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High-Performance and Functional Fiber Materials—A Review of Properties, Scanning Electron Microscopy SEM and Electron Dispersive Spectroscopy EDS 高性能和功能纤维材料——性能综述,扫描电子显微镜,扫描电子显微镜和电子色散能谱
Pub Date : 2022-04-15 DOI: 10.3390/textiles2020012
B. Mahltig, T. Grethe
This review supports an overview of selected high-performance fibers and functional fiber materials. A review of several properties and applications is given. For fiber materials and fabrics, microscopic images taken by scanning electron microscopy (SEM) are presented. As well as this, electron dispersive spectroscopy (EDS) is performed on the fiber materials and an overview of EDS spectra is presented. The features of SEM images and EDS spectra are discussed, especially with the aim of supporting people who are working in the field of fiber analytics. To support a complete view of both analytic methods—SEM and EDS—challenges and typical mistakes for SEM measurements on textiles are also described. Altogether, this review supports a useful overview of interesting high technology fiber materials and their investigation using the analytical methods SEM and EDS. Using these, material properties and their composition are presented and discussed. The composition of industrial fiber materials is investigated and discussed, as well as fiber treatments for the realization of functional fiber properties. Furthermore, it aims to support a helpful tool for fiber and textile analytics and identification.
本文对选定的高性能纤维和功能纤维材料进行了综述。综述了几种性质及其应用。对于纤维材料和织物,给出了扫描电子显微镜(SEM)的显微图像。同时,对纤维材料进行了电子色散光谱(EDS)分析,并对EDS光谱进行了概述。讨论了扫描电镜图像和能谱的特征,特别是为了支持在纤维分析领域工作的人。为了支持对两种分析方法——SEM和eds——的完整看法,还描述了纺织品上SEM测量的挑战和典型错误。总之,本文综述了一些有趣的高科技纤维材料,并利用扫描电镜和能谱分析方法对其进行了研究。在此基础上,介绍并讨论了材料的性能及其组成。研究和讨论了工业纤维材料的组成,以及实现功能性纤维性能的纤维处理方法。此外,它旨在为纤维和纺织品的分析和鉴定提供一个有用的工具。
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引用次数: 12
Geotextiles—A Versatile Tool for Environmental Sensitive Applications in Geotechnical Engineering 土工织物——在岩土工程中环境敏感应用的通用工具
Pub Date : 2022-04-08 DOI: 10.3390/textiles2020011
F. Tanasă, M. Nechifor, M. Ignat, C. Teacă
Geotextiles, a group of high-performance materials, have grown during the last decades into needful auxiliaries when it comes to infrastructure, soil, construction, agriculture and environmental applications. Although geotextiles made of synthetic fibers (geosynthetics) are considered a modern achievement, the basic concept dates back to ancient times when textiles consisting of locally available natural fibers were employed to increase the stability of roads and soils. In recent decades, considering the growing interest in environmental protection and sustainable development based on using renewable resources and the recovery and recycling of waste of various origins, the use of natural fibers-based geotextiles is a viable alternative, despite their limited-life service owing to their biodegradability. In addition to this feature, their low cost, good mechanical properties and large-scale accessibility recommend them for geo-engineering applications, environmental sensitive applications in geotechnical engineering, such as land improvements and soil erosion control. This paper focuses on geotextiles as a versatile tool in environmental applications given their high theoretic and practical relevance as substantiated by recent literature reports. Natural and synthetic geotextiles are presented herein, as well as their features that recommend them for geo-engineering. Insights on the main types of applications of geotextiles are also included, along with a wide variety of materials employed to perform specific functions.
