The disclosure of Japanese Patent Application No. 2020-051337 filed on Mar. 23, 2020 including specification, drawings and claims is incorporated herein by reference in its entirety.
This invention relates to a printing method and a printing apparatus for printing by ejecting ink from a nozzle to a printing surface of a packaging base material.
A printing apparatus is known which prints an image by ejecting water-based or oil-based ink from a head part to a printing surface of a base material by an ink-jet method while conveying the base material in the form of an elongated strip in a longitudinal direction (see JP 2019-119609A). In this printing apparatus, if the ink is not ejected from the head part for a certain time or more, an ink viscosity near an ink eject port increases. This increase in viscosity may cause the deterioration of flying properties of the ink from the nozzle. To avoid this, it has been proposed to perform line flushing to a discard area of the base material or star flushing to a pictorial pattern part of the base material.
However, in a packaging industry for sweets packaging materials, a printing area is continuous along a longitudinal direction and no discard area exists at all. Further, a bag making process is performed by supplying a base material having desired images printed thereon by a printing apparatus to a bag making apparatus. If line flushing is performed in the printing apparatus without considering the appearance of a final product after the bag making process, i.e. a packaging pouch (or bag), a linear eject pattern appears in a part of the packaging pouch visible from a consumer to impair the design quality of the packaging pouch. Thus, a flushing process taking into account a state after the bag making process is desired in a printing technique for printing by ejecting ink to a printing surface of a packaging base material from a nozzle while conveying the packaging base material in the form of an elongated strip before the bag making process in a longitudinal direction, but such a technique does not exist.
This invention was developed in view of the above problem and aims to provide a printing technique capable of satisfactorily printing for packaging pouch on a packaging base material without impairing the design quality of a packaging pouch manufactured by applying a bag making process to the packaging base material.
One aspect of the invention is a printing method. The method comprises: (a) printing by ejecting ink to a printing surface of a packaging base material from a nozzle while conveying the packaging base material in the form of an elongated strip before a bag making process in a longitudinal direction; (b) obtaining position information of an invisible region invisible from outside, out of the printing surface of the packaging base material; and (c) performing a flushing process by ejecting the ink toward the invisible region from the nozzle based on the position information.
Other aspect of the invention is a printing apparatus. The apparatus comprises: a conveyor that conveys a packaging base material in the form of an elongated strip before a bag making process in a longitudinal direction; a head part that prints by ejecting ink from a nozzle to a printing surface of the packaging base material being conveyed by the conveyor; a position information acquirer that obtains position information of an invisible region invisible from outside after the bag making process, out of the printing surface of the packaging base material, and a flushing controller that performs a flushing process by ejecting the ink from the nozzle toward the invisible region based on the position information.
Note that the “invisible region invisible from outside after the back making process” means not only a region invisible by being not exposed in the packaging pouch manufactured by the bag making process as shown in
According to the invention, since the flushing process is performed by ejecting the ink from the nozzle toward the invisible region invisible from outside after the bag making process, out of the printing surface of the packaging base material, printing for packaging pouch can be satisfactorily performed on the packaging base material without impairing the design quality of the packaging pouch manufactured by applying the bag making process to the packaging base material.
All of a plurality of constituent elements of each aspect of the invention described above are not essential and some of the plurality of constituent elements can be appropriately changed, deleted, replaced by other new constituent elements or have limited contents partially deleted in order to solve some or all of the aforementioned problems or to achieve some or all of effects described in this specification. Further, some or all of technical features included in one aspect of the invention described above can be combined with some or all of technical features included in another aspect of the invention described above to obtain one independent form of the invention in order to solve some or all of the aforementioned problems or to achieve some or all of the effects described in this specification.
The printing apparatus 100 pays out the transparent base material BM from a roll 150 formed by winding the transparent base material in the form of an elongated strip and prints printing images IM (“Fr” on a front surface side” and “Bk” on a back surface side” in
In this manufacturing system 1, the printing images IM for stand-up pouch to be printed by the printing apparatus 100 to manufacture one stand-up pouch 300 are formed one after another in a longitudinal direction LD of the base material BM as shown in a lowermost stage of
In the printing apparatus 100, as shown in
The front-stage printer 110 includes a conveyor 10 for conveying the base material BM from right to left as shown in a partial enlarged view in
Out of the plurality of backup rollers 13, the most upstream backup roller 13 and the most downstream backup roller 13 in a conveying direction are at the same height position, and front-stage printing is performed between these rollers. That is, a path between these two backup rollers 13, 13 is set as a front-stage printing path. The plurality of backup rollers 13 are arranged at certain intervals along the front-stage printing path. These plurality of backup rollers 13 are arranged at a higher position toward a central part of the front-stage printing path and support the base material BM. As a result, the conveying direction of the base material BM is not constant. The conveying direction of the base material BM is obliquely upward with respect to the horizontal direction X in a first half of the front-stage printing path, substantially parallel to the horizontal direction X in the central part and obliquely downward with respect to the horizontal direction X in a second half. That is, the conveyor 10 can continuously convey the base material BM in the form of an elongated strip by an upward projecting substantially arcuate conveyance path.
