期刊文献+

聚合物超声塑化过程中声场模拟与实验研究 被引量:1

Sound field simulation and experimental study in polymer ultrasonic plasticizing process
在线阅读 下载PDF
导出
摘要 针对聚合物超声塑化过程中的超声声场分布问题,采用仿真与实验相结合的方法进行研究。基于多元高斯声束叠加理论,仿真研究聚合物超声塑化过程中的声场分布。通过自行设计制造的聚合物超声塑化检测装置,研究塑化过程中聚合物轴线处的声压分布规律。研究结果表明:实际超声声压在离工具头距离约1.5 mm处作用最强,约达1.8 MPa,其后随距离的增大而逐渐递减;在近场区,实际声压幅值不存在仿真中剧烈波动的情形,声压幅值相对稳定,在远场区,实际声压幅值接近仿真值;固态聚合物所受超声声压较大,聚合物熔融后,声压幅值降低,实际声压因受反射、透射以及衰减的影响小于仿真值。 The simulation and experiment research was conducted aiming at the problem of ultrasonic acoustic field distribution in polymer ultrasonic plasticizing process. The ultrasonic acoustic field in plasticization process was simulated based on the superposition of Gaussian beams theory. And the acoustic field distribution discipline of polymer was studied by self-designed polymer ultrasonic plasticization device. The results show that the actual ultrasonic acoustic pressure of polymer reaches approximately the maximum value of 1.8 MPa at the distance of approximately 1.5 mm. And the value decreases with the increase of distance. Compared to the simulation, the actual ultrasonic sound pressure has less fluctuant but stable in near field region. However, the pressure in far field region has ideal coincidence between experiment and simulation results. The solidified polymer is subjected by higher ultrasonic sound pressure than melted polymer. The actual pressure is lower than the simulated value due to the existence of reflection, penetration, attenuation in sound pressure and friction between granules.
出处 《中南大学学报(自然科学版)》 EI CAS CSCD 北大核心 2016年第8期2661-2667,共7页 Journal of Central South University:Science and Technology
基金 国家自然科学基金重大研究计划培育项目(91123012) 中南大学高性能复杂制造国家重点实验室自主研究课题(42840100602)~~
关键词 超声 塑化 聚合物 声场 声压 ultrasound plasticization polymer sound field sound pressure
  • 相关文献

参考文献15

  • 1于同敏,包成,黄晓超.超声技术在聚合物成型加工中的应用研究进展[J].高分子材料科学与工程,2012,28(11):173-177. 被引量:12
  • 2MICHAELI W, SPENNEMANN A, GA.RTNER R. New plastification concepts for micro injection moulding[J]. Microsystem Technologies, 2002, 8(1): 55-57.
  • 3MICHAELI W, STARKE C. Ultrasonic investigations of the thermoplastics injection moulding process[J]. Polymer Testing, 2005, 24(2): 205-209.
  • 4MICHAELI W, KAMPS T, HOPMANN C. Manufacturing of polymer micro parts by ultrasonic plasticization and direct inj ection[J]. Microsystem Technologies, 2011, 17(2): 243-249.
  • 5蒋炳炎,胡建良,李俊,刘小超.Ultrasonic plastification speed of polymer and its influencing factors[J].Journal of Central South University,2012,19(2):380-383. 被引量:5
  • 6WEN J J, BREAZEALE M A. A diffraction beam field expressed as the superposition of Gaussian beams[J]. Jounal of Acoustic Society of America, 1988, 83(5): 1752-1756.
  • 7LESTER W S. A multigaussian ultrasonic beam model for high performance simulations on a personal computer[J]. Materials Evaluation, 2000, 58(7): 882-888.
  • 8ZHAO Xinyu, GANG Tie. Nonparaxial multi-Gaussian beam models and measurement models for phased array transducers[J]. Ultrasonics, 2009, 49(1): 126-130.
  • 9KIM H J, SONG S J. Model prediction results for 2008 ultrasonic benchmark problems[C]//Review of Progress in Quantitative Nondestructive Evaluation: Proceedings of the 35th Annual Review of Progress in Quantitative Nondestructive Evaluation. AIP Publishing, 2009, 1096(1): 1946-1953.
  • 10郭文静,陈友兴,金永,王召巴.基于多元高斯声束模型的圆柱体超声检测声场仿真[J].应用声学,2013,32(5):354-360. 被引量:10

二级参考文献38

共引文献39

同被引文献2

引证文献1

二级引证文献3

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部