土工布是一种高性能材料,在过去的几十年里,它已经发展成为基础设施、土壤、建筑、农业和环境应用中必不可少的辅助材料。虽然由合成纤维(土工合成物)制成的土工布被认为是一项现代成就,但其基本概念可以追溯到古代,当时由当地可用的天然纤维组成的纺织品被用来增加道路和土壤的稳定性。近几十年来,考虑到基于使用可再生资源和各种来源的废物的回收和再循环的环境保护和可持续发展的日益增长的兴趣,使用基于天然纤维的土工织物是一种可行的替代方案,尽管由于其生物降解性,其使用寿命有限。除此之外,它们的低成本,良好的力学性能和大规模可达性推荐它们用于地质工程应用,岩土工程中的环境敏感应用,如土地改良和土壤侵蚀控制。由于最近的文献报道证实了土工布具有很高的理论和实际意义,因此本文重点介绍了土工布作为环境应用中的多功能工具。本文介绍了天然土工布和合成土工布,以及它们的特点,推荐它们用于土工工程。还包括土工布的主要应用类型的见解,以及用于执行特定功能的各种材料。
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引用次数: 3
A Review on Textile Recycling Practices and Challenges 纺织品回收利用实践与挑战综述
Pub Date : 2022-03-16 DOI: 10.3390/textiles2010010
J. Juanga-Labayen, Ildefonso V. Labayen, Q. Yuan
The expansion of clothing and textile industry and the fast fashion trend among consumers have caused a rapid global increase in textile waste in the municipal solid waste (MSW) stream. Worldwide, 75% of textile waste is landfilled, while 25% is recycled or reused. Landfilling of textile waste is a prevalent option that is deemed unsustainable. Promoting an enhanced diversion of textile waste from landfills demands optimized reuse and recycling technologies. Reuse is the more preferred option compared with recycling. Various textile reuse and recycling technologies are available and progressively innovated to favor blended fabrics. This paper aims to establish reuse and recycling technologies (anaerobic digestion, fermentation, composting, fiber regeneration, and thermal recovery) to manage textile waste. Improved collection systems, automation of sorting, and discovering new technologies for textile recycling remains a challenge. Applying extended producer responsibility (EPR) policy and a circular economy system implies a holistic consensus among major stakeholders.
服装和纺织工业的扩张以及消费者的快时尚趋势导致全球城市固体废物(MSW)流中的纺织废物迅速增加。在世界范围内,75%的纺织废料被填埋,而25%被回收或再利用。纺织废料的填埋是一种普遍的选择,被认为是不可持续的。促进纺织废物从堆填区转移,需要优化再利用和回收技术。与回收相比,再利用是更可取的选择。各种纺织品再利用和再循环技术都是可用的,并逐步创新,以有利于混纺织物。本文旨在建立厌氧消化、发酵、堆肥、纤维再生和热回收等技术来管理纺织废弃物。改进收集系统、自动化分类和发现纺织品回收的新技术仍然是一个挑战。应用扩展生产者责任(EPR)政策和循环经济体系意味着主要利益相关者之间的整体共识。
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引用次数: 57
Testing the Physical and Mechanical Properties of Polyacrylonitrile Nanofibers Reinforced with Succinite and Silicon Dioxide Nanoparticles 琥珀酸盐和二氧化硅纳米颗粒增强聚丙烯腈纳米纤维的物理力学性能测试
Pub Date : 2022-03-08 DOI: 10.3390/textiles2010009
Inga Lasenko, D. Grauda, D. Butkauskas, J. Sanchaniya, Arta Viļuma-Gudmona, V. Lusis
In this research, we focused on testing the physical and mechanical properties of the developed polyacrylonitrile (PAN) composite nanofibers with succinite (Baltic amber) and SiO2 particles using standard methods of nanofiber testing (physical and mechanical properties). Polyacrylonitrile composite nanofibers (based on the electrospinning method) were coated on an aluminum substrate for structural investigation. SEM was used to determine the average fiber diameter and standard deviation. The mechanical properties of the fibers were determined using a universal testing machine (NANO, MTS). We observed that constant or decreased levels of crystallinity in the ultrafine composite nanofibers led to the preservation of high levels of strain at failure and that the strength of nanofibers increased substantially as their diameter reduced. Improvements in PAN composite nanofibers with succinite and SiO2 nanopowder are feasible with continuous decreases in diameter. The drastically decreased strain at failure demonstrated a substantial reduction in viscosity (toughness) of the annealed nanofibers. Large stresses at failure in the as-spun nanofibers were a result of their low crystallinity. As a result, decreasing the diameter of PAN nanofibers from approximately 2 micrometers to 139 nanometers (the smallest nanofiber tested) resulted in instantaneous increases in the elastic modulus from 1 to 26 GPa, true strength from 100 to 1750 MPa, and toughness from 20 to 604 MPa.
