高温水冷后多壁碳纳米管混凝土动态力学性能和冲击破碎分形特征

DYNAMIC MECHANICAL PROPERTIES AND IMPACT FRACTURE FRACTAL CHARACTERISTICS OF MWCNTS CONCRETE AFTER HIGH TEMPERATURE WATER COOLING

  • 摘要: 采用分离式霍普金森压杆装置(SHPB)研究了高温后多壁碳纳米管(MWCNTs)增强混凝土(MC)的动态压缩力学性能和冲击破碎分形特征,建立了MC动态力学性能与分形维数之间的关系,讨论了MWCNTs对混凝土动态力学性能的强化机理。结果表明:随着温度的升高,MC的动态力学性能(动强度、冲击韧性和能耗)降低,冲击破碎程度增大,但在200 ℃时,MC的动态力学性能较常温下有所增大;在同一温度下,MC的应变率敏感性和动态力学性能高于普通混凝土,冲击破碎程度和分形维数则低于普通混凝土,MWCNTs的掺入有效提高了混凝土的耐高温性能和抗冲击性能;不同高温水冷方式下,MC的动态抗压强度、能耗及冲击韧性随分形维数的增大先增大后减小;此外,水冷方式对MC的动态力学性能和冲击破碎特征也具有明显影响,高温后喷淋冷却试样的各项性能都优于浸水冷却试样。

     

    Abstract: The dynamic compressive mechanical properties and impact fracture fractal characteristics of multi walled carbon nanotube (MWCNTs) reinforced concrete (MC) after high temperature were studied by split Hopkinson compression bar (SHPB). The relationship between the dynamic mechanical properties and fractal dimensions of MC was established, and the strengthening mechanism of MWCNTs on the dynamic mechanical properties of concrete was discussed. The results show that with the increase of temperature, the dynamic mechanical properties (dynamic strength, impact toughness and energy consumption) of MC decrease, and the impact crushing degree increases. However, at 200 ℃, the dynamic mechanical properties of MC increase compared with that at normal temperature. At the same temperature, the strain rate sensitivity and dynamic mechanical properties of MC are higher than those of plain concrete, while the impact crushing degree and fractal dimension are lower than those of plain concrete. The addition of MWCNTs effectively improves the high temperature resistance and impact resistance of concrete. The dynamic compressive strength, energy consumption and impact toughness of MC increase first and then decrease with the increase of fractal dimension after high temperature water cooling. In addition, the water-cooling mode also has a significant impact on the dynamic mechanical properties and impact fracture characteristics of MC. The properties of the spray-cooled specimen after high temperature are better than those of the quench-cooled specimen.

     

/

返回文章
返回