首页> 外文会议>IEEE International Instrumentation and Measurement Technology Conference >Micro droplet generated by dual-differential piezoelectric ejection for powder-based 3D printer
【24h】

Micro droplet generated by dual-differential piezoelectric ejection for powder-based 3D printer

机译:基于粉末的3D打印机双差压电喷射产生的微滴

获取原文

摘要

The surgery time can be reduced by allografting from bone-substitute material or donors while compared to the autograft from patient's own bone. The bone-substitute reconstructed by powder-based 3D printer has high compatibility with human tissue, so it is gradually applied to bone reconstruction in clinical research. In order to construct the proper bone-substitute from the porosity surface of powder and to keep good strength, the profile of ejection droplet is significantly. In the study, we proposed the dual-differential piezoelectric (DDP) technology to obtain the best micro droplet, and discussed the relationship between the operating parameters, droplet dimension and printing gap. In the experiment, the DDP putter was employed to generate the micro droplet, and the high speed camera was used to acquire the droplet images for analysis of droplet dimension. The results show the better operating voltage ranged from 4 to 5 V, and the smallest droplet dimension can be obtained while the triggered frequency of DDP putters decreased; especially from 200 to 100 Hz without phase shift. Besides, the printing gap is about 1 mm in printing process. In future, the results can improve the development of power-based 3D printing system, and the reconstruction bone with advantage of high strength can be printed and actually adopted into the patient's body as the substitute tissue in clinical application.
机译:与从患者自身骨骼进行的自体移植相比,可以通过采用替代骨的材料或供体进行异体移植来减少手术时间。用粉末3D打印机重建的骨替代物与人体组织具有高度的兼容性,因此逐渐在临床研究中应用于骨骼重建。为了从粉末的孔隙表面构造合适的骨替代物并保持良好的强度,喷射液滴的轮廓非常明显。在研究中,我们提出了双差动压电(DDP)技术以获得最佳微滴,并讨论了操作参数,滴尺寸和印刷间隙之间的关系。在实验中,使用DDP推杆产生微滴,并使用高速相机获取液滴图像以分析液滴尺寸。结果表明,较好的工作电压范围为4至5 V,并且在DDP轻击棒的触发频率降低的同时可以获得最小的液滴尺寸。特别是200至100 Hz无相移此外,在印刷过程中印刷间隙约为1mm。将来,该结果可以改善基于动力的3D打印系统的开发,并且可以打印出具有高强度的重建骨骼,并在临床上将其作为替代组织实际应用于患者体内。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号