特邀专栏:超声加工技术

超声切割铝蜂窝试验研究

  • 孙健淞 ,
  • 董志刚 ,
  • 王毅丹 ,
  • 刘津廷 ,
  • 秦炎 ,
  • 康仁科
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  • 大连理工大学精密与特种加工教育部重点实验室 大连 116024
孙健淞,男,1992年出生,博士研究生。主要研究方向为复合材料超声辅助加工技术与装备,E-mail:sjs_06@qq.com;董志刚,男,1980年出生,博士,副教授,硕士研究生导师。主要研究方向为难加工材料高效加工技术,精密超精密加工技术,E-mail:dongzg@dlut.edu.cn;王毅丹,男,1989年出生,博士研究生。主要研究方向为复合材料超声辅助加工技术与装备,E-mail:wangyidan@mail.dlut.edu.cn;刘津廷,男,1989年出生,博士研究生。主要研究方向为复合材料超声辅助加工技术与装备,E-mail:286449832@qq.com;秦炎,女,1991年出生,博士研究生。主要研究方向为蜂窝材料高效加工与测量技术,E-mail:945275717@qq.com

收稿日期: 2016-12-18

  修回日期: 2017-04-18

  网络出版日期: 2017-10-05

基金资助

国家高技术研究发展计划(863计划,2015AA043402)和国家自然科学基金(51575085)资助项目。

Experimental Study on Ultrasonic Cutting of Aluminum Honeycombs

  • SUN Jiansong ,
  • DONG Zhigang ,
  • WANG Yidan ,
  • LIU Jinting ,
  • QIN Yan ,
  • KANG Renke
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  • Key Laboratory for Precision and Non-traditional Machining Technology of Ministry of Education, Dalian University of Technology, Dalian 116024

Received date: 2016-12-18

  Revised date: 2017-04-18

  Online published: 2017-10-05

摘要

超声切割技术作为快速发展的加工工艺,越来越广泛地应用于复合材料的加工,尤其是以纸蜂窝材料为代表的弱刚度复合材料。开展了超声切割铝蜂窝试验研究,通过分析不同振幅、不同进给速度下的切割力、超声切割后蜂窝工件的宏观和微观形貌,验证了超声切割铝蜂窝的可行性和优势。试验结果显示,超声切割后蜂窝宏观结构无明显破坏,无明显毛刺毛边产生,提高超声振幅和进给速度可以改善蜂窝切割后微观表面形貌;刀具的超声振动可以显著减小切割力,且在相同进给速度下随着超声振幅的提高,切割力变小;在相同超声振幅下随着进给速度的提高,切割力变大,但变化幅度较小。通过对超声切割铝蜂窝过程的受力分析,讨论了超声振幅、进给速度的变化对切割力的影响规律,并与试验结果进行对比,从理论上分析了造成超声切割力规律性变化的内在原因。

本文引用格式

孙健淞 , 董志刚 , 王毅丹 , 刘津廷 , 秦炎 , 康仁科 . 超声切割铝蜂窝试验研究[J]. 机械工程学报, 2017 , 53(19) : 128 -135 . DOI: 10.3901/JME.2017.19.128

Abstract

As a rapidly developing processing technology, ultrasonic cutting technology is more and more widely used in the processing of composite materials, especially the low-rigidity composite materials represented by paper honeycomb material. Experiments are conducted to study the ultrasonic cutting of aluminum honeycomb. Through the analysis of the cutting force under different amplitudes and different feed speeds, and the macroscopic and microscopic topographies of the honeycomb workpieces after ultrasonic cutting, the feasibility and advantages of ultrasonic cutting of aluminum honeycomb are verified. The experimental results show that there is no obvious damages and no burrs on the macroscopic structures of honeycombs by ultrasonic cutting, and the microscopic surface topography can be improved by increasing the ultrasonic amplitude and the feed speed. The ultrasonic vibration of cutting tool can significantly reduce the cutting force, and with the increase of ultrasonic amplitude at the same feed speed, the cutting force becomes smaller. With the increase of the feed speed under the same ultrasonic amplitude, the cutting force becomes larger, but the change is small. Through the force analysis of ultrasonic cutting of aluminum honeycomb, the influences of ultrasonic amplitude and feed speed on cutting force are discussed and compared with experimental results. The internal reasons of ultrasonic cutting force variations are analyzed theoretically.

