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David Ramcharn

02743799

ME21A

FATIGUE LAB
TENSILE TESTING
Specimen without hole

Average

Area

Width (mm)
22.6
23
22.88
22.8266667

Thickness (inches)
0.131
0.129
0.127
0.129

Thickness (mm)
3.3274
3.2766
3.2258
3.2766

= Width * Thickness
= 22.83 * 3.28
= 74.88 mm2

Yield Load
Ultimate Tensile Load

= 5800 lbs
= 7900 lbs

= 2630.84 Kgs
= 3583.38 Kgs

Stress (σ)

= Force / Area

σyield

= 2630.84 * 9.81 / 74.88
= 344.654 N/mm2

σultimate

= 3583.38 * 9.81 / 74.88
= 469.45 N/mm2

Specimen with 3mm diameter hole

Average

Area

Yield Load
Ultimate Tensile Load

Width (mm)
22.52
22.56
22.64
22.57

Thickness (inches)
0.114
0.114
0.117
0.115

= (Width – hole diameter)* Thickness
= (22.57 – 3) * 2.921
= 57.164 mm2
= 4200 lbs
= 5700 lbs

σnominal

= 1905.1 * 9.81 / 57.164
= 326.89 N/mm2

σultimate

= 2585.48 * 9.81 / 57.164
= 443.622 N/mm2

Stress concentration Factor

= 1905.1 Kgs
= 2585.48 Kgs

Thickness (mm)
2.8956
2.8956
2.9718
2.921
David Ramcharn

02743799

K

ME21A

= σyield / σnominal
= 344.654 / 326.89
= 1.056

TENSION TEST

Average

Area

Width (mm)
27.4
27.5
26.9
27.2
27.25

= Width * Thickness
= 27.25 * 3.125
= 85.16 mm2

Yield Load
Ultimate Tensile Load

= 23190 N
= 32800 N

Stress (σ)

= Force / Area

σyield

= 23190 / 85.16
= 272.32 N/mm2

σultimate

= 32800 / 85.16
= 385.17 N/mm2

From work sheet P-yield

= 19110N

Area

= Width * Thickness
= (27.25 – 3) * 3.125

σnominal

= 19110 / 75.78
= 252.173 N/mm2

Therefore

K

= 272.32 / 252.173
= 1.08

Thickness (mm)
3.2
3.15
3.05
3.10
3.125
David Ramcharn

02743799

ME21A

FATIGUE TESTING
L = 62.5mm

b = 16.5mm

σbending

= (3PL)/ bt2
= (3*100*62.5)/16.5 * 42
= 71.023 N/mm2
Loaqd
(lbs)
0
2
4
6
8

Load
N)
0
8.900
17.799
26.699
35.598

microstrain

t = 4mm

P = 100N

Deflection (mm) microstrain

0
93
186
278
371

0
0.15
0.30
0.45
0.60

0
143
285
428
570

From Graph #1 of Load (N) vs Microstrain
Y
i.e Gradient of Graph

= 10.424x
…………………………………………….. 1
= 10.424 microstrain / N

From Graph # 2 of Deflection (mm) vs. microstrain
Y
i.e gradient of graph

= 950x ……………………………………………... 2
= 950 microstrain / mm

If specimen was subjected to a total deflection of 2.602mm then:Deflection
From eqn. 2.
Microstrain

= 2.602 / 2
= 1.301mm
= 1.301 * 950
= 1235.95 microstrain

Sub in eqn 1
1235.95
Load

= 10.424 * load
= 1235.95 / 10.424
= 118.57 N

Corresponding σbending = (3*118.57*62.5)/16.5 * 42
= 84.21 N/mm2
Bending Moments

= P * L/2
David Ramcharn

02743799

ME21A

= (3PL)/ bt2

σbending

For a given deflection and strain
P

= microstrain / 10.424

Load

= 143 / 10.424
= 13.72 N

Bending Moments

= 13.72 (62.5 / 2)
= 428.75 N mm

σbending

= (3*13.72*62.5)/(16.25*42)
= 9.89 N/mm2

Deflection (mm)

microstrain

Load N

0
0.15
0.30
0.45
0.60

0
143
285
428
570

0
13.72
27.34
41.06
54.68

Bending Moments
(N mm)
0
428.75
854.38
1283.13
1708.75

Bending Stress
(N/mm2)
0
9.89
19.72
29.61
39.43

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Fatigue testing tensile specimen results

