Journal of Textile Research ›› 2024, Vol. 45 ›› Issue (12): 41-49.doi: 10.13475/j.fzxb.20230800601

• Textile Engineering • Previous Articles     Next Articles

Preparation and performance of high shrinkage polyester/polyamide 6 hollow pie-segmented spunbond needle-punching nonwovens

XU Qiuge1, GUO Xun1, DUO Yongchao1, WU Ruonan1, QIAN Xiaoming1(), SONG Bing2, FU Hao1,3, ZHAO Baobao4   

  1. 1. School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China
    2. Mingxinxuteng Institute of Innovation Co., Ltd., Xuzhou, Jiangsu 221436, China
    3. Shanghai Huafeng Microfiber Material Co., Ltd., Shanghai 201508, China
    4. School of Textile and Garment, Anhui Polytechnic University, Wuhu, Anhui 241000, China
  • Received:2023-08-02 Revised:2024-08-19 Online:2024-12-15 Published:2024-12-31
  • Contact: QIAN Xiaoming E-mail:qxm@tiangong.edu.cn

Abstract:

Objective In making nonwoven fabrics, the needling process can not make the two-component fibers split into ultrafine fibers. Because of this, the splitting effect of high shrinkage polyester (HSPET)/polyamide 6 (PA6) hollow pie-segmented two-component spunbonded needle-punching nonwovens (hereinafter referred to as the HSPET/PA6 needle-punching nonwovens) is poor, resulting in the HSPET/PA6 needle-punching nonwovens can not give full play to offer the expected performance. It is necessary to identify ways of splitting the fibers in HSPET/PA6 needle-punching nonwovens, and to prepare hollow pie-segmented spunbond needle-punching nonwovens with high fiber splitting rates and excellent performance.

Method The two-component spunbonded process was used to prepare HSPET/PA6 hollow pie-segmented spunbonded filaments, and HSPET/PA6 needle-punching nonwovens were formed by mesh lay-up and needle-punching reinforcement. The fiber splitting rates of nonwovens prepared by four different physical fiber splitting processes were compared to find out the optimal process. The softness, mechanical properties as well as air and moisture permeability of HSPET/PA6 needle-punching nonwovens were tested to analyze the effect of the optimal fiber splitting process on the properties of HSPET/PA6 needle-punching nonwovens.

Results It was found that the fiber splitting rate of HSPET/PA6 needle-punching nonwovens was 18.9%, and dry heat treatment to the nowovens did not help the fiber splitting rate. However, the fiber splitting rate of HSPET/PA6 needle-punching nonwovens after hydrothermal treatment, ultrasonic treatment and rotary drum machine washing treatment were found to be 24.0%, 32.6% and 75.5%, respectively. This indicates that the rotary drum washing can effectively improve the split rate of HSPET/PA6 needle-punching nonwovens, so that the two-component fibers split into ultrafine fibers. Subsequently, the changes in the properties of HSPET/PA6 needle-punching nonwovens before and after the fiber splitting treatment were investigated using the rotary drum machine washing treatment process. The fiber splitting rates of HSPET/PA6 needle-punching nonwovens were 57.4%, 75.5% and 80.6% when the rotary drum washing treatment temperatures were ambient, 60 ℃ and 90 ℃, respectively. Considering the fiber splitting rate, production cost and environmental protection, 60 ℃ was selected as the appropriate treatment temperature for rotary drum machine washing. The effect of rotary drum washing treatment times on the performance of HSPET/PA6 needle-punching nonwovens was analyzed at the optimal rotary drum washing treatment temperature of 60 ℃. It was also found that the fiber splitting rate of HSPET/PA6 needle-punching nonwovens was gradually increased with the increase of rotary drum washing treatment time. The softness and mechanical properties of HSPET/PA6 needle-punching nonwovens was improved with the increase of the fiber splitting rate. However, along with the increase in the split fiber rate, the flexural aperture of HSPET/PA6 needle-punching nonwovens became smaller, resulting in a gradual decrease in the air permeability and moisture permeability of HSPET/PA6 needle-punching nonwovens.

