J-3 - FAA-STD-019f Chg 3 20200401.pdf
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This document is FAA-STD-019f, Change 3, which establishes design, procurement, installation, construction, and evaluation standards for lightning protection, transient surge protection, grounding, bonding, shielding configurations, and control of electrostatic discharge (ESD) for Federal Aviation Administration (FAA) National Airspace System (NAS) facilities and equipment.
The standard covers mandatory requirements for both new facilities and modifications/upgrades to existing facilities, new equipment installations, and new electronic equipment procurement. It provides detailed performance requirements specific to FAA facility applications, including Airport Traffic Control Towers, lightning protection system special conditions, facility transient protection, single point ground systems, NAS electronic equipment interface and procurement, surge protective device requirements, and ESD protection. The standard exceeds minimum industry requirements where necessary to meet FAA missions of preventing delay or loss of service, minimizing outages, and enhancing personnel safety.
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| 697DCK-24-R-00304-001.pdf | ||
| Questions and Answers.docx | DOCX document | |
| J-2 - FAA-C-1217H Chg. 1 Electrical Work Premises Wiring.pdf | ||
| 697DCK-24-R-00304.pdf | ||
| J-1 PWS.pdf | ||
| J-4 Wage Determination.pdf | ||
| J-8 Past Performance Questionnaire.pdf | ||
| J-5 SCA.pdf | ||
| J-6 - Standardized Proposal Breakdown.xls | XLS spreadsheet | |
| J-7- Uniform Bipartisan Infrastructure Law Data Report.xlsx | XLSX spreadsheet |
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FAA-STD-019f, Chg 3
July 14, 2020
DEPARTMENT OF TRANSPORTATION
FEDERAL AVIATION ADMINISTRATION
STANDARD
LIGHTNING AND SURGE PROTECTION,
GROUNDING, BONDING, AND SHIELDING
REQUIREMENTS FOR
FACILITIES AND ELECTRONIC EQUIPMENT
ii
This Page Intentionally Left Blank iii
FOREWORD
1. Construction of Federal Aviation Administration (FAA) operational facilities and the electronic equipment installed therein shall conform to this standard. This standard defines minimum requirements for FAA facilities. When specific needs of a facility exceed these minimum requirements, the facility design and construction shall meet the specific needs.
The equipment type, configuration, and location along with the configuration of site structures and environmental/weather conditions influence these needs.
2. The requirements herein reflect lessons learned from investigation and resolution of malfunctions and failures experienced at field locations. The FAA thus considers these requirements the minimum necessary to harden sites sufficiently for the FAA missions – to prevent delay or loss of service, to minimize or preclude outages, and to enhance personnel safety. Further, the requirements herein are coordinated with industry standards, and in some cases exceed industry standards where necessary to meet the FAA missions.
3. The use of “shall” or verbs such as “provide,” “construct,” “weld,” or “connect” indicates mandatory compliance. Deviations are permissible in cases when implementation of certain requirements is not technically feasible, and in such cases, the FAA shall submit a National
Airspace System (NAS) Change Proposal (NCP) with justification and technical documentation, and receive approval by the NAS Configuration Control Board (CCB).
4. The format and content requirements of this standard are in accordance with FAA-STD-068, and the grammar and style are in accordance with the Government Printing Office (GPO)
Style Manual.
iv v
Change History
1. Originator Name and
Address
AJW-22, Power Services Group
2. [] Proposed 3. Code Identification 4. Document No. _______
Washington, DC
[X ] Approved 5. Code Identification 6. DCN No.
7. System Designation 8. Related ECR/NCP No.
9. Contract No. 10. Contractual Activity N/A
11. Product Integration Plan 12. Effectivity
This notice informs recipients that the standard identified by the number (and revision letter) shown in block 4 has been changed. The pages changed by this DCN (being those furnished herewith) carry the same date as the DCN. The page numbers and dates listed below in the summary of changed pages, combined with non-listed pages of the original issue of the revision shown in block 4, constitute the current version of this specification.
13. DCN No. 14. Pages changed S* A/D* 15. Date
4.5.2(d) – correct typo. 4/4/2019
4.6.2.3(a) – provide description on how to size the SPD ground conductor in small panels where the GEC size is smaller than the maximum conductor size allowed by the manufacturer.
4/4/2019
5.2.4(b) and (c) – update for clarity and consistency - grounding of separately derived systems in ATCT environment.
4/4/2019
Figure 19 – update figure for clarity. 4/4/2019
Change exothermic weld policy in staffed operation facility. Connections that meet the requirements of Underwriters Laboratories UL467 and UL96 listed irreversible compression type bonding connection is permitted for use in lightning protection system application. Changes applied to section 4.2.3.1, 4.2.3.2, 4.3.5.1, 4.3.7.2, and
4.7.3.3.
8/23/2019
Figure 3 – update figure, remove specific reference to exothermic weld type per policy change above.
8/23/2019
Table 5 – add color code information for ground cables from the main ground plate to the earth electrode system (EES) and add color coding for ground cable from the supplemental ground plate to the EES.
8/23/2019
4.4.4.2c and e – add missing conductor sizes that were in advertently dropped from previous version of this document.
7/14/2020
5.3.6 – add electrical continuity bonding exception: If bonding jumper for sections of stairs, ladders, or platforms causes a safe-climbing hazard, the requirement is waived.
