AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (9.6 MB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline
Research Article | Open Access

Controllable large-scale processing of temperature regulating sheath-core fibers with high-enthalpy for thermal management

Ziye ChenaZexu Hua,b( )Shining ChenaSenlong YuaLiping ZhuaHengxue Xianga( )Meifang Zhua
Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China
College of Mechanical and Engineering, Donghua University, Shanghai, 201620, China
Show Author Information

Abstract

Temperature regulating fibers (TRFs) with high enthalpy and high form stability are the key factors for thermal management. However, the enthalpies of most TRFs are not high, and the preparation methods are still at the laboratory scale. It remains a great challenge to use industrial spinning equipment to achieve continuous processing of TRFs with excellent thermal and mechanical properties. Here, polyamide 6 (PA6) based TRFs with a sheath-core structure were prepared by bicomponent melt-spinning. The sheath-core TRF (TRFsc) are composed of PA6 as sheath and functional PA6 as core, which are filled with the shape stable phase change materials (ssPCM), dendritic silica@polyethylene glycol (SiO2@PEG). With the aid of the sheath structure, the filling content of SiO2@PEG can reach 30%, so that the enthalpy of the TRFs can be as high as 21.3 ​J/g. The ultra-high enthalpy guarantees the temperature regulation ability during the alternating process of cooling and heating. In hot environment, the temperature regulation time is 6.59 ​min, and the temperature difference is 12.93 ​℃. In addition, the mechanical strength of the prepared TRFsc reaches 2.26 cN/dtex, which can fully meet its application in the field of thermal management textiles and devices to manage the temperature regulation of the human body or precision equipment, etc.

References

[1]

S.V. Boriskina, Nanoporous fabrics could keep you cool, Science 353 (2016) 986–987.

[2]

Q. Wang, J. Zeng, J. Li, et al., Multifunctional fiber derived from wet spinning combined with UV photopolymerization for human motion and temperature detection, Adv. Compos. Hybrid Mater. 6 (2023) 26.

[3]

X.A. Zhang, S. Yu, B. Xu, et al., Dynamic gating of infrared radiation in a textile, Science 363 (2019) 619–623.

[4]

L. Zhang, M. Baima, T.L. Andrew, Transforming commercial textiles and threads into sewable and weavable electric heaters, ACS Appl. Mater. Interfaces 9 (2017) 32299–32307.

[5]

E. Pakdel, M. Naebe, L. Sun, et al., Advanced functional fibrous materials for enhanced thermoregulating performance, ACS Appl. Mater. Interfaces 11 (2019) 13039–13057.

[6]

Y. Peng, Y. Cui, Advanced textiles for personal thermal management and energy, Joule 4 (2020) 724–742.

[7]

R. Hu, Y.D. Liu, S.M. Shin, et al., Emerging materials and strategies for personal thermal management, Adv. Energy Mater. 10 (2020) 1903921.

[8]

G. Li, G. Hong, D. Dong, et al., Multiresponsive graphene-aerogel-directed phase-change smart fibers, Adv. Mater. 30 (2018) 1801754.

[9]

K. Yang, M. Venkataraman, X. Zhang, et al., Review: incorporation of organic PCMs into textiles, J. Mater. Sci. 57 (2022) 798–847.

[10]

G. Nelson, Application of microencapsulation in textiles, Int. J. Pharm. 242 (2002) 55–62.

[11]

Z. Niu, S. Qi, S.S.A. Shuaib, et al., Flexible core-sheath thermochromic phase change fibers for temperature management and electrical/solar energy harvesting, Compos. Sci. Technol. 226 (2022) 109538.

[12]

X. Li, Q. Li, J. Hu, et al., Core-sheath phase change fibers via coaxial wet spinning for solar energy active storage, Compos. Part. B-Eng. 247 (2022) 110346.

[13]

Y. Jia, G. Liao, Y. Wu, et al., Investigating the effect of crystallizability and glass transition temperature of supporting materials for preparing high enthalpy electrospun poly(lactic acid)/poly(ethylene glycol) phase change fibers, Sol. Energy Mater. Sol. Cells 256 (2023) 112322.

[14]

Y. Zhang, J. Zhou, Z. Chen, et al., Leak-free and shape-stabilized phase change composites with radial spherical SiO2 scaffolds for thermal management, New J. Chem. 46 (2022) 19178–19187.

[15]

Q. Meng, J. Hu, A temperature-regulating fiber made of PEG-based smart copolymer, Sol. Energy Mater. Sol. Cells 92 (2008) 1245–1252.

[16]

H. Zhang, S. Yang, H. Liu, et al., Preparation of PNHMPA/PEG interpenetrating polymer networks gel and its application for phase change fibers, J. Appl. Polym. Sci. 129 (2013) 1563–1568.

