ASTM E1379-90(2022) PDF
Standard Specification for Laboratory Glass Dewar Flask
Standard Specification for Laboratory Glass Dewar Flask
- Статус документа:
- Действующий
- Формат:
- Электронный (PDF)
- Количество страниц:
- 3
- Дата публикации:
- 1 сентября 2022 г.
- Издание:
- E1379
- ICS:
- 71.040.20
ABSTRACT This specification provides the material and performance requirements for glass Dewar flasks suitable for general laboratory use. Flasks shall be made of Type I, Class A borosilicate glass conforming to specified maximum residual thermal stress. The properties to which the flasks shall conform are appearance, design, capacity, and dimensions. SCOPE 1.1 This specification provides standard material and performance requirements for glass Dewar flasks suitable for general laboratory use. 1.2 The values stated in SI units are to be regarded as standard. No other units of measurement are included in this standard. 1.3 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 E1379-90(2022) is the internationally recognized standard specification covering laboratory glass Dewar flasks. Established by ASTM International, this standard outlines material and performance requirements for Dewar flasks intended for general laboratory use. It specifies the proper construction using high-quality materials such as Type I, Class A borosilicate glass, and ensures all Dewar flasks conform to strict criteria for thermal stress, design, capacity, and dimensional accuracy.
By adhering to these guidelines, laboratories achieve consistent performance, safe handling of cryogenic or low-temperature substances, and reliability in various scientific settings. Values and measurements in the standard use SI units, promoting universal applicability and compliance.
Key Topics
- Materials: Dewar flasks must be manufactured from Type I, Class A borosilicate glass, conforming to ASTM E438 for glass quality and E671 for maximum residual thermal stress.
- Design Requirements:
- Cylindrical shape with double walls.
- Inner walls are silvered for optimal insulation.
- Evacuated and sealed space between walls (to a specified vacuum level).
- Flask bases constructed from aluminum alloy conforming to ASTM B85 A380.
- Protective plastic mesh or plastisol coating over exposed glass.
- Capacity and Dimensions: Standard flask sizes include 265 mL, 665 mL, 1000 mL, 1900 mL, and 4300 mL, each with specified nominal dimensions for body diameter, height, and depth.
- Performance Criteria:
- Appearance and finish must meet defined quality standards.
- Flasks securely cemented into bases for protection.
- Compliance with government and laboratory specifications for scientific glassware.
- Standardization Principles: Developed in line with global standardization principles, including the WTO’s Technical Barriers to Trade (TBT) Committee recommendations, ensuring broad international acceptance.
Applications
Laboratory glass Dewar flasks are essential tools for:
- Cryogenic and Low-Temperature Storage: Ideal for safely holding liquid nitrogen, dry ice, or other refrigerants in scientific and industrial settings.
- Sample Preservation: Used to maintain temperature-sensitive samples, reagents, or biological materials in research, clinical laboratories, and educational institutions.
- Thermal Experiments: Suitable for controlled thermal experiments, including calorimetry or thermal conductivity testing, where reliable insulation is crucial.
- Analytical and Testing Environments: Dewar flasks ensure consistent temperature control, benefiting applications in chemical analysis, biotechnology, pharmaceuticals, and environmental science.
Adopting ASTM E1379-90(2022) guarantees laboratories use Dewar flasks that deliver robust performance, meet safety requirements, and provide effective thermal insulation and protection.
Related Standards
The following standards are referenced within ASTM E1379-90(2022) and inform its requirements:
- ASTM E438 - Specification for Glasses in Laboratory Apparatus: Defines glass quality and classification for laboratory use.
- ASTM E671 - Specification for Maximum Permissible Thermal Residual Stress in Annealed Glass Laboratory Apparatus: Outlines acceptable stress limits to ensure glass durability.
- ASTM B85 (Alloy A380) - Specification for Aluminum-Alloy Die Castings: Specifies the material properties for aluminum bases used in Dewar flasks.
By following ASTM E1379-90(2022) and the related standards, organizations assure compatibility, safety, and reliability in laboratory glassware, supporting best practices in laboratory operations and scientific research.
Технические детали
- Технический комитет
- E41 - Laboratory Apparatus
- SKU
- ASTM E1379-90(2022)
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…