Conclusion The rotary drum washing process works well in splitting of two-component fibers during the needle punching process, and the process is simple and pollution-free without damaging the fibers. The rotary drum washing process provides a new direction for the splitting of pie-segmented two-component fibers and the preparation of nonwovens with a high fiber splitting rate. The needling process endows HSPET/PA6 needle-punching nonwovens a three-dimensional mesh structure, and the rotary drum washing treatment splits the two-component fibers into ultrafine fibers. The combination of the two processes gives HSPET/PA6 needle-punching nonwovens structural characteristics similar to those of natural leather, and provides the possibility that pie-segmented two-component spunbonded nonwovens can be widely used in the field of microfiber leather as a microfiber synthetic leather-based nonwovens.

Key words: hollow pie-segmented fiber, two-component spunbond process, needle-punching nonwoven, microfiber, fiber splitting rate, polyester, polyamide 6

CLC Number: 

  • TS174.8

Fig.1

Preparation process flow diagram of HSPET/PA6 needle-punching nonwovens"

Fig.2

Schematic diagram of rotary drum machine washing"

Fig.3

Surface(a) and cross-sectional(b) electron microscopy diagram of HSPET/PA6 needle-punching nonwovens under different physical fiber splitting processes"

Fig.4

Surface (a) and cross-sectional (b) electron microscopy images of HSPET/PA6 needle-punching nonwovens at different rotary drum machine wash temperatures"

Fig.5

Surface(a) cross-sectional(b) electron microscopy of HSPET/PA6 needle-punching nonwovens washed by rotary drum machine with different treatment time"

Fig.6

Surface (a) and cross-section (b) electron micrographs of HSPET/PA6 needle-punching nonwovens before and after rotary drum machine washing to split fibers"

Fig.7

Thickness and areal density of HSPET/PA6 needle-punching nonwovens washed by rotary drum machine with different treatment time"

Tab.1

Softness and flexural stiffness of HSPET/PA6 needle-punching nonwovens washed by rotary drum machine with different treatment time"

转鼓机洗处
理时间/min
柔软度/
mm
抗弯刚度/(mN·cm)
纵向 横向
0 4.470 33.864 13.013
30 6.589 3.471 2.904
60 6.796 3.123 2.509
90 6.884 1.670 1.648
120 7.173 0.447 0.385

Fig.8

Air permeability and moisture permeability of HSPET/PA6 needle-punching nonwovens washed by rotary drum machine with different treatment time"

Tab.2

Breaking strength and tear strength of HSPET/PA6 needle-punching nonwovens washed by rotary drum machine with different treatment time"

