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Novel In Situ Transformable Coating for Elevated-Temperature Applications

机译:用于高温应用的新型原位可变形涂层

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This article presents a new glass forming twin wire-arc thermal spray coating which is applicable to elevated temperature environments involving erosion and corrosion. When sprayed using conventional twin wire-arc spray technology, primarily amorphous coating is obtained containing an amorphous matrix with very small nanocrystalline precipitates that are less than 10 nm in size. The as-sprayed coating is found to be very hard and abrasion resistant. However, during elevated temperature exposure such as in coal-fired or biomass boiler environments, the coating may devitrify into fully nanocrystalline state consisting of α-Fe and M_2(BC)_1 phases. When this occurs the microhardness is found to increase dramatically by over 200 kg/mm~2 which leads to an increase in abrasion resistance by a factor of 3.5 with an analogous increase in erosion resistance. Due to the significance of these beneficial changes in coating behavior, the kinetics of the devitrification transformation was investigated using isothermal experiments and modeled with classical nucleation theory. Predictive behavior was then enabled through the development of a time-temperature-transformation diagram to model the devitrification transformation under specific thermal exposures, which was additionally confirmed by experimentation.
机译:本文介绍了一种新型的玻璃成型双丝电弧热喷涂涂层,该涂层适用于涉及腐蚀和腐蚀的高温环境。当使用常规的双丝电弧喷涂技术喷涂时,主要获得的非晶涂层包含非晶基质,该基质具有非常小的纳米晶体沉淀物,其尺寸小于10 nm。发现喷涂后的涂层非常坚硬且耐磨。然而,在高温暴露期间,例如在燃煤或生物质锅炉环境中,涂层可能失透成由α-Fe和M_2(BC)_1相组成的完全纳米晶态。当发生这种情况时,发现显微硬度显着增加了200 kg / mm〜2以上,这导致耐磨性提高了3.5倍,而耐蚀性也相应提高了。由于这些有益的涂层行为变化的重要性,使用等温实验研究了失透转变的动力学,并利用经典的成核理论对其进行了建模。然后通过建立时间-温度-转变图来预测行为,以对特定热暴露下的失透转变进行建模,并通过实验进一步证实了这一点。

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