7/14/2020 vi vii
TABLE OF CONTENTS
1 SCOPE
1.1 Applications
1.2 Tailoring of Mandatory Requirements
1.3 Purpose
1.4 Content Organization
2 APPLICABLE DOCUMENTS
2.1 General
2.2 Government Documents
2.2.1 FAA Specifications
2.2.2 FAA Orders and Handbooks
2.2.3 Military Documents
2.3 Non-Government Documents
2.3.1 Electronic Industries Alliance (EIA)
2.3.2 National Fire Protection Association (NFPA)
2.3.3 Underwriters Laboratories (UL)
2.3.4 Institute of Electrical and Electronic Engineers (IEEE)
2.3.5 Electrostatic Discharge (ESD) Association Documents
2.3.6 Telecommunication Industry Association (TIA) Documents
3 DEFINITIONS
4 GENERAL REQUIREMENTS
4.1 Introduction
4.2 Bonding Requirements
4.2.1 General
4.2.2 Dissimilar Metals
4.2.3 Methods of Bonding
4.2.4 Bonding Connections – Installation Requirements
4.2.5 Bonding Connections – Hardware for Bonding Jumpers and Straps
4.3 Lightning Protection System Requirements
4.3.1 General
4.3.2 Lightning Protection System – Components
4.3.3 Lightning Protection System – Material Class Requirements
4.3.4 Lightning Protection for NAS Facilities Buildings and Structures
4.3.5 Lightning Protection System - Conductor Routing
4.3.6 Lightning Protection System - Air Terminals
4.3.7 Lightning Protection System - Hardware
4.3.8 Lightning Protection System – Bonding Connections
4.4 Earth Electrode System (EES)
4.4.1 General
4.4.2 [A3] Site Survey and Geotechnical Investigation
4.4.3 EES – Design
4.4.4 EES - Configuration
4.4.5 Grounding Enhancement Materials for Earth Electrode System (EES) Installation
4.4.6 Installation of Earth Electrode Systems in Corrosive Soils
4.5 National Electric Code - Power Distribution System Grounding Compliance
4.5.1 General
viii
4.5.2 Grounding Electrode Conductors (GEC)
4.5.3 Equipment Grounding Conductors (EGC)
4.5.4 Grounding Bushings for Conduit Raceways
4.5.5 Interior Metal Piping Systems
4.5.6 Building Structural Steel
4.6 Surge Protection Device (SPD) Requirements
4.6.1 General
4.6.2 SPD for Power Distribution System
4.6.3 SPD for Signal, Control, and Data Line Surge Protection
4.7 Grounding and Bonding for NAS Electronic Equipment Areas
4.7.1 General
4.7.2 Main and Supplemental Ground Plates
4.7.3 Signal Reference Structures (SRS) – Requirements
4.7.4 Bonding of Electrical Systems in NAS Electronic Equipment Areas
4.8 Shielding Requirements
4.8.1 General
4.8.2 Facility Shielding
4.8.3 Shielding for Conductors and Cabling
4.8.4 Electromagnetic Environment Control
4.9 Electrostatic Discharge (ESD) Requirements
4.9.1 General
4.9.2 Requirements
5 DETAILED REQUIREMENTS
5.1 Introduction
5.2 Airport Traffic Control Tower (ATCT) Facilities
5.2.1 General
5.2.2 Lightning Protection System
5.2.3 Main Ground Connections
5.2.4 Power Distribution System
5.2.5 NAS Electronic Equipment Areas
5.3 Lightning Protection System – Special Conditions
5.3.1 General
5.3.2 Antenna Towers
5.3.3 Antenna Protection
5.3.4 Tower Guying
5.3.5 Waveguide, Axial Cable, and Conduit Grounding
5.3.6 Staircase and Ladder Protection
5.3.7 Lightning Protection for Facilities without Buildings or Antennas
5.3.8 Lightning Protection for Fences and Gates
5.3.9 Lightning Protection for Photovoltaic Solar Arrays
5.4 Facility Transient Protection – Special Conditions
5.4.1 General
5.4.2 Existing Metallic Conduit, Conductors, and Cables
5.4.3 Electromagnetic Shielding for Lines, Conductors, and Cables
5.4.4 Balanced Pair Cables
5.4.5 Fiber Optic Cable
5.4.6 Interior Wiring, Conductors, and Cables
5.5 Single Point Ground System (SPG) – Special Conditions
5.5.1 General
5.5.2 Isolation between SPG and Other SRS Systems
5.5.3 Resistance of Bonds
5.5.4 SPG - Ground Plates
ix
5.5.5 SPG - Ground Conductors
5.5.6 Labeling
5.5.7 Protection
5.6 NAS Electronic Equipment – Interface and Procurement Requirements
5.6.1 General
5.6.2 Electronic Signal Lines and Cables - Shielding
5.6.3 Signal, Control, and Data Line Entrance – Transient Protection
5.6.4 Equipment Power Entrance – Transient Protection
5.6.5 NAS Electronic Equipment Enclosures and Assemblies - Grounding and Bonding
5.6.6 NAS Electronic Equipment – Equipment Grounding and Bonding
5.6.7 Equipment Shielding Requirements
5.6.8 NAS Electronic Equipment - Electrostatic Discharge Protection
5.6.9 Secure Facilities
5.6.10 High RF Field Bonding Requirements
5.7 Surge Protective Device (SPD) – Equipment Specification Requirements
5.7.1 General
5.7.2 Surge Protective Device (SPD) for Power Distribution Equipment Protection
5.7.3 SPDs for NAS Electronic Equipment – Design and Procurement Requirements
5.7.4 SPD - Design Specification for Axial Cable Protection
5.8 Electrostatic Discharge (ESD) Protection – Interface and Specification Requirements
5.8.1 General
5.8.2 Electrostatic Discharge (ESD) Sensitivity Classification
5.8.3 Classification of Materials
5.8.4 Hard and Soft Grounds
5.8.5 Protection of Electrostatic Discharge (ESD) Susceptible and Sensitive Items
5.8.6 ESD Controls Required for ESD Special Protection Areas
5.8.7 ESD Signs, Labels, Cautions, and Warnings for ESD Protection Areas
5.8.8 Electrostatic Discharge (ESD) Protective Storage Areas
5.8.9 Electrostatic Discharge (ESD) Control Flooring and Floor Coverings
5.8.10 Electrostatic Discharge (ESD) Requirements for Raised Access Floor Systems
5.8.11 Electrostatic Discharge (ESD) Protective Worksurfaces
5.8.12 Static Dissipative Coatings
5.8.13 Electrostatic Discharge (ESD) Protected Workstations
5.9 Electromagnetic Compatibility Requirements
5.9.1 General
5.9.2 [A6] Requirements
5.9.3 Approval
6 NOTES
6.1 Acronyms and Abbreviations
6.2 Guidelines and Reference Notes
6.3 Version Cross-Reference
6.4 Bibliography
x
List of Figures
Figure 1. Order of Assembly for Bolted Connections
Figure 2. Lightning Protection System Main Conductor Connections – Illustrative Example Figure 3. Main and Down Conductor Termination to EES – Illustrative Example Figure 4. Typical Service Rack EES Installation – For Illustrative Purposes Only Figure 5. Grounding Trench Detail Figure 6. Ground Dissipation Plate Detail
Figure 7. Bonding of Grounding Conductor to Conduit or Equipment Figure 8. SPD Location Diagram - Close Proximity Allowance Decision Tree Figure 9. Typical Facility Grounding System Figure 10. Multipoint Ground Conductor Size Determination Figure 11. Electronic Equipment Grounding
Figure 12. Grounding of Overall Cable Shields to Connectors and Penetrating Walls Figure 13. Grounding of Overall Cable Shield to Terminal Strip
Figure 14. Airport Traffic Control Tower – Typical Floor Levels Figure 15. Typical Electronic Equipment Grounding Riser Diagram for ATCT (Preferred
Method) Figure 16. Typical Electronic Equipment Grounding Riser Diagram for ATCT (Alternative
Method) Figure 17. Lightning Protection for Radomes and Radar Antenna Platforms Figure 18. Fence Grounding
Figure 19. Buried Guard Wire Detail for Underground Cables or Cable Ductbanks Figure 20. Single-Point Ground System Installation – Illustrative Example
Figure 21. Lines and Cables Requiring Protection Figure 22. Bonding of Connectors to Mounting Surface
Figure 23. Single Point Ground Bus Bar Installation in Rack or Cabinet
Note. Colors in figure illustrations distinguish the fundamental elements of the grounding system concept and do not represent color-coding or labeling requirements of this standard.
