferably equipped with means for monitoring and controlling the temperature, the air humidity and, if necessary, with devices for controlling air flows within the room 170.
  • These means can in particular be sensors for determining the temperature and / or humidity in the ambient air.
  • the ventilation system 107 is only used here as a collective term. A detailed description of the ventilation system and its use is given in Fig. 3 respectively.
  • Fig. 2 shows schematic representations of embodiments of the supply line options and exit options 203 and 204, respectively Fig. 2a again an overall view of the system 200.
  • inlet possibility 203 and outlet possibility 204 in the cladding 201 in the form of extended locks.
  • these are then not just openings in the cladding 201 but components with special functions. As boundary conditions, however, these must be able to guarantee the transport of the containers 220 or the processed containers 220 'after leaving the machine 202, which is why their dimensions must be selected so that the containers 220 can be conveyed to the machine 202 and the processed containers 220' can be discharged. can be done by the machine 202.
  • FIG. 2b shows one possible embodiment of a diversion option 204.
  • the following figures only explicitly describe embodiments for the diversion option 204. It should be noted, however, that these can also be used in a non-modified form for the feed line option 203.
  • the diversion option 204 is implemented by means of a sluice in which a permanent opening 210 is provided at the entrance, which preferably has the shape of the container 220 to be processed.
  • the shape of the container 220 is to be understood as meaning that the opening 210 corresponds to an imaginary cross section of the container 220 as it is to be guided through the lock with the aid of the conveyor system 206.
  • the profile of a bottle was used here as an example. However, a different profile for the opening 210 can also be selected according to the container 220 to be processed.
  • Embodiments of the invention 210 are particularly preferred such that they are only slightly larger than the objects 220 to be processed if these are arranged on the conveyor system with appropriate accuracy.
  • openings 210 that allow a clearance of 1 mm or 2 mm, preferably 5 mm, particularly preferably 1 cm in each direction, so that even a slight slipping of the container 220 to be processed can be compensated for and not against the opening 210 or the adjacent part of the cladding 201 abuts. It can also be preferred that the opening is designed as a rectangle, the dimensions of which in the direction perpendicular to the conveying plane 206 are selected such that they are slightly larger than the dimensions of the container 220 to be processed in this direction. Particularly preferred are dimensions that are 1 mm to 2 mm, but at most 5 mm larger than the object 220 to be processed.
  • a further opening 210 ' is provided at the opposite end of the lock through which the object to be processed from space 270 within the cladding 201.
  • This opening can be the same as the first opening 210 in shape and size, but can also be designed according to one of the further embodiments described, if expedient.
  • Figure 2c shows a further embodiment of the lock or the feed line option 204, in which the opening 210 is designed as a gate.
  • This gate can be designed, for example, by means of two sliding or hinged doors, as shown here, which can be moved along the directions of the arrows.
  • a second opening 210 ' is provided, which can be designed in accordance with the opening 210 or in accordance with another embodiment.
  • Fig. 2d shows another embodiment of a lock.
  • an additional ventilation 250 is provided within the inlet or outlet possibility 204, which can suck in air. Both air from the interior space 270 inside the cladding 201 and outside air 260 from the space outside the cladding 201 are sucked in.
  • This additional ventilation 250 is preferably designed in such a way that there is little or no transfer of outside air from the outside space 260 into the inside space 270 within the cladding 201.
  • This additional ventilation can also help to prevent pressure mist from escaping from the device by providing appropriate suction for the pressure mist escaping from the device through the supply and / or discharge possibility 204.
  • FIG. 2a-2d The machine shown only has a supply and a discharge option and an interior space 270, it is also conceivable to arrange further interior spaces in this interior 270, i.e. to provide further areas separated from one another by cladding, which in turn are preferably provided by corresponding supply and output options can be connected to each other. Additional machines, for example printing machines, which print the containers with different colors in pairs, can then also be provided in these further interior spaces. It is particularly advantageous here if the air is sucked off directly at the pressure modules, so that the interior space required can preferably be minimal.
  • Fig. 3 shows an embodiment of the in Fig. 1 Ventilation system shown only schematically.
  • this ventilation system 390 which is shown here in the dashed area, is used to create an atmosphere within the cladding 301 in the interior 370 that meets certain requirements, in particular certain parameters. It is particularly preferred if the ventilation device 390 is able to build up a pressure within the cladding 301 that is slightly higher than the external pressure prevailing in the outer space 360. As a result of this slight overpressure, an undesired entry of outside air from the space 360 into the interior space 370 can preferably be completely prevented, even when the inlet or outlet option is opened.
  • the ventilation device 390 preferably has additional devices, the recirculated process air from the inside 370, which may be contaminated or with air the surrounding space 360 is mixed, can clean.
  • an overpressure in the interior space 370 is preferred which is 1 hPa, preferably 2 hPa, particularly preferably 5 to 10 hPa above normal pressure or the current external pressure.
  • pressure differences from the external pressure of 0.1 to 1 hPa, in particular 0.1 to 0.5 hPa are also possible.
