Thermoplastic elastomers (TPEs) reinforced with detonation nanodiamonds (DNDs) based on styrene-butadiene rubber are developed. The mechanical characteristics of the reinforced compounds with different DND contents are investigated. The developed material shows a 30% increase in compressive strength compared to the unfilled composite and a 10% increase in the tensile strength of the material with the introduction of 0.1% DND.
A method for reinforcing a compound based on styrene-butadiene thermoplastic elastomer has been developed. The mechanical characteristics of reinforced compounds have been studied. A comparative analysis of various methods for introducing a nanofiller into a polymer matrix has been carried out. The developed technique shows an increase in the compressive strength of the composition by 50%, as well as tensile strength by 20%.
— Thermoplastic elastomer based on butadiene–styrene rubber has been developed for 3D printing using fused deposition modeling (FDM). The influence of the intensity of the flow and the direction of printing on the physical and mechanical characteristics of the material was investigated. A comparative analysis of 3D printed products and products made by thermal pressing was carried out. The developed material shows an increase in strength during manufacture using fused deposition modeling by 18% compared to the molded sample, as well as an increase in strength by 25% and elongation by 50% with increased print intensity.
Thermoplastic elastomer based on styrene-butadiene rubber was developed for 3D printing using fused deposition modelling. 3D modeling of simple and complex geometric structures from the developed material is performed. Optimal 3D printing parameters for this material were obtained.
A new thermoplastic elastomer based on styrene-butadiene rubber and polypropylene for 3D printing using FDM (Fused Deposition Modeling) technology is obtained and studied. The physical and mechanical characteristics of products made of a new material with high strength and elasticity at the same time are studied. The developed material will find application in the automotive industry, civil shipbuilding, aerospace engineering, shock-absorbing systems for railway transport, and other areas.