首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Dynamic precision control in single-grit scratch tests using acoustic emission signals
【24h】

Dynamic precision control in single-grit scratch tests using acoustic emission signals

机译:使用声发射信号进行单粒度划痕测试中的动态精度控制

获取原文
获取原文并翻译 | 示例
           

摘要

Acoustic emission (AE) is very sensitive to minuscule molecular changes which allow it to be used in a dynamic control manner. The work presented here specifically investigates approaching grit and workpiece interaction during grinding processes. The single grit (SG) tests used in this work display that the intensities from air, occurring in between the grit and workpiece, show an increasing intensity as the grit tends towards the workpiece with 1-mu m increments. As the grit interacts with the workpiece, a scratch is formed; different intensities are recorded with respect to a changing measured depth of cut (DOC). In the first instance, various AE were low tending towards high signal to noise ratios which is indicative of grit approaching contact; when contact is made, frictional rubbing is noticed, then ploughing with low DOC and, finally, actual cutting with a higher associated DOC. Dynamic control is obtained from the AE sensor extracting increasing amplitude significant of elastic changing towards greater plastic material deformation. Such control methods can be useful for grinding dressing ratios as well as achieving near optimal surface finish when faced with difficult to cut geometries. Two different materials were used for the same SG tests (aerospace alloys: CMSX4 and titanium-64) to verify that the control regime is robust and not just material dependent. The AE signals were then classified using neural networks (NNs) and classification and regression trees (CART)-based rules. A real-time simulation is provided showing such interactions allowing dynamic micro precision control. The results show clear demarcation between the extracted synthesized signals ensuring high accuracy for determining different phenomena: 3-1 mu m approaching touch, touch, slight plastic deformation and, increasing plastic deformation. In addition to dressing ratios, the results are also important for micron accuracy set-up considerations.
机译:声发射(AE)对微小的分子变化非常敏感,因此可以动态控制方式使用。本文介绍的工作专门研究了磨削过程中接近砂砾和工件的相互作用。在这项工作中使用的单砂砾(SG)测试显示,在砂砾和工件之间出现的来自空气的强度随着砂砾以1微米的增量趋向工件而显示出增加的强度。当砂粒与工件相互作用时,会形成划痕;相对于变化的测量切深(DOC),记录了不同的强度。在第一种情况下,各种AE趋向于低的趋向于高的信噪比,这表明砂粒接近接触。接触时,会发现有摩擦,然后以低DOC进行耕种,最后以较高的DOC进行实际切削。从AE传感器获得动态控制,提取出增大的幅度,该幅度显着增大了朝向较大塑性材料变形的弹性变化。当面对难以切割的几何形状时,这样的控制方法可用于磨削修整比以及实现接近最佳的表面光洁度。两种不同的材料用于相同的SG测试(航空航天合金:CMSX4和Titanium-64),以验证控制机制是否强大,而不仅取决于材料。然后,使用神经网络(NN)以及基于分类和回归树(CART)的规则对AE信号进行分类。提供了实时仿真,显示了允许动态微精度控制的这种相互作用。结果表明,提取的合成信号之间清楚地标界,确保了用于确定不同现象的高精度:3-1微米接近触摸,触摸,轻微的塑性变形以及增加的塑性变形。除了修整比,结果对于微米精度设置也很重要。

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