Modeling of the local elastic and limiting strength characteristics of foam-polymer materials

Authors

  • Kolesnikov V.I. Rostov State Transport University, Rostov-on-Don, Российская Федерация
  • Bardushkin V.V. National Research University of Electronic Technology, Zelenograd, Moscow, Российская Федерация
  • Sychev A.P. Rostov State Transport University, Federal Research Centre the Southern Scientific Centre of the Russian Academy of Sciences, Rostov-on-Don, Российская Федерация
  • Sychev A.A. Rostov State Transport University, Rostov-on-Don, Российская Федерация
  • Bardushkin A.V. National Research University of Electronic Technology, AlphaCHIP LLC, Moscow, Российская Федерация

UDC

539.3

DOI:

https://doi.org/10.31429/vestnik-18-3-19-25

Abstract

In this work, a model for predicting local elastic characteristics (components of the stress concentration operator) and ultimate strength indicators for uniaxial compression of foam-polymer materials is constructed, taking into account the volumetric content of air-filled spherical pores. Epoxy binders ED-16 and ED-22, hardened with "T" grade aromatic polyamine, were considered as a matrix. To calculate the local elastic characteristics of foam-epoxy materials, the generalized singular approximation of the random fields theory in a version of the iterative self-consistency method was used. In this case, the values of the elastic modulus tensor obtained at the previous iteration step were taken as the parameters of the homogeneous comparison body. The elastic characteristics in the Voight approximation were used as the initial values of the parameters of the reference body, since this approximation does not require inversion of the singular matrix of the tensor of elastic moduli for such a component of foam-epoxy materials as pores filled with air. Based on the developed model, in this work a numerical simulation of the values of the components of the stress concentration operator of foam-epoxy materials depending on the volumetric content of pores is carried out.
When modeling the values of the ultimate strength of foam-epoxy materials, a method developed by the authors for predicting the ultimate strength characteristics of matrix composites was used, based on the concept of the stress concentration operator and information on the strength properties of the polymer matrix. According to this method, a compressive load applied to a composite material in a certain direction becomes destructive when the internal stress in the polymer matrix begins to exceed its ultimate strength. For the mentioned above foam-epoxy materials based on ED-16 and ED-22, a numerical simulation of their ultimate strength parameters under uniaxial compression was carried out. Model calculations considered changes in the volumetric content of pores in the material. It is numerically confirmed that an increase in porosity leads to a weakening of the strength indicators of model foam-epoxy materials, which in this case change according to a law close to linear.

Keywords:

modeling, stress concentration operator, local elastic characteristics, mechanical strength, foam-polymer material, foam-epoxy material, pores, epoxy binder

Acknowledgement

Работа выполнена при финансовой поддержке гранта РФФИ (20-08-00155-а).

Author Infos

Vladimir I. Kolesnikov

д-р техн. наук, академик РАН, заведующий кафедрой "Теоретическая механика", президент Ростовского государственного университета путей сообщения

e-mail: kvi@rgups.ru

Vladimir V. Bardushkin

д-р физ.-мат. наук, профессор Института физики и прикладной математики Национального исследовательского университета "МИЭТ"

e-mail: bardushkin@mail.ru

Aleksandr P. Sychev

канд. физ.-мат. наук, доцент кафедры "Теоретическая механика" Ростовского государственного университета путей сообщения; заведующий лабораторией "Транспорт, композиционные материалы и конструкции" Федерального исследовательского центра Южный научный центр Российской академии наук

e-mail: alekc_sap@mail.ru

Aleksei A. Sychev

канд. техн. наук, ведущий инженер кафедры "Теоретическая механика" Ростовского государственного университета путей сообщения

e-mail: alexsis1983@gmail.com

Andrei V. Bardushkin

инженер-электроник Института физики и прикладной математики Национального исследовательского университета "МИЭТ"; инженер ООО "Альфачип" (Зеленоград)

