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The time-temperature superposition property of an amorphous polymer acrylate network is characterized at infinitesimal strain by standard dynamic mechanical analysis tests.
The viscoelastic properties of carbon nanobuffers incorporating thin-walled and thick-walled CNTs, respectively, are characterized by means of nanoindentation dynamic mechanical analysis tests.
The level of cure was investigated by comparing DSC results and the effect of curing on the composites was studied by tensile and dynamic mechanical analysis tests.
The effects of rate and temperature are reviewed in relation to viscoelastic adhesives, suggesting that underlying molecular mobility as measured in dynamic mechanical analysis tests can provide useful insights into fracture of adhesives and bonded joints.
Dynamic mechanical analysis tests were performed as a function of temperature and frequency.
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In this paper, the dynamic mechanical analysis (DMA) tests have been performed to determine the viscoelastic properties of MREs with different test conditions.
To study the effect of the thermal treatment on the mechanical properties, we conducted dynamic mechanical analysis (DMA) tests with 3D printed strip samples that were thermally treated at 180 °C for 0, 0.5, 1, 2, 4, 6, and 8 h, respectively (see Methods for details).
Dynamic mechanical analysis (DMA) tests showed that it undergoes more than 117.69 °C with loss tangent larger than 0.3, much better than the traditional IPN with the same component.
Dynamic mechanical analysis (DMA) tests have been conducted to determine the effect of Nanostrength on storage, loss modulus and glass transition temperature.
Initially, dynamic mechanical analysis (DMA) tests were performed on the CFRP laminates to determine the time-temperature shift factors followed by constant strain rate (CSR) tests at different temperatures to construct the creep strength master curve.
The increase in the dynamic loss modulus and loss factor calculated from the dynamic mechanical analysis (DMA) tests confirmed the positive influence of the reactive liquid MMA resin and the thin plies in dampening the vibrations.
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