A Fully Implicit, Lower Bound, Multi-Axial Solution Strategy for Direct Ratchet Boundary Evaluation: Theoretical Development

Author:

Jappy Alan1,Mackenzie Donald1,Chen Haofeng2

Affiliation:

1. e-mail:

2. e-mail:  Department of Mechanical and Aerospace Engineering, University of Strathclyde, Glasgow G1 1XQ, UK

Abstract

Ensuring sufficient safety against ratchet is a fundamental requirement in pressure vessel design. Determining the ratchet boundary can prove difficult and computationally expensive when using a full elastic–plastic finite element analysis and a number of direct methods have been proposed that overcome the difficulties associated with ratchet boundary evaluation. Here, a new approach based on fully implicit finite element methods, similar to conventional elastic–plastic methods, is presented. The method utilizes a two-stage procedure. The first stage determines the cyclic stress state, which can include a varying residual stress component, by repeatedly converging on the solution for the different loads by superposition of elastic stress solutions using a modified elastic–plastic solution. The second stage calculates the constant loads which can be added to the steady cycle while ensuring the equivalent stresses remain below a modified yield strength. During stage 2 the modified yield strength is updated throughout the analysis, thus satisfying Melan's lower bound ratchet theorem. This is achieved utilizing the same elastic plastic model as the first stage, and a modified radial return method. The proposed methods are shown to provide better agreement with upper bound ratchet methods than other lower bound ratchet methods, however limitations in these are identified and discussed.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

Reference23 articles.

1. Elasto-Plastic Behaviour of Thin Tubes Subjected to Internal Pressure and Intermittent Heat Fluxes With Application to Fast Reactor Fuel Elements;J. Strain Anal.,1967

2. Theorie Statisch Unbestimmter Systeme aus Ideal-Plastischem Bastoff;Sitzungsber. Akad. Wiss. Wien, Abtiia,1936

3. General Theorems for Elastic Plastic Solids,1960

4. Lower and Upper Bound Shakedown Analysis of structures With Temperature-Dependent Yield Stress;J. Pressure Vessel Technol.,2010

5. LISA a European Project for FEM-Based Limit and Shakedown Analysis;Nucl. Eng. Des.,2001

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3. Ratcheting in pressurized pipes and equipment: A review on affecting parameters, modelling, safety codes, and challenges;Fatigue & Fracture of Engineering Materials & Structures;2018-02-14

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