Krzyzak Aneta, Kosicka Ewelina, Borowiec Marek, Szczepaniak Robert
Department of Airframe and Engine, Military University of Aviation, 80-521 Dęblin, Poland.
Department of Production Engineering, Lublin University of Technology, 20-618 Lublin, Poland.
Materials (Basel). 2020 Mar 18;13(6):1364. doi: 10.3390/ma13061364.
The revolution in the global market of composite materials is evidenced by their increasing use in such segments as the transport, aviation, and wind industries. The innovative aspect of this research is the methodology approach, based on the simultaneous analysis of mechanical and tribological loads of composite materials, which are intended for practical use in the construction of aviation parts. Simultaneously, the methodology allows the composition of the composites used in aviation to be optimized. Therefore, the presented tests show the undefined properties of the new material, which are necessary for verification at the application stage. They are also a starting point for further research planned by the authors related to the improvement of the tribological properties of this material. In this article, the selected mechanical and tribological properties of an aviation polymer composite are investigated with the matrix of L285-cured hardener H286 and six reinforcement layers of carbon fabric GG 280P/T. The structure of a polymer composite has a significant influence on its mechanical properties; thus, a tribological analysis in the context of abrasive wear in reciprocating the movement for the specified polymer composite was performed. Moreover, the research was expanded to dynamic analysis for the discussed composite. This is crucial knowledge of material dynamics in the context of aviation design for the conditions of resonance vibrations. For this reason, experimental dynamical investigations were performed to determine the basic resonance of the material and its dynamics behavior response. The research confirmed the assumed hypotheses related to the abrasive wear process for the newly developed material, as well as reporting an empirical evaluation of the dependencies of the resonance zone from the fabric orientation sets.
复合材料在全球市场的变革体现在其在运输、航空和风力行业等领域的使用日益增加。本研究的创新之处在于方法论,它基于对复合材料机械和摩擦学载荷的同步分析,这些复合材料旨在实际用于航空部件的制造。同时,该方法论能优化航空用复合材料的成分。因此,所展示的测试表明了新材料的未定义特性,这些特性在应用阶段进行验证是必要的。它们也是作者计划进行的与改善该材料摩擦学性能相关的进一步研究的起点。在本文中,对一种航空聚合物复合材料的选定机械和摩擦学性能进行了研究,该复合材料以L285固化剂H286为基体,有六层GG 280P/T碳纤维织物增强。聚合物复合材料的结构对其机械性能有重大影响;因此,针对指定的聚合物复合材料,在往复运动的磨料磨损背景下进行了摩擦学分析。此外,研究扩展到了对所讨论复合材料的动态分析。在航空设计的共振振动条件下,这是关于材料动力学的关键知识。出于这个原因,进行了实验动力学研究以确定材料的基本共振及其动力学行为响应。研究证实了与新开发材料的磨料磨损过程相关的假设,同时报告了共振区与织物取向集之间相关性的实证评估。