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SMART STRUCTURE INTEGRATION THROUGH ULTRASONIC ADDITIVE MANUFACTURING

机译:通过超声波增材制造实现智能结构集成

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Ultrasonic additive manufacturing (UAM), a form of 3D printing based on ultrasonic metal welding, allows for room-temperature fabrication of adaptive structures with seamlessly embedded sensors and actuators. UAM combines solid-state welding of metallic foils, automated additive foil layering, and CNC machining. The most recent UAM systems utilize 9 kW of ultrasonic power for improved build strength and quality over low power systems, leading to previously unfeasible smart structures. Current UAM efforts in this area are focused on embedding smart materials, fiber optics, and cooling channels into metallic matrices. Since UAM process temperatures do not exceed one half of the melting temperature of the matrix, various alloys such as NiTi and FeGa, and polymers such as PVDF, have been successfully embedded without degradation of the smart material or the matrix. This paper aims to demonstrate the benefits of UAM, with particular emphasis on smart components for vehicle design. Example concepts include stiffness-tunable structures, thermally invariant composites, and materials with embedded cooling channels.
机译:超声波增材制造(UAM)是一种基于超声波金属焊接的3D打印形式,可在室温下制造具有无缝嵌入式传感器和执行器的自适应结构。 UAM结合了金属箔的固态焊接,自动添加剂箔分层和CNC加工。最新的UAM系统利用9 kW的超声波功率,与低功率系统相比,可提高构建强度和质量,从而导致以前无法实现的智能结构。 UAM当前在该领域的工作集中在将智能材料,光纤和冷却通道嵌入金属基质中。由于UAM工艺温度不超过基体熔化温度的一半,因此成功嵌入了各种合金(如NiTi和FeGa)和聚合物(如PVDF),而不会降低智能材料或基体的质量。本文旨在证明UAM的优势,特别强调用于车辆设计的智能组件。示例概念包括刚度可调结构,热不变复合材料以及具有嵌入式冷却通道的材料。

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