List of Tables
Table 1. Mechanical Bonds Between Dissimilar Metals Table 2. Connection Torque Requirements for Bolted Bonds Table 3. Size of Electronic Multipoint Ground Interconnecting Conductors Table 4. Ground Plate Specification Requirements Table 5. Grounding Conductor Insulation Color Codes
Table 6. Minimum Separation Distance between Signal and Power Conductors Table 7. ATCT MPG Configuration – Parallel Conductor Complements
Table 8. Electronic Equipment Power Entrance SPD - Slope Resistance (Rslope) Table 9. Electronic Equipment Power Entrance SPD - Voltage Protection Rating (V3) Table 10. Electronic Equipment Power Entrance SPD – Surge Current Lifetime Rating Table 11. Power Distribution Equipment SPD – Surge Current Lifetime Rating Table 12. Power Distribution Equipment SPD - Slope Resistance (Rslope) Table 13. Power Distribution SPD Voltage (V3) Protection Rating
1 SCOPE
This standard establishes design, procurement, installation, construction, and evaluation standards for lightning protection, transient surge protection, grounding, bonding, shielding configurations and procedures, and control of electrostatic discharge (ESD).
1.1 Applications
The requirements of this standard are mandatory for both new facilities and modifications and upgrades to existing facilities, new equipment installations, and new electronic equipment procurement used in the National Airspace System (NAS) facilities.
The use of the term “facilities” herein can differ from the manner in which it is frequently used in other Federal Aviation Administration (FAA) documents. In this standard, facilities may refer to an entire building, tower, interior or exterior system(s), or portions thereof which support the
NAS and its operation. The physical proximity of the system(s) or equipment typically defines a single facility, while significant physical separation of the system or equipment defines separate facilities.
This standard covers government owned or leased property and “facilities.”
a. Contractor-Owned Equipment Interface. The interface between contractor-owned equipment or electronic equipment not used for operational purposes, such as administrative local area network (LAN), administrative telephone, and the operational
NAS facilities shall be in accordance with this standard.
1.2 Tailoring of Mandatory Requirements
The FAA recommends that the Office of Primary Responsibility (OPR) is contacted to obtain technical guidance on the applicability of requirements herein for modifications, upgrades, and new equipment installations in existing facilities.
a. Application for Previously Funded Programs. This standard is not mandatory for programs funded prior to the issue date of this standard, nor is it mandatory for construction contracts associated with programs funded prior to the issue of the standard. Application of this standard is at the discretion of the user for programs funded prior to the issue of the standard.
b. Mandatory Applications. The OPR can mandate the use of this standard for programs started before the issue date of this standard, if funding is provided.
1.3 Purpose
The requirements of this standard provide a systematic approach to minimize electrical hazards to personnel, and minimize electromagnetic interference (EMI) that can cause damage to facilities and electronic equipment from lightning, transients, ESD, and power faults.
1.4 Content Organization
The standard is organized in accordance with FAA-STD-068.
FAA-STD-019F Content Arrangement
FOREWORD Normative Process Information
1 SCOPE
This chapter contains:
a. Scope Statement
b. Applicability Statement for mandatory compliance with requirements
c. Procedure for Tailoring of Mandatory Requirements
2 APPLICABLE
DOCUMENTS
This chapter includes technical documents used in this standard.
3 DEFINITIONS
This chapter contains definitions essential to the understanding and application of this standard. It is not intended to include commonly defined general or technical terms from building codes or industry standards.
4 GENERAL
REQUIREMENTS
This chapter addresses the general grounding system requirements commonly included in building codes and industry standards, and covers the general common requirements and standard practice for the overall design, installation, construction, and evaluation for FAA installations.
The general requirements of industry codes and standards are often too general for many FAA applications. This chapter is organized to define and build upon the requirements of general industry standards and building codes as they relate to FAA applications.
This chapter includes the following parts:
a. Bonding Requirements
b. Lightning Protection System Requirements
c. Earth Electrode System Requirements
d. National Electrical Code Power Distribution System
Grounding Compliance
e. Surge Protective Device Requirements
f. Grounding and Bonding Requirements for NAS Electronic
Equipment Areas
g. Shielding Requirements
h. Electrostatic Discharge Requirements
FAA-STD-019F Content Arrangement (continued)
5 DETAILED
REQUIREMENTS
This chapter describes detailed performance requirements, which are specific to FAA facility applications, organized by facility special conditions and equipment as follows:
a. Airport Traffic Control Tower Facilities
b. Lightning Protection System – Special Conditions
c. Facility Transient Protection – Special Conditions
d. Single Point Ground System (SPG) – Special Conditions
e. NAS Electronic Equipment – Interface and Procurement
Requirements
f. Surge Protective Device (SPD) – Procurement Requirements
g. Electrostatic Discharge Equipment – Interface and
Specification Requirements
h. Electromagnetic Compatibility Requirements
6 NOTES
This chapter includes:
a. Acronyms and Abbreviations
b. Guidelines and References Notes
c. Version Cross-Reference
d. Bibliography
Document conventions:
Designations indicated with brackets, e.g., " [A1] " preceding a section or paragraph title denote that explanatory material is provided in section 6.2.
