Biobased TPU for Melt Spun Multifilament Yarns as a Sustainable Alternative for Conventional Fossil Based TPU

IF 4.7 3区 工程技术 Q2 ENGINEERING, ENVIRONMENTAL
Stephanie Lukoschek, Leopold Alexander Frankenbach, Iris Kruppke, Chokri Cherif
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Abstract

Thermoplastic polyurethane (TPU) is a unique polymer known for its excellent physical and chemical properties including exceptional elasticity and durability, excellent abrasion resistance and resistance to oil, water, acids and alkalis, making it indispensable in various industries. In recent years, growing environmental concerns have let to the development of bio-based thermoplastic polyurethane from renewable resources which provide a sustainable alternative to conventional fossil-based TPUs. This study investigates the melt spinning process of two types of TPU: Desmopan 385E, a conventional TPU, and Desmopan CQ33085AUEC, a partially bio-based TPU, focusing on their potential for high performance multifilament yarns. A comprehensive study evaluated their thermal, rheological and mechanical properties, as well as their processability at different drawdown ratios (DDR). Thermogravimetric analysis (TGA) revealed differences in decomposition temperatures and thermal stability while melt flow rate (MFR) testing optimized melt spinning parameters. Rheological measurements showed viscosity reductions of up to 90% after spinning, reflecting structural transformations such as chain alignment and scission, with implications for processing and yarn performance. Both TPU types were successfully processed into multifilament yarns under comparable spinning conditions, achieving process speeds of up to 2000 m/min. Mechanical tests revealed differences in tensile strength and elongation, with the bio-based TPU achieving mechanical properties comparable to or 7,4% better in tensile strength than those of its conventional counterpart, highlighting the potential of bio-based TPU as a sustainable alternative for technical textile applications.

熔融纺多长丝用生物基TPU作为传统化石基TPU的可持续替代品
热塑性聚氨酯(TPU)是一种独特的聚合物,以其优异的物理和化学性能而闻名,包括卓越的弹性和耐久性,优异的耐磨性和耐油,水,酸和碱,使其在各个行业中不可或缺。近年来,日益增长的环境问题促使人们利用可再生资源开发生物基热塑性聚氨酯,为传统的化石基tpu提供了一种可持续的替代品。本文研究了传统TPU Desmopan 385E和部分生物基TPU Desmopan CQ33085AUEC两种TPU的熔融纺丝工艺,重点研究了它们在高性能多长丝纱线中的潜力。一项全面的研究评估了它们的热、流变和机械性能,以及它们在不同收缩比(DDR)下的可加工性。热重分析(TGA)揭示了分解温度和热稳定性的差异,而熔体流动速率(MFR)测试优化了熔体纺丝参数。流变学测量表明,纺纱后粘度降低高达90%,反映了结构变化,如链排列和断裂,对加工和纱线性能的影响。在类似的纺纱条件下,两种TPU都成功地加工成多长丝,加工速度高达2000米/分钟。机械测试显示了拉伸强度和伸长率的差异,生物基TPU的机械性能比传统TPU的拉伸强度高7.4%,突出了生物基TPU作为技术纺织品应用的可持续替代品的潜力。
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来源期刊
Journal of Polymers and the Environment
Journal of Polymers and the Environment 工程技术-高分子科学
CiteScore
9.50
自引率
7.50%
发文量
297
审稿时长
9 months
期刊介绍: The Journal of Polymers and the Environment fills the need for an international forum in this diverse and rapidly expanding field. The journal serves a crucial role for the publication of information from a wide range of disciplines and is a central outlet for the publication of high-quality peer-reviewed original papers, review articles and short communications. The journal is intentionally interdisciplinary in regard to contributions and covers the following subjects - polymers, environmentally degradable polymers, and degradation pathways: biological, photochemical, oxidative and hydrolytic; new environmental materials: derived by chemical and biosynthetic routes; environmental blends and composites; developments in processing and reactive processing of environmental polymers; characterization of environmental materials: mechanical, physical, thermal, rheological, morphological, and others; recyclable polymers and plastics recycling environmental testing: in-laboratory simulations, outdoor exposures, and standardization of methodologies; environmental fate: end products and intermediates of biodegradation; microbiology and enzymology of polymer biodegradation; solid-waste management and public legislation specific to environmental polymers; and other related topics.
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