Precision cut printing screen
11932003 ยท 2024-03-19
Assignee
Inventors
Cpc classification
B41F15/34
PERFORMING OPERATIONS; TRANSPORTING
B41C1/145
PERFORMING OPERATIONS; TRANSPORTING
B41N1/248
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41F15/34
PERFORMING OPERATIONS; TRANSPORTING
B41C1/14
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Disclosed is a precision cut printing screen in which the features of a printing pattern are defined on a sheet material by a plurality of apertures within a target printing boundary. Also disclosed is a method of making the printing screen.
Claims
1. A tensioned printing screen for screen printing a printing pattern, comprising at least one continuous printed feature, on a substrate, the tensioned printing screen comprising: a sheet material; and a printing screen pattern comprising plurality of apertures within a printing screen pattern boundary representing a target pattern boundary around a periphery of at least one continuous feature to be printed on the substrate, wherein the at least one continuous feature is defined on the sheet material by a plurality of apertures through the thickness of the sheet material, within the printing screen pattern boundary; wherein the printing screen pattern boundary corresponds to the target pattern boundary when the tensioned printing screen is placed on the substrate in use.
2. The printing screen of claim 1, wherein the printing screen pattern boundary of the at least one continuous feature to be printed has a predetermined spatial relationship to an array of said plurality of apertures adjacent to the printing screen pattern boundary.
3. The tensioned printing screen of claim 2, wherein the predetermined spatial relationship comprises a minimum distance, or range of minimum distances, between an aperture in the array and the closest part of the printing screen pattern boundary, wherein the minimum distance or range is shared between a series of or all of the apertures in the array.
4. The tensioned printing screen of claim 3, wherein the predetermined spatial relationship comprises a minimum distance, or acceptable range of minimum distances, between a series of adjacent apertures or each adjacent aperture in the array.
5. The tensioned printing screen claim 1, wherein the sheet material comprises a metal sheet material.
6. The tensioned printing screen of claim 1, wherein said plurality of apertures are provided by laser cutting.
7. The tensioned printing screen of claim 1, wherein the at least one continuous feature to be printed has surface area in the range of 1-500 mm.sup.2, and/or wherein said plurality of apertures have a diameter or width between around 1 ?m and 500 ?m.
8. The tensioned printing screen of claim 1, wherein at least one said continuous feature includes apertures of said plurality of apertures of multiple sizes and which increase in size with distance from the printing screen pattern boundary; and/or wherein the number density of apertures of said plurality of apertures decreases with distance from the printing screen pattern boundary of the at least one said feature.
9. The tensioned printing screen of claim 1, comprising a frame, wherein the sheet material is mounted to the frame in tension.
10. The tensioned printing screen of claim 9, wherein the sheet material is welded to the frame.
11. A method of printing a pattern on a substrate, the method comprising: providing a tensioned printing screen according to claim 1; placing the tensioned printing screen on a substrate so as to place a first side of the tensioned printing screen against the substrate; applying a printing medium to a second side of the tensioned printing screen; and flowing the printing medium through said plurality of apertures through the thickness of the sheet material to the substrate.
12. The method of claim 11, comprising passing a wiper across the tensioned printing screen, to distribute the printing medium.
13. The method of claim 12, comprising removing the tensioned printing screen from the substrate.
14. A method of making a tensioned printing screen, comprising: providing a sheet material; tensioning the sheet material; and precision cutting a printing pattern comprising a plurality of apertures through the thickness of the sheet material, within a printing screen pattern boundary representing a target pattern boundary around a periphery of at least one continuous feature of a printing pattern to be printed on a substrate, so as to define the at least one continuous feature on the sheet material by the plurality of apertures.
15. The method of claim 14, comprising laser cutting said plurality of apertures.
16. The method of claim 14, comprising tensioning the sheet material prior to precision cutting.
17. The method of claim 14, comprising mounting the sheet material to a frame.
18. The method of claim 14, mounting the sheet material to a frame in tension.
19. The method of claim 14, comprising precision cutting an array of said plurality of apertures in a predetermined spatial relationship with respect to the printing screen pattern boundary.
20. The method of claim 19, comprising precision cutting a said array around a part, or substantially all of the periphery of the at least one continuous feature defined on the sheet material.
21. The method of claim 14, comprising mounting the sheet material to a frame in tension, prior to the precision cutting a printing pattern.
22. A method of printing a pattern on a substrate, the method comprising: providing a printing screen made according to the method of claim 21; placing the printing screen on a substrate so as to place a first side of the printing screen against the substrate; applying a printing medium to a second side of the printing screen; and flowing the printing medium through the apertures through the thickness of the sheet material to the substrate.
23. A method of printing a pattern on a substrate, the method comprising: providing a printing screen made according to the method of claim 14; placing the printing screen on a substrate so as to place a first side of the printing screen against the substrate; applying a printing medium to a second side of the printing screen; and flowing the printing medium through the apertures through the thickness of the sheet material to the substrate.
Description
DESCRIPTION OF THE DRAWINGS
(1) Example embodiments will now be described with reference to the following figures in which:
(2)
(3)
(4)
DETAILED DESCRIPTION
(5)
(6) Feature A has target printing boundaries. These are represented on the mesh printing screen by printing screen pattern boundaries 1 and 2. Edge 1 has a filament 3 that runs along the edge 1, such that the boundary of the feature A is bounded by the edges of the apertures 4 in the mesh. Another printing screen pattern boundary 2, however, runs part way along a row of apertures 5. As a consequence, ink will inevitably flow into the apertures 5, beyond the boundary 2 of the printed feature A, when printing the feature A onto a substrate. Similarly, the relationship between the printing screen pattern boundaries 6, 7, and 8 of feature B are all different from one another in relation to the positions of the mesh filaments and apertures.
(7)
(8) The apertures 16 are necessarily arranged in rows and columns and so in use, the distance between the target boundary of the feature 10 and the nearest aperture 16 within its boundary varies significantly around the periphery of the feature 10. This severely limits the extent to which the circular shape of the feature 10 can be reflected in the final printed pattern on a substrate.
(9)
(10) The array 122 of apertures 120 adjacent to the boundary of the feature 10a extends around the printing screen pattern boundary 10a (in this case the circumference) of the feature 10. The apertures in the array 122 have a predetermined spatial relationship to one another and in this embodiment are equidistant from the boundary 10a, and to one another; thus providing a more accurate representation of the feature 10 (i.e. with a boundary more closely related to the target printing boundary) when, printed on a substrate.
(11) While the apertures in the array 122 in the embodiment shown are evenly spaced from the boundary 10a and each other, in other embodiments, for example in relation to more complex or convoluted printing boundaries, these distances, or indeed the shape of the apertures, may be required to vary. For example, whilst a series (more than two in a row) of apertures may have the same spatial relationship to the printing screen pattern boundary as each other along one part of a boundary, the relationship may differ in other parts, for example more tightly curved regions, corners etc. In other parts of the printing screen pattern boundary, therefore, the size, shape and or spatial relationships may differ.
(12) Referring again to
(13)
(14) Whilst under tension, the sheet is mounted to a metal box section frame 230, and spot welded around its periphery 232, as shown in
(15) The blank screen 200b is then placed under a precision laser machining head 300, such as that of a Tannlin T-series of ventilated stencil laser systems (Tannlin is a trade mark). This is illustrated in the schematic cross sectional side view of
(16) The resulting printing screen 200 is shown in
(17) Whilst exemplary embodiments have been described herein, these should not be construed as limiting to the modifications and variations possible within the scope of the invention as disclosed herein and recited in the appended claims.