Cao, J. X.; Tang, B.; Zhang, D. P.; Zhang, H. Research on content integration and optimization of Polymer Physics course— case analysis of 3D printing insoles development. Polym. Bull. (in Chinese), 2024, 37(11), 1676–1682
Cao, J. X.; Tang, B.; Zhang, D. P.; Zhang, H. Research on content integration and optimization of Polymer Physics course— case analysis of 3D printing insoles development. Polym. Bull. (in Chinese), 2024, 37(11), 1676–1682 DOI: 10.14028/j.cnki.1003-3726.2024.24.160.
is the core course of composite materials and engineering at Nanjing Xiaozhuang University
covering a wide range of knowledge from microstructure to material characterization techniques. However
traditional teaching methods cannot fully tap students’ desire for deep knowledge
nor can they arouse their learning enthusiasm and innovation potential. In view of this situation
this study integrated and optimized the course content and incorporated the development case of fused deposition modeling (FDM) 3D printing insoles. The course content covered the combination of theoretical and practical teaching
the integration of interdisciplinary knowledge
and the cultivation of innovative abilities. Teaching methods
such as project-based learning
have been adopted to enhance students’ comprehensive ability and innovative thinking. The teaching effect evaluation shows that the integrated and optimized curriculum helps students to deeply understand polymer physics knowledge
improve their ability to solve practical problems
and improve their satisfaction
laying a good foundation for their future academic or professional development.
Li, M. R.; Zhou, S. Q.; Cheng, L. K.; Mo, F. N.; Chen, L. N.; Yu, S. Z.; Wei, J.3D printed supercapacitor: techniques, materials, designs, and applications. Adv. Funct. Mater., 2023, 33, 2208034-2208062.
Jiang, Z.; Diggle, B.; Tan, M. L.; Viktorova, J.; Bennett, C. W; Connal, L. A.Extrusion 3D printing of polymeric materials with advanced properties. Adv. Sci., 2020, 7, 2001379-2001410.