|

Influence of the Soil and Rocky Target Strength Properties on Projectiles Penetration Depth with Additional Action of the Jet Thrust Impulse

Authors: Fedorov S.V., Fedorova N.A. Published: 11.08.2016
Published in issue: #4(109)/2016  

DOI: 10.18698/0236-3941-2016-4-40-56

 
Category: Aviation and Rocket-Space Engineering | Chapter: Aircraft Strength and Thermal Modes  
Keywords: high-velocity penetration, non-deformable projectile, soil and rocky target, strength properties, penetration depth, jet impulse, Tsiolkovsky number

The purpose of this work was to analyze the influence of additional jet thrust impulse enclosed to the projectile in the course of its movement in a target on a possible increment of penetration depth into soil and rocky targets with various strength properties. The analysis was performed by the calculation method. We defined the dynamics of projectile penetration within the model of a non-deformable body of variable weight moving under the target resistance force and jet force (in operating time of the jet engine). We calculated soil and rocky target resistance force using the empirical resistance law which establishes the dependence of mechanical tension on a contact surface of the projectile head part for the target on the projectile velocity. We considered penetration into such targets as dense soil, low-strength rock and high-strength rock at initial interaction velocities in the range from 250 to 1000 m/s. Consequently, for soil and rocky targets with various strength properties we defined the beginning time and duration of the jet impulse action considering the most possible increment of penetration depth. In many cases the greatest increase in penetration depth is reached not at preliminary (prior to interaction with a target) operation of the jet engine, but during its work already in the course of the projectile movement in a target. For projectile velocity of 500 m/s and mass of solid rocket propellant charge making 20 % of the projectile mass, additional action of the jet thrust impulse allows for the increase in penetration depth approximately twice for all considered types of soil and rocky targets. With the increase in initial velocity, the relative increment of penetration depth decreases at the fixed mass of a solid propellant charge. It is caused by the decrease in a relative share of chemical energy of rocket propellant combustion in comparison with initial kinetic energy of the projectile. For projectile velocity of 1000 m/s and a reserve of rocket propellant in 20 % of projectile weight, the penetration depth increment reaches 60 % for dense soil, 45 % for low-strength rock and 40 % for high-strength rock at a rational choice of jet impulse parameters.

References

[1] Veldanov V.A., Smirnov V.E., Khavroshkin O.B. Lunar penetrator: reducing overloading and penetration control. Solar System Research, 1999, vol. 33, no. 5, pp. 432-436.

[2] Orlenko L.P., ed. Fizika vzryva. V 2 t. T. 1 [Physics of explosion. In 2 vol. Vol. 1]. Moscow, Fizmatlit Publ., 2004, 832 p.

[3] Kaminskiy M.V., Kopytov G.F., Kiselev Yu.G., Kochnev Yu.V., Mogilev V.A., Fateev Yu.A. Critical velocity at introduction of projectiles with a conic nose form into soil targets. Sb. mat. III nauch. konf. Volzhskogo regionalnogo centra RARAN "Sovremennye metody proektirovaniya i otrabotki raketno-artilleriyskogo vooruzheniya". V 2 t. [Collection of papers of the III-rd sci. conf. of the RAMAS Volga regional center "Advanced methods of design and development of missile and artillery weapons". In 2 vol.]. Sarov, RFYaC-VNIIEF Publ., 2004, vol. 2, pp. 642647 (in Russ.).

[4] Forrestal M.J., Lee L.M., Jenrette B.D. Laboratory-scale penetration experiments into geological targets to impact velocities of 2.1 km/s. J. Appl. Mech., 1986, vol. 53, no. 2, pp. 317-320.

[5] Fedorov S.V., Veldanov V.A. Application of segmented projectiles for cavity formation in soil and rocky targets. Izv. Ross. Akad. raketnykh i artilleriyskikh nauk [Bulletin of the Russian Academy of Missile and Artillery Sciences], 2012, no. 1(71), pp. 43-50 (in Russ.).

[6] Sagomonyan A.Ya. Pronikanie [Penetration]. Moscow, Mos. Gos. Univ. Publ., 1974, 300 p.

[7] Fedorov S.V., Bayanova Ya.M. Penetration of long strikers under hydrodynamic conditions with allowance for the material compressibility. Technical Physics. Russ. J. Appl. Phys., 2011, vol. 56, no. 9, pp. 1266-1271.

[8] Fedorov S.V., Veldanov V.A. Numerical simulation of cavity formation in soil by a flux of high-speed metallic penetrators. Technical Physics. Russ. J. Appl. Phys., 2006, vol. 51, no. 7, pp. 952-955.

