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ASTM D 7517 : 2019

Current

Current

The latest, up-to-date edition.

Standard Specification for Fully-Formulated 1,3 Propanediol (PDO) Base Engine Coolant for Heavy-Duty Engines

Available format(s)

Hardcopy , PDF

Language(s)

English

Published date

04-01-2019

This specification covers the requirements for fully-formulated glycol base coolants for cooling systems of heavy-duty engines.

1.1This specification covers the requirements for fully-formulated glycol base coolants for cooling systems of heavy-duty engines. When concentrates are used at 40 to 60 % PDO concentration by volume in water of suitable quality, (see Appendix X1), or when prediluted PDO base engine coolants (50 volume % minimum) are used without further dilution, they will function effectively during both winter and summer to provide protection against corrosion, cavitation, freezing, and boiling.

1.2The coolants governed by this specification are categorized as follows:

Coolant Type

Description

I-FF

1,3 Propanediol base concentrate

II-FF

1,3 Propanediol predilute (50 vol %)

1.3Coolant concentrates meeting this specification do not require any addition of Supplemental Coolant Additive (SCA) until the first maintenance interval when a maintenance dose of SCA is required to continue protection in certain heavy-duty engine cooling systems, particularly those of the wet cylinder liner-in-block design. The SCA additions are defined by and are the primary responsibility of the engine manufacturer or vehicle manufacturer. If they provide no instructions, follow the SCA supplier’s instructions.

1.4The values stated in SI units are to be regarded as the standard. The values given in parentheses after SI units are provided for information only and are not considered standard.

1.5This 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.

1.6This 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
D 15
DocumentType
Standard
Pages
4
PublisherName
American Society for Testing and Materials
Status
Current
Supersedes

ASTM D 2847 : 2015 Standard Practice for Testing Engine Coolants in Car and Light Truck Service

