Panicker Pooja S, Kim Hyun Chan, Kim Jaehwan
Creative Research Center for Nanocellulose Future Composites, Inha University, 100 Inha-ro, Michuhol-ku, Incheon, 22212, Republic of Korea.
University of Michigan, Ann Arbor, MI, 48109, USA.
Sci Rep. 2023 Aug 12;13(1):13137. doi: 10.1038/s41598-023-40462-5.
The continuous production of high-strength nanocellulose long filaments (NCLFs) is critical in natural fiber-reinforced polymer composites. Despite the widespread availability of numerous filament production processes, the cost-effective and continuous fabrication of high-strength NCLFs on a large scale remains an ongoing challenge. Herein, we present an integrated wet-spinning system by incorporating a few previously researched filament production techniques to mass fabricate high-strength continuous NCLFs. The spinning speed is increased to improve NCLF productivity, and the bobbin winder speeds, collector bobbin winder location, and NCLF drying conditions are tuned. At the spinning speed of 510 cm/min, a production rate of 4.99 m/min is achieved, five times higher than the productivity of the former pilot system (0.92 m/min). Moreover, an AC electric field and mechanical stretching are introduced to highlight the versatility of the proposed integrated wet-spinning system, thereby enhancing the mechanical properties of NCLFs.
高强度纳米纤维素长丝(NCLFs)的连续生产在天然纤维增强聚合物复合材料中至关重要。尽管有众多长丝生产工艺广泛可用,但大规模经济高效且连续地制造高强度NCLFs仍然是一个持续存在的挑战。在此,我们通过整合一些先前研究的长丝生产技术,提出了一种集成湿法纺丝系统,以大规模制造高强度连续NCLFs。提高纺丝速度以提高NCLF的生产率,并调整筒管卷绕机速度、收集筒管卷绕机位置和NCLF干燥条件。在510厘米/分钟的纺丝速度下,实现了4.99米/分钟的生产率,比前一个中试系统的生产率(0.92米/分钟)高出五倍。此外,引入交流电场和机械拉伸以突出所提出的集成湿法纺丝系统的多功能性,从而提高NCLFs的机械性能。