  • 1. David Ramcharn 02743799 ME21A FATIGUE LAB TENSILE TESTING Specimen without hole Average Area Width (mm) 22.6 23 22.88 22.8266667 Thickness (inches) 0.131 0.129 0.127 0.129 Thickness (mm) 3.3274 3.2766 3.2258 3.2766 = Width * Thickness = 22.83 * 3.28 = 74.88 mm2 Yield Load Ultimate Tensile Load = 5800 lbs = 7900 lbs = 2630.84 Kgs = 3583.38 Kgs Stress (σ) = Force / Area σyield = 2630.84 * 9.81 / 74.88 = 344.654 N/mm2 σultimate = 3583.38 * 9.81 / 74.88 = 469.45 N/mm2 Specimen with 3mm diameter hole Average Area Yield Load Ultimate Tensile Load Width (mm) 22.52 22.56 22.64 22.57 Thickness (inches) 0.114 0.114 0.117 0.115 = (Width – hole diameter)* Thickness = (22.57 – 3) * 2.921 = 57.164 mm2 = 4200 lbs = 5700 lbs σnominal = 1905.1 * 9.81 / 57.164 = 326.89 N/mm2 σultimate = 2585.48 * 9.81 / 57.164 = 443.622 N/mm2 Stress concentration Factor = 1905.1 Kgs = 2585.48 Kgs Thickness (mm) 2.8956 2.8956 2.9718 2.921
  • 2. David Ramcharn 02743799 K ME21A = σyield / σnominal = 344.654 / 326.89 = 1.056 TENSION TEST Average Area Width (mm) 27.4 27.5 26.9 27.2 27.25 = Width * Thickness = 27.25 * 3.125 = 85.16 mm2 Yield Load Ultimate Tensile Load = 23190 N = 32800 N Stress (σ) = Force / Area σyield = 23190 / 85.16 = 272.32 N/mm2 σultimate = 32800 / 85.16 = 385.17 N/mm2 From work sheet P-yield = 19110N Area = Width * Thickness = (27.25 – 3) * 3.125 σnominal = 19110 / 75.78 = 252.173 N/mm2 Therefore K = 272.32 / 252.173 = 1.08 Thickness (mm) 3.2 3.15 3.05 3.10 3.125
  • 3. David Ramcharn 02743799 ME21A FATIGUE TESTING L = 62.5mm b = 16.5mm σbending = (3PL)/ bt2 = (3*100*62.5)/16.5 * 42 = 71.023 N/mm2 Loaqd (lbs) 0 2 4 6 8 Load N) 0 8.900 17.799 26.699 35.598 microstrain t = 4mm P = 100N Deflection (mm) microstrain 0 93 186 278 371 0 0.15 0.30 0.45 0.60 0 143 285 428 570 From Graph #1 of Load (N) vs Microstrain Y i.e Gradient of Graph = 10.424x …………………………………………….. 1 = 10.424 microstrain / N From Graph # 2 of Deflection (mm) vs. microstrain Y i.e gradient of graph = 950x ……………………………………………... 2 = 950 microstrain / mm If specimen was subjected to a total deflection of 2.602mm then:Deflection From eqn. 2. Microstrain = 2.602 / 2 = 1.301mm = 1.301 * 950 = 1235.95 microstrain Sub in eqn 1 1235.95 Load = 10.424 * load = 1235.95 / 10.424 = 118.57 N Corresponding σbending = (3*118.57*62.5)/16.5 * 42 = 84.21 N/mm2 Bending Moments = P * L/2
  • 4. David Ramcharn 02743799 ME21A = (3PL)/ bt2 σbending For a given deflection and strain P = microstrain / 10.424 Load = 143 / 10.424 = 13.72 N Bending Moments = 13.72 (62.5 / 2) = 428.75 N mm σbending = (3*13.72*62.5)/(16.25*42) = 9.89 N/mm2 Deflection (mm) microstrain Load N 0 0.15 0.30 0.45 0.60 0 143 285 428 570 0 13.72 27.34 41.06 54.68 Bending Moments (N mm) 0 428.75 854.38 1283.13 1708.75 Bending Stress (N/mm2) 0 9.89 19.72 29.61 39.43