A plurality of head parts 2 for printing by ejecting the ink to the printing surface of the base material BM being conveyed in this way are arranged along the printing path. More specifically, the head part 2 is arranged at a position above a part of the base material BM moving between two backup rollers 13 adjacent to each other. Each head part 2 ejects the ink to the printing surface of the base material BM having both sides supported by two backup rollers 13 in an ink-jet method. In an example shown here, six head parts 2 including four head parts 2 for ejecting ink of four process colors (yellow, magenta, cyan, black) and two head parts 2 for ejecting ink of two specific colors (orange, violet, green, etc.) are provided. Each head part 2 has a nozzle surface for ejecting the ink on a lower surface, and ejects the ink from this nozzle surface to the printing surface of the base material BM being conveyed along the substantially arcuate conveyance path.
Further, each head part 2 ejects the ink from the nozzle surface in a so-called ink-jet method. On the other hand, if ink is not ejected from a nozzle for a certain time or more, the flying properties of the ink from the nozzle is deteriorated due to an increase in viscosity and the like. Accordingly, in this embodiment, a controller 170 controls each component of the printing apparatus 100 to perform a printing process based on a print command and perform the flushing process at a suitable timing.
The controller 170 is composed of a known CPU (Central Processing Unit) for performing a logical operation, a ROM (Read Only Memory) storing defaults and the like, a RAM (random access memory) for temporarily storing various pieces of data during the operation of the printing apparatus 100, and the like. Specifically, the controller 170 may be a dedicated device equipped with the hardware described above or may be a general-purpose processing device such as a personal computer or a work station having a control program for realizing a processing function to be described later incorporated therein, and a general-purpose computer can be used as such.
The controller 170 is functionally provided with an arithmetic processor 171, a storage 172, a user interface 173 and the like. Out of these, the storage 172 stores print image data obtained by converting data included in a print command and process image data beside the control program, and stores flushing images in advance. Further, the user interface 172 is an interface for outputting information to a user and receiving an input from the user, and includes an input part 173a and a display 173b. The input part 173a receives an input from the user and outputs the receive input to the arithmetic processor 171. The display 173b displays various pieces of information in accordance with an instruction from the arithmetic processor 171.
The arithmetic processor 171 reads the control program stored in advance in the storage 172 and controls each component of the apparatus in accordance with the control program as described in detail next with reference to
The arithmetic processor 171 converts the print command into data suitable for printing by the head parts 2. Specifically, the print image information is converted into print image data and the process image information is converted into process image data, and these pieces of data are stored in the storage 172 (Step S2). Further, the arithmetic processor 171 obtains the position information of the invisible regions BMa corresponding to the bottom parts in the base material BM based on the process image data (Step S3). Since a plurality of print images (e.g. images IM each including a pair of “Fr” and “Bk” as shown in
Accordingly, in this embodiment, the arithmetic processor 171 calculates an interval between the invisible regions BMa (Step S4) and sets a frequency of the flushing process to correspond to the calculated interval (Step S5). These steps are performed for the following reason. If the size of the stand-up pouch 300 is small, the interval of the invisible regions BMa is narrow. Since the invisible regions BMa are regions to be subjected to the flushing process as described later, the ink is excessively consumed if the flushing process is performed for each invisible region BMa. Accordingly, as the bag size becomes smaller, the frequency of the flushing process is reduced. For example, ink consumption can be suppressed by ejecting the ink from the nozzle of the head part 2 toward the invisible region BMa to perform the flushing process every time the invisible region BMa reaches a position below this head part 2 a plurality of times. Further, in this embodiment, a flushing intensity (eject amount of the ink per unit time from the nozzle) is set after evaluating an open time determined by a combination of the ink and the head part 2, i.e. a time during which a cap (not shown) is removed from the nozzle surface of the head part 2, besides the frequency of the flushing process.