在本研究中,我们主要使用纳米纤维测试的标准方法(物理力学性能)测试了琥珀酸盐(波罗的海琥珀)和二氧化硅颗粒的聚丙烯腈(PAN)复合纳米纤维的物理力学性能。将静电纺丝法制备的聚丙烯腈复合纳米纤维涂覆在铝基板上进行结构研究。利用扫描电镜(SEM)测定纤维平均直径和标准差。采用通用试验机(NANO, MTS)测定纤维的力学性能。我们观察到,在超细复合纳米纤维中恒定或降低的结晶度导致在失效时保持高水平的应变,并且纳米纤维的强度随着直径的减小而显著增加。琥珀酸盐和二氧化硅纳米粉对PAN复合纳米纤维的改进是可行的,其直径不断减小。失效时应变的急剧下降表明退火纳米纤维的粘度(韧性)显著降低。由于纳米纤维的结晶度较低,因此在纺丝过程中产生了较大的应力。结果,将PAN纳米纤维的直径从大约2微米减小到139纳米(测试中最小的纳米纤维),其弹性模量从1增加到26 GPa,真强度从100增加到1750 MPa,韧性从20增加到604 MPa。
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引用次数: 23
New Geometrical Modelling for 2D Fabric and 2.5D Interlock Composites 二维织物和2.5维互锁复合材料的新几何建模
Pub Date : 2022-03-07 DOI: 10.3390/textiles2010008
Mohamad Abbas Kaddaha, R. Younes, Pascal Lafon
A new geometrical modeling tool has been developed to predict the elastic stiffness properties of 2D orthogonal and 2.5D woven interlock composites. The model estimates the change in performance due to changes in the ordering weaving parameters of the 2.5D weave architecture. Analysis results were validated compared to other models developed in published articles and the literature. Numerical analysis was performed to evaluate the accuracy of the results from the proposed models. These results demonstrate the effectiveness of the models presented by comparisons with experimental results, showing that the model could replicate the mechanical behaviors of 2D fabric and 2.5D interlock composite laminates for predicting 2D textile structures and 2.5D interlock composites with different types, shapes, and conditions. The model presented in this paper is able to replicate the behavior of woven composites of fiber reinforced with various types.
开发了一种新的几何建模工具来预测二维正交和2.5维编织互锁复合材料的弹性刚度特性。该模型估计了由于2.5D编织结构的顺序编织参数的变化而导致的性能变化。将分析结果与已发表文章和文献中开发的其他模型进行了验证。通过数值分析来评估所提出模型结果的准确性。通过与实验结果的对比,验证了模型的有效性,表明该模型能够模拟二维织物和2.5D互锁复合材料层合板的力学行为,用于预测不同类型、形状和条件的二维纺织结构和2.5D互锁复合材料。本文所建立的模型能够模拟不同类型纤维增强机织复合材料的性能。
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引用次数: 2
Continuous Yarn Electrospinning 连续电纺纱
Pub Date : 2022-02-23 DOI: 10.3390/textiles2010007
Shakir Zainuddin, T. Scheibel
Nanofiber-based nonwoven mats produced in electrospinning setups are usually very fragile, which often limits their applicability. Yarns have the potential to enable the incorporation of nanofibers into other materials using well-established techniques such as sewing, knitting, weaving and embroidering, thus broadening the application of nanofibers. Here, we review the development of continuous yarn electrospinning processes. Amongst several possible approaches, funnel-based collector systems have been widely adopted. Here, we summarize recent developments in the field and highlight studies providing visions on how to expand that field of research in future studies of continuous yarn electrospinning.
静电纺丝装置生产的纳米纤维非织造垫通常非常脆弱,这往往限制了它们的适用性。纱线有可能通过缝纫、编织、编织和刺绣等成熟的技术将纳米纤维结合到其他材料中,从而扩大纳米纤维的应用范围。本文综述了连续电纺纱工艺的发展。在几种可能的方法中,基于漏斗的收集器系统已被广泛采用。在此,我们总结了该领域的最新进展,并对如何在未来的连续纱静电纺丝研究中扩大该领域的研究提出了展望。
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引用次数: 4
Meso-Macro Simulations of the Forming of 3D Non-Crimp Woven Fabrics 三维无卷曲机织物成形的中观宏观模拟
Pub Date : 2022-02-11 DOI: 10.3390/textiles2010006
Jie Wang, Peng Wang, N. Hamila, P. Boisse
The RTM (Resin Transfer Molding) manufacturing process is largely used for the fabrication of textile composites. During the forming phase, the deformations of composite reinforcements at the mesoscopic scale, such as the positions, orientations, and changes in the sections of deformed yarns, are essential to calculate the permeability of the reinforcement in the injection phase and evaluate the mechanical behaviors of the final products. However, the mesoscopic models of the forming simulation lead to a high computational cost due to the numerous yarns and their complex contacts, especially for thick reinforcements. In this paper, a macro-meso method for predicting the mesoscopic deformations of composite reinforcements with a reasonable calculation time is presented in this paper. The proposed multi-scale method allows for the linkage of the macroscopic simulation of reinforcements with the mesoscopic modelling of an RVE (Representative Volume Element) through a macro-meso embedded approach. Based on macroscopic simulations using a 3D hyperelastic constitutive law, an embedded mesoscopic geometry is first deduced. The macro-meso embedded solution can lead to excessive extensions of yarns. To overcome this inconvenience, a local mesoscopic simulation based on the macro-meso embedded analysis is carried out on a single RVE. Finally, the multi-scale forming simulations are investigated in comparison with the experimental results, illustrating the efficiency of the proposed method.
