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Fabrication and Properties of Self-crimp Side-by-Side Bicomponent Filaments Composed of Polyethylene Terephthalates with Different Intrinsic Viscosity

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Xiao H, Shi MW, Liu LL. The Crystallinity and Orientation Structure and Crimp Properties of PET/PTT Bicomponent Filament. Advanced Materials Research 2013; 627(1): 110–116. XiaoH ShiMW LiuLL The Crystallinity and Orientation Structure and Crimp Properties of PET/PTT Bicomponent Filament Advanced Materials Research 2013 627 1 110 116 10.4028/www.scientific.net/AMR.627.110 Search in Google Scholar

Chen SH, Wang SY. Effect of Thermal Stimuli on Physical Behaviors of PET/PTT Bicomponent Filament. Advanced Materials Research 2010; 129–131: 280–284. ChenSH WangSY Effect of Thermal Stimuli on Physical Behaviors of PET/PTT Bicomponent Filament Advanced Materials Research 2010 129–131 280 284 10.4028/www.scientific.net/AMR.129-131.280 Search in Google Scholar

Yang ZL, Wang FM. Dyeing and finishing performance of different PTT/PET bi-component filament fabrics. Indian Journal of Fibre & Textile Research 2016; 41(4): 411–417. YangZL WangFM Dyeing and finishing performance of different PTT/PET bi-component filament fabrics Indian Journal of Fibre & Textile Research 2016 41 4 411 417 Search in Google Scholar

Chen SH, Wang SY. Tensile and Fracture Behaviors of PET/PTT Side-Side Bicomponent Filament. International Journal of Polymer Analysis and Characterization 2010; 15(3): 147–154. ChenSH WangSY Tensile and Fracture Behaviors of PET/PTT Side-Side Bicomponent Filament International Journal of Polymer Analysis and Characterization 2010 15 3 147 154 10.1080/10236660903585350 Search in Google Scholar

Fang Y, Wang CH, Liang HF, Bao LL et al. Theoretical and experimental study on the crimp mechanism of bi-component filament. Advanced Materials Research 2012; 476–478(0): 2209–2212. FangY WangCH LiangHF BaoLL Theoretical and experimental study on the crimp mechanism of bi-component filament Advanced Materials Research 2012 476–478 0 2209 2212 10.4028/www.scientific.net/AMR.476-478.2209 Search in Google Scholar

Oh TH. Effects of Spinning and Drawing Conditions on the Crimp Contraction of Side-by-Side Poly(trimethylene terephthalate) Bicomponent Fibers. Journal of Applied Polymer Science 2010; 102(2): 1322–1327. OhTH Effects of Spinning and Drawing Conditions on the Crimp Contraction of Side-by-Side Poly(trimethylene terephthalate) Bicomponent Fibers Journal of Applied Polymer Science 2010 102 2 1322 1327 10.1002/app.23988 Search in Google Scholar

Oh TH. Melt Spinning and Drawing Process of PET Side-by-Side Bicomponent Fibers. Journal of Applied Polymer Science 2006; 101(3): 1362–1367. OhTH Melt Spinning and Drawing Process of PET Side-by-Side Bicomponent Fibers Journal of Applied Polymer Science 2006 101 3 1362 1367 10.1002/app.23287 Search in Google Scholar

Lai K, Chen MY, Sun RJ et al. Study on the Crimp Property of PTT/PET Bicomponent Filament. Advanced Materials Research 2013; 781–784(0): 2680–2684. LaiK ChenMY SunRJ Study on the Crimp Property of PTT/PET Bicomponent Filament Advanced Materials Research 2013 781–784 0 2680 2684 10.4028/www.scientific.net/AMR.781-784.2680 Search in Google Scholar

Rwei SP, Lin YT, Su YY. Study of Self-Crimp Polyester Fibers. Polymer Engineering and Science 2005; 45(6): 838–845. RweiSP LinYT SuYY Study of Self-Crimp Polyester Fibers Polymer Engineering and Science 2005 45 6 838 845 10.1002/pen.20338 Search in Google Scholar

