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通过菌丝体对基于贝壳的生物复合材料进行生物焊接3D打印生物数字砖。

Biowelding 3D-Printed Biodigital Brick of Seashell-Based Biocomposite by Mycelium.

作者信息

Abdallah Yomna K, Estévez Alberto T

机构信息

iBAG-UIC Barcelona, Institute for Biodigital Architecture & Genetics, Universitat Internacional de Catalunya, 08017 Barcelona, Spain.

出版信息

Biomimetics (Basel). 2023 Oct 23;8(6):504. doi: 10.3390/biomimetics8060504.

Abstract

Mycelium biocomposites are eco-friendly, cheap, easy to produce, and have competitive mechanical properties. However, their integration in the built environment as durable and long-lasting materials is not solved yet. Similarly, biocomposites from recycled food waste such as seashells have been gaining increasing interest recently, thanks to their sustainable impact and richness in calcium carbonate and chitin. The current study tests the mycelium binding effect to bioweld a seashell biocomposite 3D-printed brick. The novelty of this study is the combination of mycelium and a non-agro-based substrate, which is seashells. As well as testing the binding capacity of mycelium in welding the lattice curvilinear form of the V3 linear Brick model (V3-LBM). Thus, the V3-LBM is 3D printed in three separate profiles, each composed of five layers of 1 mm/layer thickness, using seashell biocomposite by paste extrusion and testing it for biowelding with mycelium to offer a sustainable, ecofriendly, biomineralized brick. The biowelding process investigated the penetration and binding capacity of the mycelium between every two 3D-printed profiles. A cellulose-based culture medium was used to catalyse the mycelium growth. The mycelium biowelding capacity was investigated by SEM microscopy and EDX chemical analysis of three samples from the side corner (S), middle (M), and lateral (L) zones of the biowelded brick. The results revealed that the best biowelding effect was recorded at the corner and lateral zones of the brick. The SEM images exhibited the penetration and the bridging effect achieved by the dense mycelium. The EDX revealed the high concentrations of carbon, oxygen, and calcium at all the analyzed points on the SEM images from all three samples. An inverted relationship between carbon and oxygen as well as sodium and potassium concentrations were also detected, implying the active metabolic interaction between the fungal hyphae and the seashell-based biocomposite. Finally, the results of the SEM-EDX analysis were applied to design favorable tessellation and staking methods for the V3-LBM from the seashell-mycelium composite to deliver enhanced biowelding effect along the Z axis and the XY axis with <1 mm tessellation and staking tolerance.

摘要

菌丝体生物复合材料环保、廉价、易于生产,且具有具有竞争力的机械性能。然而,它们作为耐用和持久材料在建筑环境中的整合问题尚未得到解决。同样,来自贝壳等回收食品废料的生物复合材料,由于其可持续影响以及碳酸钙和几丁质含量丰富,最近越来越受到关注。当前的研究测试了菌丝体对贝壳生物复合材料3D打印砖进行生物焊接的结合效果。本研究的新颖之处在于将菌丝体与非农业基底物(即贝壳)相结合。同时还测试了菌丝体在焊接V3线性砖模型(V3-LBM)的格子曲线形式时的结合能力。因此,V3-LBM通过膏体挤出法用贝壳生物复合材料分三个单独的轮廓进行3D打印,每个轮廓由五层、每层厚度为1毫米组成,并测试其与菌丝体的生物焊接效果,以提供一种可持续、环保的生物矿化砖。生物焊接过程研究了菌丝体在每两个3D打印轮廓之间的渗透和结合能力。使用基于纤维素的培养基来催化菌丝体生长。通过扫描电子显微镜(SEM)和能量色散X射线(EDX)化学分析对生物焊接砖的边角(S)、中间(M)和侧面(L)区域的三个样品进行分析,研究菌丝体的生物焊接能力。结果表明,在砖的边角和侧面区域记录到了最佳的生物焊接效果。SEM图像展示了密集菌丝体实现的渗透和桥接效果。EDX分析显示,来自所有三个样品的SEM图像上所有分析点的碳、氧和钙浓度都很高。还检测到碳与氧以及钠与钾浓度之间呈反比关系,这意味着真菌菌丝与贝壳基生物复合材料之间存在活跃的代谢相互作用。最后,将SEM-EDX分析的结果应用于设计由贝壳-菌丝体复合材料制成的V3-LBM的有利镶嵌和堆叠方法,以在Z轴和XY轴上实现增强的生物焊接效果,镶嵌和堆叠公差小于1毫米。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3eaf/10604342/c6907e806936/biomimetics-08-00504-g001.jpg

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