Zheng Zhao, Ma Yao, Wang Zhonghe, Liu Siqi, Wu Chunting
Jilin Key Laboratory of Solid-State Laser Technology and Application, Changchun University of Science and Technology, Changchun 130022, China.
Polymers (Basel). 2024 Sep 14;16(18):2603. doi: 10.3390/polym16182603.
Carbon fiber-reinforced polymer (CFRP), known for its light weight, high strength, and corrosion-resistant properties, is extensively used in the lightweight design of satellite components, the optimization of electronic device casings, and the processing of high-performance composite materials in the defense sector. This study employs picosecond laser drilling technology for the precision machining of CFRP, demonstrating its advantages over traditional mechanical drilling and other unconventional methods in significantly reducing the heat-affected zone (HAZ) and enhancing hole wall quality. The optimization of laser power, scanning speed, and fill times via response surface methodology (RSM) significantly reduced the hole wall taper to 4.160° and confined the HAZ to within 18.577 μm, thereby enhancing machining precision. The actual test results show that the deviations in the hole taper and HAZ width were 5.0% and 2.2%, respectively, further verifying the effectiveness of the optimization method. This technique not only improves processing quality but also offers significant industrial application value in the machining of materials for related high-tech fields.
碳纤维增强聚合物(CFRP)以其重量轻、强度高和耐腐蚀性能而闻名,广泛应用于卫星部件的轻量化设计、电子设备外壳的优化以及国防领域高性能复合材料的加工。本研究采用皮秒激光钻孔技术对CFRP进行精密加工,证明了其在显著减少热影响区(HAZ)和提高孔壁质量方面优于传统机械钻孔和其他非常规方法。通过响应面法(RSM)对激光功率、扫描速度和填充时间进行优化,显著降低了孔壁锥度至4.160°,并将热影响区限制在18.577μm以内,从而提高了加工精度。实际测试结果表明,孔锥度和热影响区宽度的偏差分别为5.0%和2.2%,进一步验证了优化方法的有效性。该技术不仅提高了加工质量,而且在相关高科技领域的材料加工中具有重要的工业应用价值。