THREAD COATING USING INKJET PRINTHEAD
20210252548 · 2021-08-19
Inventors
- Thomas Roetker (San Diego, CA, US)
- Jason Mark THELANDER (North Ryde NSW, AU)
- Mark Profaca (North Ryde NSW, AU)
- Payman Hassibi (San Diego, CA, US)
Cpc classification
B05C11/08
PERFORMING OPERATIONS; TRANSPORTING
B05C11/021
PERFORMING OPERATIONS; TRANSPORTING
B05C15/00
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0245
PERFORMING OPERATIONS; TRANSPORTING
B05C11/1044
PERFORMING OPERATIONS; TRANSPORTING
B41J25/003
PERFORMING OPERATIONS; TRANSPORTING
B05C5/0241
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05C5/02
PERFORMING OPERATIONS; TRANSPORTING
B05C11/02
PERFORMING OPERATIONS; TRANSPORTING
B05C11/08
PERFORMING OPERATIONS; TRANSPORTING
B05C11/10
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method of coating threads using a printhead having rows of nozzles extending along a length of the printhead. The method includes the steps of: feeding the thread along a length of the printhead; and ejecting ink from the rows of nozzles towards the thread. Thread-coating modules and thread-coating systems make use of the method described.
Claims
1. A method of coating a thread using a printhead having one or more rows of nozzles extending along a length of the printhead, the method comprising the steps of: feeding the thread along a length of the printhead; and ejecting ink from the rows of nozzles towards the thread.
2. The method of claim 1, wherein a longitudinal axis of the thread and a longitudinal axis of the printhead have an angle of intersection of between 0 and 30 degrees.
3. The method of claim 1, wherein a longitudinal axis of the printhead is angled relative to the longitudinal axis of thread.
4. The method of claim 1, wherein the printhead ejects ink into a coating chamber.
5. The method of claim 4, wherein each coating chamber has a plurality of respective printheads.
6. The method of claim 5, wherein the thread is fed longitudinally through a plurality of coating chambers.
7. The method of claim 6, wherein each coating chamber coats the thread with a different colored ink in a predetermined amount to provide a contone coating using the plurality of coating chambers.
8. The method of claim 6, wherein the coating chambers are laterally positioned with respect to each other and the thread is fed in opposite longitudinal directions past coating chambers.
9. The method of claim 1, wherein the thread is rotated and/or vibrated as it is fed longitudinally along the length of the printhead.
10. The method of claim 4, wherein the coating chamber manages a cloud of ink droplets ejected from the printhead using at least one of: airflow in the coating chamber; air pressure in the coating chamber; acoustic levitation; and an internal configuration of the coating chamber.
11. A thread-coating module comprising: an elongate coating chamber having enclosed sidewalls, a thread entrance at one end and a thread exit at an opposite end thereof; and one or more printheads positioned for ejecting ink droplets into the coating chamber, wherein the sidewalls have one or more openings aligned with respective printheads.
12. A thread-coating module of claim 11, wherein a first printhead is positioned at a first side of the coating chamber and a second printhead is positioned at a second side of the coating chamber opposite the first side.
13. The thread-coating module of claim 12, wherein the second printhead is downstream of the first printhead relative to a thread feed direction.
14. The thread-coating module of claim 11, wherein an exhaust opening is positioned opposite each printhead, the exhaust opening receiving ink droplets ejected into the coating chamber.
15. The thread-coating module of claim 11, wherein a longitudinal axis of each printhead is angled relative to a longitudinal axis of the coating chamber.
16. The thread-coating module of claim 11, further comprising a cloud control system for controlling a cloud of ink droplets ejected from the printheads, said cloud control system comprising at least one of: an airflow management system for controlling airflow in the coating chamber; an air pressure management system for controlling air pressure in the coating chamber; and an acoustic device for suspending ink droplets using acoustic levitation.
17. A thread-coating system for coating one or more threads, said system comprising: one or more thread-coating modules as defined in claim 11; and a thread feed mechanism for feeding a thread longitudinally through each coating chamber.
18. The thread-coating system of claim 18 further comprising at least one of: a thread gatherer upstream of a first thread-coating module, the thread gatherer being configured for gathering a plurality of threads into a thread group for feeding through a first coating chamber; a thread expander downstream of a second thread-coating module for expanding the thread group; a thread vibrator; a thread rotator; a thread flattener for flattening threads prior to drying; and a dryer for drying coated threads.
19. The thread-coating system of claim 18 comprising a plurality of thread-coating modules arranged in series, each thread-coating module coating the thread with a different colored ink in a predetermined amount to provide a contone coating.
20. The thread-coating system of claim 17, further comprising an ink recycling system for recycling ink received in each exhaust opening of a respective thread-coating module into an ink reservoir supplying ink to each printhead.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0046] Embodiments of the present invention will now be described by way of example only with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE INVENTION
[0057] In the following description of various embodiments of the present invention, like features are given like reference numerals, where appropriate.
[0058] Referring to
[0059] Still referring to
[0060] Referring to
[0061] The first printhead 1A is upstream of the second printhead 1B in a staggered overlapping arrangement in order to maximize coating efficiency. It will of course be appreciated that additional printheads may be provided in the thread-coating module 20, both circumferentially to increase ink cloud density and/or lengthwise to increase an effective “coating zone”.
[0062] A distance between the thread 10 and each printhead 1 may be fixed or varied and suitable mechanisms may be provided for adjusting the height of the printhead relative to the thread. In conventional media printing, inkjet printheads are positioned about 0.5 to 5 mm away from a media surface for optimal drop placement accuracy. By contrast, thread printing optimally employs a dispersed ink cloud and the ‘throw distance’ (that is, the distance between the thread and the printhead nozzles) is typically large compared to conventional media printing. For example, the distance between the thread and printhead nozzles may be greater than 5 mm, greater than 10 mm, greater than 20 mm, greater than 50 mm or greater than 100 mm. Accordingly, an effective ink cloud density experienced by the thread may be controlled by at least two factors: (1) a distance between the thread and the printhead; and (2) dot data supplied to the printhead. In some embodiments, the ‘throw distance’ may be varied by adjusting the position(s) of the printhead(s). Optimization of coating uniformity, coating density, coating speed etc. are factors that may determine the throw distance for any given coating job.
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[0065] Referring to
[0066] Although three thread-coating modules 20 are shown in
[0067] Referring to
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[0069] The first and second print modules 56A and 56B are slidably received in respective sleeves 60 fastened to the first and second sidewalls 58A and 58B, respectively, and extending outwardly therefrom. Each sleeve 60 is supported by means of a respective brace 62 extending outwardly from a support chassis 64 fastened to a lower portion of the coating chamber 22. The support chassis 64 and braces 62 provide structural rigidity to the thread-coating module 50 as well as providing a convenient means for mounting the module in a thread-coating system.
[0070] The printhead 1 of each print module 56 has an associated exhaust slot 68 defined in a respective opposite sidewall of the coating chamber 22 and aligned with a respective printhead. Each exhaust slot 68 is connected to an exhaust manifold 70, which receives ink droplets ejected into the coating chamber 22 via the exhaust slot. Suction may be applied to the exhaust manifold 70 to assist with ink extraction and recycling of ink.
[0071] As best seen in
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[0073] From the foregoing, it will be appreciated that pagewide inkjet coating technology is continuously expanding into new markets and can potentially revolutionize traditional thread coloring processes by improving speed, versatility and efficiency, as well as lowering costs and reducing ink and water wastage.
[0074] It will, of course, be appreciated that the present invention has been described by way of example only and that modifications of detail may be made within the scope of the invention, which is defined in the accompanying claims.