转鼓机洗处
理时间/min
断裂强力/N 断裂伸长率/% 撕裂强力/N
纵向 横向 纵向 横向 纵向 横向
0 624.330 562.000 57.780 59.630 68.856 80.380
30 706.041 631.505 75.676 63.499 76.237 78.722
60 706.709 638.848 82.342 75.968 80.671 82.828
90 733.351 642.594 69.250 63.179 84.390 85.020
120 739.067 689.336 62.418 75.508 90.415 92.368
[1] 卢志敏, 钱晓明. 桔瓣型双组分纺黏水刺超纤技术及其应用[J]. 棉纺织技术, 2011, 39(7): 65-68.
LU Zhimin, QIAN Xiaoming. Technology and application of segmented pie bicomponent spunbonded & spunlaced microfiber[J]. Cotton Textile Technology, 2011, 39(7): 65-68.
[2] 张宇静, 童珈珈, 叶翔宇, 等. 双组分超细纺黏水刺非织造材料发展现状与展望[J]. 丝绸, 2022, 59(7): 29-39.
ZHANG Yujing, TONG Jiajia, YE Xiangyu, et al. Research progress and prospect on bicomponent spunbond hydroentangled nonwovens[J]. Journal of Silk, 2022, 59(7): 29-39.
[3] DURANY A, ANANTHARAMAIAH N, POURDEYHIMI B. High surface area nonwovens via fibrillating spunbonded nonwovens comprising islands-in-the-sea bicomponent filaments: structure-process-property relationships[J]. Journal of Materials Science, 2009, 44(21): 5926-5934.
[4] 梁肖肖, 钱晓明, 王俊南, 等. 中空橘瓣型PET/PA6双组分纺黏纤维生产工艺研究[J]. 合成纤维工业, 2016, 39(1): 27-30.
LIANG Xiaoxiao, QIAN Xiaoming, WANG Junnan, et al. Production process of hollow segmented-pie PET/PA6 bicomponent spunbond fiber[J]. China Synthetic Fiber Industry, 2016, 39(1): 27-30.
[5] 赵德方, 毛加冲, 黄芽, 等. PP/PA6中空橘瓣型复合超细纤维的制备及性能研究[J]. 丝绸, 2022, 59(6): 44-49.
ZHAO Defang, MAO Jiachong, HUANG Ya, et al. Study on preparation and properties of PP/PA6 hollow segmented-pie composite superfine fiber[J]. Journal of Silk, 2022, 59(6): 44-49.
[6] PRAHSARN C, MATSUBARA A, MOTOMURA S, et al. Development of bicomponent spunbond nonwoven webs consisting of ultra-fine splitted fibers[J]. International Polymer Processing, 2008, 23(2): 178-182.
[7] LU Z M, QIAN X M. Combination technology of spunbond & spunlace[J]. Advanced Materials Research, 2011, 331: 241-244.
[8] ZHANG H, QIAN X M, ZHEN Q, et al. Research on structure characteristics and filtration performances of PET-PA6 hollow segmented-pie bicomponent spunbond nonwovens fibrillated by hydro entangle method[J]. Journal of Industrial Textiles, 2015, 45(1): 48-65.
[9] 左文君, 靳向煜. 分裂型超细纤维水刺非织造布力学性能研究[J]. 产业用纺织品, 2012, 30(7): 9-15.
ZUO Wenjun, JIN Xiangyu. Study on mechanical properties of splitted superfine fiber spunlaced nonwovens[J]. Technical Textiles, 2012, 30(7): 9-15.
[10] 卢志敏, 钱晓明. 橘瓣型双组分纺黏非织造布的开纤技术探讨[J]. 产业用纺织品, 2011, 29(3): 23-26.
LU Zhimin, QIAN Xiaoming. Discussion on the splitting technology of segmented pie bicomponent spunbonded nonwovens[J]. Technical Textiles, 2011, 29(3): 23-26.
[11] 卢延蔚, 钱晓明, 张恒. 橘瓣型双组分非织造材料的开纤技术及过滤性能[J]. 合成纤维工业, 2014, 37(2): 64-67.
LU Yanwei, QIAN Xiaoming, ZHANG Heng. Splitting technology and filtration performance of segmented pie bicomponent nonwovens[J]. China Synthetic Fiber Industry, 2014, 37(2): 64-67.
[12] HOLLOWELL K B, ANANTHARAMAIAH N, POURDEYHIMI B. Hybrid mixed media nonwovens composed of macrofibers and microfibers[J]. Journal of the Textile Institute, 2013, 104(9): 972-979.
[13] 朵永超, 钱晓明, 郭寻, 等. 中空桔瓣型高收缩聚酯/聚酰胺6超细纤维非织造布的制备及其性能[J]. 纺织学报, 2022, 43(2): 98-104.
