1. 航空工业成都飞机工业(集团)有限责任公司,成都,610092
2. 南京航空航天大学,南京,211106
3. 上海交通大学,上海,200030
4. 华中科技大学,武汉,430074
5. 山东大学,济南,250061
纸质出版:2026
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邓涛, 张泽雄, 刘春梅, 等. 高自由度双面渐进成形技术及装备研究进展[J]. 航空制造技术, 2026,69(3).
DENG Tao, ZHANG Zexiong, LIU Chunmei, et al. Research Progress on High-Degree-of-Freedom Double-Sided Incremental Forming Technology and Equipment[J]. Aeronautical Manufacturing Technology, 2026, 69(3).
邓涛, 张泽雄, 刘春梅, 等. 高自由度双面渐进成形技术及装备研究进展[J]. 航空制造技术, 2026,69(3). DOI: 10.16080/j.issn1671-833x.25020172.
DENG Tao, ZHANG Zexiong, LIU Chunmei, et al. Research Progress on High-Degree-of-Freedom Double-Sided Incremental Forming Technology and Equipment[J]. Aeronautical Manufacturing Technology, 2026, 69(3). DOI: 10.16080/j.issn1671-833x.25020172.
渐进成形技术凭借高柔性特征成为板材成形的重要发展方向,但单点渐进成形仍面临成形精度不足、成形质量欠佳及成形自由度较低等瓶颈问题。双面渐进成形技术通过主从工具头协同运动,突破单点成形桎梏,尤其适用于航空航天曲面薄壁异形件的制造。本文系统梳理该技术的研究体系,重点围绕成形设备开发、工艺参数优化与成形缺陷调控三大方向,从多轴联动轨迹规划、闭环反馈控制、成形工具头类型、多物理场耦合等维度剖析技术发展现状。结果表明,双面渐进成形可显著提升成形精度,但高自由度工具头耦合机理、复杂曲面零件质量一致性及磁、热、超声等磁场加载仍存在技术难题。未来需融合数字孪生等技术构建智能闭环控制系统,推动装备向高精度、智能化发展,同时探索渐进成形与增减材集成自动化产线模式,为复杂曲面构件制造提供新范式。
Incremental forming technology
characterized by considerable flexibility
has emerged as a significant development in the domain of sheet metal forming. Nonetheless
single-point incremental forming (SPIF) encounters significant challenges
including limitations in forming precision
quality
and degrees of freedom. The double-sided incremental forming (DSIF) technology
facilitated by the coordinated motion of master and slave toolheads
effectively addresses the shortcomings of SPIF and is particularly well-suited for the manufacturing of curved
thin-walled
and complex-shaped aerospace components. This study systematically reviews the research framework pertaining to this technology
concentrating on three essential directions: equipment development
process parameter optimization
and defect control. The current technological development status is comprehensively analyzed from the perspectives of multiaxis trajectory planning
closed-loop feedback control
forming tool head types
and multi-physics coupling. The results indicate that DSIF significantly improves forming accuracy. Nonetheless
technical bottlenecks still exist in the coupling mechanism of high-degree-of-freedom tool heads
quality consistency of complex curved surface parts
and the loading of auxiliary energy fields such as magnetic
thermal
and ultrasonic fields. Future research should integrate technologies such as digital twin to establish intelligent closed-loop control systems
thereby driving equipment toward higher precision and intelligence. Furthermore
the exploration of integrated automated production lines that combine incremental forming with additive/subtractive manufacturing is expected to provide new paradigms for the fabrication of complex curved components.
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