...
首页> 外文期刊>Surface & Coatings Technology >Microstructure design and mechanical properties of thermal barrier coatings with layered top and bond coats
【24h】

Microstructure design and mechanical properties of thermal barrier coatings with layered top and bond coats

机译:具有多层面漆和粘结层的热障涂层的微观结构设计和力学性能

获取原文
获取原文并翻译 | 示例
           

摘要

The microstructure of layered thermal barrier coatings (TBCs) with three coating layers in the bond and top coats, respectively, prepared using a specialized coating system (TriplexPro?-200), was controlled and its mechanical properties were investigated, which were then compared with the common TBCs with a single layer in each coat. The bond and top coats were coated with 100 and 200μm for each feedstock, resulting in 300 and 600μm thicknesses in the bond and top coats, respectively. The microstructure of the top coat could be controlled by changing the feedstock and using a multiple hopper system-dense/intermediate/porous layers from surface to interface or reverse microstructure. In the case of the bond coat, a compositional gradient was achieved. The adhesive strength values of the top coats were strongly dependent on the microstructure, whereas the values for the bond coat were similar. The hardness and toughness values gradually changed from surface to interface, indicating that the mechanical properties corresponded well with the microstructure of the TBCs. The indentation stress-strain curves of both TBCs with the layered structure were located between the curves for TBCs with the single structure of relatively dense and porous microstructures. Damage on the surface and subsurface was strongly affected by the microstructure of the top coat, showing a similar trend with the stress-strain behavior. This evidence allowed us to propose an efficient coating in protecting the substrate from mechanical environments.
机译:控制了使用专用涂层系统(TriplexPro?-200)制备的分别在粘结层和面漆中具有三层涂层的层状热障涂层(TBC)的微观结构,并研究了其机械性能,然后将其与常见的TBC,每层都有一层。每种原料的粘结层和面漆分别涂有100和200μm,导致粘结层和面漆的厚度分别为300和600μm。面漆的微观结构可以通过改变原料和使用多个料斗系统来控制,即从表面到界面的致密/中间/多孔层或反向微观结构。在粘结涂层的情况下,达到了组成梯度。面漆的粘合强度值在很大程度上取决于微观结构,而粘结层的值相似。硬度和韧性值从表面到界面逐渐变化,表明机械性能与TBC的微观结构非常吻合。具有层状结构的两个TBC的压痕应力-应变曲线位于具有相对致密和多孔的微结构的单个结构的TBC的曲线之间。表面和亚表面的损伤受到面漆微观结构的强烈影响,与应力-应变行为表现出相似的趋势。这些证据使我们能够提出一种有效的涂层来保护基材免受机械环境的影响。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号