  • the pressure in the inner space 370 and in the outer space 360 can be measured, for example, by means of sensors and the measured values can be evaluated by a control unit and the ventilation system can be controlled accordingly, so that the pressure difference remains constant as possible at all times.
  • the generation of the overpressure can either be dispensed with or it can be very low in the range between 0.1 and 0.2 hPa.
  • the ventilation system comprises a main flow with an air filter.
  • This main flow is designed in such a way that it continuously sucks process air out of the interior space 370 and can clean it via the air filter 316 and then feed it back into the interior space 370. This can be seen with the aid of the arrow directions shown.
  • the inlets for the process air can also be arranged in such a way that that it blows against this through the movement of the print heads and / or the container - preferably against the transport direction of the container.
  • a secondary flow 319 ′ which comprises a heating device 315, is arranged after the air filter 316.
  • the recirculated process air passes through the air filter 316, it is not just direct passed into the interior 370 but also passes through the bypass flow 319 'to the heating device 315, where it is heated. Since it has already been cleaned, it can then be reintegrated into the main flow 319 in order to heat the recirculated process air.
  • a desired temperature in the interior 370 can thus be achieved.
  • the heating device 315 can be regulated so that the heating of the recirculated process air can be controlled in order to achieve a predetermined value, for example.
  • a fine filter 317 can be arranged before or after the air filter 316, but preferably after the air filter 316, in order to remove small particles from the recirculated process air that may not have been removed by the air filter 316.
  • a suction device can preferably be provided for sucking in outside air, which is then fed into the main flow 319 before passing through the air filter 316 and the possibly provided fine filter 317. It is then processed, optionally heated, and can thus be used in the interior 370. It can be useful here to heat the sucked-in air by means of a heat exchanger.
  • the air in the machine can be led past a heat exchanger as soon as it re-enters the main flow. It gives off heat to them and also becomes drier because it can absorb less moisture. At the same time, the sucked in process air is led past another area of the heat exchanger and can thus absorb the heat absorbed by it.
  • the ventilation system is designed in such a way that it sterilizes the process air or that only sterilized air is passed into the interior.
  • the containers can be sterilized at the same time.
  • a HEPA filter can be arranged in the flow direction of the process air to be recirculated before or after the air filters 316 and 317, which sterilizes the process air passed through it.
  • conditions such as those in a clean room can also be met; the atmosphere in the interior of the machine can then be a clean room atmosphere.
  • An additional sterilization of the container in the interior can take place by means of UV lamps, which are aimed at certain parts of the container or at the entire container.
  • the cleaning system can work in a similar way to a CIP system, to the extent that a closed circuit for the cleaning liquid is established in a cleaning cycle.
  • sealing and / or connecting elements that can be advanced for this purpose could be provided in the area of the supply and / or discharge option, which can be advanced via drives in the cleaning cycle.
  • an outlet could be connected to an inlet for the air. If both are next to each other, the element could be a simple cap that is placed over both openings in a sealing manner.
  • Print heads of the printing machine could also be included in CIP cleaning.
  • optical sensors are arranged in the interior. These can be assigned to specific areas or parts of the printing press or the ventilation system and are preferably designed in such a way that they can recognize color deposits at the points to which they are assigned. If the color deposits exceed a certain limit value, a cleaning cycle can then be started automatically or a notification can be sent to the operator, who can then carry out the cleaning cycle, for example, in the next shutdown phase or maintenance phase.
  • a wet separation system can also be provided. If wash-out water occurs in the process that is carried out in machine 302, a correspondingly provided cooling device can be provided for cooling this wash-out water 314, with which process air sucked out can be cooled at the same time.
  • the extracted process air then has a lower humidity after cooling because, due to the lower temperature, it can only absorb a smaller part of water vapor.
  • This cooled air can then either be integrated into the main flow 319 in order to be further purified and then optionally heated, or it can be introduced directly into the interior 370.
  • the wash water can also be processed accordingly by means of the ventilation device 390.
  • the wet separation system preferably comprises a storage tank into which the wash water can be pumped.
  • an additional cooling device in the ventilation device 390 can be dispensed with and at the same time it is achieved that the process air that was sucked out of the interior 370 is freed from excess humidity before it is reintroduced so that the recirculated process air has a predetermined humidity content.
  • a control device which can control at least the ventilation device 390 in order to achieve certain predetermined operating parameters. This can control the output of the heater and, preferably, the setting of the overpressure. If, for example, it is necessary to carry out a certain printing process at a certain humidity F1 and another printing process at a certain humidity F2, the control unit can measure humidity and temperature by evaluating sensors provided in the interior 370 and then measuring these by controlling the ventilation system 390 set so that the necessary conditions are met.
  • an additional blower can be provided in the supply line, which dries the supplied containers, should they have an undesirable film of moisture, for example.

