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3D shape measurement with thermal pattern projection

机译:具有热图案投影的3D形状测量

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摘要

Structured light projection techniques are well-established optical methods for contactless and nondestructive three-dimensional (3D) measurements. Most systems operate in the visible wavelength range (VIS) due to commercially available projection and detection technology. For example, the 3D reconstruction can be done with a stereo-vision setup by finding corresponding pixels in both cameras followed by triangulation. Problems occur, if the properties of object materials disturb the measurements, which are based on the measurement of diffuse light reflections. For example, there are existing materials in the VIS range that are too transparent, translucent, high absorbent, or reflective and cannot be recorded properly. To overcome these challenges, we present an alternative thermal approach that operates in the infrared (IR) region of the electromagnetic spectrum. For this purpose, we used two cooled mid-wave (MWIR) cameras (3-5 μm) to detect emitted heat patterns, which were introduced by a CO_2 laser. We present a thermal 3D system based on a GOBO (GOes Before Optics) wheel projection unit and first 3D analyses for different system parameters and samples. We also show a second alternative approach based on an incoherent (heat) source, to overcome typical disadvantages of high-power laser-based systems, such as industrial health and safety considerations, as well as high investment costs. Thus, materials like glass or fiber-reinforced composites can be measured contactless and without the need of additional paintings.
机译:结构化的光投影技术是用于非接触式和非破坏性三维(3D)测量的公认的光学方法。由于商业上可获得的投影和检测技术,大多数系统都在可见波长范围(VIS)中运行。例如,可以通过在两个摄像机中找到对应的像素,然后进行三角测量,以立体视觉设置完成3D重建。如果对象材料的属性干扰了基于漫反射反射的测量,则会出现问题。例如,VIS范围内的现有材料太透明,半透明,高吸收性或反射性,无法正确记录。为了克服这些挑战,我们提出了一种替代的热学方法,该方法在电磁频谱的红外(IR)区域中运行。为此,我们使用了两个冷却的中波(MWIR)相机(3-5μm)来检测由CO_2激光引入的散发热模式。我们介绍了一种基于GOBO(光学先驱)轮投影单元的热3D系统,以及针对不同系统参数和样本的首批3D分析。我们还展示了基于不相干(热)源的第二种替代方法,以克服基于大功率激光的系统的典型缺点,例如工业健康和安全考虑以及高投资成本。因此,无需玻璃即可测量玻璃或纤维增强复合材料之类的材料。

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