1. 中国科学院宁波材料技术与工程研究所激光极端制造研究中心,宁波,315201
2. 全省难加工材料激光极端制造重点实验室,宁波,315201
3. 中国科学院大学,北京,100049
4. 浙江工业大学机械工程学院,杭州,310023
纸质出版:2026
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王嘉乐, 陈忠安, 张广义, 等. 航空航天领域难加工材料水导激光精密加工研究进展[J]. 航空制造技术, 2026,69(4).
WANG Jiale, CHEN Zhongan, ZHANG Guangyi, et al. Waterjet-Guided Laser Precision Processing of Difficult-to-Machine Materials in Aerospace Applications: A Review[J]. Aeronautical Manufacturing Technology, 2026, 69(4).
王嘉乐, 陈忠安, 张广义, 等. 航空航天领域难加工材料水导激光精密加工研究进展[J]. 航空制造技术, 2026,69(4). DOI: 10.16080/j.issn1671-833x.25010146.
WANG Jiale, CHEN Zhongan, ZHANG Guangyi, et al. Waterjet-Guided Laser Precision Processing of Difficult-to-Machine Materials in Aerospace Applications: A Review[J]. Aeronautical Manufacturing Technology, 2026, 69(4). DOI: 10.16080/j.issn1671-833x.25010146.
随着航空航天技术的迅速发展,高强度合金、陶瓷材料、复合材料等难加工材料得到了广泛应用,但传统加工手段难以满足高质量的加工要求。水导激光加工技术因高精度和低损伤的优势,弥补了传统机械加工和激光加工中刀具磨损和热影响区较大的缺陷,具有重要的应用潜力。因此,对水导激光加工技术在航空航天领域难加工材料中的作用机理与实践应用展开系统性的梳理。首先,详细阐释水导激光加工的基本原理、多场耦合材料去除机理,并完整介绍水导加工系统的核心构成;其次,从水射流特性、光学特性及水光耦合特性3 个维度,深入剖析其多维度作用机制;随后,全面总结水导激光技术在“难加工材料”切割与制孔工艺中的研究进展;最后,探讨该技术在精密加工领域的典型应用场景,并结合当前研究现状,对水导激光精密加工技术的未来发展趋势进行展望。
With the rapid advancement of aerospace technology
difficult-to-machine materials such as high-strength alloys
ceramics
and composites have gained widespread application. But traditional machining methods struggle to meet the demands for high-quality processing. Waterjet-guided laser processing technology
with its advantages of high precision and low damage
addresses the shortcomings of tool wear and large heat-affected zones inherent in conventional mechanical machining and laser machining
demonstrating significant application potential. Therefore
this paper systematically reviews the working mechanisms and practical applications of waterjet-guided laser processing technology for difficult-to-machine materials in the aerospace field. First
it elaborates on the fundamental principles of waterjet-guided laser processing
the multi-field coupling material removal mechanism
and comprehensively introduces the core components of the waterjetguided processing system. Second
it delves into its multidimensional working mechanisms from three dimensions: water jet characteristics
optical properties
and water-optical coupling characteristics. Subsequently
it comprehensively summarizes research progress in cutting and hole-making processes for “difficult-to-machine materials” using waterjetguided laser technology. Finally
it explores typical application scenarios of this technology in precision machining
based on current research status
and outlines future development trends for waterjet-guided laser precision machining technology.
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