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  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Filling Of Jars Or Cans And Processes For Cleaning And Sealing Jars (AREA)
  • Inking, Control Or Cleaning Of Printing Machines (AREA)
  • Ink Jet (AREA)
  • Drying Of Solid Materials (AREA)

Claims (13)

  1. Machine d'impression (102) pour l'impression directe de contenants (120), la machine d'impression (102) comportant un capotage (101), qui est conçu de façon à séparer la machine d'impression (102) s'y trouvant, de l'espace environnant (160), la machine présentant au moins une possibilité d'introduction (103) pour introduire les contenants (120) dans l'espace (170) à l'intérieur du capotage (101), ainsi qu'une possibilité d'évacuation (104) pour évacuer les contenants (120) hors de cet espace (170), la machine d'impression étant réalisée en tant que machine d'impression à fonctionnement en révolution cyclique ou continue, caractérisée en ce que le capotage (101) sépare la machine d'impression (102) de l'espace environnant (160), de manière à pouvoir produire une atmosphère contrôlée dans l'espace (170) à l'intérieur du capotage (101), la machine d'impression (102) comprenant une installation de ventilation (107) avec au moins un flux principal (319) dans lequel est agencé un filtre à air (316), l'installation étant adaptée, en option, à produire à l'intérieur du capotage (101), une pression en excès par rapport à la pression régnant à l'extérieur.
  2. Machine d'impression (102) selon la revendication 1, caractérisée en ce que l'installation de ventilation (107) comprend un dispositif de chauffage (315) destiné à échauffer de l'air de processus en recirculation, le dispositif de chauffage (315) étant agencé dans un flux auxiliaire (319') dérivé en aval du filtre à air (316), qui peut ramener l'air de processus en recirculation dans le flux principal (319) en amont du filtre à air.
  3. Machine d'impression (102) selon la revendication 1 ou 2, caractérisée en ce que l'installation de ventilation (107) est adaptée à produire à l'intérieur du capotage (101), une température constante et/ou à obtenir une humidité d'air constante et/ou à supprimer des flux d'air, qui peuvent conduire à des distributions de brouillard de pression.
  4. Machine d'impression (102) selon l'une des revendications 1 à 3, caractérisée en ce qu'il est prévu un dispositif de chauffage dans le flux principal.
  5. Machine d'impression (102) selon l'une des revendications 1 à 4, caractérisée en ce que la machine d'impression (102) comprend un système de séparateur à voie humide avec au moins un système de refroidissement (314), qui peut aspirer de l'air de processus et de l'eau de lavage, l'eau de lavage pouvant être refroidie par le système de refroidissement (314) jusqu'à ce que la teneur en humidité de l'air de processus puisse être maintenue constante lors de l'écoulement à travers le système de séparateur à voie humide.
  6. Machine d'impression (102) selon l'une des revendications 1 à 5, caractérisée en ce que dans le flux principal (319) est prévu un filtre fin (317).
  7. Machine d'impression (102) selon la revendication 5, caractérisée en ce que le système de séparateur à voie humide comprend une pompe de circulation et/ou un laveur à Venturi renfermant au moins un tube de Venturi.
  8. Procédé d'impression directe pour imprimer des contenants à l'aide d'une machine d'impression (102) à fonctionnement en révolution cyclique ou continue, qui comprend un capotage (101) enfermant la machine d'impression (102), les contenants étant introduits dans l'espace à l'intérieur du capotage et étant évacués hors de cet espace après l'impression, caractérisé en ce que l'on produit une atmosphère contrôlée à l'intérieur du capotage (101), grâce à une installation de ventilation (107) avec au moins un flux principal (319) dans lequel est agencé un filtre à air (316), on produit à l'intérieur de la machine d'impression, une pression en excès par rapport à la pression régnant à l'extérieur de la machine d'impression (102).
  9. Procédé d'impression directe selon la revendication 8, caractérisé en ce que de l'air de processus en recirculation est échauffé par un dispositif de chauffage (315), qui est agencé dans un flux auxiliaire (319') en aval du filtre à air (316) en se référant à la direction d'écoulement de l'air de processus en recirculation, et est ramené par le flux auxiliaire (319') dans le flux principal (319) en amont du filtre à air (316).
  10. Procédé d'impression directe selon l'une des revendications 8 ou 9, caractérisé en ce que grâce à l'installation de ventilation (107), à l'intérieur de la machine d'impression (102), on maintient une température constante et/ou on maintient une humidité d'air constante et/ou on supprime des flux d'air, qui peuvent conduire à des distributions de brouillard de pression.
  11. Procédé d'impression directe selon l'une des revendications 8 à 10, caractérisé en ce que l'air de processus en recirculation, pendant son écoulement dans le flux principal (319), passe dans un dispositif de chauffage prévu dans celui-ci.
  12. Procédé d'impression directe selon l'une des revendications 8 à 11, caractérisé en ce que l'air de processus est aspiré hors de la machine d'impression (102), en commun avec de l'eau de lavage, par un système de séparateur à voie humide, et l'eau de lavage est refroidie par le système de séparateur à voie humide jusqu'à ce que la teneur en humidité de l'air de processus aspiré reste constante lors de l'écoulement à travers le système de séparateur à voie humide.
  13. Procédé d'impression directe selon l'une des revendications 8 à 12, caractérisé en ce que l'air de processus en recirculation traverse un filtre fin (317) pendant son écoulement dans le flux principal (319).
EP13189031.1A 2012-12-17 2013-10-17 Imprimante avec habillage Active EP2743087B2 (fr)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
DE102012223402.0A DE102012223402A1 (de) 2012-12-17 2012-12-17 Direktdruckmaschine mit Verkleidung

