ICEA T-33-655-1994 Low-Smoke Halogen-Free (LSHF) Polymeric Cable Jackets《低烟无卤素(LSHF)聚合体电缆套》.pdf
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1、GUIDE FOR LOW-SMOKE, HALOGEN-FREE (UHF) POLYMERIC CABLE JACKETS KEA Publication T-33-655 - 1994 1994 By INSULATED CABLE ENGINEERS ASSOCIATION, INC. FOREWORD ICEA publications are adopted in the public interest and are designed to eliminate misunderstanding between the manufacturer and user in select
2、ing and obtaining proper products for his particular need. The user of this publication is cautioned to observe any health or safety regulations and rules relative to the manufacture and use of cable covered by this document. This guide does not indicate or suggest that the jacket materials selected
3、 using the requirements indicated will be less hazardous than other cable jackets or will prevent fire spread and smoke generation under all fire scenarios. This guide does not state or imply that halogen containing materials are inferior or necessarily hazardous in any conditions including fires. I
4、n fact, most common halogen containing cable jacket materials have exceptional combinations of physical properties, mechanical performance, and fire retardancy . Under some specific methods of measuring smoke and corrosive gas generation, these test methods have indicated that the halogen-free mater
5、ials generate less smoke and corrosive gases when compared to many halogen containing materiais. Some of these test methods are used in the combustion requirements of this guide, but they are not suggested as ultimately the best methods for determining fire performance. It is up to the user of the c
6、able to determine the performance criteria of the application and match them appropriately to the requirements of the overall cable design, not just the cable jacket. Suggestions for improvements in this publication are welcome, and should be sent to ICEA at the address below. Copyrighted by the ICE
7、A Contents may not be reproduced in any form without permission of the INSULATED CABLE ENGINEERS ASSOCIATION, Inc. Copies of the publication may be obtained from: Insulated Cable Engineers Association, Inc. Post Office Box 440 South Yarmouth, Massachusetts 02664 Telephone: (508) 394-4424 i - ICEA T-
8、33-655 74 = 7007014 0001094 929 TABLE OF CONTENTS Foreword . Definitions . Scope . Background .2 Suggested Requirements . 2 Suggested Uses .3 Physical Requirements . .5 Table II Mechanical Requirements .6 Table III Material Combustion Requirements .7 Table I 11 ICEA T-33-655 94 90070L4 OOOLO5 Ab5 IC
9、EA Publication T-33-655 Page 1 GUIDE FOR LOW-SMOKE, HALOGEN-FREE (LSKF) POLYMERIC CABLE JACKETS 1.0 scope This guide provides a list of requirements which may be used for selecting and specifying low-smoke, halogen-free (LSHF) polymeric cable jackets. These requirements may be used in conjunction wi
10、th other ICEA published cable specifications in development of a complete set of requirements for optical and electrical cable of various types. Other materials in the cable design may affect the smoke generation and halogen content of the cable design. The user should note this in determining the o
11、verall material design criteria of the cable. 2.0 Definitions The following definitions apply to this guide. 2.1 Low Smoke The term low smoke as it is used in this guide is applied to materials which meet the combustion requirements in Table III. 2.2 Halogen-Free Halogen-free as it is used in this g
12、uide is applied to materials having less than 0.2 96 by weight of any halogen as determined using the test methods indicated in Table III. It is the intent of this guide that no halogenated materials are added to the jacket formulations and the 0.2% limit is the practical limit for measurement accur
13、acy. A halogen is an atomic element of group number VIIa of the periodic table. The most commonly occurring halogens in cable jacket materials have been fluorine, chlorine, and bromine. 2.3 Thermoplastic A high polymer that softens when exposed to heat and returns to its original condition when cool
14、ed to room temperature. 2.4 Thermoset A high polymer that solidifies or Isets“ irreversibly when heated. This property is usually associated with a crosslinking reaction of the molecular constituents induced by heat, radiation, or moisture. ICEA Publication T-33-655 3.0 4.0 4.1 4.2 Page 2 Background
15、 There are cable applications where consideration of the cable combustion performance should include not only the potential for fire propagation, but also the potential for damage due to generation of smoke and acid gases. These applications include, but are not limited to, cable used in transit tun
16、nels, on ships, or various enclosed locations where the potential for harm to people and equipment can occur if hazardous chemicals are released. Ideally, cables should be tested and rated for overall fire hazard performance, but no such test methods and associated design criteria have been agreed u
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