AASHTO TP 112-2014 Standard Method of Test for Determining In-Place Density and Moisture Content of Soil and Soil-Aggregate Using Complex Impedance Methodology.pdf
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1、Standard Method of Test for Determining In-Place Density and Moisture Content of Soil and Soil-Aggregate Using Complex Impedance Methodology AASHTO Designation: TP 112-141American Association of State Highway and Transportation Officials 444 North Capitol Street N.W., Suite 249 Washington, D.C. 2000
2、1 TS-1b TP 112-1 AASHTO Standard Method of Test for Determining In-Place Density and Moisture Content of Soil and Soil-Aggregate Using Complex Impedance Methodology AASHTO Designation: TP 112-1411. SCOPE 1.1. This practice describes the procedures for determining the density and moisture content of
3、soil and soil-aggregate using a Complex Impedance Measuring Instrument (CIMI). This practice describes three different electrode configurations to determine the density and moisture content. One tool utilizes soil penetrating probes and two additional tools are nonpenetrating surface electrodes. The
4、 CIMI measures the electrical properties of the soil being tested and correlates the electrical properties to the physical properties during a soil calibration procedure. The soil electrical properties are typically unique for the soil material. During the soil calibration procedure, a set of algori
5、thms relates the electrical and physical properties of the soil using linear regressions. The subsequent electrical testing of the soil utilizes the established relationship of the electrical and physical characteristics to calculate the soil density and moisture content. 1.2. DensityThe total or we
6、t density of soil and soil-aggregate mixtures is determined by applying a known frequency of alternating current and measuring it through the soil. The complex impedance is calculated based on the measurements and relationships previously established with a known soil model. 1.2.1. The density in ma
7、ss per unit volume is determined by comparison of the readings calculated and the calibration with a representative soil model over a range of known densities. 1.3. MoistureThe moisture content of the soil and soil-aggregate mixtures is determined by applying a known frequency of alternating current
8、 and measuring it through the soil. The complex impedance is calculated based on the measurements and relationships previously established with a known soil model. 1.3.1. The moisture content in mass per unit volume is determined by comparison of the readings calculated and the calibration with a re
9、presentative soil model of known moisture content. 1.4. The equipment referenced in this method is fully described in ASTM D7698. The equipment uses probes driven to the depth of the soils or aggregates to be tested and measures the electrical properties. The correlation between the electrical prope
10、rties measured and the known values developed in the laboratory soil model are used to determine the in-place density and moisture content. 1.5. SI UnitsThe values stated in SI units are to be regarded as the standard. The inch-pound equivalents may be approximate. It is common practice in the engin
11、eering profession to concurrently use pounds to represent both a unit of mass (lbm) and of force (lbf). This implicitly combines two systems of units, that is, the absolute system and the gravitational system. 2015 by the American Association of State Highway and Transportation Officials.All rights
12、reserved. Duplication is a violation of applicable law.TS-1b TP 112-2 AASHTO 1.6. This standard has been written using the absolute system for water content (kg/m3) in SI units. Conversion to the gravitational system of weight in lbf/ft3may be made. The recording of water content in pound-force per
13、cubic foot should not be regarded as nonconformance with this standard, although the use is scientifically incorrect. 1.7. In the English system, the pound (lbf) represents a unit of force (weight). However, the use of balances or scales recording pounds of mass (lbm), or recording of density (lbm/f
14、t3) should not be regarded as nonconformance with this standard. 1.8. This procedure does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety and health practices and determine the a
15、pplicability of regulatory limitations prior to use. See Section 6 for Hazards. 2. REFERENCED DOCUMENTS 2.1. AASHTO Standards: T 99, Moisture-Density Relations of Soils using a 2.5-kg (5.5-lb) Rammer and a 305-mm (12-in.) Drop T 180, Moisture-Density Relations of Soils Using a 4.54-kg (10-lb) Rammer
16、 and a 457-mm (18-in.) Drop T 191, Density of Soil In-Place by the Sand-Cone Method T 265, Laboratory Determination of Moisture Content of Soils T 310, In-Place Density and Moisture Content of Soil and Soil-Aggregate by Nuclear Methods (Shallow Depth) 2.2. ASTM Standards: D4253, Standard Test Method
17、s for Maximum Index Density and Unit Weight of Soils Using a Vibratory Table D7382, Standard Test Methods for Determination of Maximum Dry Unit Weight and Water Content Range for Effective Compaction of Granular Soils Using a Vibrating Hammer D7698, Standard Test Method for In-Place Estimation of De
18、nsity and Water Content of Soil and Aggregate by Correlation with Complex Impedance Method 3. SIGNIFICANCE AND USE 3.1. The method is useful as a rapid, nondestructive technique for determining the in-place density and moisture content of soil and soil-aggregate based on electrical measurements. 3.2
19、. The test method may be used for quality control and acceptance testing of compacted soil and soil-aggregate mixtures for construction and for research and development. The nondestructive nature of the test method allows repetitive measurements at a single test location and statistical analysis of
20、the results. 3.3. It is difficult to address an infinite variety of soils in this standard. This test method does not address the various types of soils on which the CIMI method may or may not be applicable. 3.4. The procedures used to specify how data are collected, recorded, or calculated in this
21、standard are regarded as the industry standard. In addition they are representative of the significant digits that generally should be retained. 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-1b TP 1
22、12-3 AASHTO 4. INTERFERENCES 4.1. Variations in the test material with electrical impedance properties significantly different from construction soils and aggregate evaluated during soil model development, such as metal objects or organic material, may affect the accuracy of the test method. 4.2. La
23、rge air voids relative to the volume of material being tested, which may be present in the material being tested, may cause incorrect density measurements. 4.3. If the volume of soil material being tested has oversize particles or large voids in the electrical field, these irregularities may cause e
24、rrors in measurements of electrical properties. Where lack of uniformity in the soil due to layering, aggregate, or voids is suspected, the test site should be excavated and visually examined to determine if the test material is representative of the in situ material in general and if an oversize co
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