参考文献

[1] 侯小林,祝益军. 蜂窝结构件的数控加工[J]. 航空制造技术,2009(z1):60-63. HOU Xiaolin,ZHU Yijun. NC machining of honeycomb structure[J]. Aeronautical Manufacturing Technologies,2009(z1):60-63.
[2] 杨发展,赵万华,康鲁迪,等. 蜂窝状铝合金高速加工刀具粘附行为及其作用机理研究[J]. 工具技术,2014,(10):7-10,11. YANG Fazhan,ZHAO Wanhua,KANG Ludi,et al. Adhesion behavior and mechanisms in high speed machining of cellular aluminum alloy[J]. Tool Engineering,2014,(10):7-10,11.
[3] 黄晓斌,叶玉刚,郑爱萍. 铝峰窝的性能特点及其加工方法[J]. 机械管理开发,2005(3):39-39. HUANG Xiaobin,YE Yugang,ZHENG Aiping. The performance characteristics and machining of aluminium honeycomb[J]. Mechanical Management and Development,2005(3):39-39.
[4] 王士鹏. 超长铝蜂窝夹层板的高精度直线切割[J]. 电子机械工程,2009,25(3):39-41. WANG Shipeng. High precision linear cutting of extra long aluminum honeycomb sandwich plates[J]. Electro-Mechanical Engineering,2009,25(3):39-41.
[5] MENDOZA M,EMAN K,WU S. Development of a new milling cutter for aluminium honeycomb[J]. International Journal of Machine Tool Design & Research,1983,23(2-3):81-91.
[6] 马成,刘方军. 蜂窝材料加工工艺研究进展[J]. 航空制造技术,2016(3):48-54. MA Cheng,LIU Fangjun. Research progress in processing technology of honeycomb materials[J]. Aeronautical Manufacturing Technologies,2016(3):48-54.
[7] 高军,崔巍. 超声切割技术在复合材料加工领域的应用[J]. 航空制造技术,2008(4):50-52. GAO Jun,CUI Wei. The applications of ultrasonic cutting technology in the field of composite materials[J]. Aeronautical Manufacturing Technology,2008(4):50-52.
[8] 高涛,骆金威,林勇,等. 基于超声波机床的蜂窝芯数控加工技术研究[J]. 机械制造,2013,51(1):41-43. GAO Tao,LUO Jinwei,LIN Yong,et al. Research on NC machining technology of honeycomb core based on ultrasonic machine[J]. Machinery,2013,51(1):41-43.
[9] 马付建. 超声辅助加工系统研发及其在复合材料加工中的应用[D]. 大连:大连理工大学,2013. MA Fujian. The development of ultrasonic assisted machining system and its application in machining of composite[D]. Dalian:Dalian University of Technology,2013.
[10] 赖郭晖. 用于超声辅助磨削的超声电源研制[D]. 大连:大连理工大学,2012. LAI Guohui. Development of ultrasonic generator for ultrasonic assisted grinding[D]. Dalian:Dalian University of Technology,2012.
[11] 赵双双. 面向蜂窝复合材料加工的超声波变幅杆设计[D]. 杭州:杭州电子科技大学,2014. ZHAO Shuangshuang. Ultrasonic horn design for honeycomb composite material processing[D]. Hangzhou:Hangzhou Dianzi University,2014.
[12] 方亮. NOMEX蜂窝材料超声铣削圆形刀研制[D]. 杭州:杭州电子科技大学,2013. FANG Liang. Development of ultrasonic milling circular tool made of NOMEX cellular materials[D]. Hangzhou:Hangzhou Dianzi University,2013.
[13] 黄秀秀,胡小平,于保华,等. 基于断裂力学的Nomex蜂窝复合材料超声切割机理研究[J]. 机械工程学报,2015,51(23):205-212. HUANG Xiuxiu,HU Xiaoping,YU Baohua,et al. Research on ultrasonic cutting mechanism of Nomex honeycomb composites based on fracture mechanics[J]. Journal of Mechanical Engineering,2015,51(23):205-212.
[14] Hexcel Corporation. HexWeb®HRH-36 Product Data[EB/OL]. 2010-03[2016-09-04]. http://www.hexcel.com/Resources/DataSheets/Honeycomb-Data-Sheets/HRH_36_eu.pdf.
[15] SCHNEIDER Y,ZAHN S,LINKE L. Qualitative process evaluation for ultrasonic cutting of food[J]. Engineering in Life Sciences,2002,2(6):153-157.
[16] ARNOLD G,LEITERITZ L,ZAHN S,et al. Ultrasonic cutting of cheese:Composition affects cutting work reduction and energy demand[J]. International Dairy Journal,2009,19(5):314-320.
[17] 石川憲一,横山恭男,津和秀夫. 高分子材料のナイフ状工具による切断に関する研究[J]. 精密機械:精機学会誌,1979,45(11):1303-1308. ISHIKAWA K,YOKOYAMA Y,TSUWA H. Study on cutting of soft polymers by a knife-blade[J]. Journal of the Japan Society of Precision Engineering,1979,45(11):1303-1308.
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