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BS EN ISO 75-2:2013

Current

Current

The latest, up-to-date edition.

Plastics. Determination of temperature of deflection under load Plastics and ebonite

Available format(s)

Hardcopy , PDF

Language(s)

English

Published date

04-30-2013

Foreword
Introduction
1 Scope
2 Normative references
3 Terms and definitions
4 Principle
5 Apparatus
6 Test specimens
7 Conditioning
8 Procedure
9 Expression of results
10 Precision
11 Test report
Annex A (informative) - Precision
Bibliography

Describes three methods, using different values of constant flexural stress, that can be used for the determination of the temperature of deflection under load of plastics (including filled plastics and fibre-reinforced plastics in which the fibre length, prior to processing is up to 7,5 mm) and ebonite: - method A, using a flexural stress of 1,80 MPa; - method B, using a flexural stress of 0,45 MPa; - method C, using a flexural stress of 8,00 MPa.

This part of ISO75 specifies three methods, using different values of constant flexural stress, which can be used for the determination of the temperature of deflection under load of plastics (including filled plastics and fibre-reinforced plastics in which the fibre length, prior to processing, is up to 7,5mm) and ebonite:

  • methodA, using a flexural stress of 1,80MPa;

  • methodB, using a flexural stress of 0,45MPa;

  • methodC, using a flexural stress of 8,00MPa.

The standard deflection, Δs, used to determine the temperature of deflection under load corresponds to a flexural-strain increase, Δεf, defined in this part of ISO75. The initial flexural strain due to the loading of the specimen at room temperature is neither specified nor measured in this part of ISO75. The ratio of this flexural-strain increase to the initial flexural strain depends on the modulus of elasticity, at room temperature, of the material under test. This method is, therefore, only suitable for comparing the temperatures of deflection of materials with similar room-temperature elastic properties.

NOTE1 The methods give better reproducibility with amorphous plastics than with semi-crystalline ones. With some materials, it can be necessary to anneal the test specimens to obtain reliable results. Annealing procedures, if used, generally result in an increase in the temperature of deflection under load (see 6.6).

NOTE2 For additional information, see ISO75-1:2013, Clause1.

Committee
PRI/21
DevelopmentNote
Renumbers and supersedes BS 2782-1.121A.C(1994) 1996 version incorporates amendment 8646 to BS 2782-1.121A.C(1994) Supersedes BS 2782-1.121A&B(1991) (09/1996) Supersedes 01/121039 DC. (06/2004) Supersedes 12/30237823 DC. (05/2013)
DocumentType
Standard
Pages
20
PublisherName
British Standards Institution
Status
Current
Supersedes

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DEFSTAN 02-167/4(2011) : 2011 REQUIREMENT FOR RESIN FOR USE IN SHIPS, BOATS, CRAFT AND CRAFT STRUCTURES
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BS 7825-3.1:1997 Calibration of rubber and plastics test equipment. Calibration schedules Thermal properties

ISO 75-1:2013 Plastics Determination of temperature of deflection under load Part 1: General test method
ISO 293:2004 Plastics — Compression moulding of test specimens of thermoplastic materials
ISO 10350-1:2017 Plastics — Acquisition and presentation of comparable single-point data — Part 1: Moulding materials
ISO 10724-1:1998 Plastics — Injection moulding of test specimens of thermosetting powder moulding compounds (PMCs) — Part 1: General principles and moulding of multipurpose test specimens
ISO 5725:1986 Precision of test methods Determination of repeatability and reproducibility for a standard test method by inter-laboratory tests
ISO 294-1:2017 Plastics — Injection moulding of test specimens of thermoplastic materials — Part 1: General principles, and moulding of multipurpose and bar test specimens
ISO 2818:1994 Plastics — Preparation of test specimens by machining
ISO 20753:2008 Plastics Test specimens

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