Physics Department, Stellenbosch University, Stellenbosch 7602, South Africa; CT Scanner Facility, Stellenbosch University, Stellenbosch 7602, South Africa.
Laboratory of Functional Morphology, Department of Biology, University of Antwerp, Universiteitsplein 1, 2610 Wilrijk, Belgium.
Acta Biomater. 2019 Feb;85:27-40. doi: 10.1016/j.actbio.2018.12.014. Epub 2018 Dec 10.
Albert Einstein once said "look deep into nature, and then you will understand everything better". Looking deep into nature has in the last few years become much more achievable through the use of high-resolution X-ray micro-computed tomography (microCT). The non-destructive nature of microCT, combined with three-dimensional visualization and analysis, allows for the most complete internal and external "view" of natural materials and structures at both macro- and micro-scale. This capability brings with it the possibility to learn from nature at an unprecedented level of detail in full three dimensions, allowing us to improve our current understanding of structures, learn from them and apply them to solve engineering problems. The use of microCT in the fields of biomimicry, biomimetic engineering and bioinspiration is growing rapidly and holds great promise. MicroCT images and three-dimensional data can be used as generic bio-inspiration, or may be interpreted as detailed blueprints for specific engineering applications, i.e., reverse-engineering nature. In this review, we show how microCT has been used in bioinspiration and biomimetic studies to date, including investigations of multifunctional structures, hierarchical structures and the growing use of additive manufacturing and mechanical testing of 3D printed models in combination with microCT. The latest microCT capabilities and developments which might support biomimetic studies are described and the unique synergy between microCT and biomimicry is demonstrated. STATEMENT OF SIGNIFICANCE: This review highlights the growing use of X-ray micro computed tomography in biomimetic research. We feel the timing of this paper is excellent as there is a significant growth and interest in biomimetic research, also coupled with additive manufacturing, but still no review of the use of microCT in this field. The use of microCT for structural biomimetic and biomaterials research has huge potential but is still under-utilized, partly due to lack of knowledge of the capabilities and how it can be used in this field. We hope this review fills this gap and fuels further advances in this field using microCT.
阿尔伯特·爱因斯坦曾经说过:“深入地观察自然,你就能更好地理解一切。”近年来,通过使用高分辨率的 X 射线微计算机断层扫描(microCT),深入观察自然变得更加可行。microCT 的无损特性,结合三维可视化和分析,使得对宏观和微观尺度的天然材料和结构的最完整的内部和外部“观察”成为可能。这种能力带来了以空前的细节水平在全三维空间中学习自然的可能性,使我们能够提高对结构的理解,从中学习并将其应用于解决工程问题。microCT 在仿生学、仿生工程和生物启发领域的应用正在迅速发展,并具有巨大的潜力。microCT 图像和三维数据可用作通用的生物启发,也可以解释为特定工程应用的详细蓝图,即反向工程自然。在这篇综述中,我们展示了 microCT 迄今为止在仿生学和仿生研究中的应用,包括对多功能结构、层次结构的研究,以及越来越多地使用增材制造和机械测试结合 microCT 对 3D 打印模型的研究。描述了最新的 microCT 功能和发展,这些功能可能支持仿生学研究,并展示了 microCT 与仿生学之间的独特协同作用。意义声明:本综述强调了 X 射线微计算机断层扫描在仿生研究中的应用日益增加。我们认为,这篇论文的时机非常好,因为仿生研究的兴趣和增长与增材制造相结合,但在这个领域仍然没有 microCT 的使用综述。microCT 在结构仿生和生物材料研究中的应用具有巨大的潜力,但仍未得到充分利用,部分原因是缺乏对其能力的了解,以及如何在该领域使用它。我们希望这篇综述能够填补这一空白,并推动该领域使用 microCT 的进一步发展。