Printing cone for hand printing designs and patterns
12083811 ยท 2024-09-10
Inventors
Cpc classification
B41K1/38
PERFORMING OPERATIONS; TRANSPORTING
B41K1/22
PERFORMING OPERATIONS; TRANSPORTING
B41K1/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
B41K1/22
PERFORMING OPERATIONS; TRANSPORTING
B41K1/30
PERFORMING OPERATIONS; TRANSPORTING
B41K1/38
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Elements for hand printing designs and patterns include cone pin blocks, flat pin blocks, and multisided sequence stamps. A cone pin block generally has a circular cross-section and is rolled in order to make symmetrical, circular or partial-circle designs. Flat pin blocks have a flat surface. The pin blocks have pins extending out of the cone surface or the flat surface. Flexible inking cord material is threaded between the pins in a chosen pattern. The inking material collects liquid ink by absorption or surface adhesion, which is transferred to a base by rolling or stamping.
Claims
1. A printing cone comprising: a core having a cone-shaped exterior; pins having inner ends attached to the cone-shaped exterior and having outer ends extending outward from the cone-shaped exterior; and inking cord configured to wind between and among the pins; wherein the inking cord is configured to be coated with ink and to print onto a substrate when the cone-shaped exterior is rolled over the substrate in a manner to cause the inking cord to contact the substrate.
2. The printing cone of claim 1 wherein the pins are formed narrower at the inner ends and wider at the outer ends.
3. The printing cone of claim 2 wherein the core and the pins are formed integrally by 3D printing.
4. The printing cone of claim 3 wherein the pins are formed by subtracting tube shapes from a digital cone during a 3D printing process.
5. The printing cone of claim 1 wherein the pins comprise straight, flat sides.
6. The printing cone of claim 1 wherein the pins are formed narrower in a portion between the inner ends and the outer ends than they are at either the inner ends or the outer ends.
7. The printing cone of claim 6 wherein the core and the pins are formed integrally by 3D printing.
8. The printing cone of claim 1 wherein the pins are screwed into the core.
9. The printing cone of claim 1 wherein the inking cord comprises neoprene.
10. The printing cone of claim 1 wherein the inking cord comprises silicone.
11. The printing cone of claim 1 wherein the core comprises wood.
12. The printing cone of claim 1 wherein the core comprises metal.
13. The printing cone of claim 1 wherein the core comprises resin.
14. The printing cone of claim 1 wherein the core comprises plastic.
15. The printing cone of claim 1 wherein the core forms a hollow space.
16. The printing cone of claim 15 further comprising a handle piece, and wherein the hollow space is configured for inserting the handle piece.
17. The printing cone of claim 1, further comprising a handle for use in conjunction with the core.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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(15) TABLE-US-00001 TABLE 1 DETAILED DESCRIPTION OF THE INVENTION Ref. No. Element 100 Cone pin block 102 Pins 104 Elongated pins 106 Inking cord material 108 Cone pin block handle 200 Tapered pins 300 Non-tapered pins 600 Flat pin block 602 Pins 606 Inking cord material 800 Multisided sequence stamp 802 Left handle 804 Right handle 806 Multisided blocks 810 Raised designs 812 Pattern shanks 814 Pattern rings 816 Raised area for connecting 818 Depressed area for connecting 820 End caps 822 Gaskets 824 Axis of multisided sequence stamp
(16) Table 1 shows elements of the present invention along with associated reference numbers.
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(18) Cone pin block 100 may be fabricated, for example, by 3D printing, carving, or adding individually crafted pins to a sculpted cone. One effective method using 3D printing is to embed digitally rendered tubes into the surface of a digital cone. The tubes are turned into negative space, such that when the cone pin block is fabricated, channels are effectively carved out of the cone where the tubes were embedded. First, horizontal tubes are embedded in parallel lines like latitude lines. Then, slanted vertical tubes are embedded running down the sides of the cone. The result is kind of a puffy waffle pattern, as shown in
(19) While a circular cross-section works well for the cone pin block, other cross-sections may also be used (e.g. oval, pyramid, multisided etc.) Inking cord material 106 may be formed of neoprene, silicone, etc. The source of ink may be glass with a coating of ink on its top surface, an inking stamp pad, etc.
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(23) Flat pin blocks 600 offer a way to stamp patterns onto base material (primarily flat, such as paper, canvas, or cloth) by hand; both repeating patterns and non-repeating unique shapes. Pin blocks 600 include pins 602 extending upward from their base surface. Pins 600 may be configured like pins 200 or pins 300, or may have a circular cross section with wider ends than base, as shown in
(24) Both cone pin blocks 100 and flat pin blocks 600 include a system of pins arranged generally in a grid pattern on a flat block or cone-shaped block. A pin grid on a curved surface (such as cone pin bock 100 block) creates a circular or curved print. Each pin may wider at the end than at the base, allowing for a soft, flexible, washable inking cord material 106, 606 (such as neoprene foam or soft silicone) to run through the channels created by the rows of pins. The inking cord is thus held in place in the channel by the wide tops. The cord can be wound through the pins in any number of orientations, creating geometric lines and curvy or straight shapes. The number of patterns that each tool can create is only limited by the number of pins in the grid. One benefit to the flat pin block is that the inking cord material can extend beyond the pin block, causing patterns with swooping curves having an extent larger than the extent of the flat surface.
(25) After the cord is wound through the pin grid, it is inked for printing and can be pressed to the printing base to transfer the ink.
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(27) While two multisided blocks are shown here for simplicity, commonly 3 or more would be used. A common number of multisided blocks used in a multisided sequence stamps is around six.
(28) In the embodiment of
(29) As an alternative, one or both handles may have their endcaps integrally formed. The left hand endcap is not necessary in either example.
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(31) In the example of
(32) The multisided sequence stamps 800 offer another way to print patterns onto a base material (primarily flat, such as paper, canvas, or cloth) by hand; both repeating patterns and non-repeating unique shapes. The tool provides a way to create infinite patterns on the same multisided sequence stamp 800 by re-arranging the multisided blocks 806 between handles 802, 804.
(33) Multisided sequence stamp 800 is made up of three kinds of parts: 1) left handle 802 and right handle 804, similar to handlebars on a bicycle. In some embodiments the handles were made hollow for ease of fabrication.
(34) 2) Multisided blocks 808 are, e.g. hexagonal blocks that have both a raised area 816 and depressed area 818 on either side and snap together to form a multisided core. Multisided blocks 808 snap to a handle 802, 804, via end caps 820. Blocks 808 may have relief designs 806 formed on their outer surfaces, or may be smooth to allow multisided rings 814 to slide over them (see
(35) 3) Pattern rings 814 are (e.g.) hexagonal bands with a textured pattern 810 printed on the outer sides. One pattern ring 814 slides onto one pattern shank 812 and is interchangeable with any other pattern ring 814 (either forming the same pattern or forming a different pattern). Rings 814 are slipped onto the shanks 812 before handles 802, 804 are added.
(36) After the pieces have been snapped together and assembled, the relief designs 810 can be inked, by pressing the chosen side in ink or dabbing ink on the chosen side and pressed to a substrate. Multisided blocks 806 may be rotated with respect to each other, allowing for more permutations and combinations. More or fewer multisided blocks may be snapped together between handles 802, 804.
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(38) While the exemplary preferred embodiments of the present invention are described herein with particularity, those skilled in the art will appreciate various changes, additions, and applications other than those specifically mentioned, which are within the spirit of this invention.