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ASTM E 2113 : 2009

Superseded

Superseded

A superseded Standard is one, which is fully replaced by another Standard, which is a new edition of the same Standard.

View Superseded by

Standard Test Method for Length Change Calibration of Thermomechanical Analyzers

Available format(s)

Hardcopy , PDF

Superseded date

11-11-2014

Superseded by

ASTM E 2113 : 2013

Language(s)

English

Published date

01-09-2009

£57.59
Excluding VAT

Committee
E 37
DocumentType
Test Method
Pages
5
PublisherName
American Society for Testing and Materials
Status
Superseded
SupersededBy
Supersedes

1.1 This test method describes calibration of the length change (deflection) measurement or thermal expansion of thermomechanical analyzers (TMA) within the temperature range from -150 to 1000 °C using the thermal expansion of a suitable reference material.

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 test method differs from ISO standard 11359-1 by providing an alternative calibration procedure.

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 whoever uses this standard to consult and establish appropriate safety and health practices and determine the applicability of regulatory limitations prior to use.

ASTM E 2092 : 2018 : REV A Standard Test Method for Distortion Temperature in Three-Point Bending by Thermomechanical Analysis
ASTM E 2347 : 2016 Standard Test Method for Indentation Softening Temperature by Thermomechanical Analysis
ASTM E 2769 : 2018 Standard Test Method for Elastic Modulus by Thermomechanical Analysis Using Three-Point Bending and Controlled Rate of Loading
ASTM E 2918 : 2018 : REV A Standard Test Method for Performance Validation of Thermomechanical Analyzers
ASTM E 2206 : 2011 : R2015 Standard Test Method for Force Calibration of Thermomechanical Analyzers
ASTM E 831 : 2019 Standard Test Method for Linear Thermal Expansion of Solid Materials by Thermomechanical Analysis

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