Binder Jetting 3D Printing of Biomass-Fungi Composite Materials: A Preliminary Experimental Study.

IF 3.9 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Yeasir Mohammad Akib, Caleb Oliver Bedsole, Jackson Sanders, Harlie Warren, Zhijian Pei, Brian D Shaw
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Abstract

This paper reports on a preliminary experimental study on binder jetting 3D printing of biomass-fungi composite materials. Biomass-fungi composite materials have potential applications in the packaging, furniture, and construction industries. Biomass particles (prepared from agricultural residues) act as the substrate of the composite materials. The filamentous roots of fungi intertwine and bind biomass particles together. In this study, the biomass (hemp hurd) powders used had two distinct average particle sizes. The liquid binder used contained fungi (Trametes versicolor) cells. T-shaped samples were printed using a lab-designed binder jetting setup. Printed samples were kept inside an incubator oven for four days to allow fungi to grow. Afterward, loose biomass powder was removed from the T-shaped samples. The samples were then kept inside the incubator oven for eight more days to allow further fungal growth. The samples were subsequently placed in an oven at 120 °C for four hours to terminate all fungal activity in the samples. SEM micrographs were taken of the cross-sectional surfaces of the samples. The micrographs showed a significant presence of fungi hyphae inside the printed samples, providing evidence of the binding of biomass particles by the hyphae.

生物质-真菌复合材料粘结剂喷射3D打印的初步实验研究。
本文报道了生物质-真菌复合材料粘结剂喷射3D打印的初步实验研究。生物质-真菌复合材料在包装、家具和建筑行业具有潜在的应用前景。生物质颗粒(从农业残留物中制备)作为复合材料的基材。真菌的丝状根缠绕并将生物量颗粒结合在一起。在本研究中,使用的生物质(大麻鞭)粉末具有两种不同的平均粒径。所使用的液体粘合剂含有真菌(Trametes versicolor)细胞。使用实验室设计的粘合剂喷射装置打印t形样品。打印出来的样品在培养箱中保存4天,让真菌生长。然后,从t形样品中去除松散的生物质粉末。然后将样品放在培养箱中再保存8天,以允许真菌进一步生长。随后将样品置于120°C的烤箱中4小时,以终止样品中的所有真菌活性。对样品的横截面表面进行了扫描电镜观察。显微照片显示打印样品中真菌菌丝的显著存在,提供了菌丝结合生物质颗粒的证据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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