[1]
Butyagin P. Yu. The problem of mechanochemistry development, Russ. Chem. Rev., 63 (1994) 965-977.
Google Scholar
[2]
Enikolopyan N.S., Voleva V.B., Hzardzhyan A.A. The explosive chemical reaction in solid bodies, Doklady Akademii Nauk USSR, 292 (1987) 1165-1169.
Google Scholar
[3]
Enikolopyan N.S. The ultraspeed chemical reaction in solid bodies, Zhurnal fizicheskoi khimii, 63 (1989) 2289-2298.
Google Scholar
[4]
Smolyakov V. K. Toward a theory of combustion of gasless systems under the action of a constant load, Combustion, Explosion and Shock Waves, 25 (1989) 582-587.
DOI: 10.1007/bf00772973
Google Scholar
[5]
Radchenko V.P., Krasnoschekov P. I, Fedotov A.F. The contact-rod model of plastic deformation powder materials, Buluten of SamSTU. 26 (2004) 102-107.
Google Scholar
[6]
Krasnoschekov P. I, Fedotov A.F. Elastic modules of isotropic powder and porous materials, Bulletin of the SamSTU. 43 (2006) 81-87.
Google Scholar
[7]
Belyaeva V.A. The structuring of viscoelastic systems deformation process, Bulletin of Udmurt University. Mechanics, 2 (2008) 102-107.
Google Scholar
[8]
Dickinson C.F., Heal G.R. Solid–liquid diffusion controlled rate equations, Thermochimica Acta, 340-341 (1999) 89–103.
DOI: 10.1016/s0040-6031(99)00256-7
Google Scholar
[9]
Chumakov Yu.A., Knyazeva A.G. Interrelated processes of heat mass transfer and stress evolution in a disk with an inclusion under the action of high-density energy flow, Physical Mesomechanics, 16 (2013) 85-91.
Google Scholar
[10]
Evstigneev N.K., Knyazeva A.G. Model of nonstationary propagation of a solid-state chemical transformation under uniaxial loading, Comb., Expl., and Shock Waves, 46 (2010) 307-314.
DOI: 10.1007/s10573-010-0043-3
Google Scholar
[11]
Timoshenko S. P, Goodier J. N. Theory of elasticity, McGraw Book Company, Inc., (1970).
Google Scholar
[12]
Gusev A.A., Lurie S.A. Strain-Gradient Elasticity for Bridging Continuum and Atomistic Estimates of Stiffness of Binary Lennard-Jones Crystals, Advanced Engineering Materials. 12(2010) 529-533.
DOI: 10.1002/adem.201000004
Google Scholar
[13]
Volkov-Bogorodsky D., Evtushenko Y., Zubov V., Lurie S. Numerical-Analytical Modelling of Scale Effects for Disperse Reinforced Nanocomposites using Block Method, Comput. Math, and Math. Phys., 46(2006) 1318-1337.
DOI: 10.1134/s0965542506070153
Google Scholar
[14]
Christensen R.M. Mechanics of composite materials, John Wiley&Sons Inc., (1979).
Google Scholar
[15]
Babichev A.P., Babushkina N.A., Bratkovskii A.M. et al. Fizicheskie velichiny: spravochnik (Handbook of Physical Quantities). M. Energatomizdat, (1991).
Google Scholar
[16]
Panin S.V., Kornienko L.A., Ivanova L.R., Sondghaitam N., Shil'ko S. V Abrasive wear of micro- and nanocomposites based on super-high-molecular polyethylene (SHMPE). Part 1. Composites based on shmpe filled with microparticles AlO(OH) and Al2O3. Journal of Friction and Wear, 33 (2012).
DOI: 10.3103/s1068366612050091
Google Scholar