ANSI ICEA P-117-734-2016 Ampacities For Single-Conductor Solid Dielectric Power Cable 15 kV Through 35 kV.pdf
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1、 Ampacities For Single-Conductor Solid Dielectric Power Cable 15 kV Through 35 kV ANSI/ICEA P-117-734-2016 2016 by INSULATED CABLE ENGINEERS ASSOCIATION, Inc. ANSI/ICEA P-117-734-2016 Approved as an American National Standard ANSI Approval Date: February 23, 2016 Insulated Cable Engineers Assoc., In
2、c. Publication No. ICEA P-117-734-2016 Ampacities For Single-Conductor Solid Dielectric Power Cable 15 kV Through 35 kV 2016 Approved July 2015 by Insulated Cable Engineers Association, Inc. Approved February 23, 2016 by American National Standards Institute, Inc. Published by: Insulated Cable Engin
3、eers Association, Inc. Copyright 2015 by the Insulated Cable Engineers Association, Incorporated (ICEA). All rights including translation into other languages, reserved under the Universal Copyright Convention, the Berne Convention for the Protection of Literary and Artistic Works, and the Internat
4、ional and Pan American Copyright Conventions. 2016 by the Insulated Cable Engineers Association NOTICE AND DISCLAIMER The information in this publication was considered technically sound by the consensus of persons engaged in the development and approval of the document at the time it was developed.
5、 Consensus does not necessarily mean that there is unanimous agreement among every person participating in the development of this document. The Insulated Cable Engineers Association, Inc. (ICEA) standards and guideline publications, of which the document contained herein is one, are developed throu
6、gh a voluntary consensus standards development process. This process brings together persons who have an interest in the topic covered by this publication. While ICEA administers the process and establishes rules to promote fairness in the development of consensus, it does not independently test, ev
7、aluate, or verify the accuracy or completeness of any information or the soundness of any judgements contained in its standards and guideline publications. ICEA disclaims liability for personal injury, property, or other damages of any nature whatsoever, whether special, indirect consequential, or c
8、ompensatory, directly or indirectly resulting from the publication, use of, application, or reliance on this document. ICEA disclaims and makes no guaranty or warranty, expressed or implied, as to the accuracy or completeness of any information published herein, and disclaims and makes no warranty t
9、hat the information in this document will fulfill any of your particular purposes or needs. ICEA does not undertake to guarantee the performance of any individual manufacturer or sellers products or services by virtue of this standard or guide. In publishing and making this document available, ICEA
10、are not undertaking to render professional or other services for or on behalf of any person or entity, nor is ICEA undertaking to perform any duty owed by any person or entity to someone else. Anyone using this document should rely on his or her own independent judgement or, as appropriate, seek the
11、 advice of a competent professional in determining the exercise of reasonable care in any given circumstances. Information and other standards on the topic covered by this publication may be available from other sources, which the user may wish to consult for additional views or information not cove
12、red by this publication. ICEA has no power, nor does it undertake to police or enforce compliance with the contents of this document. ICEA does not certify, test, or inspect products, designs, or installations for safety or health purposes. Any certification or other statement of compliance with any
13、 health or safety-related information in this document shall not be attributable to ICEA and is solely the responsibility of the certifier or maker of the statement. ICEA P-117-734 -2016 Page i 2016 by the Insulated Cable Engineers Association CONTENTS FOREWORD . iii PREFACE iv SECTION 11 GENERAL.1
14、1.1 Introduction 1 1.2 Scope 1 SECTION 2 . 2 EFFECT OF SHIELD CURRENTS ON CABLE AMPACITY 2 SECTION 3 . 3 TECHNICAL FEATURES OF TABLES 3 3.1 Parameters 3 3.1.1 Voltages 3 3.1.2 Load and loss factors 3 3.1.3 Dielectric loss 3 3.1.4 Thermal resistivity 4 3.1.5 Temperatures. 4 3.1.6 Conductors 4 3.1.7 E
15、xtruded conductor shield (stress control layer) 5 3.1.8 Insulation. 5 3.1.9 Extruded Insulation shield 5 3.1.10 Metallic shield . 5 3.1.11 Jackets . 6 3.1.12 Types of installations 6 3.2 Use of ampacity tables . 6 3.2.1 General 6 3.2.2 Metallic shield . 6 3.2.3 Calculation of DC shield resistance 6
16、3.2.4 Temperature limitations 7 3.3 Earth interface temperature 8 3.4 Adjustments for changes in parameters . 8 3.4.1 Adjustment for change in ambient earth temperature . 8 3.4.2 Adjustment for change in conductor temperature . 10 3.4.3 Adjustment for change in maximum earth interface temperature 10
17、 SECTION 4 . 12 INFLUENCING FACTORS ON CABLE AMPACITY.14 4.1 Shield loss 12 4.1.1 Shield circulating current loss . 12 4.1.2 Effects of phasing . 13 4.1.3 Shield eddy current loss 13 4.2 Earth thermal resistivity . 14 4.3 Earth interface temperature 19 4.4 Installation types 16 4.5 Other important f
18、actors 17 4.5.1 Nearby heat sources.17 ICEA P-117-734-2016 Page ii 2016 by the Insulated Cable Engineers Association 4.5.2 Magnetic conduit.17 4.5.3 SIC and dissipation factor17 4.5.4 Burial Depth.17 4.5.5 Duct size.18 4.5.6 Impact of risers.19 4.6 General equation for ampacity . 19 SECTION 5 . 20 R
19、EFERENCES . 20 SECTION 6 . 21 Installation configurations 21 SECTION 7 . 23 TABLE OF AMPACITIES. 23 INDEX OF PAGE NUMBERS FOR AMPACITY TABLES23 TABLES AND CHARTS TABLE 1 Voltage range 5 TABLE 2 Metallic shield types . 5 TABLE 3 Helically applied lay factor . 7 TABLE 4 Electrical resistivity. 7 TABLE
20、 5 Ambient earth correction factors . 9 TABLE 6 Ambient air correction factors 9 TABLE 7 Effect of cable phasing on ampacity of double circuits 13 CHART 1 Earth thermal resistivity vs ampacity . 14 CHARTS 2-8 Relationship of soil resistivity to ampacity and effect on earth interface temp. 15 CHART 9
21、 Direct buried vs duct 16 CHART 10 Number of circuits in duct bank vs ampacity . 17 CHART 11 Effect of burial depth on ampacity . 18 CHART 12 Ampacity vs duct size. 18 CHART 13 Riser vs duct vs direct buried . 19 ICEA P-117-734 -2016 Page iii 2016 by the Insulated Cable Engineers Association Forewor
22、d ICEA Standards are adopted in the public interest and are designed to eliminate misunderstandings between the manufacturer and the user and to assist the user in selecting and obtaining the proper product for his particular need. Existence of an ICEA standard does not in any respect preclude the m
23、anufacture or use of products not conforming to the standard. Requests for interpretation of this Standard must be submitted in writing to: Insulated Cable Engineers Association, Inc. An official written interpretation will be provided. The Association will welcome any suggestions on ways to improv
24、e this Standard. ICEA P-117-734-2016 Page iv 2016 by the Insulated Cable Engineers Association Preface The first industry ampacity tables were published in December 1943 by the Insulated Power Cable Engineers Association (IPCEA) under the title Current Carrying Capacity of Impregnated Paper, Rubber
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