A Viscoplastic Constitutive Theory for Monolithic Ceramics—I

Author:

Janosik L. A.1,Duffy S. F.2

Affiliation:

1. NASA Lewis Research Center, Cleveland, OH 44135

2. Cleveland State University, Cleveland, OH 44115

Abstract

This paper, which is the first of two in a series, provides an overview of a viscoplastic constitutive model that accounts for time-dependent material deformation (e.g., creep, stress relaxation, etc.) in monolithic ceramics. Using continuum principles of engineering mechanics, the complete theory is derived from a scalar dissipative potential function first proposed by Robinson (1978), and later utilized by Duffy (1988). Derivations based on a flow potential function provide an assurance that the inelastic boundary value problem is well posed, and solutions obtained are unique. The specific formulation used here for the threshold function (a component of the flow potential function) was originally proposed by Willam and Warnke (1975) in order to formulate constitutive equations for time-independent classical plasticity behavior observed in cement and unreinforced concrete. Here constitutive equations formulated for the flow law (strain rate) and evolutionary law employ stress invariants to define the functional dependence on the Cauchy stress and a tensorial state variable. This particular formulation of the viscoplastic model exhibits a sensitivity to hydrostatic stress, and allows different behavior in tension and compression.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference23 articles.

1. Bingham, E. C., 1922, Fluidity and Plasticity, McGraw-Hill, New York.

2. Chen, W. F., 1982, Plasticity in Reinforced Concrete, McGraw-Hill, New York.

3. Chuang, T. J., and Duffy, S. F., 1994, “A Methodology to Predict Creep Life for Advanced Ceramics Using Continuum Damage Mechanics,” Life Prediction Methodologies and Data for Ceramic Materials, ASTM STP 1201, C. R. Brinkman and S. F. Duffy, eds., American Society for Testing and Materials, Philadelphia, pp. 207–227.

4. Corapcioglu Y. , and UzT., 1978, “Constitutive Equations for Plastic Deformation of Porous Materials,” Powder Technology, Vol. 21, pp. 269–274.

5. Ding, J.-L., Liu, K. C., and Brinkman, C. R., 1994, “A Comparative Study of Existing and Newly Proposed Models for Creep Deformation and Life Prediction of Si3N4,” in: Life Prediction Methodologies and Data for Ceramic Materials, ASTM STP 1201, C. R. Brinkman and S. F. Duffy, eds., American Society for Testing and Materials, Philadelphia, pp. 62–83.

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