ASTM D4535-21 PDF
Standard Test Methods for Measurement of Thermal Expansion of Rock Using Dilatometer
Standard Test Methods for Measurement of Thermal Expansion of Rock Using Dilatometer
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 7
- Дата публикации:
- 1 июня 2021 г.
- Издание:
- D4535
- ICS:
- 93.020
SIGNIFICANCE AND USE 5.1 Information concerning the thermal expansion characteristics of rocks is important in the design of any underground excavation where the surrounding rock may be heated. Thermal strain causes thermal stresses which ultimately affect excavation stability. Examples of applications where rock thermal strain is important include: nuclear waste repositories, underground power stations, compressed air energy storage facilities, and geothermal energy facilities. 5.2 The coefficient of thermal expansion, α, of rock is known to vary as the temperature changes. These methods provide continuous thermal strain values as a function of temperature, and therefore provide information on how the coefficient of thermal expansion changes with temperature. 5.3 Rocks are also often anisotropic, thus displaying different thermal strains depending on the orientation of strain measurement. These methods allow for measuring strain in one direction only. If anisotropy is expected, specimens with different orientations shall be prepared and tested. Note 1: The quality of the result produced by this standard is dependent on the competence of the personnel performing it, and the suitability of the equipment and facilities used. Agencies that meet the criteria of Practice D3740 are generally considered capable of competent and objective testing. Users of this standard are cautioned that compliance with Practice D3740 does not in itself assure reliable results. Reliable results depend on many factors; Practice D3740 provides a means of evaluating some of those factors. SCOPE 1.1 These test methods cover the laboratory measurement of the one-dimensional linear thermal expansion of rocks using a dilatometer. 1.2 The methods are applicable between temperatures of 25°C to 300°C. Both bench top and confined measurement techniques are presented. Method A is used for unconfined or bench top measurements and Method B is used for confined conditions. Rocks of varying moisture content can be tested. 1.3 For satisfactory results in conformance with these test methods, the principles governing the size, construction, and use of the apparatus described in these test methods shall be followed. If the results are to be reported as having been obtained by either test method, then the pertinent requirements prescribed by that test method shall be met. 1.4 These test methods do not establish details of construction and procedures to cover all test situations that might offer difficulties to a person without technical knowledge concerning the theory of heat flow, temperature measurement, and general testing practices. Standardization of these test methods does not reduce the need for such technical knowledge. 1.5 Units—The values stated in SI units are to be regarded as standard. The values given in parentheses after SI units are provided for information only and are not considered standard. Reporting of test results in units other than SI shall not be regarded as nonconformance with this test method. 1.6 All observed and calculated values shall conform to the guidelines for significant digits and rounding established in Practice D6026. 1.6.1 The procedures used to specify how data are collected/recorded or calculated, in this standard are regarded as the industry standard. In addition, they are representative of the significant digits that generally should be retained. The procedures used do not consider material variation, purpose for obtaining the data, special purpose studies, or any considerations for the user’s objectives; and it is common practice to increase or reduce significant digits of reported data to be commensurate with these considerations. It is beyond the scope of this standard to consider significant digits used in analytical methods for engineering design. 1.7 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of...
Abstract
Overview
ASTM D4535-21: Standard Test Methods for Measurement of Thermal Expansion of Rock Using Dilatometer provides established procedures for determining the one-dimensional linear thermal expansion of rock specimens in the laboratory. Utilizing a dilatometer, these methods are designed for both unconfined (bench top) and confined testing conditions over a temperature range of 25°C to 300°C. The standard supports the assessment of thermal strain in rocks, which is critical for geotechnical and civil engineering projects where the stability of surrounding rock may be affected by temperature changes.
Understanding the thermal expansion behavior of rocks is vital in the safe design of underground excavations, including facilities such as nuclear waste repositories, underground power stations, compressed air energy storage, and geothermal installations.
Key Topics
- Thermal Expansion Measurement: Employs bench top (Method A) and confined (Method B) dilatometry techniques to measure how rock length changes with temperature.
