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JOURNALS // Journal of Samara State Technical University, Ser. Physical and Mathematical Sciences // Archive

Vestn. Samar. Gos. Tekhn. Univ., Ser. Fiz.-Mat. Nauki [J. Samara State Tech. Univ., Ser. Phys. Math. Sci.], 2014 Issue 1(34), Pages 86–92 (Mi vsgtu1202)

This article is cited in 1 paper

Mechanics of Solids

Reliability Evaluation of Stochastically Heterogeneous Thick-walled Pipe by Long-term Strength Criterion

N. N. Popov, L. V. Kovalenko

Samara State Technical University, Samara, 443100, Russian Federation

Abstract: We have developed a method of probabilistic reliability evaluation of microheterogeneous thick-walled pipe, based on the already received solution of the stochastic creep boundary value problem. The rheological properties of the material were described using random function of one variable (radius $r$). Damage parameter $0\leq\omega(t)\leq1$ was introduced here to study the process of degradation of the material during creep stage. Also the power law of the rate of $\omega(t)$ change on the equivalent stress $\sigma_{\text{eq}}$, determined by Sdobyrev criterion, is assigned. The reliability evaluation is made by the mean integral value of the equivalent stress. We have found a random time before destruction and its distribution function, which was approximated by lognormal law. The problem of the probability of failure-free operation was calculated for a thick-walled microheterogeneous pipe with the specified parameters. The obtained results allow to evaluate reliability of stochastically inhomogeneous axisymmetric structural elements if necessary statistical data are obtained from the experiment.

Keywords: steady-creep state, thick-walled pipe, microheterogeneous material, stochastic boundary value problem, long-term strength, reliability function.

UDC: 539.376

MSC: Primary 74D10, 74S60; Secondary 74R20, 74E35, 74E05

Original article submitted 20/XII/2013
revision submitted – 21/II/2014

DOI: 10.14498/vsgtu1202



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