IP Library › Granted Patent US 12,024,802
Granted Patent B2
US 12,024,802 · App. 16/768,721 · Granted Jul 2, 2024

Textile and manufacturing method thereof

Inventors: Jayasundara Walpola Kankanamalage Kosalasiri Jayasundara (Colombo, LK); Hetti Arachchige Malaka Chathuranga Perera (Colombo, LK); Thennakonge Maduka Sampath Chandrasiri (Colombo, LK); Kukaraj Tharmasegaram (Colombo, LK)
Assignee: MAS INNOVATION (PRIVATE) LIMITED
D04B1/16A41D1/22A41D19/00D02G3/12D02G3/441H05B3/342A41D2400/12A41D2500/10D10B2401/16
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Quick Facts
Patent No.
US 12,024,802
App. No.
16/768,721
Granted
Jul 2, 2024
Kind
B2
Abstract

The present disclosure generally relates to a textile ( 100 ) and a manufacturing method ( 200 ) thereof. The textile ( 100 ) comprises: a fabric body ( 102 ) formed from one or more types of yarns; a continuous channel ( 104 ) formed within the fabric body ( 102 ); and an insulated conductive element ( 106 ) disposed within the continuous channel ( 104 ), wherein the textile ( 100 ) is heatable in response to electrical current being conducted through the insulated conductive element ( 106 ).

Claims (29)

1. A textile comprising:

a fabric body formed from one or more types of yarns;

a continuous channel formed within the fabric body, the continuous channel in a sinusoidal arrangement along a stretching direction of the fabric body;

an insulated conductive element freely disposed in a slack condition and in a sinusoidal arrangement within the continuous channel; and

spacings formed within the continuous channel to facilitate free movement of the insulated conductive element within the continuous channel,

wherein the spacings allow the insulated conductive element to widen within the spacings and improve stretchability of the textile along the stretching direction; and

wherein the textile is heatable in response to electrical current being conducted through the insulated conductive element.

2. The textile according to claim 1 , wherein the textile is heatable at one or more regions of the fabric body.

3. The textile according to claim 2 , wherein the continuous channel and the insulated conductive element are disposed in sinusoidal arrangements at the one or more regions of the fabric body.

4. The textile according to claim 1 , further comprising a power connector connected to ends of the insulated conductive element, the power connector connectable to a power source for supplying the electrical current.

5. The textile according to claim 1 , wherein the fabric body and the continuous channel are formed by knitting.

6. The textile according to claim 5 , wherein the fabric body is knitted by a double jersey knitting process and the continuous channel is knitted within the fabric body by a single jersey knitting process.

7. The textile according to claim 1 , wherein the one or more types of yarns comprises a passive heating yarn and/or a normal yarn.

8. The textile according to claim 7 , wherein the passive heating yarn comprises an infrared yarn and/or a yarn made of a phase change material.

9. The textile according to claim 7 , wherein the normal yarn comprises one or more of nylon yarn, polyester yarn, and spandex yarn.

10. A glove wearable on a person's arm and configured for improving blood circulation in the arm, the glove comprising the heatable textile according to claim 1 .

11. A band wearable around a woman's belly region and/or lower back region and configured for improving blood circulation in the belly region and/or lower back region, the band comprising the heatable textile according to claim 1 .

12. A method of manufacturing a textile, the method comprising:

forming a fabric body from one or more types of yarns;

forming a continuous channel within the fabric body, the continuous channel in a sinusoidal arrangement along a stretching direction of the fabric body; and

disposing an insulated conductive element freely in a slack condition, and in a sinusoidal arrangement within the continuous channel,

wherein spacings are formed within the continuous channel to facilitate free movement of the insulated conductive element within the continuous channel,

wherein the spacings allow the insulated conductive element to widen within the spacings and improve stretchability of the textile along the stretching direction; and

wherein the textile is heatable in response to electrical current being conducted through the insulated conductive element.

13. The method according to claim 12 , wherein the textile is heatable at one or more regions of the fabric body.

14. The method according to claim 13 , wherein the continuous channel and the insulated conductive element are disposed in sinusoidal arrangements at the one or more regions of the fabric body.

15. The method according to claim 12 , wherein the fabric body and the continuous channel are formed by knitting.

16. The method according to claim 15 , wherein the insulated conductive element is disposed within the continuous channel during said knitting of the fabric body and the continuous channel.

17. The method according to claim 15 , wherein the insulated conductive element is disposed within the continuous channel by insertion into the continuous channel after the fabric body is knitted.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2020
From: JAYASUNDARA, JAYASUNDARA WALPOLA KANKANAMALAGE KOSALASIRI; PERERA, HETTI ARACHCHIGE MALAKA CHATHURANGA; CHANDRASIRI, THENNAKONGE MADUKA SAMPATH; THARMASEGARAM, KUKARAJ
To: MAS INNOVATION (PRIVATE) LIMITED
Reel/Frame 054655/0119 →
Priority Claims (1)
SG 10201710003Y · Dec 1, 2017 · national
Continuity (1)
Related Publication 20210172101A1 · Jun 10, 2021
Cited By (1)
US 12,338,560