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Analysis of Fluted Liners Axial Rotation

Authors: Rassokha S.S., Ladov S.V., Babkin A.V. Published: 06.12.2016
Published in issue: #6(111)/2016  

DOI: 10.18698/0236-3941-2016-6-74-88

 
Category: Mechanics | Chapter: Mechanics of Deformable Solid Body  
Keywords: shaped charge, shaped charge jet, fluted liner, oblique shock wave, rotation, spin-compensation

The purpose of this work was to analyze the fluted liners axial rotation by numerical and analytical methods. The study revealed that pressure at the border between the liner and the products of detonation depends on the pitch angle of the oblique shock wave front. This is the cause for the rotation. According to the pressure dependence on the angle between the shock wave and the liner surface, we estimated the angular velocity of the shaped charge jet. Influence of the liner material properties and cross-section dimensions on jet angular velocity also was evaluated. The results are in good agreement with known experimental data.

References

[1] Walters W.P., Zukas J.A. Fundamentals of shaped charges. N.Y., John Wiley and Sons, 1989. 398 p.

[2] Koch A., Jaggy P., Jaun W., Haller F. Study of spin-compensated shaped charges. Proc. 19th Int. Symp. on Ballistics. Interlaken (Switzerland), 2001. P. 1501-1508.

[3] Eichelberger R.J. Spin compensation. Critical Review of Shaped Charge Information: Ballistic Research Laboratories Report № 905. Maryland, Aberdeen Proving Ground, 1959. 347 p.

[4] Simon J., DiPersio R., Eichelberger R.J. Shaped charge performance with linear fluted liners. Ballistic Research Laboratories Memorandum Report № 1231. Maryland, Aberdeen Proving Ground, 1954. 38 p.

[5] Cox C.M. Warhead mechanisms study. Ballistic Research Laboratories Report № DA-33-019-ORD-3697. Maryland, Aberdeen Proving Ground, 1964. 147 p.

[6] Kipp M.E., Martinez R.R., Hertel E.S., Baker E.L., Fuchs B.E., Chin C.L. Experiments and simulations of spinning shaped charges with fluted liners. Proc. 18th Int. Symp. on Ballistics. San-Antonio (USA), 1999. Pp. 499-506.

[7] Babkin A.V., Rassokha S.S., Ladov S.V., Odintsov V.A. Fluted liners and spin-compensation. Part 1, 2. Izvestia RARAN, 2013, no. 2, pp. 113-125 (in Russ.).

[8] Babkin A.V., Rassokha S.S., Ladov S.V., Odintsov V.A. Fluted liners and spin-compensation. Part 2. Izvestia RARAN, 2013, no. 3, pp. 87-92 (in Russ.).

[9] Smelikov V.G. Ustoichivost ogranichennoi kumulyacii [Stability of confined cumulation]. Moscow, Etnika Publ., 2016. 120 p.

[10] Smelikov V.G., Sereda N.V., Lopatnikova T.V., Plotnikov A.A. "Stable" cumulation and superplasticity, spinning of shear-formed shaped charge jets. Boepripasi i visokoenergeticheskie kondensirovannie sistemi, 2014, no. 1, pp. 32-77 (in Russ.).

[11] Rassokha S.S., Ladov S.V., Kubyshkina G.A., Babkin A.V. Performance calculation of shaped charges with shear-formed liners. Journal of applied mechanics, 2013, vol. 80, no. 3, pp. 031703. DOI: 10.1115/1.4023340

[12] Babkin A.V., Veldanov V.A., Gryaznov E.F., Imkhovik N.A., Kobylkin I.F., Kolpakov V.I., Ladov S.V., Orlenko L.P., Okhitin V.N., Rishnyak A.G., Selivanov V.V. Boepripasi. T.1 [Ammunition. Vol. 1]. Moscow: BMSTU Publ., 2016. 512 p.

[13] LS-DYNA Keyword User’s Manual. Vol. I, II. 2015. Livermore software technology corporation. 1381 p.

[14] LS-DYNA Theory Manual. 2015. Livermore software technology corporation. 865 p.

[15] Selivanov V.V., Kobylkin I.F., Novikov S.A. Vzrivnie tehnologii [Explosive technologies]. Moscow, Bauman MSTU Publ., 2014. 520 p.

[16] Andreev S.G., Babkin A.V., Baum F.A., Imkhovik N.A., Kobylkin I.F., Kolpakov V.I., Ladov S.V., Odintsov V.A., Orlenko L.P., Okhitin V.N., Selivanov V.V., Soloviev V.S., Stanukovich K.P., Chelishev V.P., Shekhter B.I. Fizika vzriva. Т.2 [Physics of the explosion. Vol. 2]. Moscow, Fizmatlit Publ., 2004. 656 p.