AASHTO TP 127-2017 Standard Method of Test for Determining the Fracture Energy Density of Asphalt Binder Using the Binder Fracture Energy (BFE) Test.pdf
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1、Standard Method of Test for Determining the Fracture Energy Density of Asphalt Binder Using the Binder Fracture Energy (BFE) Test AASHTO Designation: TP 127-171Technical Section: 2b, Liquid Asphalt Release: Group 3 (August 2017) American Association of State Highway and Transportation Officials 444
2、North Capitol Street N.W., Suite 249 Washington, D.C. 20001 Standard Method of Test for Determining the Fracture Energy Density of Asphalt Binder Using the Binder Fracture Energy (BFE) Test AASHTO Designation: TP 127-171Technical Section: 2b, Liquid Asphalt Release: Group 3 (August 2017) 1. SCOPE 1.
3、1. This test method covers the determination of fracture energy density of asphalt binder by means of a direct tension test. For evaluation of relative cracking performance, it is recommended that this test procedure be used with asphalt binder aged using T 240 (RTFO) plus R 28 (PAV). However, this
4、test can be used for determination of binder facture energy for any binder including any aged (RTFO plus PAV or PAV only) neat or modified binder and asphalt binder extracted and recovered from pavement. The test apparatus is designed for testing within the intermediate temperature range, from 0C to
5、 25C. 1.2. This standard may involve hazardous materials, operations, and equipment. This standard does not purport to address all of the safety concerns associated with its use. It is the responsibility of the user of this procedure to establish appropriate safety and health practices and to determ
6、ine the applicability of regularity limitations prior to use. 2. REFERENCED STANDARDS 2.1. AASHTO Standards: M 320, Performance-Graded Asphalt Binder R 28, Accelerated Aging of Asphalt Binder Using a Pressurized Aging Vessel (PAV) R 49, Determination of Low-Temperature Performance Grade (PG) of Asph
7、alt Binders R 66, Sampling Asphalt Materials T 240, Effect of Heat and Air on a Moving Film of Asphalt Binder (Rolling Thin-Film Oven Test) 2.2. ASTM Standards: C670, Standard Practice for Preparing Precision and Bias Statements for Test Methods for Construction Materials E1, Standard Specification
8、for ASTM Liquid-in-Glass Thermometers E4, Standard Practices for Force Verification of Testing Machines E77, Standard Test Method for Inspection and Verification of Thermometers E83, Standard Practice for Verification and Classification of Extensometer Systems 2.3. ISO Standard: 2017 by the American
9、 Association of State Highway and Transportation Officials. All rights reserved. Duplication is a violation of applicable law. ISO 10012, Measurement Management SystemsRequirements for Measurement Processes and Measuring Equipment 3. TERMINOLOGY 3.1. Definition: 3.1.1. asphalt binderan asphalt-based
10、 cement that is produced from petroleum residue either with or without the addition of particulate organic modifiers of size less than 250 m. 3.2. Description of Terms Specific to This Standard: 3.2.1. brittletype of failure in a direct tension test where the stressstrain curve is essentially linear
11、 up to the point of failure and the failure is sudden by rupture of the test specimen without appreciable reduction in cross-sectional area of the specimen. 3.2.2. brittleductiletype of failure in a direct tension test where the stressstrain curve is curvilinear and the failure is by the rupture of
12、the test specimen. Limited reduction in the cross-section of the specimen occurs before rupture. 3.2.3. ductiletype of failure in a direct tension test where the specimen does not rupture but fails by flow at large strain. 3.2.4. failurefor specimens exhibiting a stressstrain curve with a single pea
13、k stress followed by a continuously increasing reduction in stress, failure is the point at which the tensile stress reaches a maximum value. 3.2.5. failure strainthe tensile strain corresponding to the failure stress. 3.2.6. failure stressthe tensile stress at the point associated with failure as d
14、efined in Section 3.2.4. 3.2.7. fracture energy densitymaximum energy that can be stored in a unit volume of material without the occurrence of fracture. 3.2.8. large strain formulationanalysis, which includes changes in geometry due to excessively large strain. 3.2.9. neckingdisproportionately larg
15、e strain localized in a small region of the asphalt binder specimen which results in a prominent decrease in local cross-sectional area. 3.2.10. tensile strainaxial strain resulting from the application of a tensile load and calculated as the change in length of the effective gauge length caused by
16、the application of the tensile load divided by the original unloaded effective gauge length. 3.2.11. tensile stressaxial stress resulting from the application of a tensile load and calculated as the tensile load divided by the original area of cross-section of the specimen. 3.2.12. true strainstrain
17、 determined by accounting for reduction in cross-sectional area. 3.2.13. true stressratio of the applied load to the instantaneous cross-sectional area. 3.2.14. true stresstrue strain curvegraphical representation of the relationship between true stress and true strain. 2017 by the American Associat
18、ion of State Highway and Transportation Officials. All rights reserved. Duplication is a violation of applicable law.4. SUMMARY OF TEST METHOD 4.1. This method describes the procedure used to measure stress and strain on a fracture failure plane in an asphalt binder specimen pulled at a constant rat
19、e of displacement (displacement-control). Test specimens have a special geometry (Figure 1) and they are prepared using the specified mold. Two G10 phenolic end tabs are bonded to the asphalt binder, and they transfer the tensile load from the test machine to the asphalt binder. 4.2. This test metho
20、d was developed for asphalt binders at intermediate temperatures where they exhibit brittleductile or brittle failure. The test is not applicable at temperature where failure is by ductile flow (necking). 4.3. A displacement transducer is used to measure the elongation of the test specimen as it is
21、pulled in tension at a designated displacement rate. The load developed during the test is also measured. The tensile stress and strain from initial loading through failure are determined and used to calculate and report failure stress, failure strain, and fracture energy density. 4.4. Fracture ener
22、gy density can be used to evaluate the relative resistance to fracture of different asphalt binders. In addition, characteristics of the resulting true stresstrue strain curve can be used to identify the presence of polymer and/or rubber in the binder. Notes: aAll dimensions are in millimeters (inch
23、es in parentheses.) bTolerances are as follows: Fractions 1.6 (0.0625) X.X 0.8 (0.03) X.XX 0.25 (0.01) X.XXX 0.12 (0.005) cRemove all sharp edges. dSurface finish for machined surfaces equals 125unless otherwise specified. Figure 1Specimen Geometry 2017 by the American Association of State Highway a
24、nd Transportation Officials. All rights reserved. Duplication is a violation of applicable law.TS-2b TP 127-4 AASHTO 5. SIGNIFICANCE AND USE 5.1. The test is designed to measure fracture energy density of asphalt binder at intermediate temperatures. Fracture energy density has been shown to be an in
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