Designations indicated with brackets, e.g., " [B1] " preceding a section or paragraph title indicates that bibliography reference material is provided in section 6.4.
2 APPLICABLE DOCUMENTS
2.1 General
Documents listed in this chapter are government and non-government reference documents that form a part of this standard and are applicable to the extent specified herein. While every effort has been made to ensure the completeness of this list, document users are cautioned that they shall meet all specified requirements of documents cited in Chapters 3, 4, and 5 of this standard, and national safety standards, whether or not they are listed.
a. In the event of a conflict between the text of this standard and the references cited herein, the text of this standard takes precedence. Nothing in this standard shall supersede applicable laws and regulations unless a specific exemption has been obtained.
b. Bibliography and reference source material is included in Chapter 6.
2.2 Government Documents
Due to periodic updating of government documents, the Contracting Officer and/or the
Implementation Engineer shall specify the current version for project design or at contract award.
2.2.1 FAA Specifications
FAA-C-1217 Electrical Work, Interior
FAA-G-2100 Electronic Equipment, General Requirements
FAA-STD-012 Paint Systems for Equipment
2.2.2 FAA Orders and Handbooks
FAA-HDBK-010
Recommended Practices and Procedures for Lightning and Surge Protection, Grounding, Bonding, and Shielding Implementation
FAA-HDBK-011
Fundamental Considerations of Lightning Protection and Surge Protection, Grounding, Bonding, and Shielding
Copies of FAA specifications, standards, orders, and other applicable documents may be obtained from the Contracting Officer issuing the invitation-for-bid or request-for-proposal.
Requests for this material should identify the material desired, for example, the specifications, standards, amendments, drawing numbers and dates. Requests should cite the use for the material, invitation-for-bid, request-for-proposal, the contract number, or other intended use.
2.2.3 Military Documents
MIL-HDBK-232 Revision A Red/Black Engineering-Installation Guidelines
MIL-HDBK-237
Electromagnetic Compatibility Management Guide for Platforms, Systems and Equipment
DOD/MIL-HDBK-263 Electrostatic Discharge Control Handbook
DOD-STD-1686
Electrostatic Discharge Control Program for Protection of Electrical and Electronic Parts, Assemblies and Equipment (Excluding Electrically Initiated Explosive Devices)
MIL-HDBK-419 Grounding, Bonding, and Shielding for Electronic Equipment and Facilities
MIL-PRF-87893 Performance Specification, Workstation, Electrostatic Discharge Control
MIL-W-87893 Military Specification Workstation, Electrostatic Discharge (ESD) Control
MIL-STD-461 The Control of Electromagnetic Interference Emissions and Susceptibility
MIL-STD-889 Dissimilar Metals
MIL-STD-1686
Electrostatic Discharge Control Program for Protection of Electrical and Electronic Parts, Assemblies, and Equipment (Excluding Electrically Initiated Explosive Devices)
NACSIM 5203
Guidelines for Facility Design and Red/Black Installation (Confidential Document)
Single copies of Military specifications, standards, and handbooks are available by mail or telephone from Document Automation and Production Service Customer Service, Standardization Documents Order Desk, 700 Robbins Avenue, Building 4D, Philadelphia, PA 19111-5094. http://quicksearch.dla.mil/
Not more than five items may be ordered on a single request and all requests must contain the document number. Only the latest revisions (complete with latest amendments) are available. Slash sheets must be individually requested. The Invitation for Bid or Contract Number should be cited where applicable.
2.3 Non-Government Documents
Due to periodic updating of non-government documents, the Contracting Officer and/or the
Implementation Engineer must specify the current version for project design or at contract award unless a specific version is identified in this standard. These documents form a part of this standard and are applicable to the extent specified herein. While this standard may exceed the requirements of the following documents, building codes and industry standards always shall be followed as a minimum.
2.3.1 Electronic Industries Alliance (EIA)
JEDEC Standard JESD625 Requirements for Handling Electrostatic-Discharge-Sensitive (ESDS) Devices
Copies of EIA Standards are available from JEDEC Solid State Technology Association, Mailing Address:
3103 North 10th Street, Suite 240-S, Arlington, VA 22201-2107. https://www.jedec.org/
2.3.2 National Fire Protection Association (NFPA)
NFPA 70 National Electrical Code (NEC)
NFPA 77 Recommended Practice on Static Electricity
NFPA 780 Standard for the Installation of Lightning Protection Systems
Copies of NFPA documents are available from the National Fire Protection Association, One Batterymarch Park, Quincy, MA 02269. www.nfpa.org
2.3.3 Underwriters Laboratories (UL)
UL 96 Lightning Protection Components
UL 96A Installation Requirements for Lightning Protection Systems
UL 779 (ANSI-A148.1) Electrically Conductive Floorings
UL 1449 Standard for Surge Protective Devices
Copies of UL documents are available from Global Engineering Documents, 1500 Inverness Way, East Englewood, CO 80112. Telephone 303-397-7945, 800-854-7179. www.ul.com
2.3.4 Institute of Electrical and Electronic Engineers (IEEE)
ANSI/IEEE C62.41.2
Recommended Practice on Characterization of Surges in Low-Voltage (1000 V and Less) AC Power Circuits
ANSI/IEEE C62.45
Recommended Practice on Surge Testing for Equipment Connected to Low- Voltage (1000 V and Less) AC Power Circuits
ANSI/IEEE 1100
Recommended Practice for Powering and Grounding Sensitive Electronic Equipment (Emerald Book)
Copies of IEEE documents are available from Institute of Electrical and Electronic Engineers, 445 Hoes Lane, P.O. Box 1331, Piscataway, NJ 08855-9916. www.ieee.org
2.3.5 Electrostatic Discharge (ESD) Association Documents
ESD ADV1.0 Electrostatic Discharge Terminology - Glossary
ESD ADV53.1 ESD Protective Workstations
ESD S4.1 Worksurfaces Resistance Measurements
ANSI/ESD S8.1 Symbols - ESD Awareness
ANSI/ESD S20.20
Development of an Electrostatic Discharge Control Program for Protection of Electrical and Electronic Parts, Assemblies and Equipment
ANSI/ESD STM 7.1 Floor Materials - Resistive Characterization of Materials
ANSI/ESD STM 11.11 Surface Resistance Measurement of Static Dissipative Planar Materials
ANSI/ESD STM 12.1 Seating - Resistive Measurement
ESD TR20.20
Handbook for the Development of an Electrostatic Discharge Control Program for the Protection of Electronic Parts, Assemblies and Equipment
ANSI/ESDA/JEDECD JS-
ESDA/JEDEC Joint Standard for Electrostatic Discharge Sensitivity Testing - Human Body Model (HBM) - Component Level
Copies of ESD Association documents are available from the EOS/ESD Association, Inc. 7900 Turin Road, Building 3, Rome, NY 13440-2069. Telephone 315-339-6937. www.esda.org
2.3.6 Telecommunication Industry Association (TIA) Documents
TIA-222 Structural Standard for Antenna Supporting Structures and Antennas
Copies of TIA documents are available from the Telecommunications Industry Association, 1320 North Courthouse Road, Suite 200, Arlington, VA 22201. Telephone 703-907-7700.
