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A Novel Design Approach for Self-Crack-Healing Structural Ceramics with 3D Networks of Healing Activator

机译:具有修复活化剂3D网络的自裂纹修复结构陶瓷的新设计方法

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摘要

Self-crack-healing by oxidation of a pre-incorporated healing agent is an essential property of high-temperature structural ceramics for components with stringent safety requirements, such as turbine blades in aircraft engines. Here, we report a new approach for a self-healing design containing a 3D network of a healing activator, based on insight gained by clarifying the healing mechanism. We demonstrate that addition of a small amount of an activator, typically doped MnO localised on the fracture path, selected by appropriate thermodynamic calculation significantly accelerates healing by >6,000 times and significantly lowers the required reaction temperature. The activator on the fracture path exhibits rapid fracture-gap filling by generation of mobile supercooled melts, thus enabling efficient oxygen delivery to the healing agent. Furthermore, the activator promotes crystallisation of the melts and forms a mechanically strong healing oxide. We also clarified that the healing mechanism could be divided to the initial oxidation and additional two stages. Based on bone healing, we here named these stages as inflammation, repair, and remodelling stages, respectively. Our design strategy can be applied to develop new lightweight, self-healing ceramics suitable for use in high- or low-pressure turbine blades in aircraft engines.
机译:预先掺入的固化剂的氧化引起的自裂纹修复是高温结构陶瓷的基本特性,适用于具有严格安全要求的部件,例如飞机发动机中的涡轮叶片。在这里,我们根据澄清治疗机制获得的见解,报告了一种包含修复激活剂3D网络的自我修复设计的新方法。我们证明,通过适当的热力学计算选择的少量活化剂(通常是掺杂在骨折路径上的掺杂MnO)可显着加速愈合> 6,000倍,并显着降低所需的反应温度。断裂路径上的活化剂通过产生流动的过冷熔体表现出快速的裂隙填充,因此能够将氧气有效地输送到愈合剂中。此外,活化剂促进熔体的结晶并形成机械强度高的修复氧化物。我们还阐明了其修复机制可以分为初始氧化阶段和另外两个阶段。基于骨骼愈合,我们在这里将这些阶段分别称为炎症,修复和重塑阶段。我们的设计策略可用于开发适用于飞机发动机的高压或低压涡轮叶片的新型轻质自修复陶瓷。

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