Research output: Chapter in Book/Report/Conference proceeding › Conference contribution › peer-review
Cybernetic model of the shock induced wave evolution in solids. / Fradkov, A. L.; Khantuleva, T. A.
21ST EUROPEAN CONFERENCE ON FRACTURE, (ECF21). ed. / F Iacoviello; L Susmel; D Firrao; G Ferro. Vol. 2 Italy : Elsevier, 2016. p. 994-1001 (Procedia Structural Integrity; Vol. 2).Research output: Chapter in Book/Report/Conference proceeding › Conference contribution › peer-review
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TY - GEN
T1 - Cybernetic model of the shock induced wave evolution in solids
AU - Fradkov, A. L.
AU - Khantuleva, T. A.
N1 - Conference code: 21
PY - 2016
Y1 - 2016
N2 - New concept of high-strain-rate processes in solids is developed using the nonlocal theory of nonequilibrium transport. The interdisciplinary theoretical approach is constructed on the base of nonequilibrium statistical mechanics and cybernetic physics proposes integral mathematical models accounting spatiotemporal correlations which give rise to the system structurization under dynamic external loading. Cybernetic methods are used to describe the system evolution according to the internal control. In the framework of the theory a general integral stress-strain relationship depending on the strain-rate and the external pulse duration describes both the elastic medium reaction to an external loading and a transition to plastic flow. The model shows the difference between the shock loading and continuous one which is growing with the loading strain-rate. Constructed on the integral relationship a model of elastic-plastic shock-induced wave changing its waveform during its propagation along a material, is able to describe all complex of the experimentally observed laws that cannot be explained in scope of the conventional continuous mechanics. Copyright 2016 (C) The Authors. Published by Elsevier B.V.
AB - New concept of high-strain-rate processes in solids is developed using the nonlocal theory of nonequilibrium transport. The interdisciplinary theoretical approach is constructed on the base of nonequilibrium statistical mechanics and cybernetic physics proposes integral mathematical models accounting spatiotemporal correlations which give rise to the system structurization under dynamic external loading. Cybernetic methods are used to describe the system evolution according to the internal control. In the framework of the theory a general integral stress-strain relationship depending on the strain-rate and the external pulse duration describes both the elastic medium reaction to an external loading and a transition to plastic flow. The model shows the difference between the shock loading and continuous one which is growing with the loading strain-rate. Constructed on the integral relationship a model of elastic-plastic shock-induced wave changing its waveform during its propagation along a material, is able to describe all complex of the experimentally observed laws that cannot be explained in scope of the conventional continuous mechanics. Copyright 2016 (C) The Authors. Published by Elsevier B.V.
KW - Nonequilibrium
KW - shock loading
KW - elastic-plastic transition
KW - wave evolution
KW - internal control
KW - speed-gradient algoryth
U2 - 10.1016/j.prostr.2016.06.127
DO - 10.1016/j.prostr.2016.06.127
M3 - статья в сборнике материалов конференции
VL - 2
T3 - Procedia Structural Integrity
SP - 994
EP - 1001
BT - 21ST EUROPEAN CONFERENCE ON FRACTURE, (ECF21)
A2 - Iacoviello, F
A2 - Susmel, L
A2 - Firrao, D
A2 - Ferro, G
PB - Elsevier
CY - Italy
Y2 - 20 June 2016 through 24 June 2016
ER -
ID: 13720096