Air-coupled Ultrasonic Inspection of Thermoplastic Composite Structures for Aerospace Vehicles

Armin M A Huber
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Abstract

Composites have become the most important type of material used in the manufacturing of aerospace vehicle components. One focus of the German Aerospace Center is to develop cost-efficient manufacturing processes for large-scale composite components such as liquid hydrogen tanks, rocket booster pressure vessels, and aircraft fuselages. To enable a high degree of automation in the manufacturing, robot-assisted tape-laying processes with flash lamp consolidation of thermoplastic prepregs are preferred. Nondestructive inspection is crucial to monitor manufacturing quality, and various forms of ultrasonic inspection have become standard. Air-coupled ultrasonic inspection is applied at the German Aerospace Center, and since access to the component is usually available only from one side, Lamb waves are excited and detected in focused slanted reflection mode. Like the manufacturing process, air-coupled ultrasonic inspection has been automated as well to avoid a significant pause during or after manufacturing. The paper demonstrates the robot-assisted air-coupled ultrasonic inspection of a liquid hydrogen tank. The robotic program is generated using offline programming software, based on the topography of a CAD model of the hydrogen tank. The inspection is carried out by scanning the component while ultrasonic pulses are triggered on a regular grid. The ultrasonic A-scans together with the measurement coordinates are monitored simultaneously. The data are used to generate and evaluate a three-dimensional C-scan.
航空航天飞行器热塑性复合材料结构的空气耦合超声检测
复合材料已成为制造航天飞行器部件中最重要的材料类型。德国航空航天中心的重点之一是开发液氢罐、火箭助推器压力容器、飞机机身等大型复合材料部件的低成本制造工艺。为了在制造中实现高度自动化,机器人辅助的热塑性预浸料的闪光灯固化胶带铺设工艺是首选。无损检测是监控制造质量的关键,各种形式的超声检测已成为标准。空气耦合超声检查应用于德国航空航天中心,由于通常只能从一侧进入组件,因此兰姆波被激发并以聚焦倾斜反射模式检测。与制造过程一样,空气耦合超声检测也已实现自动化,以避免在制造过程中或之后出现明显的停顿。介绍了机器人辅助空气耦合超声检测液氢罐的方法。机器人程序是基于氢罐CAD模型的地形,使用离线编程软件生成的。检查是通过扫描组件,同时在规则网格上触发超声波脉冲来进行的。同时监测超声a扫描和测量坐标。这些数据用于生成和评估三维c扫描。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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