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Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

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Page 1: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Considering multiple-axle group loads in mechanistic design of bound pavements

Michael Moffatt

Page 2: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Source: Department of Planning, Transport and Infrastructure, South Australia

Page 3: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt
Page 4: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

80 kN

Standard Axle

equivalent Standard Axle Repetitions

Page 5: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Axle type Standard group load [kN]

single axle – single tyres 53

single axle – dual tyres 80

tandem – dual tyres 135

triaxle – dual tyres 181

quad-axle – dual tyres 221

Failure mechanism LDE

asphalt fatigue 5

cemented material fatigue 12

total deformation 7

Page 8: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Fatigue testing

flexural fatigue testingusing trapezoidal beam

displacement controlduring testing

no rest periods

simulated axles had equal peaks

8

Page 9: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Simplified Homsi model

Page 10: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

non-linear elastic support materials

localised stress/modulus states

superpositioning of responses

3D FEM

Page 11: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Asphalt

Crushed rock

Subgrade

Pavement structures

1000 MPa 3000 MPa5000 MPa

High quality crushed rockLower subbase

Highly plastic clay (CBR 3%)Sand (CBR 15%)

50 100 200 300 mm

200 400 600 mm

Page 15: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Fatigue models

Austroads

Simplified Homsi

Maximum peaks

Page 18: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Damage models

Summed peaks

Maximum peaks

Page 20: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Layered linear-elastic analysessimilar

Page 21: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

• Equating damage by strain (+ superposition) varies withpavement structure

• thicknesses

• modulus

• Single load equivalency values unsuitable

• Model traffic spectrum, and assign damage to each combination of axle group and load

• same as for concrete design

Implementation in the guide

Page 22: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Design processAustroadstraffic load distribution + HVAG count

SAR5

Model candidate structure with Standard Axle

Allowable loading cf. SAR5

Summed peakstraffic load distribution + HVAG count

Model candidate structure with axle types/loads in TDL

Sum damage (want ≤ 100 %)

Austroads Summed peaks

Page 24: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Cemented materials fatigue

Page 26: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

pulse width rest

250 ms250 ms

(a) Haversine

(b) Single axle

(c) tandem

(d) tri-axle

(e) quad-axle

Page 27: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

• conclude that relative damage is the same as number of axles in group

• same procedure as for asphalt

FindingsGroup damage relative to single axle

Groups Relative damage

2 2.4

3 2.8

4.1

Page 28: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Design example

1 x 108 HVAG

Page 29: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Asphalt

Crushed rock

Subgrade

Candidate structure

3000 MPa

CBR 7 %

340 mm

300 mm

Page 30: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt
Page 31: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Reference load: 53 kN

XX YY

60.3 54.4

Page 33: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt
Page 34: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Reference load: 135 kN

XX YY

58.2 43.0XX YY

60.7 44.2

XX YY

58.2 43.0XX YY

60.7 44.2

Page 39: Considering multiple-axle group loads in mechanistic design of bound pavements Michael Moffatt

Further information

Seek me out today.

26th ARRB Conference paper.

www.arrb.com.au/ARRB-

Conferences

Research Report for Austroads in press.

PhD thesis in pre-pre-press.Thank youwww.arrb.com.au