Effect of high-relative-molecular-mass fractions on the self-regulating electrothermal effect of high-density polyethylene/ chain-like nickel composites

IF 6.5 2区 材料科学 Q1 MATERIALS SCIENCE, COMPOSITES
Rui Luo , Shuo Fu , Ziyang Wang , Kai Zhang , Zhengying Liu , Wei Yang
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引用次数: 0

Abstract

Polymer-based composite materials exhibiting positive temperature coefficient (PTC) effects can be utilized as self-regulating heating materials and the equilibrium temperature is primarily maintained near the PTC switching temperature range. Consequently, adjusting the switching temperature and stabilizing the equilibrium temperature are the most important issues for the application of polymer-based PTC composites as self-regulating heaters. In this study, HDPE of high molecular weight, low molecular weight and their blends were employed as matrix and the effects of high-relative-molecular-mass fraction on the PTC behavior and the temperature self-regulating stability of HDPE/chain-like nickel (c-Ni) composites were examined. By increasing the content of high-relative-molecular-mass fractions of the matrix, the volumetric expansion rate of the composites below the melting temperature was enhanced. The sensitivity of the c-Ni conductive network to changes in the matrix volume enabled the switching temperature of the PTC transition for the composites with increasing high-relative-molecular-mass fractions to decreased from 117.6 °C to 74 °C. Under a voltage of 30 V, the self-regulating equilibrium temperature can be adjusted within a wide range from 113 °C to 69 °C, and the highest equilibrium temperature, 110 °C, can be maintained in 12000s. Thus, this work provides insights into the regulation and stability of equilibrium temperature in self-regulating heating materials.
高相对分子质量组分对高密度聚乙烯/链状镍复合材料自调节电热效应的影响
具有正温度系数效应的聚合物基复合材料可以作为自调节加热材料,其平衡温度主要维持在PTC开关温度范围附近。因此,调节开关温度和稳定平衡温度是聚合物基PTC复合材料作为自调节加热器应用的关键问题。本研究以高分子量HDPE、低分子量HDPE及其共混物为基体,考察了高相对分子质量分数对HDPE/链状镍(c-Ni)复合材料PTC行为和温度自调节稳定性的影响。通过增加基体中高相对分子质量组分的含量,提高了复合材料在熔融温度下的体积膨胀率。C - ni导电网络对基体体积变化的敏感性使得高相对分子质量分数增加的复合材料的PTC转变切换温度从117.6℃降至74℃。在30 V电压下,自调节平衡温度可在113℃~ 69℃的宽范围内调节,最高平衡温度110℃可维持12000年。因此,这项工作为自调节加热材料平衡温度的调节和稳定性提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Composites Communications
Composites Communications Materials Science-Ceramics and Composites
CiteScore
12.10
自引率
10.00%
发文量
340
审稿时长
36 days
期刊介绍: Composites Communications (Compos. Commun.) is a peer-reviewed journal publishing short communications and letters on the latest advances in composites science and technology. With a rapid review and publication process, its goal is to disseminate new knowledge promptly within the composites community. The journal welcomes manuscripts presenting creative concepts and new findings in design, state-of-the-art approaches in processing, synthesis, characterization, and mechanics modeling. In addition to traditional fiber-/particulate-reinforced engineering composites, it encourages submissions on composites with exceptional physical, mechanical, and fracture properties, as well as those with unique functions and significant application potential. This includes biomimetic and bio-inspired composites for biomedical applications, functional nano-composites for thermal management and energy applications, and composites designed for extreme service environments.
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