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Simulation of tensile strength for halloysite nanotubes/polymer composites
Abstract There are limited equations for determining the mechanical performance of halloysite nanotubes (Hal)/polymer samples, and these equations ignore the reinforcing efficacy of the interphase zone. In this article, the Kolarik system is used to determine the tensile strength of Hal-reinforced nanocomposites by Hal size, Hal concentration, and interphase properties. In addition, Pukanszky model is modified for this material type to account for effective Hal concentration based on the advanced Kolarik model. Numerous sets of experimental data for several samples and parametric inspections endorse the developed models. Both interphase depth and power directly govern the nanocomposite's strength and the interphase factor “A” in the advanced Kolarik model. The lowest ranges of interphase properties lead to the lowest level of “A,” and at this level, there is no strengthening of the nanocomposites. The Hal radius (R) of 10 nm and Hal length (l) of 3 μm lead to the highest “A” of 50 and the maximum relative strength of 4.5 (350% improvement in nanocomposite's strength), whereas Hal with R > 50 nm and l < 1.5 μm cannot reinforce the sample. Moreover, the Hal content, interphase parameter “B,” and interphase thickness have a direct relationship with nanocomposite's strength according to the developed Pukanszky model, whereas the Hal radius has an inverse relationship.
Highlights Kolarik system is advanced for tensile strength of HNT-reinforced nanocomposites. Pukanszky model is progressed for these nanocomposites by effective HNT concentration. Experimental data for several samples and parametric inspections endorse the models. Both interphase depth and strength directly manage the nanocomposite's strength. The extremely low ranges of interphase properties cannot strengthen the samples.
Simulation of tensile strength for halloysite nanotubes/polymer composites
Abstract There are limited equations for determining the mechanical performance of halloysite nanotubes (Hal)/polymer samples, and these equations ignore the reinforcing efficacy of the interphase zone. In this article, the Kolarik system is used to determine the tensile strength of Hal-reinforced nanocomposites by Hal size, Hal concentration, and interphase properties. In addition, Pukanszky model is modified for this material type to account for effective Hal concentration based on the advanced Kolarik model. Numerous sets of experimental data for several samples and parametric inspections endorse the developed models. Both interphase depth and power directly govern the nanocomposite's strength and the interphase factor “A” in the advanced Kolarik model. The lowest ranges of interphase properties lead to the lowest level of “A,” and at this level, there is no strengthening of the nanocomposites. The Hal radius (R) of 10 nm and Hal length (l) of 3 μm lead to the highest “A” of 50 and the maximum relative strength of 4.5 (350% improvement in nanocomposite's strength), whereas Hal with R > 50 nm and l < 1.5 μm cannot reinforce the sample. Moreover, the Hal content, interphase parameter “B,” and interphase thickness have a direct relationship with nanocomposite's strength according to the developed Pukanszky model, whereas the Hal radius has an inverse relationship.
Highlights Kolarik system is advanced for tensile strength of HNT-reinforced nanocomposites. Pukanszky model is progressed for these nanocomposites by effective HNT concentration. Experimental data for several samples and parametric inspections endorse the models. Both interphase depth and strength directly manage the nanocomposite's strength. The extremely low ranges of interphase properties cannot strengthen the samples.
Simulation of tensile strength for halloysite nanotubes/polymer composites
Zare, Yasser (author) / Rhee, Kyong Yop (author)
Applied Clay Science ; 205
2021-03-07
Article (Journal)
Electronic Resource
English
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