SAE J 1748-2007 Methods for Determining Physical Properties of Polymeric Materials Exposed to Hydrocarbon Fuels or Their Surrogates and Their Blends with Oxygenated Additives《暴露于烃类.pdf
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1、_ SAE Technical Standards Board Rules provide that: “This report is published by SAE to advance the state of technical and engineering sciences. The use of this report is entirely voluntary, and its applicability and suitability for any particular use, including any patent infringement arising there
2、from, is the sole responsibility of the user.” SAE reviews each technical report at least every five years at which time it may be reaffirmed, revised, or cancelled. SAE invites your written comments and suggestions. Copyright 2007 SAE International All rights reserved. No part of this publication m
3、ay be reproduced, stored in a retrieval system or transmitted, in any form or by any means, electronic, mechanical, photocopying, recording, or otherwise, without the prior written permission of SAE. TO PLACE A DOCUMENT ORDER: Tel: 877-606-7323 (inside USA and Canada) Tel: 724-776-4970 (outside USA)
4、 Fax: 724-776-0790 Email: CustomerServicesae.org SAE WEB ADDRESS: http:/www.sae.org J1748 REV. SEP2007 SURFACE VEHICLE RECOMMENDED PRACTICE Issued 1998-01 Revised 2007-09 Superseding J1748 JAN1998 Methods for Determining Physical Properties of Polymeric Materials Exposed to Hydrocarbon Fuels or Thei
5、r Surrogates and Their Blends with Oxygenated Additives RATIONALE This revision is made to expand the applicability of this document to include all types of gasoline and diesel fuel types and their blends with various commercially available oxygenated additives. FOREWORD This SAE Recommended Practic
6、e is a product of the SAE Cooperative Research Program, Project Group 2. The SAE Cooperative Research Project Group 2 was formed by the Oxygenated Fuels Task Force that was composed of OEM automotive engineering executives. Their task is to identify and prioritize potential areas for pre-competitive
7、 cooperative research programs to operate under the administration of SAE. The specific scope of Project Group 2 was to develop and exchange information relative to materials and test methods for use with blends of oxygenate and gasoline. The program was operated in accordance with 1984 Cooperative
8、Research Act. This revision includes information relative to test methods for determining physical properties of polymeric materials exposed to hydrocarbon fuels or their surrogates and blends of either with oxygenated additives. 1. SCOPE This SAE Recommended Practice applies to determining worst-ca
9、se fuel or test fluid surrogate, conditioning test specimens in worst-case fuel(s)/surrogate(s) prior to testing, individual tests for properties of polymeric materials exposed to oxygenate fuel/surrogate mixtures with additives. The determination of equilibrium, as well as typical calculations are
10、also covered. 1.1 Purpose Polymeric materials are used in applications that require exposure to a variety of fluid environments. Tests to determine the effects of such exposure on material properties are well established. However, the determination of the effects on polymeric materials exposed to fu
11、els of variable blends with assorted oxygenates poses new problems. This document seeks to address those concerns by detailing changes to standard tests that make them suitable for that purpose. 2. REFERENCES 2.1 Applicable Publications The following publications form a part of the specification to
12、the extent specified herein. Unless otherwise indicated, the latest revision of SAE publications shall apply. SAE J1748 Revised SEP2007 - 2 - 2.1.1 SAE Publications Available from SAE International, 400 Commonwealth Drive, Warrendale, PA 15096-0001, Tel: 877-606-7323 (inside USA and Canada) or 724-7
13、76-4970 (outside USA), www.sae.org. SAE J1681 Gasoline, Alcohol, and Diesel Fuel Surrogates for Materials Testing SAE J1737 Test Procedure to Determine the Hydrocarbon Losses from Fuel Tubes, Hoses, Fittings, and Fuel Line Assemblies by Recirculation SAE J2659 Test Method to Measure Fluid Permeation
14、 of Polymeric Materials by Speciation SAE J2663 Test Procedure to Measure Permeation of Elastomeric Hose or Tube by Weight Loss SAE J2665 Test Procedure to Measure the Fuel Permeability of Materials by the Cup Weight Loss Method 2.1.2 ASTM Publications Available from ASTM, 100 Barr Harbor Drive, Wes
15、t Conshohocken, PA 19428-2959, Tel: 610-832-9585, www.astm.org. ASTM D 412 Test Method for Rubber Properties in Tension (ISO 37) ASTM D 413 Test Method for Rubber PropertyAdhesion to Flexible Substrates (Peel Test for Fabric Adhesion) (ISO 36) ASTM D 429 Test Methods for Rubber PropertyAdhesion to R
16、igid Substrates (Metal adhesion, Using Method A, Button) (ISO 813 or ISO 814) ASTM D 471 Test Method for Rubber PropertyEffect of Liquids (ISO 1817) ASTM D 543 Test Method for Resistance of Plastics to Chemical Reagents (No ISO Found) ASTM D 618 Practice for Conditioning Plastics and Electrical Insu
17、lating Materials for Testing, Procedure A (ISO 291) ASTM D 624 Test Method for Tear Strength of Conventional Vulcanized Rubber and Thermoplastic Elastomers (ISO 34 Part 1) ASTM D 638 Test Method for Tensile Properties of Plastics (ISO 527 Parts 1 and 2) ASTM D 790 Test Method for Flexural Properties
18、 of Unreinforced and Reinforced Plastics and Electrical Insulating Materials (ISO 178) ASTM D 991 Test Method for Rubber PropertyVolume Resistivity of Electrically Conductive and Anti- Static Products (No ISO Found) ASTM D 1053 Test Method for Rubber Property Stiffening at Low Temperatures; Flexible
19、 Polymers and Coated Fabrics (ISO 1432) ASTM D 1329 Test Method for Evaluating Rubber PropertyRetraction at Low Temperature (TR Test) (ISO 2921) ASTM D 2240 Test Method for Rubber PropertyDurometer Hardness (ISO 868) SAE J1748 Revised SEP2007 - 3 - 3. REQUIREMENTS 3.1 General A problem arises in tes
20、ting materials for use in vehicles that can run on fuels with oxygenate concentrations varying from 0 to 85% by volume. There is no single oxygenate-containing test fuel composition that can be used to evaluate the relative performance of different polymeric materials. NOTE: Polymeric materials incl
21、ude plastics and elastomers. Because polymeric materials differ in their molecular structure, the most damaging concentration of oxygenate for one material may not be the most damaging for another. This problem has necessitated the designation of a series of test fluids that can be used to compare t
22、he properties of one polymeric material in its “worst-case“ fuel with those of another polymeric material in a different “worst-case“ fuel. Nevertheless, it is desirable to reduce the total number of tests as much as possible. Therefore, a single test, using weight gain at equilibrium, has been chos
23、en to determine which fuel composition (from Table 1) exerts the greatest effect on each polymeric material. Once a polymeric materials “worst-case“ fuel has been determined, its properties will be measured after exposure to that fuel. Since the rate of diffusion in plastics (glassy polymers) can be
24、 very slow, the time required for some plastics to reach equilibrium may be quite lengthy. In the simplest cases of diffusion with polymeric materials, the behavior may be described by Ficks Law. For Fickian diffusion, the time required to attain equilibrium sorption for a polymer slab or sheet expo
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