If the preparation of the printing process for the print images IM and the flushing process is completed in this way, the arithmetic processor 171 controls the conveyor 10 to start the conveyance of the base material BM (Step S6). Then, the arithmetic processor 171 controls each head part 2 to perform the printing process and the flushing process in parallel (Step S7). More specifically, the print images IM are printed by ejecting the ink to the printing surface of the base material BM from each head part 2 while conveying the base material BM in the longitudinal direction (LD of
Then, when confirming the completion of the printing process and the flushing process (“YES” in Step S8), the arithmetic processor 171 stops the conveyance of the base material BM (Step S9) and finishes a series of processes.
As described above, since the flushing process is performed by ejecting the ink toward the invisible regions BMa from the nozzle in this embodiment, the print images IM for stand-up pouch can be satisfactorily printed on the base material BM without impairing the design quality of the stand-up pouches 300 manufactured by applying the bag making process to the base material BM.
Further, since the frequency of the flushing process is adjusted according to the interval of the invisible regions BMa (or the bag size), running cost can be reduced by suppressing the amount of ink consumed by the flushing process.
As described above, in this embodiment, Step S7 corresponds to examples of a “printing step” and a “flushing step” of the invention. Further, the position corresponding to the bottom part in the base material BM corresponds to an example of “position information of an invisible region” of the invention, and a step of obtaining this information (Step S3) corresponds to an example of a “position information obtaining step” of the invention. Further, Step S1 corresponds to an example of a “command receiving step”. Further, the print image data and the process image data respectively correspond to examples of “print image information” and “process image information” of the invention.
Note that the invention is not limited to the above embodiment and various changes other than the aforementioned ones can be made without departing from the gist of the invention. The region invisible from the consumer by being hidden when the packaged product is on display serves as an “invisible region invisible from outside after a bag making process” of the invention in the above embodiment. Besides the above, a region invisible by being not originally exposed in a packaging pouch manufactured by the bag making process as described next is also included in the “invisible region invisible from outside after the bag making process” of the invention.
Further, the invention can be applied also to a printing technique for printing on a base material for manufacturing, for example, stand-up zipper pouches (or bags), bottom gusset pouches (or bags) and the like besides the stand-up pouches (or bags) 300, the center seal pouches 310 and the self-heating packaging pouches (or bags) 320.
Further, although the position information of the invisible regions BMa is obtained based on the process image data (process image information) in the above embodiment, the method for obtaining the above position information is not limited to this. For example, images for bag making process, e.g. register marks, may be recorded on the base material BM in advance, and the position information of the invisible regions BMa may be obtained by detecting the images for back making process in the case of performing the printing process on the basis of the images for bag making process.
Further, bag making process information on the bag making process to be applied to the base material BM by the bag making apparatus 200, e.g. the type and bag making dimensions of the bags may be obtained and the position information may be derived from this bag making process information. Further, the position information may be received from the user via the user interface.
Further, although the bag making process is performed by supplying the roll 160 obtained by winding the base material BM printed in the printing apparatus 100 to the bag making apparatus 200 in the above embodiment, the base material BM printed in the printing apparatus 100 may be directly supplied to the bag making apparatus 200.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiment, as well as other embodiments of the present invention, will become apparent to persons skilled in the art upon reference to the description of the invention. It is therefore contemplated that the appended claims will cover any such modifications or embodiments as fall within the true scope of the invention.
This invention is generally applicable to printing techniques for printing by ejecting ink from a nozzle to a printing surface of a packaging base material.
Number | Date | Country | Kind |
---|---|---|---|
JP2020-051337 | Mar 2020 | JP | national |
Number | Name | Date | Kind |
---|---|---|---|
20060191806 | Takata | Aug 2006 | A1 |
20170203570 | Katoh et al. | Jul 2017 | A1 |
Number | Date | Country |
---|---|---|
3 281 794 | Feb 2018 | EP |
2009-234656 | Oct 2009 | JP |
2014-184597 | Oct 2014 | JP |
2014184597 | Oct 2014 | JP |
2018-051826 | Apr 2018 | JP |
2019-119609 | Jul 2019 | JP |
2020-001819 | Jan 2020 | JP |
2019131843 | Jul 2019 | WO |
2020250772 | Dec 2020 | WO |
WO-2020250772 | Dec 2020 | WO |
Entry |
---|
Extended European Search Report issued in corresponding European Patent Application No. 21160012.7-1017, dated Aug. 13, 2021. |
Number | Date | Country | |
---|---|---|---|
20210291534 A1 | Sep 2021 | US |