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首页> 外文期刊>Surface & Coatings Technology >High temperature corrosion resistance of silicate based nanostructured thermal barrier coatings using Al2O3-(Y2O3) ZrO2/SiO2 nanocomposite
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High temperature corrosion resistance of silicate based nanostructured thermal barrier coatings using Al2O3-(Y2O3) ZrO2/SiO2 nanocomposite

机译:Al2O3-(Y2O3)ZrO2 / SiO2纳米复合材料的硅酸盐纳米结构热障涂层的耐高温腐蚀性能

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In this study, amorphous nanocomposite of Al2O3-(Y2O3) ZrO2/SiO2 was used for multilayer nanostructured thermal barrier coatings (TBCs) on SS 316L specimens. Thermal stability of the TBCs was investigated in terms of direct heat treatment, isothermal cyclic oxidation, and hot corrosion molten salt (50 V2O5 + 25 Na2SO4 + 25 NaCl) wt.% at different temperatures (800, 900 and 1000 degrees C) for 100 h. The X-ray diffraction patterns for the heat-treated and hot corrosion-tested specimens showed the stable structural phase composition of t-ZrO2, Al2SiO5, ZrSiO4, and Y2SiO5 with an absence of m-ZrO2. Similarly, the scanning electron microscopic images showed dense and crack-free surface coating with a random porosity. However, the molten salt-deposited specimen at 1000 degrees C showed the surface deformation with cracks and patches. In addition, Brunauer-Emmett-Teller surface area and pore size distribution values of TBCs were in the range of 634-493 m(2)g(-1) and 2.64-2.49 nm, respectively. The rate of TBC oxidation was found to increase with an increase in temperature and resulted in a cyclic oxidation which has higher oxidation resistance those of hot corrosion. The elastic properties of TBCs were investigated by nanoindentation technique where average hardness (H) and elastic modulus (Er) were in the range of 16.36 +/- 0.03 to 21.67 +/- 0.02 GPa and 70.01 +/- 0.07 to 62.87 +/- 0.09 GPa, respectively, whereas the same for molten salt -tested specimen, it was decreased in their range from 14.88 +/- 0.12 to 14.04 +/- 0.29 GPa and 75.81 +/- 030 to 92.80 +/- 0.21 GPa, respectively. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项研究中,将Al2O3-(Y2O3)ZrO2 / SiO2的非晶纳米复合材料用于SS 316L标本上的多层纳米结构热障涂层(TBC)。根据直接热处理,等温循环氧化和热腐蚀熔融盐(50 V2O5 + 25 Na2SO4 + 25 NaCl)wt。%在不同温度(800、900和1000摄氏度)下100的温度下研究TBC的热稳定性H。经热处理和热腐蚀测试的样品的X射线衍射图显示t-ZrO2,Al2SiO5,ZrSiO4和Y2SiO5的结构相组成稳定,而没有m-ZrO2。类似地,扫描电子显微镜图像显示出具有随机孔隙率的致密且无裂纹的表面涂层。然而,在1000℃下沉积的熔融盐样品显示出具有裂纹和斑点的表面变形。此外,TBC的Brunauer-Emmett-Teller表面积和孔径分布值分别在634-493 m(2)g(-1)和2.64-2.49 nm之间。发现TBC氧化速率随温度的升高而增加,并导致循环氧化,其具有比热腐蚀更高的抗氧化性。通过纳米压痕技术研究了TBC的弹性性能,平均硬度(H)和弹性模量(Er)在16.36 +/- 0.03至21.67 +/- 0.02 GPa和70.01 +/- 0.07至62.87 +/-的范围内分别为0.09 GPa和熔融盐测试标本的相同,但其范围分别从14.88 +/- 0.12至14.04 +/- 0.29 GPa和75.81 +/- 030降至92.80 +/- 0.21 GPa。 (C)2016 Elsevier B.V.保留所有权利。

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