AASHTO TP 105-2013 Standard Method of Test for Determining the Fracture Energy of Asphalt Mixtures Using the Semicircular Bend Geometry (SCB).pdf
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1、Standard Method of Test for Determining the Fracture Energy of Asphalt Mixtures Using the Semicircular Bend Geometry (SCB) AASHTO Designation: TP 105-13 (2015)1American Association of State Highway and Transportation Officials 444 North Capitol Street N.W., Suite 249 Washington, D.C. 20001 TS-2d TP
2、105-1 AASHTO Standard Method of Test for Determining the Fracture Energy of Asphalt Mixtures Using the Semicircular Bend Geometry (SCB) AASHTO Designation: TP 105-13 (2015)11. SCOPE 1.1. This test method covers the determination of the fracture energy (Gf) of asphalt mixtures by means of the semicir
3、cular bend geometry (SCB). The method also includes procedures for calculating fracture toughness (KIC) and stiffness (S). The SCB specimen is a half disc with a notch (its length expressed in meters) that makes an angle with the vertical axis of the disc. The SCB test can be used to determine mode
4、I and mixed mode I and II stress intensity factors (Lim et al., 1993). In this standard, only mode I fracture toughness is addressed ( is equal to zero). 1.2. The procedures in this standard provide parameters that describe the fracture resistance of asphalt mixtures at low temperatures. These param
5、eters are used in the new low-temperature module of the Mechanistic Empirical Pavement Design Guide. 1.3. These procedures apply to test specimens having a maximum aggregate size of 19 mm or less. Specimens shall be 150 9 mm in diameter and 24.7 mm 2 mm thick. These procedures are valid at temperatu
6、res below the performance grade (PG) lower limit of the asphalt binder used to prepare the asphalt mixture plus 22C. 1.4. 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
7、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. AASHTO Standards: M 320, Performance-Graded Asphalt Binder T 166, Bulk Specific Gravity (Gmb) of C
8、ompacted Hot Mix Asphalt (HMA) Using Saturated Surface-Dry Specimens T 269, Percent Air Voids in Compacted Dense and Open Asphalt Mixtures T 312, Preparing and Determining the Density of Asphalt Mixture Specimens by Means of the Superpave Gyratory Compactor T 322, Determining the Creep Compliance an
9、d Strength of Hot Mix Asphalt (HMA) Using the Indirect Tensile Test Device 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-2d TP 105-2 AASHTO 2.2. ASTM Standards: D8, Standard Terminology Relating to
10、Materials for Roads and Pavements D3549/D3549M, Standard Test Method for Thickness or Height of Compacted Bituminous Paving Mixture Specimens D4123, Standard Test Method for Indirect Tension Test for Resilient Modulus of Bituminous Mixtures (Withdrawn 2003) D5045, Standard Test Methods for Plane-Str
11、ain Fracture Toughness and Strain Energy Release Rate of Plastic Materials D5361/D5361M, Standard Practice for Sampling Compacted Bituminous Mixtures for Laboratory Testing E399, Standard Test Method for Linear-Elastic Plane-Strain Fracture Toughness KICof Metallic Materials 3. TERMINOLOGY 3.1. Defi
12、nitions: 3.1.1. crack mouthportion of the notch that is on the flat bottom surface of the specimen, that is, opposite the notch tip. 3.1.2. crack mouth opening displacement (CMOD)relative displacement of the crack mouth. 3.1.3. load line displacement (LLD)the displacement measured in the direction o
13、f the load application. 3.1.4. linear variable differential transformer (LVDT)sensor device for measuring linear displacement. 3.1.5. semicircular bend (SCB) geometrya geometry that utilizes a semicircular specimen. 3.1.6. fracture energy, Gfthe energy required to create a unit surface area of a cra
14、ck. 3.1.7. stiffness, Sthe slope of the linear part of the ascending load-load line displacement curve. 3.1.8. linear elastic fracture mechanics (LEFM)a method of fracture analysis for determining the stress required to induce fracture instability in a structure containing a crack-like flaw of known
15、 size and shape. 3.1.9. mode I stress intensity factor, KIthe parameter used to characterize the mode I stress field in the vicinity of the crack tip in the LEFM analysis. 3.1.10. mode I critical stress intensity factor, KICstress intensity factor corresponding to the initiation of the crack, also r
16、eferred to as fracture toughness. 4. SUMMARY OF TEST METHOD 4.1. A semicircular asphalt mixture specimen is positioned with the flat side on two rollers that are covered with a friction-reducing material. A load is applied along the vertical diameter of the specimen and the load and load line displa
17、cement are measured during the entire duration of the test. The load is applied such that a constant CMOD of 0.0005 mm/s is obtained and maintained for the duration of the test to ensure stable crack growth conditions. 2015 by the American Association of State Highway and Transportation Officials.Al
18、l rights reserved. Duplication is a violation of applicable law.TS-2d TP 105-3 AASHTO 4.2. Fracture energy (Gf), stiffness (S), and fracture toughness (KIC) are calculated from the load and load line displacement results. 5. SIGNIFICANCE AND USE 5.1. The SCB test is used to determine the low-tempera
19、ture fracture energy and fracture toughness of asphalt mixtures. These parameters describe the fracture resistance of asphalt mixtures. 5.2. Fracture energy can be used as an index parameter to identify mixtures with increased fracture resistance. It also represents the main parameter used in more c
20、omplex analyses based on a fictitious crack (cohesive zone) model. 5.3. Fracture toughness obtained with this test method can be used as an index parameter to identify mixtures with increased fracture resistance. 5.4. Stiffness obtained with this test method can be related to the elastic modulus of
21、asphalt mixtures at low temperatures. 5.5. The specimens can be easily cut from Superpave gyratorycompacted cylinders and from field cores with a diameter of 150 mm. 6. APPARATUS 6.1. Semicircular Bend (SCB) Test SystemA semicircular bend (SCB) test system consisting of a closed-loop axial loading d
22、evice, a load measuring device, a bend test fixture, specimen deformation measurement devices, an environmental chamber, and a control and data acquisition system (see Figure 1). 6.1.1. Axial Loading DeviceThe loading device shall be capable of delivering a minimum load of 10 kN in compression with
23、a resolution of 20 N or better. The load apparatus shall be capable of maintaining a constant crack mouth opening displacement within 1 percent of the target value throughout the test. The loading head shall be similar to the one described for the bend test fixture in ASTM E399 (see Figure 1). 2015
24、by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-2d TP 105-4 AASHTO Figure 1SCB Loading Setup for Front and Back Sides of Test Specimen 6.1.2. Load Measuring DeviceThe load measuring device shall consist of
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