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Predictive Modeling of Droplet Velocity and Size in Inkjet-Based Bioprinting

机译:基于喷墨的生物打印中液滴速度和大小的预测建模

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Additive manufacturing is driving major innovations in many areas such as biomedical engineering. Recent advances have enabled 3D printing of biocompatible materials and cells into complex 3D functional living tissues and organs using bioink. Inkjet-based bioprinting fabricates the tissue and organ constructs by ejecting droplets onto a substrate. Compared with microextrusion-based and laser-assisted bioprinting, it is very difficult to predict and control the droplet formation process (e.g., droplet velocity and size). To address this issue, this paper presents a new data-driven approach to predict droplet velocity and size in the inkjet-based bioprinting process. An imaging system was used to monitor the droplet formation process. To investigate the effects of excitation voltage, dwell time, and rise time on droplet velocity and droplet size, a full factorial design of experiments was conducted. Two predictive models were developed to predict droplet velocity and droplet size using random forests. The accuracy of the two predictive models was evaluated using the relative error. Experimental results have shown that the predictive models are capable of predicting droplet velocity and size with sufficient accuracy. Inkjet-Based Bioprinting; Droplet Size; Droplet Velocity; Machine Learning; Monitoring.
机译:增材制造正在推动许多领域的重大创新,例如生物医学工程。最近的进展使得能够使用生物墨水将生物相容性材料和细胞进行3D打印到复杂的3D功能性活体组织和器官中。基于喷墨的生物打印通过将液滴喷射到基材上来制造组织和器官构造。与基于微挤压的和激光辅助的生物打印相比,很难预测和控制液滴的形成过程(例如,液滴的速度和大小)。为了解决这个问题,本文提出了一种新的数据驱动方法,以预测基于喷墨的生物打印过程中的墨滴速度和大小。成像系统用于监测液滴形成过程。为了研究激励电压,停留时间和上升时间对液滴速度和液滴尺寸的影响,进行了全因子设计的实验。开发了两个预测模型来使用随机森林预测液滴速度和液滴大小。使用相对误差评估了两个预测模型的准确性。实验结果表明,该预测模型能够以足够的精度预测液滴的速度和大小。基于喷墨的生物打印;液滴尺寸液滴速度;机器学习;监控。

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