IP Library Patent Application 18533023
Patent Application
App. No. 18/533,023

THREE-DIMENSIONAL PRINTED THERMAL EXPANSION STRUCTURE MANUFACTURING METHOD

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Patent No.
US None
App. No.
18/533,023
Abstract

A 3D printed thermal expansion structure includes a thermoplastic material and a thermal expansion material, wherein the thermoplastic material is in a range from 50 to 90 wt % based on a weight of the 3D printed thermal expansion structure, and the thermal expansion material is in a range from 10 to 50 wt % based on the weight of the 3D printed thermal expansion structure. The thermoplastic material and the thermal expansion material are mixed to form a mixed material, and the mixed material is utilized by a 3D printing apparatus to form a solid object, and the solid object is heated to form the 3D printed thermal expansion structure. A manufacturing method of a 3D printed thermal expansion structure is provided herein.

Claims (9)

1 . A manufacturing method of a 3D printed thermal expansion structure, comprising:

providing a mixed material, the mixed material comprises a liquid thermoplastic material and a thermal expansion material, the thermal expansion material is distributed within the thermoplastic material, wherein the thermoplastic material is a stereolithography material, the thermal expansion material comprises a closed-cell foam material, the closed-cell foam material having a plurality of foamable microcapsules;

utilizing a 3D printing stereolithography apparatus to form the mixed material into a solid object, wherein the solid object is built by adding a layer of the mixed material upon a layer of mixed material through 3D printing; and

heating the solid object to make the solid object expand to form the 3D printed thermal expansion structure, the solid object is provided into a heating apparatus for heating, wherein a heat deflection temperature (HDT) of the thermoplastic material is lower than a heat expansion temperature of the thermal expansion material, the heating temperature of the heating apparatus being higher than an initial foaming temperature of the thermal expansion material and the thermal expansion material within the solid object being heated to foaming and expansion, wherein the solid object is enlarged proportionally to form the 3D printed thermal expansion structure;

wherein, the 3D printed thermal expansion structure and the solid object have a same configuration, wherein the solid object and the 3D printed thermal expansion structure are formed without making molds, a volume of the 3D printed thermal expansion structure is 1.2-2.5 times of a volume of the solid object, a porosity of the 3D printed thermal expansion structure consist of a single porosity derived from the closed-cell foam material having the plurality of foamable microcapsules.

2 . The manufacturing method of claim 1 , wherein the thermoplastic material is in a range from 50 to 90 wt % based on a weight of the mixed material; the thermal expansion material is in a range from 10 to 50 wt % based on the weight of the mixed material.

3 . The manufacturing method of claim 2 , wherein the thermoplastic material is selected from the group consisting of epoxy, acrylic acid, thermoplastic polyurethane (TPU), polyamide (PA), polypropylene (PP), polycarbonate (PC), and acrylonitrile butadiene styrene (ABS).

4 . The manufacturing method of claim 2 , wherein the thermal expansion material is formed by pre-foaming a foamable raw material.

5 . The manufacturing method of claim 4 , wherein a volume of the thermal expansion material is 10-40 times of a volume of the foamable raw material.

Assignments (2)
SECURITY INTEREST Recorded Dec 20, 2024
From: BAUER HOCKEY LLC
To: JPMORGAN CHASE BANK, N.A., TORONTO BRANCH, AS AGENT
Reel/Frame 072886/0394 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2023
From: SU, CHIN-TE; LAPERRIERE, JEAN-FRANCOIS; KRICK, THIERRY; ASSELIN, FRANCOIS; LADOUCEUR, MARTIN; LABONTE, IVAN; BEAUREGARD, MARCO
To: FENG TAY ENTERPRISES CO., LTD.; BAUER HOCKEY, LLC
Reel/Frame 065835/0533 →