ASTM D5886-95(2023) PDF
Standard Guide for Selection of Test Methods to Determine Rate of Fluid Permeation Through Geomembranes for Specific Applications
Standard Guide for Selection of Test Methods to Determine Rate of Fluid Permeation Through Geomembranes for Specific Applications
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 8
- Дата публикации:
- 1 мая 2023 г.
- Издание:
- D5886
- ICS:
- 13.060.30
SIGNIFICANCE AND USE 5.1 The principal characteristic of geomembranes is their intrinsically low permeability to a broad range of gases, vapors, and liquids, both as single-component fluids and as complex mixtures of many constituents. As low-permeable materials, geomembranes are being used in a wide range of engineering applications in geotechnical, environmental, and transportation areas as barriers to control the migration of mobile fluids and their constituents. The range of potential permeants is broad and the service conditions can differ greatly. This guide shows users test methods available for determining the permeability of geomembranes to various permeants. 5.2 The transmission of various species through a geomembrane is subject to many factors that must be assessed in order to be able to predict its effectiveness for a specific service. Permeability measurements are affected by test conditions, and measurements made by one method cannot be translated from one application to another. A wide variety of permeability tests have been devised to measure the permeability of polymeric materials; however, only a limited number of these procedures have been applied to geomembranes. Test conditions and procedures should be selected to reflect actual service requirements as closely as possible. It should be noted that field conditions may be difficult to model or maintain in the laboratory. This may impact apparent performance of geomembrane samples. 5.3 This guide discusses the mechanism of permeation of mobile chemical species through geomembranes and the permeability tests that are relevant to various types of applications and permeating species. Specific tests for the permeability of geomembranes to both single-component fluids and multicomponent fluids that contain a variety of permeants are described and discussed. SCOPE 1.1 This guide covers selecting one or more appropriate test methods to assess the permeability of all candidate geomembranes for a proposed specific application to various permeants. The widely different uses of geomembranes as barriers to the transport and migration of different gases, vapors, and liquids under different service conditions require determinations of permeability by test methods that relate to and simulate the service. Geomembranes are nonporous, homogeneous materials that are permeable in varying degrees to gases, vapors, and liquids on a molecular scale in a three-step process by: (1) dissolution in or absorption by the geomembrane on the upstream side, (2) diffusion through the geomembrane, and (3) desorption on the downstream side of the barrier. 1.2 The rate of transmission of a given chemical species, whether as a single permeant or in mixtures, is driven by its chemical potential or in practical terms by its concentration gradient across the geomembrane. Various methods to assess the permeability of geomembranes to single component permeants, such as individual gases, vapors, and liquids are referenced and briefly described. 1.3 Various test methods for the measurement of permeation and transmission through geomembranes of individual species in complex mixtures such as waste liquids are discussed. 1.4 This standard 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, health, and environmental practices and determine the applicability of regulatory limitations prior to use. 1.5 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
Abstract
Overview
ASTM D5886-95(2023), "Standard Guide for Selection of Test Methods to Determine Rate of Fluid Permeation Through Geomembranes for Specific Applications," provides guidance on selecting appropriate laboratory test methods to assess the permeability of geomembranes. Geomembranes are widely used as flexible barriers in geotechnical, environmental, and transportation engineering to control the migration of liquids, vapors, and gases. This standard is essential due to the variety of service conditions and the diverse range of potential permeants-ranging from single-component gases or liquids to complex waste mixtures.
The permeation of fluids through a geomembrane involves dissolution or absorption, diffusion, and desorption, and is influenced by several material and environmental factors. Selecting the correct test method is critical for accurately predicting in-service performance.
Key Topics
- Intrinsic Low Permeability: Geomembranes are designed as nonporous, homogeneous barriers with very low permeability to many types of fluids.
- Fluid Transport Mechanisms: Fluid and vapor permeation through geomembranes occurs on a molecular level, driven by gradients of chemical potential or concentration across the membrane.
- Test Method Selection: The standard emphasizes that test conditions should closely simulate service conditions, as laboratory results may differ from field performance.
- Single vs. Multicomponent Fluids: Both individual gases, vapors, and liquids, as well as complex mixtures found in waste management, are considered. Each requires specific test approaches.
- Factors Affecting Permeation: Material type, thickness, temperature, pressure, chemical composition, and manufacturing variables can all influence permeability.
Applications
- Environmental Protection: Geomembranes are crucial in landfill liners, wastewater impoundments, and leachate control systems to prevent migration of hazardous fluids or contaminants.
- Water Reservoirs and Canals: Used as liners to control water loss and prevent seepage in reservoirs, canals, and dams.
- Secondary Containment Systems: Geomembranes serve as barriers in tank farms, chemical storage, and spill containment, minimizing release of organic liquids and vapor.
- Transportation Infrastructure: Applied in tunnel linings, roadway subgrades, and other civil works to control vapor and moisture transmission.
- Engineering Design and Quality Control: Selection of suitable geomembrane and corresponding permeability test methods ensures long-term performance and regulatory compliance.
Related Standards
The selection of test methods referenced by ASTM D5886-95(2023) includes:
- ASTM D471 – Rubber Property-Effect of Liquids
- ASTM D814 – Rubber Property-Vapor Transmission of Volatile Liquids
- ASTM D1434 – Gas Permeability Characteristics of Plastic Film and Sheeting
- ASTM D4439 – Terminology for Geosynthetics
- ASTM D4491/D4491M – Water Permeability of Geotextiles by Permittivity
- ASTM E96/E96M – Water Vapor Transmission Rate of Materials
- ASTM F739 – Permeation of Liquids and Gases Through Protective Clothing Materials
These referenced standards provide details for measuring permeability to various gases, vapors, liquids, and chemical mixtures under controlled conditions.
Keywords: ASTM D5886, geomembrane permeability, test methods, fluid permeation, geosynthetics, environmental barriers, vapor transmission, gas transmission, water containment, waste containment, flexible membrane liners, permeability testing, chemical transport, geotechnical engineering.
Технические детали
- Технический комитет
- D35 - Geosynthetics
- SKU
- ASTM D5886-95(2023)
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