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Beyond Melting: Amorphous Bonding for Joining and Consolidation Crystallization may be the hidden constraint in thermoplastic composite manufacturing. It requires tightly controlled cooling, induces residual stresses through shrinkage, and introduces path-dependent behavior that complicates predictive modeling yet remains essential for structural performance. This work asks: can bonding be achieved without relying on melt-driven crystallization?
To address this, thin (5–20 μm) polyetherimide (PEI) interlayers are pre-healed to slow-cooled polyaryletherketone (PAEK) in two contexts. The first, Thermabond®, is sub-melt joining of low melt-PAEK laminates. Results show that bond quality is governed primarily by processing (i.e., adequate healing and film handling) rather than modest changes in interlayer thickness.

This concept is then extended to laminate-scale manufacturing through an architecture known as OATMEAL (Out-of-autoclave Amorphous/semicrystalline Thermoplastic Material for Energy-efficient Aerospace-grade Laminates). PEI is healed to carbon fiber reinforced polyetheretherketone (PEEK) at the prepreg and excess PEI is then ablated from the surface. Crystallinity is developed off-line during prepreg fabrication, while subsequent consolidation occurs below the melt temperature to preserve it. Cross-ply warpage experiments show that, contrary to intuition, repeated amorphous interfaces reduce global curvature by lowering the effective stress lock-in temperature and eliminating crystallization shrinkage from the lamina response. Correspondingly, laminate behavior is accurately predicted using classical laminate theory (CLT) with a single effective stress-free temperature, whereas conventional CF/PEEK requires accounting for crystallization-driven effects.

By decoupling interfacial healing from crystallization, OATMEAL enables sub-melt consolidation, reduces energy consumption by up to 75%, and increases manufacturing throughput by fivefold. These results demonstrate that amorphous bonding is not only a joining strategy, but a pathway to more predictable and scalable thermoplastic composite manufacturing.
Document ID
20260003801
Acquisition Source
Langley Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Joseph G Kirchhoff
(The University of Texas at Austin Austin, United States)
Tyler B Hudson
(Langley Research Center Hampton, United States)
Mehran Tehrani
(University of California San Diego San Diego, United States)
Christopher J Stelter
(Langley Research Center Hampton, United States)
Roberto J Cano
(Langley Research Center Hampton, United States)
Date Acquired
May 4, 2026
Publication Date
June 30, 2026
Publication Information
Publication: SAMPE Journal
Publisher: Society for Advancement of Materials and Process Engineering
ISSN: 0091-1062
Subject Category
Composite Materials
Funding Number(s)
WBS: 832911.01.23.01
WBS: 789538.10.26.23.03
CONTRACT_GRANT: 80NSSC22K1203
OTHER: 2426321
OTHER: N00014-24-1-2178
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
NASA Peer Committee
Keywords
solidification
fusion bonding
polymer healing
thermoplastic composites
OATMEAL
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