RTM(树脂传递成型)制造工艺主要用于纺织复合材料的制造。在成型阶段,复合材料增强材料在细观尺度上的变形,如变形纱线的位置、方向和截面的变化,对于计算增强材料在注射阶段的渗透率和评价最终产品的力学行为至关重要。然而,由于纱线数量多,接触复杂,特别是粗增强筋的细观模型计算成本高。本文提出了在合理的计算时间内预测复合材料增强材料细观变形的宏观-细观方法。提出的多尺度方法允许通过宏观-细观嵌入方法将钢筋宏观模拟与RVE(代表性体积单元)的细观建模联系起来。基于三维超弹性本构律的宏观模拟,首先推导了嵌入细观几何。宏细观内嵌解决方案会导致纱线过度伸长。为了克服这一不便,在单个RVE上进行了基于宏细观嵌入分析的局部细观模拟。最后,通过多尺度成形仿真与实验结果对比,验证了所提方法的有效性。
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引用次数: 2
Review of Fiber- or Yarn-Based Wearable Resistive Strain Sensors: Structural Design, Fabrication Technologies and Applications 基于纤维或纱线的可穿戴电阻应变传感器的研究进展:结构设计、制造技术及应用
Pub Date : 2022-02-08 DOI: 10.3390/textiles2010005
Fei Huang, Jiyong Hu, Xiong Yan
Flexible textile strain sensors that can be directly integrated into clothing have attracted much attention due to their great potential in wearable human health monitoring systems and human–computer interactions. Fiber- or yarn-based strain sensors are promising candidate materials for flexible and wearable electronics due to their light weights, good stretchability, high intrinsic and structural flexibility, and flexible integrability. This article investigates representative conductive materials, traditional and novel preparation methods and the structural design of fiber- or yarn-based resistive strain sensors as well as the interconnection and encapsulation of sensing fibers or yarns. In addition, this review summarizes the effects of the conductive materials, preparation strategy and structures on the crucial sensing performance. Discussions will be presented regarding the applications of fiber- or yarn-based resistive strain sensors. Finally, this article summarizes the bottleneck of current fiber- or yarn-based resistive strain sensors in terms of conductive materials, fabrication techniques, integration and performance, as well as scientific understanding, and proposes future research directions.