DUO Yongchao, QIAN Xiaoming, GUO Xun, et al. Preparation and properties of hollow pie-segmented high shrinkage polyester/polyamide 6 microfiber non-wovens[J]. Journal of Textile Research, 2022, 43(2): 98-104.
[14] ZHAO B B, QIAN X M, QIAO Y, et al. The application of hollow segmented pie bicomponent spunbond hydro-entangled microfiber nonwovens for microfiber synthetic leather apparel[J]. AATCC Journal of Research, 2019, 6(3): 45-49.
[15] DUO Y C, QIAN X M, ZHAO B B, et al. Preparation and properties of fluffy high-shrinkage polyester/polyamide 6 hollow segmented pie microfiber non-wovens[J]. Textile Research Journal, 2022, 92(17/18): 3221-3233.
[16] 王晓斌, 姚金波. 双组分熔喷非织造布开纤方法及开纤效果评价方法探讨[J]. 产业用纺织品, 2008, 26(11): 21-24.
WANG Xiaobin, YAO Jinbo. Discussion on slitting fiber on manufacture bicomponent meltblown nonwovens and evaluation method of splitting effect[J]. Technical Textiles, 2008, 26(11): 21-24.
[17] 于宾, 焦晓宁. 高收缩聚酯纤维及其在非织造材料中的应用[J]. 产业用纺织品, 2012, 30(11): 39-43.
YU Bin, JIAO Xiaoning. High-shrinkage polyester fiber and its application on nonwovens[J]. Technical Textiles, 2012, 30(11): 39-43.
[18] 殷保璞, 靳向煜. 超细纤维水刺非织造布的纤维裂离机理及性能[J]. 东华大学学报(自然科学版), 2003, 29(3): 55-58.
YIN Baopu, JIN Xiangyu. Principle of fiber being splited and performance of microfiber spunlaced nonwoven[J]. Journal of Donghua University (Nature Science), 2003, 29(3): 55-58.
[19] 秦晓, 王秋美. 超细纤维的开纤剥离[J]. 山东纺织科技, 2005(4): 39-41.
QIN Xiao, WANG Qiumei. The peeling technique in processing ultra-fine fiber stripping of microfiber[J]. Shandong Textile Science and Technology, 2005(4): 39-41.
[20] 杨建建, 李文林, 王伟建. 超声波技术在石油工业危险废物处置中的应用研究综述[J]. 北部湾大学学报, 2023, 38(2): 33-40.
YANG Jianjian, LI Wenlin, WANG Weijian. On the application of ultrasonic technology in disposal of petroleum industry hazardous wastes[J]. Journal of Beibu Gulf University, 2023, 38(2): 33-40.
[21] 戴东风. 哪些因素影响滚筒洗衣机的洗净度[J]. 大众用电, 2002(7): 38-39.
DAI Dongfeng. What factors affect the washability of drum washing machines[J]. Popular Electricity, 2002(7): 38-39.
[22] 薛元, 王潮霞, 曹艳, 等. 超细涤/锦复合丝剥离机理与工艺研究[J]. 纺织学报, 1998, 19(4): 196-199.
XUE Yuan, WANG Chaoxia, CAO Yan, et al. Study on splitting mechanism and process of polyester/polyamide composite superfine fiber filament[J]. Journal of Textile Research, 1998, 19(4): 196-199.
[23] 刘凡, 钱晓明, 赵宝宝, 等. 柔软处理对涤纶/锦纶6中空桔瓣型超细纤维非织造布性能的影响[J]. 纺织学报, 2018, 39(3): 114-119.
LIU Fan, QIAN Xiaoming, ZHAO Baobao, et al. Influence of softening treatment on properties of polyester/polyamide 6 hollow segmented-pie ultrafine fiber nonwovens[J]. Journal of Textile Research, 2018, 39(3): 114-119.
[1] ZHANG Hongdou, CHEN Fang, CHU Xiangting, LU Huiwen, LIU Xinjin, SU Xuzhong. Study on fiber hooking in chemical fiber sliver based on fiber tracing method [J]. Journal of Textile Research, 2024, 45(12): 74-79.
[2] BING Linhan, WANG Rui, WU Yuhang, LIU Botong, HUANG Hanjiang, WEI Jianfei. Preparation of PET-based carbon dots by pyrolysis and its application in PET flame retardancy [J]. Journal of Textile Research, 2024, 45(10): 1-8.
