AASHTO T 379-2018 Standard Method of Test for Nonlinear Impact Resonance Acoustic Spectroscopy (NIRAS) for Concrete Specimens with Damage from the Alkali CSilica Reaction (ASR).pdf
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1、Standard Method of Test for Nonlinear Impact Resonance Acoustic Spectroscopy (NIRAS) for Concrete Specimens with Damage from the AlkaliSilica Reaction (ASR) AASHTO Designation: T 379-181Technical Section: 3c, Hardened Concrete Release: Group 1 (April) American Association of State Highway and Transp
2、ortation Officials 444 North Capitol Street N.W., Suite 249 Washington, D.C. 20001 TS-3c T 379-1 AASHTO Standard Method of Test for Nonlinear Impact Resonance Acoustic Spectroscopy (NIRAS) for Concrete Specimens with Damage from the AlkaliSilica Reaction (ASR) AASHTO Designation: T 379-181Technical
3、Section: 3c, Hardened Concrete Release: Group 1 (April) 1. SCOPE 1.1. This test method covers determination of material nonlinearity in concrete laboratory specimens prepared in a manner and subjected to conditions of accelerated alkali-reactivity of aggregate. It is assumed that the nonlinearity du
4、e to elastic hysteresis is a dominant mechanism for the material nonlinearity in concrete specimens with alkalisilica reaction (ASR) damage and that this nonlinearity is directly proportional to the ASR damage occurring in the specimens. This method may not be necessarily applicable to other forms o
5、f damage. 1.2. The values stated in SI units are to be regarded separately as standard. The values in inch-pound units are shown in parentheses and are for informational purposes only. 1.3. This standard does not purport to address all of the safety problems associated with its use. It is the respon
6、sibility of the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatory limitations prior to use. 2. REFERENCED DOCUMENTS 2.1. ASTM Standard: C1293, Standard Test Method for Determination of Length Change of Concrete Due to Alkali-Sili
7、ca Reaction 3. SUMMARY OF TEST METHOD 3.1. A prismatic concrete sample, prepared according to specifications for mix composition and geometry in ASTM C1293, is excited in the fundamental transverse mode of vibration by a low-amplitude impact at the center of the specimen. The vibration at one end of
8、 the sample is measured using an accelerometer and recorded using an oscilloscope. A series of at least 10 impacts of varying force are made to the specimen and the responses, the time-domain signals, are recorded. Signal processing is performed to measure the frequency and amplitude of the fundamen
9、tal resonance peaks from the frequency spectra of the recorded time-domain signals. The normalized frequency shift is plotted against the signal amplitude where the slope of this plot is the nonlinearity parameter, , that is used to classify material nonlinearity. 2018 by the American Association of
10、 State Highway and Transportation Officials. All rights reserved. Duplication is a violation of applicable law.TS-3c T 379-2 AASHTO 3.2. An initial test is performed just after demolding at 23.5 0.5 h and prior to exposure in the test environment specified in ASTM C1293, with subsequent tests made a
11、fter periods of exposure to the acceleratory test environment. Note 1The frequency of subsequent testing will depend upon the anticipated relative reactivity of the aggregate. That is, concrete containing less reactive aggregate or concrete containing supplementary cementitious materials at dosage r
12、ates expected to suppress ASR may be tested at less frequent intervals, such as every 2 to 3 months. For aggregates of unknown reactivity, tests should be initially performed every 2 weeks, and the interval can be increased after 2 months. Note 2After demolding, the measured nonlinearity parameter m
13、ay be higher than will be typical for a sample; often, within 4 weeks (28 days), the measured nonlinearity will decrease to a more stable value. 4. SIGNIFICANCE AND USE 4.1. This test method is applicable to concrete prisms where damage by ASR due to reactive aggregate and aggregate/binder combinati
14、ons is a concern. 4.2. This test method is intended to provide the user with a procedure to assess the potential for a fine or coarse aggregate used in concrete to experience ASR damage, under exposure conditions outlined in ASTM C1293. 5. APPARATUS 5.1. The apparatus for inducing alkalisilica react
15、ion shall conform to ASTM C1293. 5.2. AccelerometerAn accelerometer capable of measuring frequencies up to 10 kHz with less than 5 percent error, weighing less than 3 g (0.11 oz). 5.3. OscilloscopeAn oscilloscope capable of a sampling rate of 250 kHz or higher with a record length of 0.4 s. 5.4. Imp
16、act HammerA lightweight hammer with a maximum mass (weight) of 142 g (5 oz) is recommended. 5.5. Instant AdhesiveA surface-insensitive instant adhesive is recommended for attachment of the accelerometer. A fast curing gel-type adhesive (e.g., cyanoacrylate) can be applied more consistently than adhe
17、sives with higher viscosity. 5.6. Support MatSpecimens shall be placed on a thick and compliant, commercially available vibration damping/isolation support mat for testing. 6. SIGNAL ACQUISITION 6.1. The sampling rate for the oscilloscope shall be set to 500 kHz. 6.2. The signal acquisition window (
18、signal record length) shall be set to 0.4 s. 6.3. Signal acquisition shall be triggered by an electrical signal from the accelerometer. 2018 by the American Association of State Highway and Transportation Officials. All rights reserved. Duplication is a violation of applicable law.TS-3c T 379-3 AASH
19、TO 7. PROCEDURE 7.1. For each aggregate type, three or more specimens shall be tested and the nonlinearity parameter is averaged over the specimens. 7.2. Before testing, allow specimens to cool to room temperature in a moist environment for 16 4 h, as detailed in ASTM C1293. 7.3. Place specimen on a
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