PRESS STATION FOR THERMAL TRANSFER CAROUSEL
20240326402 ยท 2024-10-03
Inventors
Cpc classification
B41F1/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention is that of a heat press designed to produce high-quality thermal transfers comprising a carousel one or more press stations. In preferred embodiments, the carousel comprises a plurality of arms, each bearing a lower platen that may be rotatably shuttled beneath one or more upper platens of one or more press stations. An actuator configured to cause the upper platen to apply pressure and heat to the lower platen is provided. A garment bearing a transferable applique is slid onto the lower platen so the applique may be transferred to the garment as heat and pressure are applied. In preferred embodiments, the upper platen comprises a pressure sensor and temperature sensor and is coupled to a programmable logic controller. An operator of the heat press may select desired temperature, pressure, and dwell time for the transfer, and monitor the process on a connected digital display.
Claims
1. A heat press for combined thermal and pressure application of transfers to garments, comprising: one or more freestanding press assemblies, each including a spring-mounted upper platen assembly, an actuator engaged to said upper platen, and a riser assembly for elevating and supporting said upper platen and actuator, the riser assembly including a floor platform supporting said spring-mounted upper platen assembly on a first upright height-adjustable stand; and one or more workstations, each comprising a lower platen supported atop a support arm, the support arm configured to abut a second upright height-adjustable stand when the upper platen is positioned overtop the lower platen.
2. The heat press according to claim 1, wherein the one or more workstations is a plurality of carousel-mounted workstations, each radially oriented from a common center.
3. The heat press according to claim 1, wherein the one or more freestanding press assemblies is a plurality of freestanding press assemblies, each radially oriented from a common center at a distance from said center to enable each spring-mounted upper platen to be positioned overtop a corresponding lower platen.
4. The heat press according to claim 3, wherein each one of the plurality of freestanding press assemblies applies uniform pressure and temperature to a garment placed on a corresponding workstation when actuated.
5. The heat press according to claim 1, wherein each of the first and second height-adjustable stand comprises an inner and outer tube for height adjustment by telescoping to a desired height and locking into position using set pins.
6. The heat press according to claim 1, wherein the first upright height-adjustable stand is adjustable within a range of 1.5 feet to 3 feet and the second upright height-adjustable stand is adjustable within a range of 2.5 feet to 4 feet.
7. The heat press according to claim 1, wherein the actuator is configured to bring the upper platen into contact with the lower platen with downward pressure when engaged.
8. The heat press according to claim 1, wherein the upper platen is formed from aluminum.
9. The heat press according to claim 1, wherein the upper platen comprises one or more heating elements, each coupled to a power supply through a programmable logic controller (PLC) coupled to a temperature sensor, the PLC configured for adjusting the temperature of the one or more heating elements.
10. The heat press according to claim 9, further comprising a pressure sensor.
11. The heat press according to claim 10, wherein the temperature sensor and pressure sensor are each coupled to a digital display displaying temperature, pressure and dwell time information.
12. The heat press according to claim 1, wherein the actuator is a pneumatic actuator.
13. The heat press according to claim 1, wherein the upper platen is configured as a four-point floating spring-biased upper platen.
14. A method for thermal transfer of an applique to a garment, the method comprising: providing a heat press according to claim 1; sliding a garment comprising an applique on its upper surface onto the lower platen of the heat press; rotating the lower platen into position beneath the upper platen; and downwardly actuating the upper platen to apply heat and pressure to the lower platen, applique and garment, thereby transferring the applique to the garment.
15. The method of claim 13, wherein the temperature of the upper platen is 190-200 degrees Fahrenheit and the applied pressure is 2-3 bars.
16. The method of claim 13, wherein the dwell time of the upper platen above the lower platen, applique and garment is 3-10 seconds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Other objects, features, and advantages of the present invention will become more apparent from the following detailed description of the preferred embodiments and certain modifications thereof when taken together with the accompanying drawings in which:
[0014]
[0015]
[0016]
I. DETAILED DESCRIPTION OF THE INVENTION
[0017] Applicant's invention is a novel carousel transfer press capable of one or multiple radially oriented spring-biased stations for foil transfers, laminations and other transfers.
[0018]
[0019] In the illustrated embodiment, the press 20 includes a riser assembly 22 that includes a floor platform supporting two spaced-apart upright stands 23, 24. The entire floor platform may be formed of metal tubing either bent or discrete lengths of struts welded together. In addition, tubular struts may be replaced by I-beams or any other suitable non-tubular strut as a matter of design choice. The illustrated floor platform comprises a pair of forward legs 25 that project both forward and lateral to the forward upright stand 23, a pair of rearward legs 26 that project laterally of the rearward upright stand 24, and a connecting strut 27 that connects rearward legs 26. Both upright stands 23, 24 comprise height-adjustable telescoping tubular sections with set-pins 28. The forward upright stand 23 is height-adjustable within a range of from 1.5 to 3 and serves to provide downward reinforcement to the platen 12 and arm 14. The rearward upright stand 24 is taller than the forward stand 23, height-adjustable within a range of from 2.5 to 4, and serves to support and elevate the press 20 overtop the platen 12. The press 20 itself comprises a spring-mounted upper platen assembly that may be pressed against the lower platen 12 by a pneumatic actuator 60.
[0020]
[0021] The upper platen 35 is supported within a rectangular frame 33 formed of tubular steel or the like, and upper platen 35 is dimensioned to fit closely inside rectangular frame 33. Upper platen 35 is supported within frame 33 by a support truss 30 that is affixed to the top edges of frame 33 by screws 32, truss 30 forming an overhead support straddling the platen 35 along its length. The actuator 60 may be centrally suspended by the truss 30 and attached thereto. Alternatively, the actuator 60 may be attached to the platen 35 and extendable upward against overhead truss 30. The floating upper platen 35 is supported overtop frame 33 by truss 30, suspended by four shoulder bolts 52 held captive in truss 30 (see
[0022]
[0023] The inset to
[0024] Referring back to
[0025] Multiple press stations 2 may be radially oriented about a common center, the extended arms 14 all leading inward to an axis of rotation. One skilled in the art will understand that the extended arms 14 may be rotatable about the axis of rotation, either manually or motor-driven, such that each platen 12 may be conveniently rotated from press 20 to press. This facilitates a carousel-type assembly line in which a workpiece may be rotated from one press station 2 to another to apply different transfer components.
[0026] The foregoing heat press improves all hot transfers including appliques and foil transfers, and any other transfers or lamination with a four-point floating spring-biased upper platen design and can accommodate minor variations in garment thickness or other irregularities to produce more consistent heat and pressure, and a higher quality transfer.
[0027] The above-described embodiment is for the purpose of promoting an understanding of the principles of the invention. It should nevertheless be understood that no limitation of the scope of the invention is thereby intended, such alternations and further modifications in the illustrated device, and such further applications of the principles of the invention as illustrated herein being contemplated as would normally occur to one skilled in the art to which the invention relates.