www.tiaonline.org/standards/
3 DEFINITIONS
A
Access Well A covered opening in the earth using concrete or other cementitious material to provide access to an EES connection.
Armored Cable Power, signal, control, or data cable having an overall armor or covering constructed of ferrous (steel) material that provides both structural protection and electromagnetic shielding for direct buried cables.
Arrester Components, devices, and circuits used to attenuate, suppress, limit, or divert adverse electrical surge and transient energy. The terms arrester, suppressor, and protector are used interchangeably, except the term “arrester” is used herein for components, devices, and circuits installed on the primary side of FAA-owned distribution transformers.
B
Bond The electrical connection between two metallic surfaces used to provide a low-resistance path between them.
Bond, Direct An electrical connection utilizing continuous metal-to-metal contact between the members being joined.
Bond, Indirect An electrical connection employing an intermediate electrical conductor between the bonded members.
Bonding The joining of metallic parts to form an electrically conductive path to ensure electrical continuity and the capacity to conduct current imposed between the metallic parts.
Bonding Jumper A conductor installed to ensure electrical conductivity between metal parts required to be electrically connected.
Bonding Jumper, for NEC Compliance
See NEC definitions for power distribution wiring terms such as "Equipment," "Main," or "System" bonding jumper.
Branch Circuit The circuit conductors between the final overcurrent protective device and the load.
Building “Structural” Steel
The main building structural steel members consisting of columns and beams or girders. Concrete-encased reinforcing steel rebars may be considered structural steel, depending on location.
Bulkhead Ground Plate
A metallic plate located where conduits, conductors, cables, waveguides, etc, enter the facility from the exterior. The bulkhead plate provides a central point for the grounding of these services to minimize external transients from entering the facility or structure.
Bushing An insulated device that allows an electrical conductor to pass safely through a grounded conducting barrier such as the case of a panel, transformer, etc. The primary purpose is to prevent chafing of the conductors.
Bushing, Grounding or Bonding
An insulated device that allows for a grounding method at the end of the conduit. Also known as grounding-type bonding bushing or bonding bushing.
C
Cabinet An enclosure designed either for surface mounting or flush mounting that is provided with a frame, mat, or trim in which a swinging door or doors are, or can be, supported.
Cable A fabricated assembly of one or more conductors in a single outer insulation.
Types include axial, armored, and shielded.
Cable, AC A fabricated assembly of insulated conductors in a flexible metallic enclosure.
Type armored-cable (AC) cable is not the same as DEB cable.
Cable, Axial Cable where all conductors are oriented on a single axis, such as coaxial, biaxial, and tri-axial cables.
Cable, Direct Buried Cable with construction suitable for use in direct buried, underground installations without any form of conduit. Type direct buried cable is not the same as DEB cable.
Cable, Direct Earth Burial (DEB)
Cable with a ferrous shield designed to provide both physical and electromagnetic protection to the conductors.
Cable, MC Metal-Clad Cable, Type MC. A factory assembly of one or more insulated circuit conductors with or without optical fiber members enclosed in an armor of interlocking metal tape, or a smooth or corrugated metallic sheath. See
NEC.
Note: For the purpose of this standard, MC cable is only permitted when installed in accordance with FAA-C-1217.
Cable, Shielded Cable with a metalized or braid shield to improve resistance to electromagnetic interference (EMI).
Case A protective housing for a unit or piece of electrical or electronic equipment.
Chassis The metal structure that supports the electrical or electronic components that make up the unit or system.
Conductor, Bare An electrical conductor that has no covering or electrical insulation.
Conductor, Insulated An electrical conductor encased within material of composition and thickness recognized by the NEC as electrical insulation.
Conductor, Lightning Bonding (Secondary)
An electrical conductor used to bond a metal object, within the zone of protection and subject to currents induced by lightning strikes, to the lightning protection system.
Conductor, Lightning Down
The down conductor serves as the path to the EES from the roof system of air terminals and roof conductors or from an overhead ground wire.
Conductor, Lightning Main
Conductors intended to carry lightning currents between air terminals and the EES. These can be conductors interconnecting air terminals on the roof, conductors connecting a metal object on or above the roof level that is subject to a direct lightning strike to the lightning protection system, or the down conductor.
Conductor, Lightning Roof
Roof conductors interconnecting all air terminals to form a two-way path to the EES from the base of each air terminal.
E
Earth Electrode System (EES)
A network of electrically interconnected grounding systems such as ground rods, ground plates, ground mats, incidental electrodes including metallic piping and tanks, or ground grids installed below grade to establish a low resistance contact with earth.
Electromagnetic Interference (EMI)
Any emitted, radiated, conducted, or induced voltage that degrades, obstructs, or interrupts the required performance of electronic equipment.