Dention MJ. The Crimp Curvature of Bicomponent Fibers. Journal of the Textile Institute 1982; 73(6): 253–263. DentionMJ The Crimp Curvature of Bicomponent Fibers Journal of the Textile Institute 1982 73 6 253 263 10.1080/00405008208631752 Search in Google Scholar

Liu XS, Jiao SY, Wang FM. Configuring the spinning technology of PTT/PET bicomponent filaments according to fabric elasticity. Textile Research Journal 2013; 83(5): 487–498. LiuXS JiaoSY WangFM Configuring the spinning technology of PTT/PET bicomponent filaments according to fabric elasticity Textile Research Journal 2013 83 5 487 498 10.1177/0040517512447584 Search in Google Scholar

Luo J, Xu GB, Wang FM. External Configuration and Crimp Parameters of PTT (Polytrimethylene terephthalate)/PET (Polyethylene terephthalate) Conjugated Fiber. Fibers and Polymers 2009; 10(4): 508–512. LuoJ XuGB WangFM External Configuration and Crimp Parameters of PTT (Polytrimethylene terephthalate)/PET (Polyethylene terephthalate) Conjugated Fiber Fibers and Polymers 2009 10 4 508 512 10.1007/s12221-009-0508-8 Search in Google Scholar

Chuah HH. Orientation and Structure Development in Poly(trimethylene terephthalate) Tensile Drawing. Macromolecules 2001; 34(20): 6985–6993. ChuahHH Orientation and Structure Development in Poly(trimethylene terephthalate) Tensile Drawing Macromolecules 2001 34 20 6985 6993 10.1021/ma010317z Search in Google Scholar

Guo J, Zheng N, Chen YT. Study on Influence of Crimping Performance of PET/PTT Self-Crimp Yarn Treated with Moist Heat. Advanced Materials Research 2011; 287–290(0): 2547–2551. GuoJ ZhengN ChenYT Study on Influence of Crimping Performance of PET/PTT Self-Crimp Yarn Treated with Moist Heat Advanced Materials Research 2011 287–290 0 2547 2551 10.4028/www.scientific.net/AMR.287-290.2547 Search in Google Scholar

Chen SH, Wang SY. Latent-Crimp Behavior of PET/PTT Elastomultiester and a Concise Interpretation. Journal of Macromolecular Science, Part B: Physics. 2011; 50(7): 1447–1459. ChenSH WangSY Latent-Crimp Behavior of PET/PTT Elastomultiester and a Concise Interpretation Journal of Macromolecular Science, Part B: Physics 2011 50 7 1447 1459 10.1080/00222348.2010.518879 Search in Google Scholar

Jiang ZH, Guo ZG, Zhang ZQ. Preparation and properties of bottle-recycled polyethylene terephthalate (PET) filaments. Textil Research Journal 2018; 89(7): 1207–1214. JiangZH GuoZG ZhangZQ Preparation and properties of bottle-recycled polyethylene terephthalate (PET) filaments Textil Research Journal 2018 89 7 1207 1214 10.1177/0040517518767146 Search in Google Scholar

Ayad E, Cayla AL, Rault F et al. Influence of Rheological and Thermal Properties of Polymers During Melt Spinning on Bicomponent Fiber Morphology. Journal of Materials Engineering and Performance 2016; 25(8): 3296–3302. AyadE CaylaAL RaultF Influence of Rheological and Thermal Properties of Polymers During Melt Spinning on Bicomponent Fiber Morphology Journal of Materials Engineering and Performance 2016 25 8 3296 3302 10.1007/s11665-016-2193-2 Search in Google Scholar

Petraccone V, Rosa CD, Guerra G et al. On the Double Peak Shape of Melting Endotherms of Isothermally Crystallized Isotactic Polypropylene Samples. Die Makromolekulare Chemie Rapid Communications 1984; 5(10): 631. PetracconeV RosaCD GuerraG On the Double Peak Shape of Melting Endotherms of Isothermally Crystallized Isotactic Polypropylene Samples Die Makromolekulare Chemie Rapid Communications 1984 5 10 631 10.1002/marc.1984.030051003 Search in Google Scholar

