Modelling of internal heat and mass transfer and stress-strain state in composite shells under local heating
Matematičeskoe modelirovanie, Tome 23 (2011) no. 9, pp. 14-32.

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Model of thermomechanical processes in thin composite shells under high temperatures with effects of thermal decomposition was developed. This model describes interlaminar and transverse stress in the shell as well as a change of composite properties under heating. Numerical technique for solution of internal heat and mass conduction problem and thermomechanic of thermodestructing composite shells was developed. The technique is based on a finite element method procedure for a shell theory problem and finite difference method in combination with step-by-step finite difference method for a system of equations of internal heat and mass conduction.
Keywords: thermal decomposition of composite; pyrolysis; thin shell; internal heat and mass transfer; pore pressure; finite element method.
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Yu. I. Dimitrienko; V. V. Minin; E. K. Syzdykov. Modelling of internal heat and mass transfer and stress-strain state in composite shells under local heating. Matematičeskoe modelirovanie, Tome 23 (2011) no. 9, pp. 14-32. http://geodesic.mathdoc.fr/item/MM_2011_23_9_a1/

[1] Dimitrienko Yu. I., Mekhanika kompozitsionnykh materialov pri vysokikh temperaturakh, Mashinostroenie, M., 1997, 362 pp.

[2] Dimitrienko Yu. I., Termomechanics of Composites under High Temperatures, Kluwer Academic Publishers, Dordrecht–Boston–London, 1999, 347 pp. | MR | Zbl

[3] Dimitrienko Yu. I., “A structural thermomechanical model of textile composite materials at high temperatures”, Composite science and technologies, 59 (1999), 1041–1053 | DOI

[4] Dimitrienko Yu. I., “Modelling of Mechanical Properties of Composite Materials under High Temperatures. Part 3: Textile Composites”, Int. Journal of Applied Composite Materials, 5:4 (1998), 257–272 | DOI

[5] Dimitrienko Yu. I., “Thermomechanical behaviour of composites under local intense heating by irradiation”, Composites. Part A., 31 (2000), 591–598 | DOI

[6] Chen J. K., Perea A., Allahdadi F. A., “Laser effects on dynamic response of laminated composites”, Composite Engineering, 1995, no. 5, 1135–1147 | DOI

[7] McManus H. N., Springer G. S., “Hugh temperature thermomechanical behavior of carbon-phenolic composites. I: Analysis”, J. Composite Materials, 26 (1992), 206–229 ; “II: Results”, 230–255 | DOI

[8] Qiu Jun, Cao Xiaoming, Tian Chong, Zhang Jinsong, “Ablation Property of Ceramics. Carbon Fiber. Resin Novel Super-hybrid Composite”, J. Mater. Sci. Technol., 21:1, 92–94

[9] Baia Yu., Valleea Till, Keller Thomas, “Modeling of thermal responses for FRP composites under elevated and high temperatures”, Composites Science and Technology, 68:1 (2008), 47–56 | DOI | MR

[10] Luoa Changsong, DesJardin Paul E., “Thermo-mechanical damage modeling of a glass-phenolic composite material”, Composites Science and Technology, 67:7–8 (2007), 1475–1488 | DOI

[11] Bahramiana Ahmad Reza, Kokabi Mehrdad, “Ablation mechanism of polymer layered silicate nanocomposite heat shield”, J. of Hazardous Materials, 166:1 (2009), 445–454 | DOI

[12] Looyehl M. R. E., Samanta A., Jihan S., McConnachie J., “Modeling of reinforced polymer composites subject to thermo-mechanical loading”, International Journal for Numerical Methods in Engineering, 63:6 (2005), 898–925 | DOI

[13] Dimitrienko Yu. I., Tenzornoe ischislenie, Vysshaya shkola, M., 2001, 576 pp.

[14] Samarskii A. A., Teoriya raznostnykh skhem, Nauka, M., 1975