Optimizing Interfaces in Laser-Brazed Ceramic-Stainless Steel Joints for Hydrothermal Sensors through Finite-Element Modeling

IF 2.2 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Jian Feng, Marion Herrmann, Anne-Maria Reinecke, Antonio Hurtado
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引用次数: 0

Abstract

The development of reliable joining techniques for ceramics and metals is crucial for energy applications, such as fuel cells, nuclear reactors, and high-temperature sensors, most especially for the sealing of hydrothermal sensors to study multiphase flows. However, during one-step active laser brazing it is a serious problem that a high thermal stress concentration can occur at the joint interfaces or on the ceramic side of the joint due to mismatches between the CTEs (coefficients of thermal expansion) and/or elastic constants. The uncontrolled thermal residual stress can lead to cracks and defects in the brazement. In the present work, an elastoplastic finite element method/numerical model was formulated to study the thermal residual stresses developed in the brazement between ceramics and austenitic stainless steel during cooling in active laser brazing. Calculations and comparison experiments were conducted to validate the simulated stress distribution in un-patterned ceramics. Stress analyses were conducted for planar and cylindrical specimen geometries (lab joints) relevant for miniaturized energy sensors. Laser interface patterning was employed to create micro-scale features on ceramic interfaces that reduce thermal stress concentrations. The optimization of the interface designing parameters including hatch size, structure width, pattern depth and metal/ceramic thickness ratio was performed using the Taguchi method with orthogonal arrays. The study suggests that laser interface structuring can modify thermal residual stresses in ceramic-to-metal brazements, thereby increasing the reliability of active brazing joints.

Abstract Image

通过有限元建模优化用于水热传感器的激光钎焊陶瓷-不锈钢接头界面
为陶瓷和金属开发可靠的连接技术对于燃料电池、核反应堆和高温传感器等能源应用至关重要,尤其是对于密封研究多相流的水热传感器而言。然而,在一步法主动激光钎焊过程中,一个严重的问题是,由于热膨胀系数和/或弹性常数之间的不匹配,会在接合界面或接合处的陶瓷侧产生高热应力集中。失控的热残余应力会导致钎焊出现裂缝和缺陷。本研究采用弹塑性有限元方法/数值模型来研究主动激光钎焊中陶瓷和奥氏体不锈钢钎焊冷却过程中产生的热残余应力。通过计算和对比实验,验证了无图案陶瓷中的模拟应力分布。对与微型能量传感器相关的平面和圆柱形试样几何形状(实验室接头)进行了应力分析。采用激光界面图案化技术在陶瓷界面上创建微尺度特征,以减少热应力集中。采用正交阵列田口方法对界面设计参数进行了优化,包括舱口尺寸、结构宽度、图案深度和金属/陶瓷厚度比。研究表明,激光界面结构可改变陶瓷-金属钎焊中的热残余应力,从而提高活性钎焊接头的可靠性。
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来源期刊
Journal of Materials Engineering and Performance
Journal of Materials Engineering and Performance 工程技术-材料科学:综合
CiteScore
3.90
自引率
13.00%
发文量
1120
审稿时长
4.9 months
期刊介绍: ASM International''s Journal of Materials Engineering and Performance focuses on solving day-to-day engineering challenges, particularly those involving components for larger systems. The journal presents a clear understanding of relationships between materials selection, processing, applications and performance. The Journal of Materials Engineering covers all aspects of materials selection, design, processing, characterization and evaluation, including how to improve materials properties through processes and process control of casting, forming, heat treating, surface modification and coating, and fabrication. Testing and characterization (including mechanical and physical tests, NDE, metallography, failure analysis, corrosion resistance, chemical analysis, surface characterization, and microanalysis of surfaces, features and fractures), and industrial performance measurement are also covered
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