Wang Y, Sun YM, Zhu ZY et al. XRD Study of PET Irradiated by 1.158 GeV Fe Ions. IMP and GIRFL Annual Report 2002; (1): 63. WangY SunYM ZhuZY XRD Study of PET Irradiated by 1.158 GeV Fe Ions IMP and GIRFL Annual Report 2002 1 63 Search in Google Scholar

Hu JC, Yang D, Chen P et al. Studies on The Crystallinity of PET by WAXD. Acta Polymerica Sinica 1990; (3): 283. HuJC YangD ChenP Studies on The Crystallinity of PET by WAXD Acta Polymerica Sinica 1990 3 283 Search in Google Scholar

Ren MQ, Zhang ZY, Wu SZ et al. Uniaxial Orientation and Crystallization Behavior of Amorphous Poly (ethylene terephthalate) Fibers. Journal of Polymer Research 2006; 13(1): 9–15. RenMQ ZhangZY WuSZ Uniaxial Orientation and Crystallization Behavior of Amorphous Poly (ethylene terephthalate) Fibers Journal of Polymer Research 2006 13 1 9 15 10.1007/s10965-005-9005-y Search in Google Scholar

Mehdi Z, Mojtaba S. Isothermal Crystallization Kinetics of Poly(Ethylene Terephthalate)S of Different Molecular Weights. Journal of the Iranian Chemical Society 2013; 10(1): 77–84. MehdiZ MojtabaS Isothermal Crystallization Kinetics of Poly(Ethylene Terephthalate)S of Different Molecular Weights Journal of the Iranian Chemical Society 2013 10 1 77 84 10.1007/s13738-012-0148-6 Search in Google Scholar

Zhu PP, Ma DZ. Study on the Double Cold Crystallization Peaks of Poly (Ethylene Terephthalate) (PET): 2. Samples Isothermally Crystallized At High Temperature. European Polymer Journal 1999; 35(4): 739–742. ZhuPP MaDZ Study on the Double Cold Crystallization Peaks of Poly (Ethylene Terephthalate) (PET): 2. Samples Isothermally Crystallized At High Temperature European Polymer Journal 1999 35 4 739 742 10.1016/S0014-3057(98)00179-7 Search in Google Scholar

Xiao H, Shi MW, Liu LL et al. The Structures and Properties of PET (Polyethylene Terephthalate)/PTT (Polytrimethylene Terephthalate) Self-Crimp Filament at Different Temperatures. Advanced Materials Research 2011; 332–334(0): 239–245. XiaoH ShiMW LiuLL The Structures and Properties of PET (Polyethylene Terephthalate)/PTT (Polytrimethylene Terephthalate) Self-Crimp Filament at Different Temperatures Advanced Materials Research 2011 332–334 0 239 245 10.4028/www.scientific.net/AMR.332-334.239 Search in Google Scholar

Wu AH, Xu GP, Luo GH et al. Study of the Mechanical Properties and Releasing Anion Capacity of Anionic Functional PET Fiber. Applied Mechanics and Material 2013; 423–426(0): 322–325. WuAH XuGP LuoGH Study of the Mechanical Properties and Releasing Anion Capacity of Anionic Functional PET Fiber Applied Mechanics and Material 2013 423–426 0 322 325 10.4028/www.scientific.net/AMM.423-426.322 Search in Google Scholar

Zhang X, Tian XY, Yao XY et al. Isothermal and Non-Isothermal Shrinkage Behaviors of Highly Oriented PET Yarns. Fibers and Polymers 2008; 9(3): 360–364. ZhangX TianXY YaoXY Isothermal and Non-Isothermal Shrinkage Behaviors of Highly Oriented PET Yarns Fibers and Polymers 2008 9 3 360 364 10.1007/s12221-008-0058-5 Search in Google Scholar

Rim PB, Nelson CJ. Properties of PET Fibers with High Modulus and Low Shrinkage (HMLS). I. Yarn Properties and Morphology. Applied Polymer. Sci. 2010; 42(7): 1807–1813. RimPB NelsonCJ Properties of PET Fibers with High Modulus and Low Shrinkage (HMLS). I. Yarn Properties and Morphology Applied Polymer. Sci. 2010 42 7 1807 1813 10.1002/app.1991.070420702 Search in Google Scholar