- Coefficient of Thermal Expansion: Provides continuous data on how the coefficient of thermal expansion (α) changes as the rock specimen is heated or cooled.
- Anisotropic Properties: Recognizes that rocks can display different thermal expansion in various directions, so specimens may need orientation-specific testing.
- Moisture Content Considerations: Discusses the impact of varying moisture levels on results and recommends preservation and preparation methods.
- Measurement Accuracy: Outlines equipment requirements, data reporting, and statistical considerations to achieve reliable and repeatable results.
Applications
The ASTM D4535-21 test methods are used in several important engineering fields:
- Underground Excavation Design: Essential in environments where heat will be introduced, such as nuclear waste storage, ensuring rock stability by anticipating thermal stress.
- Geothermal Energy Projects: Evaluating expansion characteristics at elevated temperatures ensures safe and sustainable design.
- Infrastructure Safety: For underground power stations and compressed air energy storage, accurate measurement of rock expansion supports long-term facility integrity.
- Rock Mechanics Research: Provides foundational data for modeling and simulating rock section behavior under thermal loads.
- Quality Control: Supports consistent testing standards for laboratories and agencies working in geotechnical engineering.
Related Standards
- ASTM D653: Terminology Relating to Soil, Rock, and Contained Fluids
- ASTM D2216: Test Methods for Determination of Water (Moisture) Content of Soil and Rock by Mass
- ASTM D3740: Practice for Minimum Requirements for Agencies Engaged in Testing of Soil and Rock
- ASTM D6026: Practice for Using Significant Digits in Geotechnical Data
- ASTM E122: Practice for Calculating Sample Size with Specified Precision
- ASTM E83: Practice for Verification and Classification of Extensometer Systems
- ASTM E228: Test Method for Linear Thermal Expansion of Solid Materials with a Push-Rod Dilatometer
These referenced standards complement ASTM D4535-21 by providing terminology, apparatus standards, data reporting practices, and supporting procedures ensuring uniformity in laboratory testing of rock thermal expansion.
Keywords: ASTM D4535, rock thermal expansion, dilatometer, coefficient of thermal expansion, thermal strain, rock mechanics, geotechnical testing, underground excavation, laboratory test methods, anisotropic rock properties.
Технические детали
- Технический комитет
- D18 - Soil and Rock
- SKU
- ASTM D4535-21
Похожие стандарты
Другие стандарты ASTM
ASTM-TPT-47
Phase I & Phase II Environmental Site Assessment Processes
Phase I & Phase II Environmental Site Assessment Processes
ASTM-TPT-8
Phase I Environmental Site Assessment Practices For Commercial Real Estate: Phase I Site Assessment & Transac…
ASTM-TPT-1137
ASTM D975 Standard Specification for Diesel Fuel
ASTM D975 Standard Specification for Diesel Fuel
ASTM-TPT-1202
ASTM D8421 Standard Test Method for Determination of Per- and Polyfluoroalkyl Substances (PFAS) in Aqueous Ma…
ASTM D8421 Standard Test Method -- eLearning Course
ASTM-TPT-691
Microaprendizagem para D4057: Amostragem de ponto (PT)
D4057 Microlearning: Spot Sampling Portuguese
ASTM-TPT-1091
Metodo de prueba estandar D4052 de ASTM -- Curso de aprendizaje electrónico (ES)
Modulo eLearning para ASTM D4052 en espanol
ASTM ACEM20180086
Using Neutron Radiography to Quantify the Settlement of Fresh Concrete
Specifications have been implemented for concrete bridge decks in North America that restrict the use of higher slump concrete mixtures primarily because of concerns about differential settlement and…
ASTM ACEM20180041
Experimental Study of Competing Failure of Reinforced Concrete Based on the Weibull Distribution
To predict the failure lifetime of reinforced concrete, a current accelerating corrosion test was performed on concrete by simulating the environment in an area with saline soil. To study the concret…