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DOE OSTI · 2532330

Resin Testing and Modeling for Optimal Composite Processing

Abstract

Polymer composites have properties such as high strength and stiffness, low weight, good thermal and chemical stability, as well as impact and abrasion resistance that make them ideal for high-performance applications. The chemistries of these materials are continuously improving, so determining their properties is vital for successfully producing them and achieving the desired results. Multiple methods can be employed to monitor characteristics such as heat flow, weight, dimension, and modulus as a function of time and temperature. By analyzing this information, models can be developed to predict outcomes of parameters not tested for. In one application, materials proposed for wet filament winding and the production of high pressure vessels can be analyzed to verify they will have the necessary low viscosity for good fiber wetting and long pot life for the extended handling inherent to this process. Such data about a prospective system provides valuable information on how that material could ultimately be processed to yield the desired part.

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BibTeXRIS

Pace, Alexandra Elizabeth [Los Alamos National Laboratory (LANL), Los Alamos, NM (United States)]. 2025-03-18. Resin Testing and Modeling for Optimal Composite Processing. https://doi.org/10.2172/2532330

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36 MATERIALS SCIENCE