Publications (3)

Publication Number Publication Date
EP2743087A1 EP2743087A1 (fr) 2014-06-18
EP2743087B1 EP2743087B1 (fr) 2016-03-23
EP2743087B2 true EP2743087B2 (fr) 2021-05-05

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EP (1) EP2743087B2 (fr)
CN (1) CN103862857B (fr)
DE (1) DE102012223402A1 (fr)

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CN105835534A (zh) * 2015-01-12 2016-08-10 重庆联佰博超医疗器械有限公司 一种自助打印系统
DE102015222999A1 (de) * 2015-11-20 2017-05-24 Krones Ag Direktdruckmaschine und Verfahren zur Bedruckung von Behältern mit einem Direktdruck
DE102015222996A1 (de) * 2015-11-20 2017-05-24 Krones Ag Aushärtestation und Verfahren zum Aushärten von Druckfarbe eines Direktdrucks auf Behältern
DE102017215434A1 (de) * 2017-09-04 2019-03-07 Krones Ag Klimatisierung von Direktdruckmaschinen
CN110293747B (zh) * 2018-03-22 2022-05-20 博斯特(上海)有限公司 开窗装置及具有开窗装置的烫金设备
EP4003741B1 (fr) * 2019-07-29 2024-05-22 Hewlett-Packard Development Company, L.P. Pression dans un appareil d'impression
DE102019125845A1 (de) * 2019-09-25 2021-03-25 Krones Aktiengesellschaft Vorbehandlungsmaschine und Vorbehandlungsverfahren für Behälter
DE102019128739A1 (de) * 2019-10-24 2021-04-29 Krones Ag Behälterbehandlungsanlage und Verfahren zum Behandeln von Behältern

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CN103862857A (zh) 2014-06-18
EP2743087A1 (fr) 2014-06-18
CN103862857B (zh) 2016-06-15
DE102012223402A1 (de) 2014-06-18
EP2743087B1 (fr) 2016-03-23

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