Electronic Multipoint Ground System
(MPG)
An electrically continuous network consisting of interconnected ground plates, equipment racks, cabinets, conduit junction boxes, raceways, duct work, pipes, copper grid system, building framing steel, and other non-current-carrying metal elements. It includes conductors, jumpers, and straps that connect individual electronic equipment components to the signal reference structure
(SRS).
Electronic Single Point Ground System
(SPG)
A discreet signal reference network that provides a single point of reference in the facility for electronic equipment which require single point grounding. It consists of conductors, plates, and equipment terminals, all of which are isolated from any other grounding system except at the main ground plate.
Enclosed Cable Tray A cable tray with steel/aluminum sides and bottom with a steel/aluminum cover or lid.
Equipment A general term including materials such as fittings, devices, appliances, fixtures, apparatus, and machines, used in conjunction with an electrical installation.
Equipment Areas Areas that house electronic equipment used to support NAS operations, such as electronic equipment rooms, telephone company (TELCO) rooms, Very High Frequency Omni Directional Range (VORs), and Radars.
Equipment Grounding Conductor
(EGC)
The conductive path installed to connect normally non-current-carrying metal parts of equipment together and to the system grounded conductor or to the grounding electrode conductor, or both. For FAA purposes, the EGC is to be green-insulated, solid or stranded, copper wire.
F
Ferrous Conduit Conduits composed of or containing iron, which are used to provide magnetic shielding, such as Rigid Galvanized Steel Conduit (RGS) or thick walled threaded conduit (NEC Rigid Metal Conduit-RMC).
Note: For the purpose of this standard, Electrical Metallic Tubing (EMT), Intermediate Metal Conduit (IMC), and conduits made from silicon bronze and stainless steel are not adequate for magnetic shielding protection.
Fitting, High Compression
See “Pressure Connector Terminations.”
G
Ground A conducting connection, whether intentional or accidental, between an electrical circuit or equipment and the earth, or to a conducting body that serves in place of the earth.
Ground Dissipation Plate Design
Ground plate, refer to Figure 6.
Grounded Connected to earth via a path of sufficiently low impedance and having sufficient current carrying capacity, such that fault current cannot build up voltage potentials that are hazardous to personnel.
Grounded Conductor A system or circuit conductor that is intentionally grounded at the SDM or at the source of a separately derived system. This grounded conductor is the neutral conductor for the power system.
Grounding Conductor A conductor used to connect equipment or the grounded circuit of a wiring system to a grounding electrode or electrodes.
Grounding Electrode Copper rod, plate, or wire embedded in the ground for the specific purpose of dissipating electric energy to the earth. Also referred to as the Grounding Electrode System.
Grounding Electrode Conductor (GEC)
A conductor used to connect the system grounded conductor or the equipment to a grounding electrode or to a point on the grounding electrode system.
H
High Frequency All electrical signals at frequencies greater than 100 kHz, and pulse and digital signals with rise and fall times of less than 10 μs.
High Transient Ground Plate
Entry or termination ground plate for connection of axial cable surge protection equipment and termination of cable shields, waveguides, conduits, and cable jackets. See Bulkhead Ground Plate.
Horizontal Transitions Architectural term used to describe horizontal elements in a vertical structure, such as floor levels and stair landings.
Hydraulically Crimped Termination
Conductor termination using a hydraulic crimping tool that applies a 12-ton minimum compression force, using concentrically or circumferentially matching dies to form the connection.
I
Inaccessible Location A condition where gaining access to a system or part thereof requires significant effort, cost, or risk to personnel safety. Examples of such locations include below grade, behind walls and obstructions, or enclosed or concealed spaces that impede visual inspection.
L
Landline Any conductor, line, or cable installed externally above or below grade to interconnect electronic equipment in different facility structures or to interconnect externally mounted electronic equipment.
Low Frequency Voltages and currents, whether signal, control, or power, up to and including 100 kHz. Pulse and digital signals with rise and fall times of 10 μs or greater are considered to be low-frequency signals.
M
Main Service Disconnect
A switch, fused switch, or circuit breaker that disconnects the main ac power service, generally utility power source, from a facility, located at the service disconnecting means (SDM).
O
Office of Primary Responsibility (OPR)
The authority assigned to maintain and interpret this standard.
Operational Areas Areas used to provide NAS support such as Instrument Flight Rules (IFR) rooms, Air Route Traffic Control Center (ARTCC) control rooms, ATCT tower cabs, operations control centers, and TRACON control rooms.
P
Pressure Connector Terminations
Conductor termination using a mechanically bolted pressure connection.
R
Rack A metal frame in which one or more electronic equipment units are mounted.
Rigid Metal Conduit (RMC), Rigid Galvanized Steel Conduit (RGS)
A threaded raceway of circular cross-section designed for the physical protection, routing, and shielding of conductors and cables.
S
Service Disconnecting Means (SDM)
Refer to the NEC definition for Service Point location.
Shield A housing, shield, or cover that substantially reduces the coupling of electric and magnetic fields into or out of circuits or prevents accidental contact of objects or persons with parts or components operating at hazardous voltage levels.
Signal Any electromagnetic transmission of information or control function. A signal can be analog, digital data, or a control function such as a relay closure.
Signal Reference Structure (SRS) System
The conductive terminal, wire, bus, plane, or network that serves as the relative zero potential for all associated electronic signals. Signal Reference Structures are required at locations or areas containing NAS electronic equipment.
Structure Any fixed or transportable building, shelter, tower, mast, or other load-bearing system that is intended to house electrical or electronic equipment or otherwise support or function as an integral element of the air traffic control system.
Surface Resistivity Surface Resistivity can be described as follows: For electric current flowing across a surface, the ratio of DC voltage drop per unit length to the surface current per unit width. In effect, the surface resistivity is the resistance between two opposite sides of a square and is independent of the size of the square or its dimensional units. Surface resistivity is expressed in ohms/square.
See ESD ADV1.0 Glossary of Terms.
Surge A short-term disturbance characterized by a sharp, brief discontinuity of a waveform. May be of either polarity and may be additive to, or subtractive from, the normal waveform.
Surge Protective Device (SPD)
A device intended to limit surge voltages on equipment by diverting or limiting surge current and is capable of repeating these functions as specified. SPDs are also commonly referred to as Transient Voltage Surge Suppressors (TVSS) or secondary surge arresters.
