Three-Dimensional Printing of Biomass–Fungi Biocomposite Materials: The Effects of Mixing and Printing Parameters on Fungal Growth

IF 3.3 Q2 ENGINEERING, MANUFACTURING Journal of Manufacturing and Materials Processing Pub Date : 2023-12-19 DOI:10.3390/jmmp8010002
Al Mazedur Rahman, A. Bhardwaj, Joseph G. Vasselli, Zhijian Pei, Brian D. Shaw
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Abstract

Biomass–fungi biocomposite materials are derived from sustainable sources and can biodegrade at the end of their service. They can be used to manufacture products that are traditionally made from petroleum-based plastics. There are potential applications for these products in the packaging, furniture, and construction industries. In the biomass–fungi biocomposite materials, the biomass particles (made from agricultural waste such as hemp hurd) act as the substrate, and a network of fungal hyphae grow through and bind the biomass particles together. Typically, molding-based methods are used to manufacture products using these biocomposite materials. Recently, the authors reported a novel extrusion-based 3D printing method using these biocomposite materials. This paper reports a follow-up investigation into the effects of mixing parameters (mixing time and mixing mode) on fungal growth in biomass–fungi mixtures prepared for 3D printing and the effects of printing parameters (printing speed and extrusion pressure) on fungal growth in printed samples. The fungal growth was quantified using the number of fungal colonies that grew from samples. The results show that, when mixing time increased from 15 to 120 s, there was a 52% increase in fungal growth. Changing from continuous to intermittent mixing mode resulted in an 11% increase in fungal growth. Compared to mixtures that were not subjected to printing, samples printed with a high printing speed and high extrusion pressure had a 14.6% reduction in fungal growth, while those with a low printing speed and low extrusion pressure resulted in a 16.5% reduction in fungal growth.
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生物质-真菌生物复合材料的三维印刷:混合和印刷参数对真菌生长的影响
生物质-真菌生物复合材料来源于可持续发展的资源,并可在使用期结束后进行生物降解。它们可用于制造传统上由石油基塑料制成的产品。这些产品有可能应用于包装、家具和建筑行业。在生物质-真菌生物复合材料中,生物质颗粒(由大麻等农业废弃物制成)作为基材,真菌菌丝网络穿过生物质颗粒并将其粘合在一起。使用这些生物复合材料制造产品时,通常采用成型方法。最近,作者报道了一种使用这些生物复合材料的新型挤压式 3D 打印方法。本文报告了混合参数(混合时间和混合模式)对用于三维打印的生物质-真菌混合物中真菌生长的影响,以及打印参数(打印速度和挤出压力)对打印样品中真菌生长的影响。真菌生长的数量是通过从样品中生长出的真菌菌落数量来量化的。结果显示,当混合时间从 15 秒增加到 120 秒时,真菌生长增加了 52%。将连续混合模式改为间歇混合模式后,真菌生长量增加了 11%。与未进行印刷的混合物相比,采用高印刷速度和高挤出压力印刷的样品,真菌生长减少了 14.6%,而采用低印刷速度和低挤出压力印刷的样品,真菌生长减少了 16.5%。
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
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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