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Updated: Jun 13, 2026

Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing
Published on: June 28, 2024
Frequency-Dependent Effects of Material Extrusion Parameters on the Storage Modulus and Loss Factor of PETG
Sven Gerdes1, Philipp M Heck2, Sabine C Langer2
1Institute for Engineering Design, Technische Universität Braunschweig, 38108 Brunswick, Germany.
Abstract:
Additive manufacturing by material extrusion enables the fabrication of geometrically complex components, yet the extent to which process parameters can be used to tailor stiffness and damping in a frequency-dependent manner remains insufficiently understood. This study investigates the influence of key material-extrusion process parameters (layer height, printing speed, extrusion temperature, build plate temperature, and flow rate) on the flexural storage modulus E' and loss factor η of PETG specimens over a frequency range of 125 to 4000 Hz. Frequency-resolved regression models were established for six reference frequencies using VIF-based term reduction and hierarchical backward elimination. The results reveal a clear contrast between stiffness- and damping-related responses. The model structure for E' remained invariant across all frequencies, achieving consistently high coefficients of determination (R2 = 0.831-0.847). In contrast, the model structure for η varied markedly with frequency (R2 = 0.215-0.763). Extrusion temperature was identified as a consistently significant factor for η across all frequencies (p<0.05), while a robust nonlinear dependence on flow rate dominated most frequency bands. Reduced model adequacy for η was observed at specific bands, showing significant lack-of-fit at 500 Hz (pLOF=0.049) and non-normal residuals at 4000 Hz (pJB=0.003). These findings demonstrate that stiffness can be tuned reliably using frequency-invariant process relationships, whereas damping requires frequency-aware parameter selection. This approach provides a statistically rigorous basis for optimizing additively manufactured components where both stiffness and energy dissipation are performance-critical.
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