The Law of Metal Flow During Raster Scribing

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Authors

  • College of Mechanical and Electrical Engineering, Qiqihar University, Qiqihar, China ,CN
  • Department of Mechatronics, Qiqihar Institute of Engineering, Qiqihar, ,CN
  • College of Mechanical and Electrical Engineering, Qiqihar University, Qiqihar ,CN
  • College of Mechanical and Electrical Engineering, Qiqihar University, Qiqihar, ,CN

Keywords:

Metal flow, plane plastic flow, DEFORM-3D, equivalent stress distribution

Abstract

The plastic forming properties of metal depend on the nature of the metal and on the deformation conditions. However, in the process of grating mechanical scribing, the flow of materials, the distribution of stress and strain fields, and the tool loading can be hardly detected and controlled. In order to obtain a better groove shape and ensure the quality of the grating geometry, the metal flow inside the material during the scratching process was studied. The equivalent strain map, stress distribution, and metal flow rate of the scratching process can be clearly obtained from the simulation results of the grating scribe, and the flow law of the metal material can be grasped. By analyzing the equivalent strain map and stress distribution of the grating scribing process, the force distribution and size of the aluminum film are obtained, which is reflected in the stress of each side of the extended pyramid knife and each blade.To provide the theoretical basis and test data for the design of diamond-like tool design and its process, so as to improve the design quality and efficiency of the tool and provide scientific basis for the orientation and development of such diamond scribe tool.

 

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Published

2022-10-20

How to Cite

Mengliu, Wang, T., Hongjunzhang, & Li, X. (2022). The Law of Metal Flow During Raster Scribing. Journal of Mines, Metals and Fuels, 67(3), 163–169. Retrieved from https://informaticsjournals.com/index.php/jmmf/article/view/31538

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References

Tamir T., Wang H. C., and Oliner A. A. (2012): Wave propagation in sinusoidally stratified dielectric media.

IEEE Trans. Microwave Theory Tech., 12(4), 323-335.

Li Lifeng. (2013): A modal analysis of lamellar diffraction gratings in conical mountings. Opt. Acta, 40(4), 553-573.

Li Lifeng. (2015): Note on the S-matrix propagation algorithm. J. Opt. Soc. Am., 20(4), 655-660.

Moharam M. G., and Gaylord T. K. (2011): Coupledwave analysis of reflection gratings. Appl. Phys., 20(2), 240-244.

Moharam M. G., Pomment D. A., and Grann E. B. (2015): Stable implementation of the rigorous coupled-wave analysis for surface-relief gratings: enhanced transmittance matrix approach. J. Opt. Soc. Am., 12(5), 1077- 1086.

Grann E. B., and Moharam M. G.. (2016): Comparison between continuous and discrete subwavelength gratings structures for antireflection surfaces. J. Opt.

Soc. Am., 13(5), 988-992 7. Li Lifeng, Chandezon J., Granet G., and Plumey JeanPierre. (2009): Rigorous and efficient rating-analysis method made easy for optical engineers. Appl Opt, 38(2): 304-313.

Tremain D. E., and Mei K. K. (2008): Application of the unimoment method to scattering from periodic dielectric structures, J. Opt. Soc. Am, 68(6), 775-783.

Maystre D. (2008): A new general integral theory for dielectric coated gratings, J. Opt. Soc. Am., 68(4), 490495.

Hage man L J. (2007): Automative adaptive remenshing in ALPID, an advanced forging simulation program. Comput. Eng, 2:93-97

Nicolas V T, and Citipitioglu E. (2013): A general isopametric finite element program SDRC SUPERB. Comput. Struct, 55(7), 303-313.

Cheng J. (2013): Automatic adaptive remeshing for finite element simulation of forming processes. Int. J.

Num Meth. Engng, 26(8), 1-18.