e-mail: i170k@yandex.ru

References

  1. Berlin, A.A., Shutov, F.A. Foam polymers based on reactive oligomers. Khimiya, Moscow, 1978. (In Russian)
  2. Berlin, A.A., Shutov, F.A. Strengthened gas-filled plastics. Khimiya, Moscow, 1980. (In Russian)
  3. Dementyev A.G., Tarakanov O.G. The structure and properties of foams. Khimiya, Moscow, 1983. (In Russian)
  4. Tarakanov, O.G., Shamov, I.V., Al'pern, V.D. Filled foam plastics. Khimiya, Moscow, 1989. (In Russian)
  5. Dvorko, I.M., Kotselainen, I.V. Foams based on powder epoxy-novolac compositions. Plasticheskiye massy [Plastic mass], 1998, no. 2, pp. 40–42. (In Russian)
  6. Bardushkin, V.V., Sorokin, A.I., Sychev, A.P. Modeling of performance elastic properties of polymer-based composites with lubricated spherical microcapsules and disperse inclusions of E-glass. Treniye i smazka v mashinakh i mekhanizmakh [Friction & lubrication in machines and mechanisms], 2015, no. 10, pp. 43–47. (In Russian)
  7. Bardushkin, V.V., Lavrov, I.V., Bardushkin, A.V., Yakovlev, V.B., Sychev, A.P., Sychev, A.A. Predicting the operational elastic characteristics of foam-polymer materials. Sborka v mashinostroyenii, priborostroyenii [Assembling in mechanical engineering and instrument-making], 2020, vol. 21, no. 6, pp. 265–269. DOI: 10.36652/0202-3350-2020-21-6-265-269 (In Russian)
  8. Bardushkin, V.V., Sychev, A.P., Sychev, A.A., Bardushkin, A.V. Modeling of the effective elastic characteristics of foam materials with unidirectionally oriented non-isometric pores. Ecological Bulletin of Research Centers of the Black Sea Economic Cooperation, 2020, vol. 17, no. 3, pp. 22–28. DOI: 10.31429/vestnik-17-3-22-28 (In Russian)
  9. Kolesnikov, V.I., Yakovlev, V.B., Bardushkin, V.V., Sychev, A.P. On the prediction of local elastic fields' distributions in non-uniform media on the basis of a generalized singular approximation. Vestnik Yuzhnogo nauchnogo tsentra RAN [Bulletin of the Southern Scientific Center of the Russian Academy of Sciences], 2015, vol. 11, no. 3, pp. 11–17. (In Russian)
  10. Bardushkin, V.V., Sorokin, A.I., Sychev, A.P. Stress and strain concentration in the polymer-based composites with lubricated spherical microcapsules and disperse inclusions of E-glass. Vestnik RGUPS [Bulletin of RGUPS], 2016, no. 1, pp. 8–13. (In Russian)
  11. Kolesnikov, V.I., Bardushkin, V.V., Yakovlev, V.B., Sychev, A.P., Kirillov, D.A., Sorokin, A.I. About a method of predicting of ultimate strength characteristics of the matrix composites, based on use of the operator of stresses concentration. Ecological Bulletin of Research Centers of the Black Sea Economic Cooperation, 2014, no. 1, pp. 45–51. (In Russian)
  12. Bardushkin, V.V., Sorokin, A.I., Sychev, A.P. Modeling the limiting strength of the polymer-based composites with spherical microcapsules filled with lubricate and disperse inclusions of E-glass. Vestnik RGUPS [Bulletin of RGUPS], 2016, no. 3, pp. 8–13. (In Russian)
  13. Levin, V.A., Lokhin, V.V., Zingerman, K.M. On the construction of effective defining relations for porous materials with randomly distributed pores at finite strains and their superposition. Izvestiya vuzov. Severo-Kavkazskiy region. Yestestvennyye nauki [Bulletin of higher education institutes North Caucasus region. Natural sciences], 2000, special iss., pp. 107–115. (In Russian)
  14. Bayuk, I.O. The theoretical basis for determining the effective physical properties of hydrocarbon reservoirs. Yezhegodnik RAO [RAE Yearbook], 2011, iss. 12, pp. 107–120. (In Russian)
  15. Bayuk, I.O. Interdisciplinary approach to predicting macroscopic and filtration-capacitive properties of hydrocarbon reservoirs. Dr. phys.-math. sci. diss. Moscow, 2013. (In Russian)
  16. Shermergor, T.D. Micromechanics of inhomogeneous medium. Nauka, Moscow, 1977. (In Russian)
  17. Pan'kov, A.A. Methods of self-consistency mechanics of composites. Perm State Technical University Publ., Perm, 2008. (In Russian)
  18. Grigor'ev, I.S., Meilikhov, E.Z. (eds.) Physical Quantities: A Handbook. Energoatomizdat, Moscow, 1991. (In Russian)
  19. Lapitsky, V.A., Kricuk, A.A. Physical and mechanical properties of the epoxy polymers and fiberglasses. Naukova Dumka, Kiev, 1986. (In Russian)

Issue

Section

Mechanics

Pages

19-25

Submitted

2021-05-27

Published

2021-06-28

How to Cite

Kolesnikov V.I., Bardushkin V.V., Sychev A.P., Sychev A.A., Bardushkin A.V. Modeling of the local elastic and limiting strength characteristics of foam-polymer materials. Ecological Bulletin of Research Centers of the Black Sea Economic Cooperation, 2021, vol. 18, no. 2, pp. 19-25. DOI: https://doi.org/10.31429/vestnik-18-3-19-25 (In Russian)