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| Performance of Semi-conductive Shielding Layer Based on Polypropylene and Olefin Block Copolymer |
ZHU Haowen1,2, SUI Guoxin1,2( ), LIU Dongyan1,2 |
1.School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China 2.Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China |
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Cite this article:
ZHU Haowen, SUI Guoxin, LIU Dongyan. Performance of Semi-conductive Shielding Layer Based on Polypropylene and Olefin Block Copolymer. Chinese Journal of Materials Research, 2026, 40(1): 23-30.
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Abstract In order to enhance the stability of polypropylene (PP) cables, it is essential to develop compatible PP-based semi-conductive shielding layers. In this study, semi-conductive shielding materials were prepared via melt blending using a twin-screw extruder, with PP as the matrix, OBC as the elastomer, and carbon black (CB) as the conductive filler. The effect of OBC content on the multifaceted properties of the acquired materials were investigated by observing the dispersion morphology of CB, analyzing their melting-crystallization behavior and temperature-dependent resistivity. The results showed that while increasing OBC content generally enhanced the positive temperature coefficient (PTC) effect, the prepared semi-conductive shielding material with 21% OBC (OBC21) exhibited the lowest PTC strength (IPTC = 0.2435), with a room temperature resistivity of 24.29 Ω·cm and a maximum resistivity of 42.55 Ω·cm. Microstructural analysis demonstrates that CB is selectively dispersed within OBC, and an increase in OBC content enhances the dispersion of CB. Overall, OBC-21 exhibits the most favorable overall performance. This study provides a material design strategy for the development of high-performance PP cable shields.
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Received: 16 June 2025
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Corresponding Authors:
SUI Guoxin, Tel: (024)83978040, E-mail: gxsui@imr.ac.cn
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