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"Effect of Interlayer-Compressed Argon Gas Active Cooling on Microstruc" by Jianfei Zhang, Siyu Zhou et al.

Wire arc additive manufacturing (WAAM) has been widely used due to its advantages of low cost and high efficiency. However, one of the unsolved problems in WAAM is the heat accumulation. In this study, the compressed argon-based interlayer active cooling (AC) process is employed to reduce heat accumulation, and the influence mechanism on microstructure and mechanical properties of Ti–6Al–4V samples are revealed. It is shown in the results that the introduction of interlayer AC leads to the interlayer temperature decreases from 468 to 53 °C, and the widths of prior-β grains and αGB are refined. The increase of cooling rate (380–604 °C s−1) results in the transformation of large-sized colonies into finer basket weave structure, accompanied by the production of martensite α’. The finer basket weave structure increases the strength of the samples, while the narrower αGB and the high-angle grain boundaries increase the resistance of crack propagation. The high dislocation de ....

Active Cooling , Tensile Properties , I 6al 4v , Wire Arc Additive Manufacturing ,

Heat-Resistant Synthetic Fiber Kevlar and its Composites

Kevlar is a synthetic material created from a chemical known as poly-para-phenylene terephthalamide. Here, we discuss this strong and heat-resistant synthetic fiber Kevlar, its properties, limitations, applications, and recent relevant studies. ....

Carbonman Shutterstock , Khuda Khan , Huda Khanoct , Tagirro Shutterstock , Tensile Properties Of Glass , Journal Of Materials Research , Properties Of Kevlar , Further Reading , Fabrication Techniques , Tensile Properties , Kevlar Fiber Reinforced Polymer , Materials Research , Biomedical Engineering , Kevlar Composites , Oly Para Phenylene Terephthalamide ,