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2020-04-14
16/219,891
2018-12-13
US 10,618,316 B1
2020-04-14
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Huan H Tran
2038-12-13
Smart Summary: A new method allows for printing designs on stretchy wetsuits. First, a special coating is applied to the wetsuit material to prepare it for printing. Then, an image of the desired pattern or logo is uploaded to a digital printing machine. The wetsuit is placed on a vacuum platform that holds it in place during printing. This process ensures that the designs are printed accurately, remain flexible, and feel good to the touch. π TL;DR
A method comprises: coating a high-elasticity coating on a rubber foam or high-elasticity fabric of a wetsuit to form a substrate to be printed; providing a digital printing machine for uploading an image file of a pattern or logo to the digital printing machine; and providing a vacuum system having a sucking platform formed with a plurality of sucking holes through the sucking platform; and laying the substrate to be printed on the sucking platform, whereby upon operation of the vacuum system and actuation of the digital printing machine, the image of the pattern or logo will be digitally printed on the substrate as laid on the sucking platform for successfully digitally printing the patterns on the wetsuits.
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B41J3/4078 » CPC main
Typewriters or selective printing or marking mechanisms, e.g. ink-jet printers, thermal printers characterised by the purpose for which they are constructed for marking on special material Printing on textile
B63C11/04 » CPC further
Equipment for dwelling or working underwater; Means for searching for underwater objects; Divers' equipment Resilient suits
D06P5/30 » CPC further
Other features in dyeing or printing textiles, or dyeing leather, furs, or solid macromolecular substances in any form Ink jet printing
B63C2011/046 » CPC further
Equipment for dwelling or working underwater; Means for searching for underwater objects; Divers' equipment; Resilient suits Wet suits, or diving vests; Equipment therefor
B41J3/407 IPC
Typewriters or selective printing or marking mechanisms, e.g. ink-jet printers, thermal printers characterised by the purpose for which they are constructed for marking on special material
Digital printing on dark or black garments is not quite the same as printing on white or light ones. The process to digitally print the dark or black garments is similar to screen print in that a white foundation or white under base must be printed first, in order for allowing the design colors to be visible. Color may thus not look quite as bright when an under base is used because of base color bleeding or ink migration downwardly into the substrate, and the hand feel of the printed garment is not soft, thereby causing a poor hand feel when used.
Still, there is no disclosure of a digital printing as used for digital printing on a wetsuit.
The present inventor has found the drawbacks of the conventional printing arts, and invented the present method for efficiently digitally printing logos or patterns on wetsuits.
The object of the present invention is to provide a method comprising: coating a high-elasticity coating on a rubber foam or high-elasticity fabric of a wetsuit to form a substrate to be printed (or receiving substrate); providing a digital printing machine for uploading or inputting an image file of a pattern or logo to the digital printing machine; and providing a vacuum system having a sucking platform formed with a plurality of sucking holes through the sucking platform; and laying the substrate to be printed (or receiving substrate) on the sucking platform, whereby upon operation of the vacuum system and actuation of the digital printing machine, the image of the pattern or logo will be precisely digitally printed on the substrate as laid on the sucking platform in order for successfully digitally printing the patterns on the wetsuits, having increased elasticity, durable ink fixation and better hand feel.
FIG. 1 is an illustration showing coating of a high-elasticity coating on a rubber foam for forming a receiving substrate in accordance with the present invention.
FIG. 2 is an illustration showing coating of a high-elasticity coating on a high-elasticity fabric for forming a receiving substrate in accordance with the present invention.
FIG. 3 is an illustration showing the printing process (for obtaining a full-scale pattern image of the printed product) in accordance with the present invention.
FIG. 4 shows a printing process for obtaining a limited-scale pattern (having small size) image in accordance with the present invention.
FIG. 5 shows a receiving substrate formed by roller printing in accordance with the present invention.
FIG. 6 shows a printing process for obtaining a full-scale pattern image on the receiving substrate which is formed by roller printing as shown in FIG. 5.
FIG. 7 shows a receiving substrate formed by screen printing in accordance with the present invention.
FIG. 8 shows a printing process for obtaining a limited-scale pattern (having small size) image on the receiving substrate which is formed by screen printing as shown in FIG. 7.
The method of the present invention comprises the steps of:
The steps of the method are respectively described in detail as follows:
1. Preforming a Receiving Substrate 1:
The vacuum suction as provided in the vacuum system of the present invention plays very important roles as follows:
The digital printing machine 2 and the vacuum system 3 may be mounted on a frame 4 as shown in FIG. 3.
A printing distance D between a digital printer of the digital printing machine 2 and the sucking platform 31 may be optionally adjusted, depending upon the production requirements.
The number and distribution (holes 32 per unit area of platform 31) of the suction holes 32 formed through the platform 31 may be optimumly arranged when designing and installing the present invention.
| Test Items | Test Conditions | Test Results | |
| Mutual-adhering | The specimen is half | No mutual adhering | |
| test | folded and dried at | between the two | |
| 60Β° C. for 24 hrs. | folded specimen | ||
| portions. | |||
| UV exposure | Exposed to UV | Not discolored. | |
| test | radiation for 2 | ||
| hours. | |||
| Water-washing | Washed by sea water | Ink not removed. | |
| test | for 24 hours. | ||
| Wear resistance | Friction scrubbing | Ink not removed. | |
| test | on the printed | ||
| surface. | |||
| Hand-feel test | Half folded to check | No wrinkles found. | |
| any fine wrinkle. | |||
From the above-mentioned test results, the present invention may provide a successful digital printing process, adapted to digitally print the patterns on the PU-coated wetsuits with a good product quality including increased elasticity, durable color-fixation, high resolution of image and better hand feel of the wetsuit.
The present invention may be further modified without departing from the spirit and scope of the present invention.
1. A method for printing patterns on wetsuits, comprising the steps of:
a. preforming a receiving substrate (or substrate to be printed) by coating a high-elasticity coating on a rubber foam or high-elasticity fabric by digitally-controlled spray coating to form said receiving substrate;
b. preparation of a digital printing machine using an elastic ink, and having a pattern image file uploaded in said digital printing machine;
c. setting up a vacuum system for the digital printing machine; and
d. actuation of the digital printing machine for printing pattern image on the receiving substrate as sucked by the vacuum system for increasing printability of the receiving substrate under tension as effected by the vacuum system for obtaining a printed wetsuit.
2. A method according to claim 1, wherein
said high-elasticity coating includes a polyurethane-base coating adapted for miscible bonding of a printing ink on the polyurethane-base coating.
3. A method according to claim 1, wherein said rubber foam includes nylon with neoprene; polyester with neoprene, or neoprene coated with high-elasticity polyurethane coating.
4. A method according to claim 1, wherein said high-elasticity fabric includes nylon with Spandex or polyester with Spandex.
5. A method according to claim 1, wherein the step b for preparation of the digital printing machine includes uploading of said pattern image file having patterns including a pattern of art design, a logo, letters, words, figures, or an ornamental design.
6. A method according to claim 1, wherein said vacuum system in the step c for setting up the vacuum system comprises a sucking platform having a plurality of suction holes formed through the sucking platform, a suction hood encasing a lower periphery of the sucking platform, and a vacuum pump formed on a bottom portion of the suction hood for producing vacuum in the vacuum system and for sucking air downwardly in order to tightly flatten the receiving substrate as laid on the sucking platform.