The systematic investigation of the mechanical properties and microstructure evolution process of ultra-thin-walled Inconel 718 capillary brazing joints is of great significance because of the exceptionally high deman...The systematic investigation of the mechanical properties and microstructure evolution process of ultra-thin-walled Inconel 718 capillary brazing joints is of great significance because of the exceptionally high demands on its application.To achieve this objective,this study investigates the impact of three distinct brazing temperatures and five typical grain sizes on the brazed joints’mechanical properties and microstructure evolution process.Microstructural evolution analysis was conducted based on Electron Back Scatter Diffraction(EBSD),Scanning Electron Microscopy(SEM),X-Ray Diffraction(XRD),High-Resolution Transmission Electron Microscopy(HRTEM),and Focused Ion Beam(FIB).Besides,the mechanical properties and fracture behavior were studied based on the uniaxial tension tests and in-situ tension tests.The findings reveal that the brazing joint’s strength is higher for the fine-grain capillary than the coarse-grain one,primarily due to the formation of a dense branch structure composed of G-phase in the brazing seam.The effects of grain size,such as pinning and splitting,are amplified at higher brazing temperatures.Additionally,micro-cracks initiate around brittle intermetallic compounds and propagate through the eutectic zone,leading to a cleavage fracture mode.The fracture stress of fine-grain specimens is higher than that of coarse-grain due to the complex micro-crack path.Therefore,this study contributes significantly to the literature by highlighting the crucial impact of grain size on the brazing properties of ultra-thin-walled Inconel 718 structures.展开更多
针对光纤直接探测声波时灵敏度低的问题,提出一种超弱光纤光栅缠绕式薄壁圆筒的声波传感探头增敏方法。理论分析了薄壁圆筒半径、壁厚、弹性模量等参数对光纤探头声增敏的影响,仿真分析了光纤缠绕方式对探头谐振频率的影响,优化设计了...针对光纤直接探测声波时灵敏度低的问题,提出一种超弱光纤光栅缠绕式薄壁圆筒的声波传感探头增敏方法。理论分析了薄壁圆筒半径、壁厚、弹性模量等参数对光纤探头声增敏的影响,仿真分析了光纤缠绕方式对探头谐振频率的影响,优化设计了弹性管式探头的结构。搭建了基于超弱光纤光栅声波传感系统,并对探头的声敏特性进行了测试。实验结果显示,探头的声压灵敏度最高可达到6.39746 rad/Pa(-103.8798 dB re rad/μPa),在1000~2000 Hz的平均声压灵敏度为3.30341 rad/Pa(-109.6208 dB re rad/μPa);相较于未增敏的裸光纤,探头的平均声压灵敏度提高了约31 dB。展开更多
基金co-supported by the National Natural Science Foundation of China(No.52105316)the National Natural Foundation of Jiangxi,China(No.2021BAB214046)+1 种基金the Fundamental Research Funds for the Central Universities,China(No.501LKQB2022107021)Young Elite Scientists Sponsorship Program by the China Association for Science and Technology(No.YESS20200397)。
文摘The systematic investigation of the mechanical properties and microstructure evolution process of ultra-thin-walled Inconel 718 capillary brazing joints is of great significance because of the exceptionally high demands on its application.To achieve this objective,this study investigates the impact of three distinct brazing temperatures and five typical grain sizes on the brazed joints’mechanical properties and microstructure evolution process.Microstructural evolution analysis was conducted based on Electron Back Scatter Diffraction(EBSD),Scanning Electron Microscopy(SEM),X-Ray Diffraction(XRD),High-Resolution Transmission Electron Microscopy(HRTEM),and Focused Ion Beam(FIB).Besides,the mechanical properties and fracture behavior were studied based on the uniaxial tension tests and in-situ tension tests.The findings reveal that the brazing joint’s strength is higher for the fine-grain capillary than the coarse-grain one,primarily due to the formation of a dense branch structure composed of G-phase in the brazing seam.The effects of grain size,such as pinning and splitting,are amplified at higher brazing temperatures.Additionally,micro-cracks initiate around brittle intermetallic compounds and propagate through the eutectic zone,leading to a cleavage fracture mode.The fracture stress of fine-grain specimens is higher than that of coarse-grain due to the complex micro-crack path.Therefore,this study contributes significantly to the literature by highlighting the crucial impact of grain size on the brazing properties of ultra-thin-walled Inconel 718 structures.
文摘针对光纤直接探测声波时灵敏度低的问题,提出一种超弱光纤光栅缠绕式薄壁圆筒的声波传感探头增敏方法。理论分析了薄壁圆筒半径、壁厚、弹性模量等参数对光纤探头声增敏的影响,仿真分析了光纤缠绕方式对探头谐振频率的影响,优化设计了弹性管式探头的结构。搭建了基于超弱光纤光栅声波传感系统,并对探头的声敏特性进行了测试。实验结果显示,探头的声压灵敏度最高可达到6.39746 rad/Pa(-103.8798 dB re rad/μPa),在1000~2000 Hz的平均声压灵敏度为3.30341 rad/Pa(-109.6208 dB re rad/μPa);相较于未增敏的裸光纤,探头的平均声压灵敏度提高了约31 dB。