[9] Fedorov S.V. On the penetration depth of a porous striker moving with a hypersonic velocity. Technical Physics. Russ. J. Appl. Phys., 2007, vol. 52, no. 10, pp. 1379-1382.

[10] Ben-Dor G., Dubinsky A., Elperin T. Optimization of penetration into geological and concrete shields by impactor with jet thruster. Journal of Mechanics of Materials and Structures, 2008, vol. 3, no. 4, pp. 707-727.

[11] Veldanov V.A. Numerical estimate of spacecrafts modules penetration into asteroids. Tr. Mezhdunar. nauch. konf. "Kosmicheskaya zashhita Zemli" [Proc. of Int. sci. conf. "Space Protection of Earth"]. Snezhinsk, RFYaC-VNIITF Publ., 1997, pp. 173-178 (in Russ.).

[12] Fedorova N.A., Veldanov V.A., Daurskikh A.Yu., Fedorov S.V. Influence of jet thrust on penetrator penetration when studying the structure of space object blanket. Nauka i obrazovanie. MGTU im. N.E. Baumana [Science & Education of Bauman MSTU. Electronic Journal], 2014, no. 2. DOI: 10.7463/0214.0699035 Available at: http://technomag.bmstu.ru/en/doc/699035.html

[13] Fedorova N.A. Determination of penetration depth of high-velocity research modules with the pulse jet engine into low-strength soil targets. Jelektr. zhur. "Molodezhnyy nauchno-tekhnicheskiy vestnik". MGTU im. Baumana [El. J. "Youth Sci. & Tech. Herald" of Bauman MSTU], 2013, no. 12. Available at: http://sntbul.bmstu.ru/doc/638157.html

[14] Ben-Dor G., Dubinsky A., Elperin T. Engineering models of high speed penetration into geological shields. Central European Journal of Engineering, 2014, no. 4(1), pp. 1-19.

[15] Veldanov V.A. The law of resistance to penetration of impactor into the soil. Oboronnaya tekhnika [Defense technology], 1995, no. 4, pp. 32-34 (in Russ.).

[16] Veldanov V.A., Fedorov S.V. Soil behavior at the interface with a rigid projectile during penetration. J. of Applied Mechanics and Technical Physics, 2005, vol. 46, no. 6. pp. 867-875.

[17] Nikitin N.N. Kurs teoreticheskoy mekhaniki [Course of theoretical mechanics]. Moscow, Vyssh. shk. Publ., 1990, 607 p.

[18] Veldanov V.A., Naumov A.N. Effect of on time and operation time of gasdynamic overclocking device]. Tr. Mezhdunar. konf. "V Kharitonovskie tematicheskie nauchnye chteniya" [Proc. of the Int. conf. "V-th Khariton’s Thematic Scientific Readings"]. Sarov, VNIIEF Publ., 2003, pp. 499-501 (in Russ.).

[19] Fedorov S.V., Fedorova N.A., Veldanov V.A. Jet thrust impulse using for increase in research modules penetration depth into low-strength soil targets. Izv. Ross. akad. raketnykh i artilleriyskikh nauk [Bulletin of the Russian Academy of Missile and Artillery Sciences], 2014, no. 4(84), pp. 53-63 (in Russ.).

[20] Veldanov V.A., Markov V.A., Pusev V.I., Ruchko A.M., Sotskiy M.Yu., Fedorov S.V. Computation of nondeformable striker penetration into low-strength obstacles using piezoelectric accele-rometry data. Technical Physics. Russ. J. Appl. Phys., 2011, vol. 56, no. 7, pp. 992-1002.

[21] Veldanov V.A., Markov V.A., Pusev V.I., Ruchko A.M., Sotskiy M.Yu., Sotskiy Yu.M., Fedorov S.V. Research of dynamic mechanical properties of aluminum alloys by an accelerometry method. Vestn. Mosk. Gos. Tekh. Univ. im. N.E. Baumana, Mashinostr. [Herald of the Bauman Moscow State Tech. Univ., Mech. Eng.], 2010, no. 2, pp. 37-46 (in Russ.).

[22] Lipanov A.M., Milekhin Yu.M. Vnutrennyaya ballistika RDTT [Interior ballistics of solid propellant rocket engines]. Moscow, Mashinostroenie Publ., 2007, 504 p.

[23] Fedorov S.V., Fedorova N.A. Influence of the jet thrust impulse on depth of the research probe penetration into planet soil. Jelektr. nauchno-tekh. izd. "Inzhenernyy zhurnal: nauka i innovacii" [El. Sc.-Tech. Publ. "Eng. J.: Science and Innovation"], 2013, no. 1(13). Available at: http://engjournal.ru/eng/catalog/machin/airborne/571.html