柔性纺织品应变传感器可直接集成到服装中,在可穿戴人体健康监测系统和人机交互方面具有巨大的潜力,因此备受关注。基于纤维或纱线的应变传感器具有重量轻、拉伸性好、内在和结构柔韧性高、柔性可集成性好等优点,是柔性和可穿戴电子产品的理想候选材料。本文研究了基于纤维或纱线的电阻应变传感器的代表性导电材料、传统和新型制备方法、结构设计以及传感纤维或纱线的互连和封装。此外,综述了导电材料、制备策略和结构对关键传感性能的影响。讨论了基于纤维或纱线的电阻应变传感器的应用。最后,本文从导电材料、制作工艺、集成与性能、科学认识等方面总结了当前基于纤维或纱线的电阻应变传感器存在的瓶颈,并提出了未来的研究方向。
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引用次数: 7
Dielectric Properties of Textile Materials: Analytical Approximations and Experimental Measurements—A Review 纺织材料的介电性能:分析近似和实验测量综述
Pub Date : 2022-01-14 DOI: 10.3390/textiles2010004
Yusuke Yamada
Deciphering how the dielectric properties of textile materials are orchestrated by their internal components has far-reaching implications. For the development of textile-based electronics, which have gained ever-increasing attention for their uniquely combined features of electronics and traditional fabrics, both performance and form factor are critically dependent on the dielectric properties. The knowledge of the dielectric properties of textile materials is thus crucial in successful design and operation of textile-based electronics. While the dielectric properties of textile materials could be estimated to some extent from the compositional profiles, recent studies have identified various additional factors that have also substantial influence. From the viewpoint of materials characterization, such dependence of the dielectric properties of textile materials have given rise to a new possibility—information on various internal components could be, upon successful correlation, extracted by measuring the dielectric properties. In view of these considerable implications, this invited review paper summarizes various fundamental theories and principles related to the dielectric properties of textile materials. In order to provide an imperative basis for uncovering various factors that intricately influence the dielectric properties of textile materials, the foundations of the dielectrics and polarization mechanisms are first recapitulated, followed by an overview on the concept of homogenization and the dielectric mixture theory. The principal advantages, challenges and opportunities in the analytical approximations of the dielectric properties of textile materials are then discussed based on the findings from the recent literature, and finally a variety of characterization methods suitable for measuring the dielectric properties of textile materials are described. It is among the objectives of this paper to build a practical signpost for scientists and engineers in this rapidly evolving, cross-disciplinary field.
破译纺织材料的介电性能是如何由其内部成分编排的,具有深远的意义。基于纺织品的电子产品因其独特的电子和传统织物的结合特性而受到越来越多的关注,其性能和外形因素都严重依赖于介电性能。因此,了解纺织材料的介电特性对于纺织电子产品的成功设计和操作至关重要。虽然纺织材料的介电性能可以在一定程度上从其组成曲线估计,但最近的研究已经确定了各种其他因素也有重大影响。从材料表征的角度来看,纺织材料介电性能的这种依赖性产生了一种新的可能性——通过测量介电性能,在成功关联后,可以提取出各种内部成分的信息。鉴于这些重要的意义,本文综述了与纺织材料介电性能有关的各种基本理论和原理。为了给揭示影响纺织材料介电性能的各种复杂因素提供必要的依据,本文首先概述了电介质和极化机制的基础,然后概述了均匀化的概念和介电混合物理论。根据近年来的研究成果,讨论了纺织材料介电性能分析近似的主要优势、挑战和机遇,最后介绍了各种适合测量纺织材料介电性能的表征方法。本文的目标之一是为这个快速发展的跨学科领域的科学家和工程师建立一个实用的路标。
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引用次数: 17
Characterizing Steam Penetration through Thermal Protective Fabric Materials 热防护织物材料蒸汽渗透特性研究
Pub Date : 2022-01-03 DOI: 10.3390/textiles2010002
S. Mandal, G. Song
This study performs an analysis of steam penetration through thermal protective fabric materials. Different, multilayered thermal protective fabrics were selected and tested in a laboratory-simulated steam exposure, and their steam protective performance (SPP) was measured in terms of the time required to generate second-degree burns on the bodies of wearers. Additionally, the total transmitted thermal energy (TTTE) through the fabrics during testing was measured. Through statistical analysis, it was established that fabric properties, namely air permeability and thickness, are the key factors that affect the SPP and TTTE; the relationship among the fabric properties, SPP, and TTTE is also summarized. Theoretically, it has been found that heat and mass (steam) transfer occur through fabrics in the course of steam exposure, which mainly affect the SPP and TTTE. This study could help textile/materials engineers to develop high performance thermal protective fabrics for the increased occupational health and safety of firefighters and industrial workers.
本研究对热防护织物材料的蒸汽渗透进行了分析。选择不同的多层热防护织物并在实验室模拟蒸汽暴露中进行测试,并根据穿着者身体产生二度烧伤所需的时间来测量其蒸汽防护性能(SPP)。此外,测试过程中通过织物的总传递热能(TTTE)。通过统计分析,得出织物的透气性和织物厚度是影响SPP和TTTE的关键因素;总结了织物性能、SPP和TTTE之间的关系。从理论上讲,织物在蒸汽暴露过程中会发生热量和质量(蒸汽)传递,主要影响SPP和TTTE。这项研究可以帮助纺织/材料工程师开发高性能的热防护织物,以提高消防员和工业工人的职业健康和安全。
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引用次数: 1
期刊
Textiles (Basel, Switzerland)
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