[17]

J. Hu, H. Yu, Y. Chen, et al., Study on phase-change characteristics of PET-PEG copolymers, J. Macromol. Sci., Part B: Phys. 45 (2006) 615–621.

[18]

X.Y. Gao, N. Han, X.X. Zhang, et al., Melt-processable acrylonitrile-methyl acrylate copolymers and melt-spun fibers containing MicroPCMs, J. Mater. Sci. 44 (2009) 5877–5884.

[19]

X.X. Zhang, X.C. Wang, X.M. Tao, et al., Energy storage polymer/MicroPCMs blended chips and thermo-regulated fibers, J. Mater. Sci. 40 (2005) 3729–3734.

[20]

G. Fredi, H. Bruenig, R. Vogel, et al., Melt-spun polypropylene filaments containing paraffin microcapsules for multifunctional hybrid yarns and smart thermoregulating thermoplastic composites, Express Polym. Lett. 13 (2019) 1071–1087.

[21]

W. Xia, H. Xiang, Z. Zhou, et al., Hybridizing rational designed hydrophobic PEG-based derivatives into nanoporous F-SiO2 as form-stable phase change materials for melt-spun PA6 phase change fibers with a superior washing durability, Compos. Commun. 24 (2021) 100633.

[22]

W. Xia, X. Fei, Q.Q. Wang, et al., Nano-hybridized form-stable ester@F-SiO2 phase change materials for melt-spun PA6 fibers engineered towards smart thermal management fabrics, Chem. Eng. J. 403 (2021) 126369.

[23]

H. Xiang, J. Zhou, Y. Zhang, et al., Polyethylene glycol infused acid-etched halloysite nanotubes for melt-spun polyamide-based composite phase change fibers, Appl. Clay Sci. 182 (2019) 105249.

[24]

G.Q. Zhang, S.X. Xu, M.Y. Du, et al., Temperature regulating fibers of high latent heat and strength: mass production, characterization and applications, J. Energy Storage 42 (2021) 103030.

[25]

R.G. Zhang, P. Feng, C.C. Yang, Preparation and analysis of sheath-core intelligent thermo-regulating fiber, Polymers 14 (2022) 1665.

[26]

Z. Chen, J. Zhou, Y. Jiang, et al., Preparation of form-stable silica/polyethylene glycol composites using flash-drying for large-scale melt-spun fibers with thermal management property, Polym. Eng. Sci. 63 (2023) 454–466.

[27]

N. Muksing, M. Nithitanakul, B.P. Grady, et al., Melt rheology and extrudate swell of organobentonite-filled polypropylene nanocomposites, Polym. Test. 27 (2008) 470–479.

[28]

J. Yang, J.Z. Liang, C.Y. Tang, Studies on melt flow properties during capillary extrusion of PP/Al(OH)(3)/Mg(OH)(2) flame retardant composites, Polym. Test. 28 (2009) 907–911.

[29]

J. Cai, P. Fei, Z. Xiong, et al., Surface acetylation of bamboo cellulose: preparation and rheological properties, Carbohyd. Polym. 92 (2013) 11–18.

[30]

K. Iqbal, D. Sun, Development of thermo-regulating polypropylene fibre containing microencapsulated phase change materials, Renew. Energy 71 (2014) 473–479.

[31]

W. Li, Y.J. Ma, X.F. Tang, et al., Composition and characterization of thermoregulated fiber containing acrylic-based copolymer microencapsulated phase-change materials (MicroPCMs), Ind. Eng. Chem. Res. 53 (2014) 5413–5420.

[32]

M. Zhai, J.L. Zhou, Z.X. Hu, et al., Effective antibacterial and phase change PEG/Cu2O@A-HNTs composites for melt-spun difunctional PA6 fiber, Prog. Nat. Sci.-Mater. 32 (2022) 776–785.

[33]

C. Cherif, N.H.A. Tran, M. Kirsten, et al., Environmentally friendly and highly productive bi-component melt spinning of thermoregulated smart polymer fibres with high latent heat capacity, Express Polym. Lett. 12 (2018) 203–214.

[34]

J. Zhou, Q. Wang, C. Jia, et al., Molecular weight discrete distribution-induced orientation of high-strength copolyamide fibers: effects of component proportion and molecular weight, Macromolecules 54 (2021) 7529–7539.

Nano Materials Science
Pages 337-344
Cite this article:
Chen Z, Hu Z, Chen S, et al. Controllable large-scale processing of temperature regulating sheath-core fibers with high-enthalpy for thermal management. Nano Materials Science, 2024, 6(3): 337-344. https://doi.org/10.1016/j.nanoms.2023.10.004

68

Views

1

Downloads

3

Crossref

3

Web of Science

2

Scopus

0

CSCD

Altmetrics

Received: 05 September 2023
Accepted: 19 October 2023
Published: 22 November 2023
© 2024 Chongqing University.

This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).

Return