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Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

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Page 1: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random Finite Element Modeling of thermomechanical behavior of AGR bricks

Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Page 2: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Introduction• AGR Reactors

• Random Finite Element Method -Young’s Modulus Random Field

• Compression Tests

• Preliminary Results Random Thermoelastic Analysis

Page 3: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

AGR Graphite Moderated Reactors

Page 4: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Fast Neutron Damage• Neutron

bombardment of graphite

Radiolytic Oxidation• Chemical reaction

between irradiated CO2 and graphite

ionization radiation *2CO CO O

*2CO O CO

Damage in nuclear reactors

*O C CO

Page 5: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Safety Requirements

Requirements during normal and fault conditions:• Unimpeded loading and

unloading of control rods and fuel rods

• An adequate flow of coolant gas• Provide neutron moderation

and thermal inertia

Page 6: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Hypothesis

• Initial, pre-operation spatial variation in the values of the material properties of nuclear graphite have an effect on stress and strain distribution in graphite bricks, which in turn determines the safe operation of a nuclear graphite core

Page 7: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random Finite Element Methodand Nuclear Graphite

Page 8: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

The Finite Element Method

• Numerical technique to solve differential equations• Transforms differential equations to a set of

algebraic equations

{ } { }F K U

External forces

Materialproperties

and geometry

Displacements

Page 9: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

s

Probability of failure

Page 10: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Young’s ModulusRandom Field

Page 11: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Top-Down Approach, Local Average Method ProcessAdapted from (Vanmarcke, 1983)

2D Local Average Method Process

Page 12: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Scale of fluctuation

10 mm

10 mm

1 mm

1 mm

The average of a portionof the random field of1x1 mm will return the mean value of the Young’s Modulus μ

1 mm

1 mmμ

Scale of fluctuationof 1 mm

Page 13: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random Fields for Young’s Modulus

+Young’s Modulus

-Young’s Modulus

Mean Value

Correlation length 0.1 Correlation length 1.0 Correlation length 100.0

Page 14: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Calibration of the random fieldGrey Scale

Density and Young’s

Modulus

CT X-Ray Tomography

Porosity

Page 15: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

3D Random Fields from2D Images

Young’s Modulus

Porosity

Page 16: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Compression Tests

Page 17: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Boundary Conditions for Axial Compression tests

Fixed in x,y,z Fixed in zUniform axial

Displacement of 4.2 mm

Page 18: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

DeterministicRealization

Page 19: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random Simulation with a scale of fluctuation (100, 100, 100)

Maximum Value – 82.495

Page 20: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Maximum Value – 64.324

Random Simulation with a scale of fluctuation (500, 500, 500)

Page 21: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Maximum Value – 70.894

Random Simulation with a scale of fluctuation (1000, 1000, 1000)

Page 22: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Preliminary Results Random

Thermoelastic Analysis

Page 23: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Preliminary Thermoelastic Analysis

• Octant of an AGR brick• Free to expand

0fT T Thermal strains

α – Coefficient of Thermal expansionTf – Final temperatureT0 – Reference temperature

Page 24: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Temperature profile for the simulations - ΔT

Page 25: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random Material Properties for Young’s ModulusRandom PropertiesDeterministic Properties

Page 26: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

DisplacementsRandom simulationDeterministic simulation

Page 27: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Random simulationDeterministic simulationStress analysis

Page 28: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Road Map

Compression test

Calibration of theRandom fields and

Creation of a randomField for CTE

ThermomechanicalAnalysis

Creep

Page 29: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Acknowledgements

Page 30: Random Finite Element Modeling of thermomechanical behavior of AGR bricks Jose David Arregui Mena, Louise Lever, Graham Hall, Lee Margetts, Paul Mummery

Thank you!