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BY ORDER OF THE

SECRETARY OF THE AIR FORCE

AIR FORCE INSTRUCTION 32-1065

1 OCTOBER 1998

Civil Engineering

GROUNDING SYSTEMS

OPR: HQ AFCESA/CESE

(Col H. Dean Bartel)

Certified by: HQ AFCESA/CC (Mr Larry W. Strother)

Supersedes AFI 32-1065, 29 April 1994. Pages: 36 Distribution: F

This instruction implements AFPD 32-10, Installations and Facilities. It assigns maintenance responsi-bilities and requirements for electrical grounding systems on Air Force installations. This includes sys-tems for equipment grounding, lightning protection, and static protection. This instruction also implements the maintenance requirements of DoD 6055.9-STD, Ammunition Explosives Safety Stan-dards, Chapter 7, Lightning Protection, August 1997, for potentially hazardous explosives facilities.

Send all recommendations for changes or improvements to this instruction on AF Form 847, Recommen-dation for Change of Publication, through the major commands (MAJCOM) and HQ AFCESA/CESE, 139 Barnes Drive, Suite 1, Tyndall AFB FL 32403-5319 to HQ USAF/ILEO, 1260 Air Force Pentagon, Washington DC 20330-1260. See Attachment 1 for glossary of references and supporting information used in this instruction.

SUMMARY OF REVISIONS

This document is substantially revised and must be completely reviewed.

This revision incorporates the latest changes to DoD 6055.9-STD.

Section A Maintenance Policy 2

1. Responsibilities

Table 1. Scheduled Maintenance for Grounding Systems

2. Codes and Specifications

3. Required Maintenance

4. Recordkeeping and Review

5. Forms

NOTICE: This publication is available digitally on the SAF/AAD WWW site at: http://afpubs.hq.af.mil.

If you lack access, contact your Publishing Distribution Office (PDO).

COMPLIANCE WITH THIS PUBLICATION IS MANDATORY

2 AFI32-1065 1 OCTOBER 1998

6. Personnel Qualifications

7. Developing Procedures

Section B Grounding Resistance and Continuity Tests and Visual Inspections 7

8. Testing Requirements

9. Visual Inspections of Lightning Protection Systems

10. Visual Inspection of Facility Grounds

Section C Grounding and Lightning Protection Requirements 8

11. Introduction

12. Testing and Inspecting Static and Lightning Protection Systems and

Figure 1. Example Sketch of Test Points (Typical)

13. Static Protection

14. Lightning Protection Systems

15. Surge Protection

Attachment 1—GLOSSARY OF REFERENCES AND SUPPORTING INFORMATION 13

Attachment 2— BASIC REQUIREMENTS FOR GROUNDING SYSTEMS 17

Attachment 3— BASIC BONDING REQUIREMENTS 21

Attachment 4— LIGHTNING PROTECTION SYSTEMS 29

Attachment 5— MAINTENANCE GUIDELINES FOR EXPLOSIVES FACILITIES 31

Attachment 6—TESTING REQUIREMENTS 32

Section A—Maintenance Policy

1. Responsibilities.

1.1. The Base Civil Engineers (BCE):

1.1.1. Maintain lightning and grounding systems specifically identified in Table 1. according to the procedures in this instruction.

1.1.2. Make sure that user organizations identified in Table 1. are aware of their maintenance responsibilities.

AFI32-1065 1 OCTOBER 1998 3

1.1.3. Train users to perform their responsibilities to inspect and maintain lightning and ground-ing systems as identified in Table 1. when requested.

Table 1. Scheduled Maintenance for Grounding Systems.

FACILITY ACTION REQUIRED FREQUENCY

RESPONSI-

BILITY REFERENCE

1. Exterior Electri-cal Distribution

Visual inspection of equipment fencing, pole grounds, and neutrals

2 years Base Civil Engineer

AFJMAN

32-1082

2. Electrical Sub-station

Resistance check (5 ohms max)

5 years Base Civil Engineer

This AFI

3. Exterior Light-ning Arresters

Visual Annually Base Civil Engineer

AFJMAN

32-1082

4. General a. Visual inspection and resistance check of facility grounds (25 ohm max for single electrode system)

5 years Base Civil Engineer

This AFI, NFPA 70

b. Visual inspection of lightning protection system

1-3 years Base Civil Engineer

This AFI

5. POL Facilities a. Resistance check on static grounds (10,000 ohms max)

When installed or physically damaged

Base Civil Engineer

AFM 85-16

b. Visual inspection and check tightness on ground conductors

Quarterly Base Civil Engineer

AFM 85-16

6. Aircraft Parking Apron Grounds and Hangar Floor Static Grounds

Resistance check on static grounds (10,000 ohms max)

