This application claims priority of Japanese Patent Application No. 2018-158830 filed on Aug. 28, 2018. The contents of this application are incorporated herein by reference in their entirety.
The present invention relates to a printing method for printing on the surface of an object to be printed with a three-dimensional surface.
Conventionally, one of the printing methods for printing on the surface of an object to be printed having a three-dimensional surface, for example, is the printing method described in patent document 1.
According to the printing method described in patent document 1, a three-dimensional surface is formed using a bistable thermochromic material on the surface of the object to be printed, and then the three-dimensional surface is heated by using a laser to develop the color of the bistable thermochromic material.
In addition to such printing methods, printing on a three-dimensional surface of an object to be printed is also performed by various other methods.
In the method described in patent document 1, for full-color printing, multiple types of bistable thermochromic material are prepared, and arranged in various patterns, and the color of each dot unit is developed by irradiation of laser. This method of printing in addition to increasing the printing cost and complexity of the printing process, makes the dots conspicuous, and it is difficult to perform full-color printing that is detailed and highly accurate. These problems also occur when other conventional printing methods are used. Therefore, a printing method capable of reducing the printing cost while printing at high speeds, and capable of full-color printing that is detailed and highly accurate has been long-awaited.
The present invention has taken the above-described problems into consideration, and the objective is to provide a printing method capable of full-color printing that is fast, detailed, and highly accurate at a low printing cost on a three-dimensional surface of the object to be printed.
To solve the above problems, the printing method of the present invention, is characterized by comprising of an analysis step, which analyses the shape of the three-dimensional surface and position of the printing part of the object to be printed with the three-dimensional surface that includes the printing part and converts into two-dimensional data, a placement step, in which at least one part of the object to be printed is placed in the placement recess of the jig with the three-dimensional surface facing upwards, a primer layer formation step, which forms a primer layer on the printing part of the three-dimensional surface based on the two-dimensional data, a white color coating step, which performs UV irradiation after coating white UV curable ink on the surface of the primer layer of the printing part based on the two-dimensional data, and a color printing step, which performs UV irradiation by coating UV curable ink other than white color on the surface of the printing part on which the white UV curable ink has been coated based on the two-dimensional data.
According to the printing method of the present invention, full-color printing that is fast, detailed, and highly accurate at a low printing cost on a three-dimensional surface of the object to be printed is possible.
In the above described printing method of the present invention, UV curable ink coated in the color printing step may be UV curable inks of colors yellow, magenta, cyan, and black other than white.
This makes it possible to perform full-color printing with high accuracy.
In the above described printing method of the present invention, in the placement step, positioning into the placement recess based on the shape of the part not included in the printing part of the object to be printed is possible.
With this, the object to be printed can be positioned in the jig with high accuracy without affecting the printing.
In the above described printing method of the present invention, the positioning of the object to be printed that is performed in the placement step is possible based on the placement recess that corresponds to the concave-convex shape formed on the opposite surface of the three-dimensional surface of the object to be printed, and shape of the outer peripheral edge of the concave-convex shape.
Therefore, even if the contour shape of the object to be printed is circular, it is possible to position with high accuracy without spoiling the aesthetic appearance of the surface with the printing part of the object to be printed.
According to the present invention with the configuration described above, full-color printing that is fast, detailed, and highly accurate at a low printing cost on a three-dimensional surface of the object to be printed becomes possible.
The embodiment of the present invention will be explained in detail with reference to the accompanying drawings.
The decorative item 1 has a printing part 11 on its upper surface. The printing part 11, is the three-dimensional surface covering the entire top surface (The entire surface of the paper surface of
In the printing method according to the present embodiment, first, three-dimensional shape of the decorative item 1 which is the object to be printed including the printing part 11, and position of the printing part 11 will be analyzed and converted to two-dimensional data. This conversion to the two-dimensional data is performed by a control unit (Not shown in the figure) of the printer. The conversion to two-dimensional data is performed by taking into consideration the variation in the coating thickness when the three-dimensional shape is flattened based on the three-dimensional shape of decorative item 1 and position of the printing part 11 (Analysis step). The two-dimensional data obtained will not be the same as the plan view of the printing part 11 of decorative item 1, and will be data showing the distorted shape of the shape.
