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ASTM C 549 : 2018

Superseded
Superseded

A superseded Standard is one, which is fully replaced by another Standard, which is a new edition of the same Standard.

View Superseded by
superseded

A superseded Standard is one, which is fully replaced by another Standard, which is a new edition of the same Standard.

Standard Specification for Perlite Loose Fill Insulation
Available format(s)

Hardcopy , PDF

Superseded date

19-12-2023

Language(s)

English

Published date

28-11-2018

This specification covers the composition and physical properties of expanded perlite loose fill insulation.

1.1This specification covers the composition and physical properties of expanded perlite loose fill insulation. The specification also includes the testing procedures by which the acceptability of the material is determined. These testing procedures deal primarily with material performance in the temperature range associated with the thermal envelope of buildings; however, the commercially usable temperature range for this insulation is from − 459 to 1400°F (1 to 1033 K). For specialized applications, refer to the manufacturer's instructions.

1.2The specification also covers the composition and properties of perlite that has been surface-treated to produce dust suppression for installations where dust is a factor.

1.3The values stated in inch-pound units are to be regarded as standard. The values given in parentheses are mathematical conversions to SI units that are provided for information only and are not considered standard.

1.4The following applies to Test Methods E84 and E136This standard is used to measure and describe the response of materials, products, or assemblies to heat and flame under controlled conditions, but does not by itself incorporate all factors required for fire hazard or fire risk assessment of the materials, products, or assemblies under actual fire conditions.

1.5The following applies to Test Methods E84 and E136Fire testing is inherently hazardous. Adequate safeguards for personnel and property shall be employed in conducting these tests.

1.6When the installation or use of thermal insulation materials, accessories and systems, may pose safety or health problems, the manufacturer shall provide the user appropriate current information regarding any known problems associated with the recommended use of the company's products, and shall also recommend protective measures to be employed in their safe utilization. The user shall establish appropriate safety and health practices and determine the applicability of regulatory requirements prior to use. For additional precautionary statements, see Section 12.

1.7This 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.

1.8This 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.

Committee
C 16
DocumentType
Standard
Pages
4
PublisherName
American Society for Testing and Materials
Status
Superseded
SupersededBy
Supersedes

ASTM C 1630 : 2019 Standard Guide for Development of Coverage Charts for Loose-Fill Thermal Building Insulations
ASTM C 1558 : 2019 Standard Guide for Development of Standard Data Records for Computerization of Thermal Transmission Test Data for Thermal Insulation
ASTM C 1774 : 2013(R2019) Standard Guide for Thermal Performance Testing of Cryogenic Insulation Systems
ASTM C 1373/C1373M : 2023 Standard Practice for Determination of Thermal Resistance of Attic Insulation Systems Under Simulated Winter Conditions

ASTM C 168 : 2019 Standard Terminology Relating to Thermal Insulation
ASTM C 177 : 2019 Standard Test Method for Steady-State Heat Flux Measurements and Thermal Transmission Properties by Means of the Guarded-Hot-Plate Apparatus
ASTM E 177 : 1990 : REV A : R1996 Standard Practice for Use of the Terms Precision and Bias in ASTM Test Methods
ASTM E 84 : 2023 : REV C Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM E 136 : 2022 Standard Test Method for Assessing Combustibility of Materials Using a Vertical Tube Furnace at 750 °C
ASTM E 84 : 2023 Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM E 136 : 2019 : REV A Standard Test Method for Assessing Combustibility of Materials Using a Vertical Tube Furnace at 750°C
ASTM E 84 : 2021 Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM C 518 : 2002 Standard Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus
ASTM E 84 : 2022 Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM E 84 : 2020 Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM E 84 : 2021 : REV A Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM C 518 : 2017 Standard Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus
ASTM C 518 : 2021 Standard Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus
ASTM E 84 : 2023 : REV B Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM C 177 : 2019 : EDT 1 Standard Test Method for Steady-State Heat Flux Measurements and Thermal Transmission Properties by Means of the Guarded-Hot-Plate Apparatus
ASTM C 168 : 2022 Standard Terminology Relating to Thermal Insulation
ASTM C 136 : 1996 Standard Test Method for Sieve Analysis of Fine and Coarse Aggregates
ASTM E 84 : 2023 : REV A Standard Test Method for Surface Burning Characteristics of Building Materials
ASTM C 518 : 1998 Standard Test Method for Steady-State Thermal Transmission Properties by Means of the Heat Flow Meter Apparatus

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