ASTM D 516 : 2016 Standard Test Method for Sulfate Ion in Water
ASTM D 7518 : 2010 Standard Specification for 1,3 Propanediol (PDO) Base Engine Coolant for Automobile and Light-Duty Service
ASTM D 1287 : 2011 : R2020 Standard Test Method for pH of Engine Coolants and Antirusts
ASTM D 1287 : 1991 : R1997 : EDT 1 Standard Test Method for pH of Engine Coolants and Antirusts
ASTM D 512 : 2012 Standard Test Methods for Chloride Ion In Water (Withdrawn 2021)
ASTM D 1287 : 2009 Standard Test Method for pH of Engine Coolants and Antirusts
ASTM D 5828 : 1997 : R2023 Standard Test Method for Compatibility of Supplemental Coolant Additives (SCAs) and Engine Coolant Concentrates
ASTM D 5828 : 1997 : R2011 : EDT 1 Standard Test Method for Compatibility of Supplemental Coolant Additives (SCAs) and Engine Coolant Concentrates
ASTM D 7518 : 2009 Standard Specification for 1,3 Propanediol (PDO) Base Engine Coolant for Automobile and Light-Duty Service
ASTM D 4725 : 2011 Standard Terminology for Engine Coolants
ASTM E 394 : 2015 Standard Test Method for Iron in Trace Quantities Using the 1,10-Phenanthroline Method
ASTM D 1287 : 2011 Standard Test Method for pH of Engine Coolants and Antirusts
ASTM D 4725 : 1998 Standard Terminology for Engine Coolants
ASTM D 516 : 2022 Standard Test Method for Sulfate Ion in Water
ASTM D 4327 : 2011 Standard Test Method for Anions in Water by Suppressed Ion Chromatography
ASTM D 5827 : 2009 : EDT 1 Standard Test Method for Analysis of Engine Coolant for Chloride and Other Anions by Ion Chromatography
ASTM D 7518 : 2020 Standard Specification for 1,3 Propanediol (PDO) Base Engine Coolant for Automobile and Light-Duty Service
ASTM D 6130 : 1997 : REV A : R2009 Standard Test Method for Determination of Silicon and Other Elements in Engine Coolant by Inductively Coupled Plasma-Atomic Emission Spectroscopy
ASTM D 512 : 2023 Standard Test Methods for Chloride Ion In Water
ASTM D 7583 : 2009 Standard Test Method for John Deere Coolant Cavitation Test
ASTM D 5828 : 1997 Standard Test Method for Compatibility of Supplemental Coolant Additives (SCAs) and Engine Coolant Concentrates
ASTM D 5827 : 2022 Standard Test Method for Analysis of Engine Coolant for Chloride and Other Anions by Ion Chromatography
ASTM D 7583 : 2016 Standard Test Method for John Deere Coolant Cavitation Test
ASTM D 1126 : 2002 Standard Test Method for Hardness in Water
ASTM D 1293 : 1999 Standard Test Methods for pH of Water
ASTM D 5828 : 1997 : R2018 Standard Test Method for Compatibility of Supplemental Coolant Additives (SCAs) and Engine Coolant Concentrates
ASTM D 4327 : 2003 Standard Test Method for Anions in Water by Chemically Suppressed Ion Chromatography
ASTM D 6130 : 2011 : R2018 Standard Test Method for Determination of Silicon and Other Elements in Engine Coolant by Inductively Coupled Plasma-Atomic Emission Spectroscopy
ASTM D 4725 : 2006 Standard Terminology for Engine Coolants
ASTM D 4725 : 2015 Standard Terminology for Engine Coolants and Related Fluids
ASTM D 1293 : 1999 : R2005 Standard Test Methods for pH of Water
ASTM D 6130 : 1997 : REV A : R2003 Standard Test Method for Determination of Silicon and Other Elements in Engine Coolant by Inductively Coupled Plasma-Atomic Emission Spectroscopy
ASTM D 1287 : 1991 : R2002 Standard Test Method for pH of Engine Coolants and Antirusts
ASTM D 1126 : 2012 Standard Test Method for Hardness in Water
ASTM D 1293 : 2018 Standard Test Methods for pH of Water
ASTM D 4327 : 2017 Standard Test Method for Anions in Water by Suppressed Ion Chromatography
ASTM D 4327 : 1997 Standard Test Method for Anions in Water by Chemically Suppressed Ion Chromatography
ASTM D 1126 : 2002 : R2007 : EDT 1 Standard Test Method for Hardness in Water
ASTM D 5827 : 1995 Standard Test Method for Analysis of Engine Coolant for Chloride and Other Anions by Ion Chromatography
ASTM D 1126 : 2017 Standard Test Method for Hardness in Water
ASTM D 4725 : 2004 Standard Terminology for Engine Coolants
ASTM E 394 : 2000 Standard Test Method for Iron in Trace Quantities Using the 1,10-Phenanthroline Method
ASTM D 1126 : 1996 Standard Test Method for Hardness in Water
ASTM D 6130 : 2011 Standard Test Method for Determination of Silicon and Other Elements in Engine Coolant by Inductively Coupled Plasma-Atomic Emission Spectroscopy
ASTM E 394 : 2022 Standard Test Method for Iron in Trace Quantities Using the 1,10-Phenanthroline Method
ASTM D 4725 : 2008 Standard Terminology for Engine Coolants
ASTM D 5827 : 2009 : R2015 Standard Test Method for Analysis of Engine Coolant for Chloride and Other Anions by Ion Chromatography
ASTM D 1293 : 2012 Standard Test Methods for pH of Water
ASTM D 4725 : 2008 : REV A Standard Terminology for Engine Coolants
ASTM D 7518 : 2010 : R2015 : EDT 1 Standard Specification for 1,3 Propanediol (PDO) Base Engine Coolant for Automobile and Light-Duty Service
ASTM D 5827 : 2009 Standard Test Method for Analysis of Engine Coolant for Chloride and Other Anions by Ion Chromatography
ASTM D 4725 : 2015 : R2023 Standard Terminology for Engine Coolants and Related Fluids
ASTM D 5828 : 1997 : R2002 Standard Test Method for Compatibility of Supplemental Coolant Additives (SCAs) and Engine Coolant Concentrates
ASTM D 7583 : 2016 : R2023 Standard Test Method for John Deere Coolant Cavitation Test
ASTM D 1293 : 1984 : R1990 Standard Test Methods for pH of Water
ASTM D 4725 : 2013 Standard Terminology for Engine Coolants and Related Fluids
ASTM D 6130 : 1997 : REV A Standard Test Method for Determination of Silicon and Other Elements in Engine Coolant by Inductively Coupled Plasma-Atomic Emission Spectroscopy

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