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IR-based Spot Weld NDT in Automotive Applications

机译:汽车应用中基于红外的点焊无损检测

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Today's auto industry primarily relies on destructive teardown evaluation to ensure the quality of the resistance spot welds (RSWs) due to their criticality in crash resistance and performance of vehicles. The destructive teardown evaluation is labor intensive and costly. The very nature of the destructive test means only a few selected welds will be sampled for quality. Most of the welds in a car are never checked. There are significant costs and risks associated with reworking and scrapping the defective welded parts made between the teardown tests. IR thermography as a non-destructive testing (NDT) tool has its distinct advantage - its non-intrusive and non-contact nature. This makes the IR based NDT especially attractive for the highly automated assembly lines. IR for weld quality inspection has been explored in the past, mostly limited to the offline post-processing manner in a laboratory environment. No online real-time RSW inspection using IR thermography has been reported. Typically for postprocessing inspection, a short-pulse heating via xenon flash lamp light (in a few milliseconds) is applied to the surface of a spot weld. However, applications in the auto industry have been unsuccessful, largely due to a critical drawback that cannot be implemented in the high-volume production line - the prerequisite of painting the weld surface to eliminate surface reflection and other environmental interference. This is due to the low signal-to-noise ratio resulting from the low/unknown surface emissivity and the very small temperature changes (typically on the order of 0.1 ℃) induced by the flash lamp method. An integrated approach consisting of innovations in both data analysis algorithms and hardware apparatus that effectively solved the key technical barriers for IR NDT. The system can be used for both real-time (during welding) and post-processing inspections (after welds have been made). First, we developed a special IR thermal image processing method that utilizes the relative IR intensity change, so that the influence of surface reflection and environment interference can be reduced. Second, for the post-processing inspection, a special induction heater is used to replace the flash lamp, resulting in temperature changes on the order of 10℃. As a result, the signal-to-noise ratio increased by several orders of magnitudes with no surface painting needed, and the inspection results are more accurate and reliable. For real-time inspection, the heat from welding (with temperature exceeding 1000℃) was utilized. Third, "thermal signatures" were identified to uniquely correlate to different weld quality attributes through computational modeling of heat transfer and extensive testing of specially designed ranges of welding conditions. Novel IR image analysis algorithms that automatically and intelligently identify the "thermal signatures" from the IR images and positively determine the weld quality in less than a second were developed.
机译:当今的汽车行业主要依靠破坏性的拆解评估来确保电阻点焊(RSW)的质量,因为它们在防撞性能和车辆性能方面至关重要。破坏性的拆机评估需要大量劳动并且成本很高。破坏性测试的本质是,仅对少数几个选定的焊缝进行抽样以确保质量。绝不检查汽车中的大多数焊缝。在拆解测试之间重新焊接和报废有缺陷的焊接零件会产生巨大的成本和风险。红外热成像作为一种非破坏性测试(NDT)工具具有其独特的优势-它具有非侵入性和非接触性。这使得基于IR的NDT对于高度自动化的装配线特别有吸引力。过去已经探索了用于焊接质量检查的IR,主要限于实验室环境中的离线后处理方式。尚未报告使用红外热成像的在线实时RSW检查。通常用于后处理检查,通过氙气闪光灯的光进行短脉冲加热(几毫秒内)到点焊表面。但是,在汽车工业中的应用并不成功,这在很大程度上是由于无法在大批量生产线中实现的关键缺陷,即对焊接表面进行喷漆以消除表面反射和其他环境干扰的先决条件。这是由于低/未知的表面发射率和闪光灯方法引起的很小的温度变化(通常在0.1℃左右)导致信噪比低。一种集成方法,由数据分析算法和硬件设备方面的创新组成,可有效解决IR NDT的关键技术障碍。该系统可用于实时(焊接过程中)和后处理检查(焊接完成后)。首先,我们开发了一种利用红外相对强度变化的特殊红外热图像处理方法,从而可以减少表面反射和环境干扰的影响。其次,在后处理检查中,使用特殊的感应加热器代替闪光灯,导致温度变化约10℃。结果,信噪比增加了几个数量级,而无需进行表面喷漆,并且检查结果更加准确可靠。为了进行实时检查,利用了焊接产生的热量(温度超过1000℃)。第三,通过热传递的计算模型和对焊接条件的特殊设计范围的广泛测试,确定了“热特征”以与不同的焊接质量属性唯一相关。开发了新颖的红外图像分析算法,该算法可自动,智能地从红外图像中识别“热信号”,并在不到一秒钟的时间内确定焊接质量。

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