[3] PENG Bo, WU Yujie, ZHANG Yue, LI Miaolong, MENG Xiang, LI Wei, LU Yuhao. Influence of alkyl chain length of starch alkyl carboxylic acid monoester with low substitution degree on sizing property of polyester warp yarns [J]. Journal of Textile Research, 2024, 45(10): 122-127.
[4] HAN Huayu, YANG Wenlong, WANG Fu, HU Liu, HU Yi. Preparation of benzo[a]phenoxazine based functional dyes and their application on modified polyester fabrics [J]. Journal of Textile Research, 2024, 45(10): 128-136.
[5] YU Ping, WANG Haiyue, WANG Yi, SUN Qinchao, WANG Yan, HU Zuming. Hydrophobic modification and mechanism of polyester fabrics with direct fluorine modification [J]. Journal of Textile Research, 2024, 45(10): 137-144.
[6] LIU Wenlong, LI Haoyi, HE Dongyang, LI Changjin, ZHANG Yang, MA Xiuqing, LI Manyi, YANG Weimin. Melt-blown process of low-density polyethylene and its nonwovens properties [J]. Journal of Textile Research, 2024, 45(10): 31-38.
[7] WEI Peng, LI Zhiqiang, LI Jiaojiao, LI Junhui, LIU Dong, GENG Jiajun. Influence of solid-state polymerization on structure and properties of naphthalene ring structure aromatic liquid crystal copolyester [J]. Journal of Textile Research, 2024, 45(09): 50-55.
[8] XIAO Ningning, CHEN Zhijie, OUYANG Yufu, MENG Jingui, SUN Yangyi, QI Dongming. Preparation and characterization of waterborne flame retardant polyurethane for microfiber synthetic leather [J]. Journal of Textile Research, 2024, 45(09): 113-120.
[9] DUO Yongchao, SONG Bing, ZHANG Ruquan, XU Qiuge, QIAN Xiaoming. Research progress in melt spinning technology for bicomponent microfibers [J]. Journal of Textile Research, 2024, 45(08): 54-64.
[10] YANG Ruihua, SHAO Qiu, WANG Xiang. Spinning performance of recycled cotton and polyester fibers and fabric characteristics [J]. Journal of Textile Research, 2024, 45(08): 127-133.
[11] GE Meitong, DONG Zhijia, CONG Honglian, DING Yuqin. Structure and moisture/thermal management evaluation of concave-convex lattice knitted fabrics [J]. Journal of Textile Research, 2024, 45(07): 47-54.
[12] WANG Yuxi, TANG Chunxia, ZHANG Liping, FU Shaohai. Preparation of carbon black nanoparticles by Steglich esterification and its ethylene glycol dispersity [J]. Journal of Textile Research, 2024, 45(07): 104-111.
[13] XU Yusong, ZHOU Jie, GAN Jiayi, ZHANG Tao, ZHANG Xianming. Preparation of phosphorus and nitrogen containing waterborne polyurethane and its application in polyester fabrics for flame retardant finishing [J]. Journal of Textile Research, 2024, 45(07): 112-120.
[14] LI Wenya, ZHOU Jian, LIAO Tanqian, DONG Zhenzhen. Structural control and spinning technology of highly wrapped core-spun yarn with thin sheath [J]. Journal of Textile Research, 2024, 45(06): 46-52.
[15] CHENG Xianwei, LIU Yawen, GUAN Jinping, CHEN Rui. Preparation and flame-retardant performance of coated polyamide 6 fabrics with biomass phytic acid modified polyurethane [J]. Journal of Textile Research, 2024, 45(06): 120-126.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!