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    陶莹, 马壮, 孙方红, 李凌医, 李智超. 以粉煤灰和Al-TiO2-B2O3为原料制备玻璃/陶瓷复合涂层的组织及耐磨性能[J]. 机械工程材料, 2014, 38(9): 29-33.
    引用本文: 陶莹, 马壮, 孙方红, 李凌医, 李智超. 以粉煤灰和Al-TiO2-B2O3为原料制备玻璃/陶瓷复合涂层的组织及耐磨性能[J]. 机械工程材料, 2014, 38(9): 29-33.
    TAO Ying, MA Zhuang, SUN Fang-hong, LI Ling-yi, LI Zhi-chao. Microstructure and Abrasive Resistance of Glass-Ceramic Composite Coatings from Fly Ash and Al-TiO2-B2O3[J]. Materials and Mechanical Engineering, 2014, 38(9): 29-33.
    Citation: TAO Ying, MA Zhuang, SUN Fang-hong, LI Ling-yi, LI Zhi-chao. Microstructure and Abrasive Resistance of Glass-Ceramic Composite Coatings from Fly Ash and Al-TiO2-B2O3[J]. Materials and Mechanical Engineering, 2014, 38(9): 29-33.

    以粉煤灰和Al-TiO2-B2O3为原料制备玻璃/陶瓷复合涂层的组织及耐磨性能

    Microstructure and Abrasive Resistance of Glass-Ceramic Composite Coatings from Fly Ash and Al-TiO2-B2O3

    • 摘要: 以粉煤灰为主要原料, 并添加质量分数为10%的Al-TiO2-B2O3, 采用热化学反应法在Q235钢基体上制备了玻璃/陶瓷复合涂层(放热体系涂层), 研究了该涂层的物相组成、截面形貌、抗热震性能、显微硬度以及耐磨性能; 并制备了不添加Al-TiO2-B2O3的常规粉煤灰玻璃/陶瓷复合涂层作为对比涂层。结果表明: 放热体系涂层中产生了NaB15、TiB2、Na2B4O7、Ca2Al2SiO7等新相, 涂层界面结合良好, 显微硬度最高可达到700 HV0.1, 在700 ℃室温的热震次数可达50次以上; 其耐磨性能相对Q235钢和常规玻璃/陶瓷涂层的分别提高了9.67倍和0.63倍。

       

      Abstract: Using fly ash and ten percent of Al-TiO2-B2O3 powders as raw materials, the glass-ceramic composite coating was prepared on the substrate of Q235 steel by thermal-chemical reaction method, which was named coating with exothermic chemical system, and its phase, cross section morphology, thermal shock resistance, microhardness and abrasive resistance were studied. In addition, a ordinal glass-ceramic composite coating from fly ash without Al-TiO2-B2O3 as contrastive coating was prepared. The results indicate that some new phases, such as NaB15, TiB2, Na2B4O7 and Ca2Al2SiO7 were found in the coating with exothermic chemical system, and the coating had better bond strength, and its maximum microhardness could reach 700 HV0.1. The number of thermal shock resistance from 700 ℃ to room temperature could reach more than 50 times.Compared with the Q235 steel and the ordinal coating, the abrasive resistance of the coating with exothermic chemical system increased 9.67 times and 0.63 times, respectively.

       

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