Download - FE Post Processing

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Page 1: FE Post Processing

FE Post Processing

• Plotting• Campbell Diagram• Goodman Diagram• Fracture• Yield• Principal Stress

Page 2: FE Post Processing

POST PROCESSING PLOTS

Page 3: FE Post Processing

Deformed Shape Plot

Page 4: FE Post Processing

Contour Plots

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History Plot

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Invert Colors for Hard CopiesInvert Colors for Hard Copies

Page 7: FE Post Processing

CAMPBELL DIAGRAMS

Page 8: FE Post Processing

Campbell Diagram

0

500

1000

1500

2000

2500

3000

3500

0 2000 4000 6000 8000 10000 12000 14000

Fre

qu

en

cy -

Hz

Rotation Rate - RPM

Mode 1

Mode 2

Mode 3

EO: 1

EO: 3

EO: 6

EO: 10

EO: 11

EO: 12

EO: 15

Idle

Red Line

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Probabilistic Campbell Diagram

0

500

1000

1500

2000

2500

3000

3500

0 2000 4000 6000 8000 10000 12000 14000

Fre

qu

en

cy -

Hz

Rotation Rate - RPM

Mode 1

Mode 2

Mode 3

EO: 1

EO: 3

EO: 6

EO: 10

EO: 11

EO: 12

EO: 15

Idle

Red Line

Page 10: FE Post Processing

GOODMAN DIAGRAMS

Page 11: FE Post Processing

Inputs Include

• Material:– Ultimate tensile strength, – Yield stress – 0.2%,– High cycle fatigue strength,

• Loads– Steady stress,– Vibratory,

• Half amplitude, zero-peak, • Full amplitude, peak-peak,

UTS

Y

1R

0

pp

Page 12: FE Post Processing

Load Inputs

max

min

R

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HCF Test Data

• Fit R=-1 data– For example:

• Pick number of cycles to failure: Nf

• Solve for corresponding half-amplitude stress:

110 /log Rf BAN

1R

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Goodman DiagramMaterial Inputs

110 /log Rf BAN

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My Choice

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FRACTURE MECHANICS

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Fracture Modes

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Stress Intensity FactorMode I

Stresses near crack tip are singular and vary as the inverse square root of distance from crack tipKI is the stress intensity factor

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Fracture – ¼ Points

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Modeling Cracks

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VON MISES STRESS&

PLASTIC YIELDING

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Von Mises Stress

zzyzxz

yzyyxy

xzxyxx

is the stress tensor

3zzyyxxp

is the equivalent hydrostatic pressure

p

p

p

sss

sss

sss

s

zzyzxz

yzyyxy

xzxyxx

zzyzxz

yzyyxy

xzxyxx

is the deviatoric stress

Page 23: FE Post Processing

Invariants of Stress

• Invariants do not change values when coordinate system is rotated.

• The first invariant of the stress is

• The second invariant of the deviatoric stress is

• The third invariant of the deviatoric stress is the determinant.

.31 pI zzyyxx

.2

1 2222222222 zzyzxzyzyyxyxzxyxx sssssssssJ

Page 24: FE Post Processing

Uniaxial Tension

000

000

00y

33yzzyyxxp

y

y

yp

zzyzxz

yzyyxy

xzxyxx

p

p

p

s

3

100

03

10

003

2

22222 3

1

9

1

9

1

9

4

2

1yyyyJ

:yield stressy

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Equivalent Mises Stress

• Yielding occurs when

• Or when equivalent stress

• When yielding occurs

• Stress ratio is

03

1 22 yJ

23JvM

yvM

yvM /

Page 26: FE Post Processing

PRINCIPAL STRESSES

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Principal Stresses

• Eigenvalues of stress tensor (matrix) are principal stresses– All values are real– Order is 1:maximum, 2: intermediate, 3:minimum

• Associated eigenvectors are normal to face• Use maximum principal stress for fracture

1

2

3

x

y

z

Page 28: FE Post Processing

STRESS CONTOURS

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Ansys Stress Contour Plots

Page 30: FE Post Processing

FE Post Processing• Plotting

– Includes displaced, contour, and scatter plots• Campbell Diagram

– Finds important resonances• Goodman Diagram

– Predicts high cycle fatigue life• Fracture

– Indicates failure due to crack propagation• Yield

– Establishes yield through the use of equivalent (Mises) stress• Principal Stress

– Aids in determining failure due to presence of flaws


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