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受珍珠母启发的多材料3D打印复合材料:硬/软机械相互作用

Multi-material 3D printed composites inspired by nacre: a hard/soft mechanical interplay.

作者信息

Curto Marco, Dowsett Jack, Kao Alexander P, Tozzi Gianluca, Barber Asa H

机构信息

School of Mechanical and Design Engineering, University of Portsmouth, Portsmouth, UK.

School of Engineering, University of Greenwich, Chatham Maritime, UK.

出版信息

Sci Rep. 2025 Feb 25;15(1):6728. doi: 10.1038/s41598-025-91080-2.

Abstract

Structural materials are used extensively in nature where mechanical function is required. These structures are composites consisting of soft and, in some cases, hard phases precisely distributed over different length scales. Bio-inspiration aims at producing materials with structure, design and/or mechanical properties adopted from biological tissues. To reproduce complex structures found in nature, additive manufacturing (AM) using three-dimensional printing (3DP) is an attractive method to assemble complex topologies with resolutions approaching the micro and nano-composition. Specifically, high-resolution MultiJetPrinting (MJP) 3D printing allows the simultaneous deposition of soft and hard photo curable plastic resins. Nacre is a prevalent example of a complex biological composite material organization that can test the ability of MJP to manufacture a bio-inspired engineering structure, where the organization of materials in nacre is optimized to avoid catastrophic failure. The ability to generate complex 3D organizations required to mimic the structure of nacre by controlled organization of soft and hard materials is achieved here using a generative design approach. Such a generative design is further enhanced by incorporating two differing MJP directions that provide relatively strong and weak interfaces between the soft and hard material phases. Consideration of classical stress transfer theory between at a hard material reinforcement interface was shown to correlate with experimental observations of mechanical performance and failure in 3D printed nacre inspired composites. Thus, the ability to distribute materials with a range of mechanical properties and incorporate further interfacial design is demonstrated. The approach presented is flexible and allows complex bio-inspired composites to be 3D printed that incorporate different interfacial quality through changing printing direction.

摘要

结构材料在需要机械功能的自然环境中被广泛使用。这些结构是复合材料,由软相和在某些情况下的硬相精确分布在不同长度尺度上组成。生物启发旨在生产具有从生物组织采用的结构、设计和/或机械性能的材料。为了复制自然界中发现的复杂结构,使用三维打印(3DP)的增材制造(AM)是一种有吸引力的方法,可用于组装分辨率接近微观和纳米组成的复杂拓扑结构。具体而言,高分辨率多喷射打印(MJP)3D打印允许同时沉积软质和硬质光固化塑料树脂。珍珠母是一种复杂生物复合材料组织的普遍例子,它可以测试MJP制造受生物启发的工程结构的能力,其中珍珠母中的材料组织经过优化以避免灾难性失效。这里使用生成设计方法实现了通过软质和硬质材料的受控组织来生成模仿珍珠母结构所需的复杂3D组织的能力。通过结合两个不同的MJP方向进一步增强了这种生成设计,这两个方向在软质和硬质材料相之间提供了相对强和弱的界面。对硬质材料增强界面处经典应力传递理论的考虑表明与3D打印珍珠母启发复合材料的机械性能和失效的实验观察结果相关。因此,展示了分布具有一系列机械性能的材料并纳入进一步界面设计的能力。所提出的方法是灵活的,并且允许通过改变打印方向来3D打印包含不同界面质量的复杂生物启发复合材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc29/11861703/81a86ad0604f/41598_2025_91080_Fig1_HTML.jpg

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