Lu Songwei, Zhao Yuejun, Hellerman Edward A P
Coatings Innovation Center, PPG Industries, Inc., 4325 Rosanna Drive, Allison Park, PA, 15101, USA.
Sci Rep. 2024 Apr 5;14(1):8066. doi: 10.1038/s41598-024-58549-y.
A key technology to ensure the safety and accuracy of autonomous driving for future transportation is the cleanliness of the sensor surfaces for accurate signal reading. This study focuses on hydrophobic coatings with self-cleaning performances and UV durability, their possible degradation mechanism of static water contact angle (sWCA), and the effect of the hydrophobic surface on camera image quality. The UV-durable hydrophobic coatings are applied by a spray process followed by a thermal curing. The UV-durable hydrophobic coatings are evaluated on a vision camera under lab-simulated weathering conditions such as rain, mud, fog, and bugs, on samples as-prepared and after various hours of Weather-Ometer® weathering. The results indicate that the sWCA degradation of the UV-durable hydrophobic coatings during accelerated weathering is corresponding to the loss of fluorine (F) atomic percentage in the coatings, and the vision camera imaging quality improves significantly with the UV-durable hydrophobic coatings in comparison to an uncoated surface. The self-cleaning performances of the UV-durable hydrophobic coatings, as measured by two metrics using signal-to-noise ratio and modulation transfer function 50 loss (MTF50), linearly correlate with sWCA of the coatings. The UV-durable hydrophobic coatings on the sensor surface will significantly benefit autonomous driving specifically for accurate signal reading under inclement weather.
确保未来交通运输自动驾驶安全性和准确性的一项关键技术是传感器表面的清洁度,以实现准确的信号读取。本研究聚焦于具有自清洁性能和紫外线耐久性的疏水涂层、其静态水接触角(sWCA)可能的降解机制以及疏水表面对相机图像质量的影响。通过喷涂工艺然后热固化来施加紫外线耐久性疏水涂层。在实验室模拟的诸如雨、泥、雾和虫子等气候条件下,对制备好的样品以及经过不同时长的老化试验箱老化后的样品,在视觉相机上评估紫外线耐久性疏水涂层。结果表明,加速老化过程中紫外线耐久性疏水涂层的sWCA降解与涂层中氟(F)原子百分比的损失相对应,并且与未涂层表面相比,带有紫外线耐久性疏水涂层的视觉相机成像质量显著提高。通过使用信噪比和调制传递函数50损失(MTF50)这两个指标测量的紫外线耐久性疏水涂层的自清洁性能与涂层的sWCA呈线性相关。传感器表面的紫外线耐久性疏水涂层将显著有益于自动驾驶,特别是在恶劣天气下进行准确的信号读取。