Investigation of chip morphology in elliptical vibration micro-turning of silk fibroin

Wang, Zhengjian and Luo, Xichun and Sun, Jining and Xie, Wenkun and Piao, Yinchuan and Jiang, Yonghang and Chen, Xiuyuan (2025) Investigation of chip morphology in elliptical vibration micro-turning of silk fibroin. Micromachines. ISSN 2072-666X (In Press)

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Abstract

Silk fibroin, known for its biocompatibility and biodegradability, holds significant promise for biomedical applications, particularly in drug delivery systems. The precise fabrication of silk fibroin particles, specifically ranging from tens of nanometres to hundreds of microns, is critical for these uses. This study introduces elliptical vibration micro-turning as a method to produce silk fibroin particles in the form of cutting chips to serve as carriers for drug delivery systems. A hybrid finite element and smoothed particle hydrodynamics (FE-SPH) model was used to investigate how vibration parameters, such as frequency and amplitude, influence chip formation and morphology. This research is essential for determining the size and shape of silk fibroin particles, which are crucial for their effectiveness in drug delivery systems. The results demonstrate the superior capability of elliptical vibration micro-turning to produce shorter, spiral-shaped chips in the size range of tens of microns, in contrast to the long, continuous chips with zig-zag folds and segmented edges generated by conventional micro-turning. The unique zig-zag shapes result from the interplay between the high flexibility and hierarchical structure of silk fibroin and the controlled cutting environment provided by the diamond tool. Additionally, higher vibration frequencies and lower vertical amplitudes promote chip curling, facilitate breakage, and improve chip control while reducing cutting forces. Experimental trials further validate the accuracy of the hybrid model. This study represents a significant advancement in the processing of silk fibroin film, offering a complementary approach for fabricating short, spiral-shaped silk fibroin particles with a high surface-area-to-volume ratio compared to traditional spheroids, which holds great potential for enhancing drug-loading efficiency in high-precision drug delivery systems.

ORCID iDs

Wang, Zhengjian ORCID logoORCID: https://orcid.org/0000-0002-0837-7019, Luo, Xichun ORCID logoORCID: https://orcid.org/0000-0002-5024-7058, Sun, Jining, Xie, Wenkun ORCID logoORCID: https://orcid.org/0000-0002-5305-7356, Piao, Yinchuan, Jiang, Yonghang and Chen, Xiuyuan ORCID logoORCID: https://orcid.org/0000-0002-5999-0227;