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Publications in Math-Net.Ru
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Modeling the stress-strain state and optimizing the angle of contact of a spherical shell mold by a support filler
Prikl. Mekh. Tekh. Fiz., 66:1 (2025), 189–196
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Simulation of the technological process of continuous metal products manufacturing with the casting and forging module of a new modification
Mat. Model., 35:2 (2023), 15–29
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On the force effect of the support filler and interlayer friction on the stress state of a multilayer shell mold during casting according to smelted models
Vestn. Chuvash. Gos. Ped. Univ. im.I.Ya. Yakovleva Ser.: Mekh. Pred. Sost., 2023, no. 1(55), 33–45
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Modeling of external force action on a shell mold for pouring steel
Mat. Model., 34:5 (2022), 61–72
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The influence of external heat exposure on the stress state of shell forms by smelting models
Mat. Model., 33:1 (2021), 63–76
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Mathematical modeling of a new method of destruction of ice cover
Computer Research and Modeling, 5:4 (2013), 677–691
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On the initial-boundary heat conduction problem for system with phase transfer
Mat. Model., 25:3 (2013), 119–133
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Numerical study of the deformation process of the ice cover under the action of an icebreaking ship
Vestn. Tomsk. Gos. Univ. Mat. Mekh., 2013, no. 3(23), 111–120
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The evolution of ceramic mold stressed state under nonstationary external thermal action
Mat. Model., 22:11 (2010), 97–108
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Simulation of the deformation of a metal in the casting-forging module
Mat. Model., 22:9 (2010), 129–145
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Modeling the destruction of ice jams
Prikl. Mekh. Tekh. Fiz., 51:1 (2010), 110–116
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Investigation of ice cover deflected mode due to ice breaking device moving under it
Mat. Model., 21:10 (2009), 47–57
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Construction of mathematical model for analysis of ice cover destruction process
Mat. Model., 20:12 (2008), 15–26
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Evolution of the ice breaking process
Prikl. Mekh. Tekh. Fiz., 49:1 (2008), 114–119
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Mathematical modeling for one new method of breaking ice cover
Prikl. Mekh. Tekh. Fiz., 47:2 (2006), 139–146
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On an approximate method of solution of problems in plasticity
Prikl. Mekh. Tekh. Fiz., 15:1 (1974), 148–152
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