Next, as shown in
A clearance of 0.02 mm is provided between the peripheral parts of placement recess 21 and decorative item 1. By providing this clearance, in addition to easy placement of decorative item 1 in placement recess 21, it becomes possible to prevent the occurrence of coating misalignment due to the positional deviation of decorative item 1.
A mixture (primer) of toluene, xylene, and ethylbenzene is used as the material for primer layer 3 formed in the primer layer formation step, and thickness of primer layer 3 is 5 to 10 μm.
The coating of primer layer 3 is performed by the operation of the printing head (Not shown in the figure) of the printer in the main scanning direction and the sub operation direction with respect to the printing part 11. By forming the primer layer 3, it becomes possible to form the white UV curable ink layer 4, described below, on the primer layer.
Known white inks having UV curability can be suitably used as the white UV curable ink. The white color coating step is performed by moving the printing head (Not shown in the figure) of the printer in the main scanning direction and the sub operation direction to coat the white UV curable ink, and then UV irradiation is performed on the parts coated with the white UV curable ink by moving the UV irradiation device (Not shown in the figure) in the main scanning direction and the sub operation direction. UV irradiation is carried out at room temperature for several milliseconds to several seconds.
Known color inks having UV curability can be suitably used as color inks. The color printing step is performed by coating the color ink on the white UV curable ink layer 4 that is the printing part with movement of the printing head of the printer in the main scanning direction and the sub operation direction, and by UV irradiation of the coated locations with movement of the UV irradiation device in the main scanning direction and the sub operation direction. UV irradiation is carried out at room temperature for several milliseconds to several seconds. In particular, it is preferable to use yellow, magenta, cyan, and black UV curable inks as the color ink. This makes it possible to perform full-color printing with high accuracy.
According to the printing method of the above embodiment, since primer layer 3, white UV curable ink layer 4 and color ink layer 5 using UV curable ink are formed based on the two-dimensional data obtained by the analysis of the three-dimensional surface shape of the printing part and position of the printing part, full-color printing that is fast, detailed, and highly accurate at a low printing cost on a three-dimensional surface of the object to be printed becomes possible.
In the above described embodiment, a decorative item 1 having a regular hexagonal shape in the plan view was assumed as the object to be printed, the present invention is not limited to this shape and decorative items of other shapes can also be printed.
The positioning of decorative item 1 with respect to jig 2 is explained in detail.
On the other hand, if the shape of the decorative item 1 is circular in the plan view, then positioning in placement recess 21 which is circular in shape by visual placement is difficult. In such cases, the decorative item 1 can be positioned in jig 2 by providing a protrusion or concave part on the lower surface of decorative item 1 for positioning and a corresponding concave part or protrusion for positioning in the placement recess 21 of jig 2.
Further, placement recess 21 of jig 2 is formed in a pentagonal shape in the plan view so that character part 12 and protrusion 13 can be placed such that decorative item 1 cannot be rotate after the placement. The decorative item 1 can be positioned by fitting character part 12 and protrusion 13 in the placement recess 21 that has been formed as described. As shown in
In this way, if the decorative item 1 is circular in the plan view, by providing a concave-convex shape on the opposite surface of the printing part of decorative item 1, and placement recess 21 with a shape corresponding to the outer peripheral edge of the concave-convex shape, to fit the concave-convex shape into jig 2, positioning with high accuracy is possible without spoiling the aesthetic appearance of the surface with the printing part of the object to be printed even if the contour shape of the object to be printed is circular. That is, although characters are displayed on the reverse surface of decorative item 1, guides are not provided (Protrusions having the same shape as placement recess 21) for fitting in placement recess 21. As a result, even if the contour shape of the object to be printed is circular, it is possible to position with high accuracy without spoiling the aesthetic appearance of the surface with the printing part of the object to be printed.
In the above described embodiment, the complete upper surface of the object to be printed was the printing part, however, the present invention is not limited to this, and only a part of the upper surface of the object to be printed can be set as the printing part.
Number | Date | Country | Kind |
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2018-158830 | Aug 2018 | JP | national |