Preparation and Properties of Negative Thermal Expansion Snow Melting and Ice Suppression Materials

IF 0.9 4区 材料科学 Science of Advanced Materials Pub Date : 2023-09-01 DOI:10.1166/sam.2023.4564
Xiaodong Wang, Chunyan Yu, Wei Ni, Haolong Su, Jiahao Tan
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Abstract

To investigate the potential utilization of materials exhibiting negative thermal expansion in snow melting and ice suppression applications, an orthogonal test was conducted to ascertain the optimal ratio of effective constituents in said materials. The thermal expansion coefficient of the porous carrier for negative thermal expansion materials was examined, and modifications were made to the material used for snow melting and ice suppression. In conclusion, the researchers successfully developed snow melting and ice suppression materials with low thermal expansion that met the desired performance criteria. Furthermore, they conducted an analysis of the precipitation rate, as well as the snow melting and ice suppression effectiveness of these materials across various temperature ranges. According to the results, the thermal expansion coefficient of the carrier Z1 is positive and varies slightly in the temperature range of −30 °C~−10 °C. In the temperature range of −10 °C~0 °C, the thermal expansion coefficient is negative, and it has negative thermal expansion characteristics. At 0 °C~60 °C, its thermal expansion coefficient first increases and then decreases. In the low temperature stage, the amount of salt precipitation decreases with the decrease of temperature. In the conductivity test, the conductivity at 0 °C is greater than that at −5 °C, and much greater than that at 10 °C, the presence of a negative thermal expansion coefficient has been observed to exert a specific influence on the precipitation of materials used for snow melting and ice suppression. In addition, with the increase of temperature, the amount of salt precipitation increases. Whereas, when the temperature is higher than 35 °C, due to the thermal expansion characteristics of the carrier, the expansion of the volume of snow melting and ice suppression materials is comparatively limited, which results in a not greatly increased precipitation rate of the snow melting and ice suppression components compared with that at 35 °C.
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负热膨胀融冰抑冰材料的制备及性能研究
为了研究负热膨胀材料在融雪和抑冰应用中的潜在利用潜力,进行了正交试验,以确定上述材料中有效成分的最佳比例。考察了负热膨胀材料多孔载体的热膨胀系数,并对用于融冰抑冰的材料进行了改进。总之,研究人员成功地开发了具有低热膨胀的融雪和抑冰材料,满足了期望的性能标准。此外,他们还分析了这些材料在不同温度范围内的降水率、融雪和抑冰效果。结果表明,载流子Z1的热膨胀系数为正,在−30℃~−10℃温度范围内变化不大。在−10℃~0℃温度范围内,热膨胀系数为负,具有负热膨胀特性。在0℃~60℃时,其热膨胀系数先增大后减小。在低温阶段,盐的析出量随着温度的降低而减少。在电导率试验中,0℃时的电导率大于- 5℃时的电导率,且远大于10℃时的电导率,观察到负热膨胀系数的存在对融冰抑冰材料的析出有特定的影响。此外,随着温度的升高,盐的析出量增加。而当温度高于35℃时,由于载体的热膨胀特性,融冰抑冰材料体积的膨胀相对有限,导致融冰抑冰构件的降水率与35℃时相比没有明显增加。
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来源期刊
Science of Advanced Materials
Science of Advanced Materials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
自引率
11.10%
发文量
98
审稿时长
4.4 months
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