ASTM D5126-16e1 PDF
Standard Guide for Comparison of Field Methods for Determining Hydraulic Conductivity in Vadose Zone
Standard Guide for Comparison of Field Methods for Determining Hydraulic Conductivity in Vadose Zone
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 12
- Дата публикации:
- 1 июля 2016 г.
- Издание:
- D5126
- ICS:
- 07.060
SIGNIFICANCE AND USE 5.1 Saturated hydraulic conductivity measurements are made for a variety of purposes varying from design of landfills and construction of clay liners to assessment of irrigation systems. Infiltrometers are commonly used where infiltration or percolation rates through a surface or subsurface layer are desired. Evaluation of the rate of water movement through a pond liner is one example of this kind of measurement. Penetration of the liner by a borehole would invalidate the measurement of liner permeability. It has been noted that small-ring infiltrometers are subject to error due to lateral divergence of flow. Therefore, techniques using very large (1 to 2-m diameter) infiltration basins have been recommended for measuring the very slow percolation rates typically needed for clay liners. The air-entry permeameter can be used instead of infiltrometer tests to avoid lateral divergence of flow. However, because a cylinder must be driven into the media tested, the actual soil column tested may be disrupted by introduction of the cylinder, especially in structured soils. 5.2 Borehole tests for determining saturated hydraulic conductivity are applicable for evaluating the rate of water movement through subsurface layers. For slowly permeable layers, an accurate method of measuring the rate of water movement into the borehole will need to be developed. Use of a flexible bag as a reservoir that can be periodically weighed is advisable for these conditions. A number of mathematical solutions for borehole outflow data are available (Stephens et al. (17), Reynolds et al. (18), and Philip (19)). 5.3 Information on unsaturated flow rates is needed to design hazardous waste landfills and impoundments where prevention of flow of contaminants into groundwater is needed. Of the test methods available, the primary differences are cost and resultant bias and precision. The instantaneous profile test method appears to provide very reliable data because it uses a large volume of so... SCOPE 1.1 This guide covers a review of the test methods for determining hydraulic conductivity in unsaturated soils and sediments. Test methods for determining both field-saturated and unsaturated hydraulic conductivity are described. 1.2 Measurement of hydraulic conductivity in the field is used for estimating the rate of water movement through clay liners to determine if they are a barrier to water flux, for characterizing water movement below waste disposal sites to predict contaminant movement, and to measure infiltration and drainage in soils and sediment for a variety of applications. Test methods are needed for measuring hydraulic conductivity ranging from 1 × 10−2 to 1 × 10−8 cm/s, for both surface and subsurface layers, and for both field-saturated and unsaturated flow. 1.3 For these field test methods a distinction is made between “saturated” (Ks) and “field-saturated” (Kfs) hydraulic conductivity. True saturated conditions seldom occur in the vadose zone except where impermeable layers result in the presence of perched water tables. During infiltration events or in the event of a leak from a lined pond, a “field-saturated” condition develops. True saturation does not occur due to entrapped air (1).2 The entrapped air prevents water from moving in air-filled pores that, in turn, may reduce the hydraulic conductivity measured in the field by as much as a factor of two compared to conditions when trapped air is not present (2). Field test methods should simulate the “field-saturated” condition. 1.4 Field test methods commonly used to determine field-saturated hydraulic conductivity include various double-ring infiltrometer test methods, air-entry permeameter test methods, and borehole permeameter tests. Many empirical test methods are used for calculating hydraulic conductivity from data obtained with each test method. A general description of each test method and special characteristics affecting applicabili...
Abstract
Overview
ASTM D5126-16e1 is a standardized guide developed by ASTM International outlining the comparison and selection of field methods for determining hydraulic conductivity in the vadose zone. Hydraulic conductivity is a critical property of unsaturated soils and sediments, relevant to applications such as landfills, clay liners, waste disposal sites, and soil drainage systems. This guide provides a comprehensive review of various test methods for assessing both field-saturated and unsaturated hydraulic conductivity, emphasizing the significance of appropriate field measurement techniques for environmental and geotechnical site investigations.
Key Topics
- Field vs. Laboratory Methods: ASTM D5126-16e1 focuses on field test methods rather than laboratory tests, underlining the importance of in-situ measurements for hydraulic conductivity due to the natural variability and heterogeneity of soils.
- Saturated vs. Field-Saturated vs. Unsaturated Conductivity: The guide differentiates between true saturated (Ks), field-saturated (Kfs), and unsaturated hydraulic conductivity. True saturation is rare in most vadose zones; thus, field-saturated conditions that account for entrapped air are emphasized.
- Test Methods Reviewed:
- Single- and double-ring infiltrometers
- Air-entry permeameters and ponded infiltration basins
- Borehole permeameters, including constant and falling head tests
- Direct measurement and estimation techniques for unsaturated conductivity, such as the instantaneous profile and gypsum crust methods, and mathematical analysis of outflow data
- Empirical and Analytical Approaches: Guidelines on using empirical formulas and analytical solutions to interpret infiltration and outflow data for estimating hydraulic conductivity.
Applications
The ASTM D5126-16e1 standard is essential for:
- Design and Evaluation of Liners: Assesses whether clay liners in waste containment or water management structures effectively limit water flux and contaminant migration.
- Environmental Impact Assessment: Characterizes water movement below waste disposal sites to predict the risk of groundwater contamination.
- Agricultural and Irrigation Studies: Measures infiltration and drainage properties in soils and sediments to improve irrigation management and soil conservation.
- Subsurface Engineering: Evaluates hydraulic conductivity in situ for site characterization in construction, remediation, and environmental monitoring projects.
- Selection of Field Methods: Assists engineers, geologists, and hydrologists in selecting appropriate test procedures based on site-specific conditions, required accuracy, budget, and depth of investigation.
Related Standards
- ASTM D653: Terminology relating to soil, rock, and contained fluids.
- ASTM D2434 (Withdrawn): Constant head permeability testing for granular soils.
- ASTM D3385: Field infiltration rate measurement using the double-ring infiltrometer.
- ASTM D4643: Determination of soil moisture content by microwave oven heating.
- ASTM D6026: Guidance on the use of significant digits in geotechnical data reporting.
- ASTM D3740: Requirements for agencies engaged in soil and rock testing.
Practical Value
Adopting ASTM D5126-16e1 ensures standardized, reliable, and comparable field data when determining hydraulic conductivity in unsaturated soils. The document supports accurate risk assessments for groundwater protection, efficient engineering designs for liners and barriers, and scientifically sound environmental monitoring practices. Selecting the suitable field test method based on this guide helps minimize measurement bias and errors, optimize costs, and improve the reliability of site characterizations across diverse geotechnical and environmental projects.
Keywords: ASTM D5126-16e1, hydraulic conductivity, vadose zone, unsaturated soils, field methods, infiltrometer, permeameter, soil permeability, environmental site assessment, clay liner, groundwater protection, infiltration test.
Технические детали
- Технический комитет
- D18 - Soil and Rock
- SKU
- ASTM D5126-16e1
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