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Ю.И. Димитриенко, И.Д. Димитриенко

22

Modeling of punching processes

of the textile composite ballistic shield

© Yu.I. Dimitrienko, I.D. Dimitrienko

Bauman Moscow State Technical University, Moscow, 105005, Russia

The objective of this research is to propose a mathematical model of deformation of tex-

tile composite materials based on aramid fabric under shock action. The model takes into

account the following deformation parameters of composite materials of the specified

class: the ability to change their forms without destruction at finite deformations, a con-

siderable difference between stress-deformation diagrams under tension and under com-

pression, dependence of these diagrams on a loading rate, pseudo-plastic properties of

materials caused by pulling out threads from fabric, anisotropy of nonlinear-elastic and

viscous-plastic properties and other effects. Additionally, we took into consideration vis-

cous-elastic properties of the aramid fibers, damageability and fiber breakage when

punching the textile materials. Thus, we stated the problem of dynamic deformation of

textile composite materials. In order to solve the problem, we applied the method of

band-adaptive grids in a two-dimensional case. We give an example of computational so-

lution of the problem, which involves a high-speed action of a striker onto a textile com-

posite material. In conclusion, we compare the computational modeling and experimental

results in punching the aramid textile composite materials.

Keywords

: textile composite materials, dynamic processes, impact, punching, computa-

tional modeling, finite deformations, plastic deformations, viscous-elastic deformations,

aramid fibers.

REFERENCES

[1]

Dimitrienko Yu.I., Dimitrienko I.D.

Inzhenernyy zhurnal: nauka i innovatsii —

Engineering Journal: Science and Innovation,

2014, no. 5 (29). Available at:

http://engjournal.ru/search/author/40/page1.html

[2]

Dimitrienko Yu.I., Belenovskaya Yu.V., Aniskovich V.A. Nauka

I obrazovanie/ Elektronnoe nauchno-tekhnicheskoe izdanie —

Science and

Education. Electronic scientific and technical journal

, 2013, no. 12. doi:

10.7463/1213.0665297

[3]

Dimitrienko Yu.I., Limonov V.A.

Mekhanika kompozitnykh materialov

Mechanics of Composite Materials

, 1988, no. 5, pp. 797–805.

[4]

Kharchenko E.F., Ermolenko A.F.

Kompozitnye, tekstilnye i kombinirovannye

bronematerialy

[Composite, textile and combined armor materials]. Moscow,

TsNIISM Publ., 2013, 294 p.

[5]

Grigoryan V.A., Kobylkin I.F., Mirinin V.M., Chistyakov E.N.

Materialy i

zashchitnye struktury dlya lokalnogo i individualnogo bronirovaniya

[Materials and protective structures for the local and individual armor].

Moscow, RadioSoft Publ., 2008, 406 p.

[6]

Zhu D., Mobaster B., Rajan S.D.

Journal of Materials in Civil Engineering

,

2011, vol. 23, pp. 230–239.

[7]

Tan V.B., Zeng X.S., Shim V.P.W.

International Journal of Impact

Engineering

, 2008, vol. 35, no. 1, pp. 1303–1313.

[8]

Koh C.P., Shim V.P.W., Tan V.B.C., Tan B.L.

International Journal of Impact

Engineering

, 2008, vol. 35, no. 6, pp. 559–568.

[9]

Shim V.P.W., Lim C.T., Foo K.J.

International Journal of Impact

Engineering

, 2001, vol. 25, no. 1, pp. 1–15.