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Effects of spraying parameters onto flame-sprayed glaze coating structures

机译:喷涂参数对火焰喷涂釉料涂层结构的影响

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摘要

Thanks to their design characteristics (i.e., colors, brightness, opacity, etc.) and/or physical properties (i.e., durability, low thermal conductivity, tightness, etc.), glazes find numerous applications, from art ornamenting to protection against corrosion. Glazing consists in coating a substrate by fusing various mineral substances over it. This is a low cost process and hence can be applied on large surfaces. Conventional glazing process needs a relatively high temperature treatment (i.e., up to 1400 degrees C) that heat-sensitive substrates do not sustain. Thermal spraying may be a good solution to prevent the substrate from thermal degradation. Flame spraying was considered as the spray technique due to its low operating cost and the possibility to adapt the glaze transition temperature to the operating parameters. When spraying glazes, the coating fort-nation mechanism is different from the one encountered with crystallized ceramic materials. Indeed, the high surface tension of those feedstock prevents the particles from being totally spread (i.e., "dewetting" phenomena). Here, the coating results from the coalescence of impinging particles to form a monolayer. The effects of glaze morphology on coatings were studied in this paper. Chemical analysis also permitted to determine the influence of spray parameters on glaze compositions, that can affect glazes thermal properties and hence modify coating structures. At last, the effects of operating parameters on coating architecture were analyzed by experimental design. (C) 2008 Elsevier B.V. All rights reserved.
机译:由于其设计特征(即颜色,亮度,不透明性等)和/或物理性质(即耐用性,低导热性,密封性等),釉料有许多用途,从艺术品装饰到防腐。上光在于通过在其上融合各种矿物质来涂覆衬底。这是一种低成本的方法,因此可以应用于较大的表面。常规的上光工艺需要相对高温的处理(即高达1400摄氏度),而热敏性基板则无法承受。热喷涂可能是防止基材热降解的好方法。火焰喷涂被认为是喷涂技术,因为它的运行成本低,并且有可能使釉料转变温度适应运行参数。喷涂釉料时,涂层的强化机制不同于结晶陶瓷材料所遇到的强化机制。实际上,那些原料的高表面张力阻止了颗粒完全散布(即,“脱湿”现象)。在此,涂层是由撞击颗粒的聚结形成单层而产生的。本文研究了釉料形态对涂料的影响。化学分析还可以确定喷雾参数对釉料成分的影响,该影响会影响釉料的热性能并因此改变涂层结构。最后,通过实验设计分析了操作参数对涂料结构的影响。 (C)2008 Elsevier B.V.保留所有权利。

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