Invention Grant
- Patent Title: Resin formulations for polymer-derived ceramic materials
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Application No.: US15406762Application Date: 2017-01-15
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Publication No.: US10221284B2Publication Date: 2019-03-05
- Inventor: Zak C. Eckel
- Applicant: HRL Laboratories, LLC
- Applicant Address: US CA Malibu
- Assignee: HRL Laboratories, LLC
- Current Assignee: HRL Laboratories, LLC
- Current Assignee Address: US CA Malibu
- Agency: O'Connor & Company
- Main IPC: C08F2/46
- IPC: C08F2/46 ; C08F2/50 ; C08G61/04 ; C08G77/50 ; B33Y10/00 ; B28B1/00 ; C04B35/515 ; C04B35/622 ; C04B35/64 ; C08J3/28 ; G03F7/00 ; C04B35/56 ; C04B35/571 ; C04B35/58 ; C04B35/583 ; C04B35/589 ; C04B35/597 ; C04B35/632 ; G03F7/004 ; G03F7/025 ; G03F7/027 ; G03F7/029 ; G03F7/031 ; G03F7/038 ; G03F7/075 ; B33Y70/00 ; B33Y80/00

Abstract:
This disclosure enables direct 3D printing of preceramic polymers, which can be converted to fully dense ceramics. Some variations provide a preceramic resin formulation comprising a molecule with two or more C═X double bonds or C≡X triple bonds, wherein X is selected from C, S, N, or O, and wherein the molecule further comprises at least one non-carbon atom selected from Si, B, Al, Ti, Zn, P, Ge, S, N, or O; a photoinitiator; a free-radical inhibitor; and a 3D-printing resolution agent. The disclosed preceramic resin formulations can be 3D-printed using stereolithography into objects with complex shape. The polymeric objects may be directly converted to fully dense ceramics with properties that approach the theoretical maximum strength of the base materials. Low-cost structures are obtained that are lightweight, strong, and stiff, but stable in the presence of a high-temperature oxidizing environment.
Public/Granted literature
- US20170204227A1 RESIN FORMULATIONS FOR POLYMER-DERIVED CERAMIC MATERIALS Public/Granted day:2017-07-20
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