AASHTO TP 107-2014 Standard Method of Test for Determining the Damage Characteristic Curve of Asphalt Mixtures from Direct Tension Cyclic Fatigue Tests.pdf
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1、Standard Method of Test for Determining the Damage Characteristic Curve of Asphalt Mixtures from Direct Tension Cyclic Fatigue Tests AASHTO Designation: TP 107-141American Association of State Highway and Transportation Officials 444 North Capitol Street N.W., Suite 249 Washington, D.C. 20001 TS-2d
2、TP 107-1 AASHTO Standard Method of Test for Determining the Damage Characteristic Curve of Asphalt Mixtures from Direct Tension Cyclic Fatigue Tests AASHTO Designation: TP 107-1411. SCOPE 1.1. This test method covers procedures for preparing and testing asphalt concrete mixtures to determine the dam
3、age characteristic curve via direct tension cyclic fatigue tests. 1.2. This standard is applicable to laboratory prepared specimens of mixtures with nominal maximum size aggregate less than or equal to 37.5 mm (1.48 in.). 1.3. This standard may involve hazardous material, operations, and equipment.
4、This standard does not purport to address all safety problems associated with its use. It is the responsibility of the user of this procedure to establish appropriate safety and health practices and to determine the applicability of regulatory limitations prior to use. 2. REFERENCED DOCUMENTS 2.1. A
5、ASHTO Standards: PP 60, Preparation of Cylindrical Performance Test Specimens Using the Superpave Gyratory Compactor (SGC) PP 61, Developing Dynamic Modulus Master Curves for Asphalt Mixtures Using the Asphalt Mixture Performance Tester (AMPT) R 30, Mixture Conditioning of Hot Mix Asphalt (HMA) R 62
6、, Developing Dynamic Modulus Master Curves for Asphalt Mixtures T 342, Determining Dynamic Modulus of Hot Mix Asphalt (HMA) TP 79, Determining the Dynamic Modulus and Flow Number for Asphalt Mixtures Using the Asphalt Mixture Performance Tester (AMPT) 2.2. Other Document: NCHRP Report 629, Equipment
7、 Specifications for the Simple Performance Test System, Appendix E, October 16, 2007. 3. TERMINOLOGY 3.1. Definitions: 3.1.1. complex modulus (E*)a complex number that defines the relationship between stress and strain for a linear viscoelastic material. 2015 by the American Association of State Hig
8、hway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-2d TP 107-2 AASHTO 3.1.2. cyclic pseudo secant modulus (C*)the secant modulus in stresspseudo strain space for a single cycle. This pseudo modulus differs from C because it is computed using a stea
9、dy-state assumption and is used only with cycle-based data. 3.1.3. damage (S)the internal state variable that quantifies microstructural changes in asphalt concrete. 3.1.4. damage characteristic curve (C versus S curve)the curve formed when plotting the damage on the x-axis and the pseudo secant mod
10、ulus on the y-axis. It defines the unique relationship between the structural integrity and amount of damage in a given mixture. 3.1.5. dynamic modulus (|E*|)the norm of the E*, which is calculated by dividing the peak-to-peak stress by the peak-to-peak axial strain measured during the steady-state
11、period. 3.1.6. failure cycle (Nf)the cycle in which the measured phase angle drops sharply after a stable increase during cyclic loading. 3.1.7. phase angle ()the angle, expressed in degrees, between an applied sinusoidal stress and the resulting sinusoidal strain measured during the steady-state pe
12、riod. 3.1.8. pseudo strain (R)a quantity that is similar to strain but does not include time effects. Pseudo strain is calculated by solving the convolution integral of the strain and E(t). 3.1.9. pseudo secant modulus (C)the secant modulus in stresspseudo strain space. 3.1.10. relaxation modulus (E
13、(t)the quotient of the stress response of a material with time to a constant step amplitude of strain. 4. SUMMARY OF METHOD 4.1. A controlled and repeated cyclic loading is applied to a cylindrical asphalt concrete specimen until failure. The applied stress and on-specimen axial strain response are
14、measured and used to calculate the necessary quantities. The relationship between the damage (S) and the pseudo secant modulus (C) is determined and expressed as the damage characteristic curve. 5. SIGNIFICANCE AND USE 5.1. The damage characteristic curve represents the fundamental relationship betw
15、een damage and material integrity for asphalt concrete mixtures. This property is independent of temperature, frequency, and mode of loading. Combined with the linear viscoelastic properties of asphalt concrete, the damage characteristic curve can be used to analyze the fatigue characteristics of as
16、phalt concrete mixtures. 5.2. Damage characteristic curves can also be combined with additional pavement response models to predict the fatigue behavior of in-service asphalt concrete mixtures. 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplic
17、ation is a violation of applicable law.TS-2d TP 107-3 AASHTO Figure 1General Schematic of Direct Tension Test Setup 6. APPARATUS 6.1. Direct Tension Test SystemConsists of a testing machine, environmental chamber, and measurement system. Figure 1 presents a schematic of the test setup for the fatigu
18、e test. 6.2. Asphalt Mixture Performance TesterAn Asphalt Mixture Performance Tester or system meeting or exceeding the requirements of Equipment Specifications for the Simple Performance Test System, NCHRP Report 629, Appendix E. 6.3. External Conditioning Chamber (optional)An environmental chamber
19、 for conditioning the test specimens to the desired testing temperature. The chamber shall be capable of controlling the temperature of the specimen over a temperature range of 5 to 25C (41 To 77F) to within 0.5C (1F). The chamber shall be large enough to accommodate at least a single test specimen
20、and a monitoring specimen with thermocouples mounted at the center and on the surface for temperature verification. 6.4. Measurement SystemShall be fully computer-controlled and capable of measuring and recording the time history of the applied load and axial deformations. A system that uses the cha
21、racteristics shown in Table 1 has been found to be sufficient: Table 1Accuracy and Resolution of Equipment Measurement System Measurement Range Accuracy Resolution Load 0.12 to 13.5 kN Error 1.0% 0.0012 kN Machine deformation At least 12 mm Error 0.03 mm 0.0025 mm On-specimen deformation Not specifi
22、edaError 1.0% Not specifiedbaA range of about 7000 is recommended. bA resolution less than 7.5 is recommended. 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-2d TP 107-4 AASHTO 6.5. Axial Deformation
23、 MeasurementsAxial deformations shall be measured using sensors mounted between gauge points that are glued to the specimen, an example of which is shown in Figure 2. The deformations shall be measured at two locations 180 degrees apart, three locations 120 degrees apart, or four locations 90 degree
24、s apart. Note 1It is recommended, but not specified, that these sensors be the loose-core LVDTs (linear variable differential transformers) type. If the gauge-head type (spring-loaded LVDTs) is chosen, care should be taken to ensure that the spring force is not so strong as to force the gauge points
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