Susceptibility Level The transient level on signal, control, or data lines that causes damage, degradation, or upset to electronic circuitry connected to the line.
T
Transient See Surge.
Transient Suppressor Components, devices, or circuits designed for the purpose of attenuating, absorbing, and suppressing conducted transient and surge energy to protect facility equipment.
Z
Zone of Protection The space adjacent to a lightning protection system that has a reduced probability of receiving a direct lightning strike.
4 GENERAL REQUIREMENTS
4.1 Introduction
This chapter covers the common requirements and standard practice for the overall design, installation, construction, and evaluation of the following grounding systems in FAA facilities:
a. Bonding Requirements
b. Lightning Protection System Requirements
c. Earth Electrode System (EES) Requirements
d. National Electrical Code (NEC) Power Distribution System Grounding Compliance
e. Surge Protective Device (SPD) Requirements
f. Grounding and Bonding Requirements for NAS Electronic Equipment Areas
g. Shielding Requirements
h. Electrostatic Discharge (ESD) Requirements
4.2 Bonding Requirements
The method of bonding, for the purpose of achieving electrical continuity, shall be in accordance with 4.2.1 through 4.2.5.
4.2.1 General
This section covers the following topics:
a. Dissimilar Metals Compatibility Requirements
b. Methods of Bonding
c. Bonding Connection Installation Requirements
d. Hardware for Bonding Jumpers and Straps
4.2.1.1 [A1] Resistance of Bonds
Unless otherwise specified in this standard, bonds shall have a maximum direct current (dc) resistance of 1 mΩ when measured between the bonded components with a four-terminal milliohmmeter.
4.2.2 Dissimilar Metals
Bonding connections and associated fastener hardware for grounding system conductors shall comply with Table 1.
Table 1. Mechanical Bonds Between Dissimilar Metals
C o p p e r, s o lid o r p la te
B ra s s a n d b ro n z e
S ta in le s s S te e l
T in
-p la te tin
-l e a d s o ld e r
A lu m in u m w ro u g h t a llo y s o f th e
S e ri e s
Ir o n w ro u g h t, g ra y o r m a lle a b le p la in c a rb o n a n d lo w a llo y s te e ls
A lu m in u m w ro u g h t a llo y s o th e r th a n
S e ri e s a lu m in u m c a s t a llo y s o f th e s ili c n ty p e
A lu m in u m c a s t a llo y s o th e r th a n s ili c n ty p e p la te d a n d c h ro m a te
G a lv a n iz e d s te e l
Z in c w ro u g h t;
z in c -b a s e d ie -c a s tin g a llo y s z in c p la te d
No No No No
No No No
No No
No
No No No No
No No No No
No
Aluminum, w rought alloys of the 2000 Series
METAL
Copper, solid or plate
Brass and bronze
Stainless Steel
Tin-plate; tin-lead solder
Suitable for all indoor environment.
Suitable for all environments.
LEGEND: Four Basic Categories of Possible Metal Interfaces
Iron, w rought, gray or malleable, plain carbon and low alloy steels
Aluminum, w rought alloys other than 2000 Series aluminum, cast alloys of the silicon type
Aluminum, cast alloys other than silicon type, plated and chromate
Galvanized steel
Zinc, w rought; zinc-based die-casting alloys; zinc plated
Not suitable. This interface is highly likely to result in significant corrosion.
Suitable for indoor environments where temperature and humidity are controlled (non-condensing environment).
4.2.3 Methods of Bonding
Direct bonding techniques include:
a. Exothermic Welds. Exothermic welds are permitted for any type of bond connection specified herein.
b. Hydraulically Crimped Terminations. Crimped terminations are permitted as an alternative technique to facilitate installation of connections in permanently concealed or inaccessible locations.
c. Welded Assemblies. Metal fabrication assembly process constructed by welding the joints between the individual components.
d. Mechanical Connections. Electrical bond connections constructed with bolted assemblies.
e. Brazing and Soldering. Metal-joining process formed by brazing or soldering a filler alloy metal is not permitted for bond connections.
f. Silver Soldering - Only Applicable for NAS Electronic Equipment. To improve conductivity, silver soft soldering material may be applied for the bonding of enclosure shielding joints already secured with mechanical fasteners. Mechanical fasteners shall be attached prior to application of solder to prevent cold solder joints. Soft soldering techniques are not permitted as a method for providing mechanical restraint.
4.2.3.1 Exothermic Welds
Exothermic welded connections shall be provided for the following applications:
a. Permanent Bonding. Permanent bonding of copper conductors to metal assemblies or building steel.
b. Underground or Buried Locations.
c. Exposed Exterior Locations. Any exposed location where an exothermic weld connection is possible.
d. Permanently Concealed Locations. Locations where the connection will be permanently concealed after completion of fabrication or building construction process.
e. Inaccessible Locations. Locations rendered inaccessible due to a building feature or other physical constraint that restricts routine access necessary to perform maintenance and visual inspection.
Safety equipment, such as welding trays and welding blankets, shall be used for all exothermic welding activities. Refer to 29 CFR 1910.252 for applicable requirements related to exothermic weld implementation activities.
Exception. Where exothermic welds are not possible due to dissimilar materials, incompatible shapes, voiding of a manufactured finish warranty, or in hazardous locations, such as near fuel tanks or other combustible material, provide UL listed hydraulically crimped or mechanical connections.
4.2.3.1.1 Exothermic Welds – Installation within Existing Facilities
The following measures shall be taken in the installation of exothermic welds within existing facilities:
a. Where combustion from the use of a standard exothermic weld process would result in problems within the facility, a smokeless type exothermic weld process shall be provided.
b. After completing the welding process, to prevent corrosion, remove or neutralize residual fluxes between components.
4.2.3.2 Hydraulically Crimped Terminations
A UL 467 and UL 96 listed irreversible compression type bonding connection is permitted for use within concealed and inaccessible locations, and in areas where exothermic weld connections are deemed hazardous.
a. Bonding Conductors. Bonding conductors shall be wire size 6 AWG or larger.
b. Hydraulic Compression Tool System. Hydraulic compression tool system shall be capable of producing a 12-ton minimum force applied with a tool using matching dies.
