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首页> 外文期刊>Surface & Coatings Technology >The effects of heat treatment and gas atmosphere on the thermal conductivity of APS and EB-PVD PYSZ thermal barrier coatings
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The effects of heat treatment and gas atmosphere on the thermal conductivity of APS and EB-PVD PYSZ thermal barrier coatings

机译:热处理和气体气氛对APS和EB-PVD PYSZ热障涂层导热系数的影响

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摘要

The effects of heat treatment and gas atmosphere on thermal conductivity of atmospheric plasma sprayed (APS) and electron beam physical vapor deposited (EB-PVD) partially Y2O3 stabilized ZrO2 (PYSZ) thermal barrier coatings (TBCs) were investigated. Two-layer samples that had an EB-PVD coating deposited on bond coated nickel-base superalloy IN625 substrates, free-standing APS and EB-PVD coatings as well as a quasi-free-standing EB-PVD PYSZ coating (coating on semitransparent sapphire) were included in the study. Thermal diffusivity measurements for determining thermal conductivity were made from room temperature up to 1150 °C in vacuum and under argon gas using the laser flash technique. To investigate the effect of heat treatment on thermal conductivity, coatings were annealed at 1100 °C in air. For both the APS and EB-PVD PYSZ coatings the first 100 h heat treatment caused a significant increase in thermal conductivity that can be attributed to microstructural changes caused by sintering processes. Compared to the measurements in vacuum, the thermal conductivity of APS coatings increased by about 10% under argon gas at atmospheric pressure, whereas for the EB-PVD coatings, the influence of gas on thermal conductivity was relatively small. The effect of gas on the thermal conductivity of APS and EB-PVD PYSZ coatings can be attributed to amount, shape, and spatial arrangement of pores in the coating material.
机译:研究了热处理和气体气氛对大气等离子喷涂(APS)和电子束物理气相沉积(EB-PVD)部分Y2O3稳定的ZrO2(PYSZ)热障涂层(TBC)的热导率的影响。两层样品的EB-PVD涂层沉积在粘结涂层的镍基高温合金IN625基底上,独立式APS和EB-PVD涂层,以及准独立式EB-PVD PYSZ涂层(半透明蓝宝石涂层) )纳入研究。用于确定热导率的热扩散率测量是在室温下,在高达1150°C的真空和氩气下,使用激光闪光技术进行的。为了研究热处理对热导率的影响,将涂层在1100°C的空气中退火。对于APS和EB-PVD PYSZ涂层,最初的100 h热处理导致热导率显着提高,这可以归因于烧结过程引起的微观结构变化。与真空中的测量相比,在氩气和大气压下,APS涂层的热导率提高了约10%,而对于EB-PVD涂层,气体对热导率的影响相对较小。气体对APS和EB-PVD PYSZ涂层的热导率的影响可归因于涂层材料中孔隙的数量,形状和空间排列。

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