碳纤维增强导电混凝土的电阻和固化温度的发展:一项比较研究
Lei Zhang1, Siyuan Chen2, Weichen Tian3
1School of Water Conservancy and Civil Engineering, Northeast Agricultural University, Harbin 150030, China.
Materials (Basel, Switzerland)
|August 29, 2024
概括
这项研究研究了电导性混凝土的性能,重点关注电阻和电热性能. 在零度以下的温度下,欧米加热固化成功制造了碳纤维增强导电混凝土.
科学领域:
- 材料科学与工程 材料科学与工程
- 土木工程 土木工程是指土木工程.
- 混凝土技术 混凝土技术
背景情况:
- 电阻显著影响导电混凝土的电热性能.
- 优化导电混凝土对于专业应用至关重要,特别是在寒冷的环境中.
研究的目的:
- 系统地研究水与粘合剂比率,粗聚合物含量和碳纤维 (CF) 含量对导电混凝土电阻的影响.
- 为了研究CF增强导电混凝土 (CFRCC) 的电热特性 (固化温度,导电稳定性) 和机械强度,该混凝土使用欧米加热 (OH) 在-20°C固化时制造.
- 为了验证OH固化用于在负温度环境中制备CFRCC的可行性.
主要方法:
- 系统地调查影响电阻的因素.
- 使用欧姆加热 (OH) 固化在-20°C时制造CFRCC.
- 在各种电力下测试电热性能和机械强度.
主要成果:
- 确定了影响导电混凝土电阻的关键因素.
- 在-20°C环境中通过OH固化成功制造CFRCC.
- 验证了OH固化在寒冷条件下CFRCC制备的可行性和有效性,性能取决于电力.
结论:
- 多种因素显著影响CFRCC的业绩.
- 欧姆热固化是一种可行的方法,可以在零度以下的温度下生产CFRCC.
- 这项研究为冬季条件下的增强混凝土建筑提供了洞察力.
关键词:
导电混凝土的电导性混凝土固化的温度是固化的温度.电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电力电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电阻电力电阻电力电流电流欧氏体加热固化固化更多相关视频
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