4.2.3.3 Welded Assemblies
Individual components of a welded assembly shall not require additional bonds between components if the dc resistance between individual components is less than 1 mΩ.
4.2.3.4 Mechanical Bolted Bond Connections
Mechanical bolted bond connections shall be prepared and completed in accordance with the installation conditions and requirements provided herein.
4.2.3.4.1 [A2] Coupling of Dissimilar Metals
Compression bonding with bolts and clamps shall comply with Table 1. When dissimilar base metals form couples that are not permitted per Table 1, the metals shall be coated, plated, or otherwise protected with a conductive finish.
4.2.3.4.2 Bolted Connections
Bonding bolts shall be used primarily as mechanical fasteners to hold electrical bonding components in place. Tighten bolts sufficiently to achieve adequate contact pressures for effective bonding, but do not overtighten them to the extent that deformation of bond members occurs. To prevent loosening of the connection, provide disc springs for connections using bolts
1/4-in. diameter and greater.
a. Torque Requirements. Bolted connections 1/4-in. diameter and greater shall conform to the torque requirements in Table 2.
b. Bolts, Nuts and Washers. Bolted connections in corrosive, damp, or wet locations, 1/4-
in. diameter and greater, shall utilize stainless steel type 18-8 bolts, nuts, and load distribution washers. All other locations shall use corrosion-inhibited SAE Standard
J429 Grade 5 nuts and bolts. Load distribution washers shall comply with ANSI
B18.22.1 for stainless steel washers, Wide Series, Type B.
c. Assembly. Bolted connections 1/4-in. diameter and greater shall be assembled in the order shown in Figure 1. Additional load distribution washers, if used, shall be positioned directly beneath the bolt head. Disc springs shall be between the nut and the load distribution washer. Washers shall not be placed between bonded members. Load distribution washers shall be Wide Series, Type B.
d. Termination Lugs. Provide 2-hole termination lugs for connections to ground plates.
Provide 2-hole termination lug connections to equipment metal members for conductors size 6 AWG and larger. If the equipment metal members do not allow modification for installation of 2-hole lug terminations, then 1-hole termination lugs are permitted.
4.2.3.4.2.1 Sheet Metal Screws
Sheet metal screws shall not be used to provide an electrical bond.
4.2.3.4.2.2 Self-drilling and Self-tapping Screw Fasteners
Self-drilling and self-tapping metal screws are permitted to make a physical connection between metal back panels within equipment cabinet/enclosures when access to the opposite side of the bond is not available using other bonding methods.
4.2.3.4.3 Riveting
Rivets shall be employed solely as mechanical fasteners to hold multiple smooth, clean metal surfaces together or to provide a mechanical load-bearing capability to a soldered bond.
Table 2. Connection Torque Requirements for Bolted Bonds
Bolt Specification for Stainless Steel 301 Type SS 18-8
Bolt diam.
(in.)
Threads per inch
Torque
(ft-lbs)
SS 18-8
Bolt
Clamp Load
(lbs.)
Flat Load
(lbs.)
Washers
Required
(see note 2)
Solon
Part Number
(see note 1)
1/4 20 6 1,510 600 3 4-L-42-301
5/16 18 11 2,120 1,000 3 5-L-52-301
3/8 16 19 3,150 2,100 2 6-M-80-301
7/16 14 31 4,300 N/A N/A N/A
1/2 13 43 5,170 3,300 2 8-L-90-301
9/16 12 56 6,070 2,800 3 9-L-89-301
5/8 11 92 8,880 5,500 2 10-20-125-301
3/4 10 127 10,200 13,800 1 12-EH-168-177
7/8 9 194 13,310 14,400 1 14-H-168-177
1 8 286 17,200 14,200 2 16-H-187-177
Bolt Specification for SAE J429 Type Grade 5
Bolt diam.
(in.)
Threads per inch
Torque
(ft-lbs)
Grade 5
Bolt
Clamp Load
(lbs.)
Flat Load
(lbs.)
Washers
Required
(see note 2)
Rolex-Fastenal
Part Number
(see note 1)
1/4 20 10 2,500 1,390 2 0124030
5/16 18 21 4,000 5,345 1 0124033
3/8 16 34 5,500 8,000 1 0124035
7/16 14 55 7,500 N/A N/A N/A
1/2 13 83 10,000 9,900 2 0124037
9/16 12 117 12,500 12,000 2 0124039
5/8 11 167 16,000 13,000 2 0124041
3/4 10 288 23,000 31,000 1 0124043
7/8 9 452 31,000 40,276 1 0124044
1 8 567 40,000 46,000 1 0124046
Notes:
1. Other manufacturers of disc spring washers of equal or better performance are permissible. Use bolt assembly manufacturer’s recommended torque values.
2. The sum of the individual disc washer flat load ratings shall exceed the listed bolt clamp load.
The number of washers required is calculated by the following formula:
B Bolt Clamp Load < W Number of Washers x F Washer Flat Load
For example, a 1/4-in. stainless steel bolted connection requires minimum 1,510 lbs clamp load, therefore, 3 disc washers will be needed.
Notes:
1. Remove all paint on the entire bonding area of the metal member.
2. Stack disc spring washers to obtain required amount per Table 2.
3. Provide 2-hole termination lugs for connections to ground plates.
Figure 1. Order of Assembly for Bolted Connections
4.2.4 Bonding Connections – Installation Requirements
Bonding connections shall be prepared and completed in accordance with the installation conditions and requirements provided herein.
4.2.4.1 Surface Preparation
Bonding surfaces shall be cleaned thoroughly and free of dirt, dust, grease, oxides, nonconductive films, and foreign material. Paint and other coatings at the location shall be removed to expose the base metal.
a. Surface Area To Be Cleaned. Clean mating surfaces at least 1/4-in. beyond each side of the smaller bonded area.
b. Clad Metals. Clean clad metal to a bright, shiny, smooth surface without penetrating the cladding. Wipe the cleaned area with solvent and allow the surface to air dry before completing the bond.
c. Aluminum Alloys. To create a bright finish after cleaning, apply a conductive coating with paint or resin finish to aluminum mating surfaces.
4.2.4.2 Completion of Bonding Connection
Clean surfaces…
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