Chuang Yu-Chun, Bao Limin, Lin Mei-Chen, Lou Ching-Wen, Lin TingAn
Interdisciplinary Graduate School of Science and Technology, Shinshu University, Nagano Prefecture 390-8621, Japan.
Department of Science and Technology, Graduate School of Medicine, Science and Technology, Shinshu University, Nagano Prefecture 390-8621, Japan.
Polymers (Basel). 2019 Jul 3;11(7):1140. doi: 10.3390/polym11071140.
With the development of technology, fibers and textiles are no longer exclusive for the use of clothing and decoration. Protective products made of high-strength and high-modulus fibers have been commonly used in different fields. When exceeding the service life, the protective products also need to be replaced. This study proposes a highly efficient recycling and manufacturing design to create more added values for the waste materials. With a premise of minimized damage to fibers, the recycled selvage made of high strength PET fibers are reclaimed to yield high performance staple fibers at a low production cost. A large amount of recycled fibers are made into matrices with an attempt to decrease the consumption of new materials, while the combination of diverse plain woven fabrics reinforces hybrid-fabric fibrous planks. First, with the aid of machines, recycled high strength PET fibers are processed into staple fibers. Using a nonwoven process, low melting point polyester (LMPET) fibers and PET staple fibers are made into PET matrices. Next, the matrices and different woven fabrics are combined in order to form hybrid-fabric fibrous planks. The test results indicate that both of the PET matrices and fibrous planks have good mechanical properties. In particular, the fibrous planks yield diverse stab resistances from nonwoven and woven fabrics, and thus have greater stab performance.
随着科技的发展,纤维和纺织品不再仅仅用于服装和装饰。由高强度、高模量纤维制成的防护产品已广泛应用于不同领域。当超过使用寿命时,这些防护产品也需要更换。本研究提出了一种高效的回收与制造设计,为废料创造更多附加值。在对纤维损伤最小化的前提下,回收由高强度聚酯纤维制成的布边,以低成本生产出高性能短纤维。大量回收纤维被制成基体,以减少新材料的消耗,同时多种平纹织物的组合增强了混杂织物纤维板。首先,借助机器将回收的高强度聚酯纤维加工成短纤维。采用非织造工艺,将低熔点聚酯(LMPET)纤维和聚酯短纤维制成聚酯基体。接下来,将基体与不同的机织物结合,以形成混杂织物纤维板。测试结果表明,聚酯基体和纤维板都具有良好的机械性能。特别是,纤维板具有来自非织造和机织织物的不同抗刺性,因此具有更强的抗刺性能。