Raja Vijayakumar, Nimbkar Shubham, Moses Jeyan Arthur, Ramachandran Nair Sinija Vadakkepulppara, Anandharamakrishnan Chinnaswamy
Food Processing Business Incubation Centre, National Institute of Food Technology, Entrepreneurship and Management-Thanjavur, Ministry of Food Processing Industries, Government of India, Thanjavur 613005, Tamil Nadu, India.
Computational Modeling and Nanoscale Processing Unit, National Institute of Food Technology, Entrepreneurship and Management-Thanjavur, Ministry of Food Processing Industries, Government of India, Thanjavur 613005, Tamil Nadu, India.
Foods. 2023 Sep 13;12(18):3412. doi: 10.3390/foods12183412.
Food 3D printing is a computer-aided additive manufacturing technology that can transform foods into intricate customized forms. In the past decade, this field has phenomenally advanced and one pressing need is the development of strategies to support process optimization. Among different approaches, a range of modeling methods have been explored to simulate 3D printing processes. This review details the concepts of various modeling techniques considered for simulating 3D printing processes and their application range. Most modeling studies majorly focus on predicting the mechanical behavior of the material supply, modifying the internal texture of printed constructs, and assessing the post-printing stability. The approach can also be used to simulate the dynamics of 3D printing processes, in turn, assisting the design of 3D printers based on material composition, properties, and printing conditions. While most existing works are associated with extrusion-based 3D printing, this article presents scope for expanding avenues with prominent research and commercial interest. The article concludes with challenges and research needs, emphasizing opportunities for computational and data-driven dynamic simulation approaches for multi-faceted applications.
食品3D打印是一种计算机辅助增材制造技术,它可以将食品转化为复杂的定制形状。在过去十年中,该领域取得了显著进展,一个紧迫的需求是开发支持工艺优化的策略。在不同的方法中,人们探索了一系列建模方法来模拟3D打印过程。这篇综述详细介绍了用于模拟3D打印过程的各种建模技术的概念及其应用范围。大多数建模研究主要集中在预测材料供应的力学行为、改变打印结构的内部纹理以及评估打印后的稳定性。该方法还可用于模拟3D打印过程的动力学,进而基于材料成分、特性和打印条件辅助3D打印机的设计。虽然大多数现有工作都与基于挤出的3D打印相关,但本文提出了拓展具有突出研究和商业价值途径的空间。文章最后提出了挑战和研究需求,强调了多方面应用的计算和数据驱动动态模拟方法的机会。