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Deicing Concrete Pavements and Roads with Carbon Nanotubes (CNTs) as Heating Elements

机译:以碳纳米管(CNT)为加热元件的混凝土路面和道路除冰

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摘要

Existing deicing technologies involving chloride and heating wires have limitations such as reduced durability of roads and surrounding structures, and high labor requirements and maintenance costs. Hence, in this study, we performed indoor experiments, numerical analyses, and field tests to examine the efficiency of deicing using carbon nanotubes (CNTs) to overcome these limitations. For indoor experiments, a CNT was inserted into the center of a concrete sample and then heated to 60 °C while maintaining the ambient and internal temperatures of the sample at −10 °C using a refrigeration chamber. Numerical analysis considering thermal conductivity was performed based on the indoor experimental results. Using the calculation results, field tests were conducted, and the thermal conduction performance of the heating element was examined. Results showed that the surface temperature between the heating elements exceeded 0 °C. Moreover, we found that the effective heating distance of the heating elements should be 20–30 cm for effective thermal overlap through the indoor experiments. Additionally, the numerical analysis results indicated that the effective heating distance increased to 100 cm when the heating element temperature and experiment time were increased. Field test results showed that 62 cm-deep snow melted between the heating elements (100 cm), thus, verifying the possibility of deicing.
机译:现有的涉及氯化物和加热丝的除冰技术具有局限性,例如降低了道路和周围结构的耐久性,以及较高的人工要求和维护成本。因此,在这项研究中,我们进行了室内实验,数值分析和现场测试,以检验使用碳纳米管(CNT)克服这些限制的除冰效率。对于室内实验,将CNT插入混凝土样品的中心,然后加热至60°C,同时使用冷藏室将样品的环境和内部温度保持在-10°C。根据室内实验结果进行了考虑导热系数的数值分析。使用计算结果进行现场测试,并检查加热元件的导热性能。结果表明,加热元件之间的表面温度超过0°C。此外,通过室内实验,我们发现加热元件的有效加热距离应为20–30 cm,以实现有效的热重叠。另外,数值分析结果表明,当加热元件温度和实验时间增加时,有效加热距离增加到100 cm。现场测试结果表明,在加热元件(100厘米)之间融化了62厘米深的积雪,从而证明了除冰的可能性。

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