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BSI PD IEC/TR 63042-100:2016

$142.49

UHV AC transmission systems – General information

Published By Publication Date Number of Pages
BSI 2016 32
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This part of IEC 63042, which is a Technical Report, specifies the reference for the standards and guidelines for UHV AC transmission systems. This document provides an overview of these standards as well as guidelines.

This document is developed to clarify standardization items and/or guideline items for UHV AC transmission systems. It describes the items to be considered for each stage of planning, design, construction, commissioning, operation, and maintenance during the development of IEC publications for UHV AC transmission systems.

NOTE Based on this IEC/TR 63042-100, TC 122 will prepare the standards and guidelines for UHV AC transmission systems, but it is not limited by the framework of the TR. A systematic approach is necessary for the preparation of systems-oriented specifications such as those for planning, design, technical requirements, construction, commissioning, reliability, availability, operation, and maintenance.

PDF Catalog

PDF Pages PDF Title
4 CONTENTS
7 FOREWORD
9 INTRODUCTION
10 1 Scope
2 Normative references
3 Terms and definitions
4 Planning
4.1 General
11 4.2 Security and stability
4.3 Transmission systems
12 4.4 System voltage
4.5 Reliability and availability
Tables
Table 1 – AC three-phase systems having a highest voltage for equipment exceeding 800 kV
Table 2 – Comparison of lightning fault between UHV and 550 kV systems
13 4.6 Transmission network
4.7 Network requirement
4.8 Transmission planning
5 System design
5.1 General
5.2 System design and solutions
5.2.1 Reactive power compensation
14 5.2.2 Protection scheme
5.2.3 Reclosing scheme
5.3 Insulation coordination
5.3.1 General
5.3.2 Lightning overvoltage
5.3.3 Slow front overvoltage (SFO)
15 5.3.4 Very fast front overvoltage (VFFO)
5.3.5 AC temporary overvoltage
6 Transmission line and substation design
6.1 General
16 6.2 Transmission line
6.2.1 General
6.2.2 Basic concept for selecting the UHV AC transmission line
6.2.3 Conductor design for the transmission line
6.2.4 Pollution design for insulators
6.2.5 Air clearance between tower and conductor
6.2.6 Right of way (ROW)
6.2.7 Height of conductor
17 6.2.8 Structural tower design, foundation
6.3 Substation
6.3.1 Area survey and selection
6.3.2 Substation bus scheme
18 6.3.3 Substation switchgear type
Figures
Figure 1 – Bus scheme
19 Table 3 – Substation switchgears’ comparison (GIS, Hybrid-IS, and AIS)
20 6.3.4 Equipment layout
Table 4 – The principle technology designs for substations (their components and bays)
21 6.4 Main equipment for the substation and related design
6.4.1 General
6.4.2 Power transformers
6.4.3 Switchgear
6.4.4 Air clearance
22 6.4.5 Seismic performance
6.4.6 Tertiary circuit
6.4.7 Substation electrical auxiliary system
6.5 Control and protection and communication
7 Construction
7.1 General
23 7.2 Transmission line
7.2.1 Transportation and preparing work at site
7.2.2 Foundation
7.2.3 Assembling of tower
7.2.4 Stringing
7.2.5 Quality control
7.3 Substation
7.3.1 Transportation
7.3.2 Installation
24 8 Commissioning
9 Operation and maintenance
9.1 Transmission lines
Figure 2 – General method of commissioning on site
25 9.2 Substations
9.2.1 General
9.2.2 Operation
9.2.3 Maintenance
26 10 Environmental considerations
10.1 Transmission lines
10.1.1 General
10.1.2 EMF
10.1.3 Electrostatic induction
Figure 3 – Basic way of considering operation andmaintenance of UHV AC substations
27 10.1.4 Electromagnetic induction
10.1.5 Audible noise with corona discharge
10.1.6 Radio interference with corona discharge
10.1.7 Wind noise
10.1.8 Environmental impact
10.2 Substations
10.2.1 Earthing design
10.2.2 Electrostatic-induction design
28 10.2.3 Audible noise mitigation design
10.2.4 Disaster-prevention design
29 Bibliography
BSI PD IEC/TR 63042-100:2016
$142.49