When installed or physically damaged

Base Civil Engineer

AFM 88-9,

Chapter 3

7. LOX Storage Resistance check on static ground (10,000 ohms max)

When installed or physically damaged

Base Civil Engineer

This AFI

8. Rail Car Off-loading Spur

Visual inspection of rail bonding

Quarterly Base Civil Engineer

AFM 85-16

9. Communi-ca-tion Facilities (Including TEM-

PEST)

Resistance check (10 ohms max is design objective)

Quarterly for first year after installation;

then every 21 months

Base Civil Engineer

AFI 32-1063;

MIL-HD-

BK-419A

4 AFI32-1065 1 OCTOBER 1998

10. Communi-ca-tion Facilities

Checks involving in-house electronic equipment ground

Determined by user

User AFI 32-1063

11. Hazardous* Explosive Area (Weapons)

a. Visual inspection of static wires and bonds

Before using equipment each day

User AFMAN 91-201

b. Continuity check from equipment to stat-ic ground bar (1 ohm max)

3 months or ac-cording to spe-cific item T.O.

User AFMAN 91-201;

this AFI

c. Conductive floor grounding check (spe-cific ohmic re-quire-ments contained in AFMAN 91-201)

6 months Base Civil Engineer

AFMAN

91-201;

this AFI

d. See non-hazardous explosives require-ments 12c, 12d, 12e, and 12f.

Base Civil Engineer

AFMAN

91-201;

this AFI

12. Non-Hazard-ous* Explosive Area (Weapons)

a. Visual inspection of static wire bonds

Quarterly User AFMAN 91-201;

this AFI

b. Continuity check on static bond from equip-ment to static ground

24 months User AFMAN 91-201

c. Visual inspection of lightning protection

12 months Base Civil Engineer

AFMAN

91-201;

this AFI

d. Resistance check on lightning protection earth ground system (25 ohms max except Ground Loop System)

24 months Base Civil Engineer

AFMAN

91-201;

this AFI

e. Continuity check on air terminals, bonds, and conductors (1 ohm)

24 months Base Civil Engineer

AFMAN

91-201; this

AFI

f. Static bus bar conti-nuity to ground (1 ohm)

24 months Base Civil Engineer

AFMAN

91-201; this

AFI

FACILITY ACTION REQUIRED FREQUENCY

RESPONSI-

BILITY REFERENCE

AFI32-1065 1 OCTOBER 1998 5

13. Protective Air-craft Shelter

(PAS)***

a. Ground system resis-tance check

24 months Base Civil Engineer

This AFI with Weapon Stor-age and Security System (WS3) Vault

b. Visual inspection of system

6 months Base Civil Engineer

This AFI

c. Continuity between arch and ground

24 months Base Civil Engineer

This AFI

d. Test door hinges (1 ohm max)

24 months Base Civil Engineer

This AFI

e. Continuity between vault lip (flange) and ground (conduit)

24 months Base Civil Engineer

This AFI

f. Continuity of in-stalled (permanent) bonds between metal masses and steel arch

24 months Base Civil Engineer

This AFI

14. Fuels Lab a. Visual and continuity check of ground wires

Monthly User AFOSH STD 91-38

b. Visual inspection of facility grounds

Monthly User AFOSH STD 91-38

15. Medical** Fa-cilities

a. Resistance check (25 ohms max)

Every 5 years Base Civil Engineer

NFPA 99

b. Effectiveness of grounding system by voltage and impedance measurements

Before ac-cept-ance of new or after modifica-tion

Base Civil Engineer

AFI 41-203;

NFPA 99

c. Verification of conti-nuity of receptacle grounding circuits

Annual (semi-annual for critical care ar-eas)

Base Civil Engineer

AFI 41-203

16. Airfield Light-ing Grounds

Resistance check (25 ohms max)

2 years Base Civil Engineer

This AFI

17. EMP Hardened Facilities

(These facilities may have special require-ments)

Base Civil Engineer;

user

DNA-A-86-60,

Vol 1-3; this

AFI

18. PMEL Continuity and re-sist-ance test of facility ground (25 ohms max)

2 years Base Civil Engineer

This AFI

FACILITY ACTION REQUIRED FREQUENCY

RESPONSI-

BILITY REFERENCE

6 AFI32-1065 1 OCTOBER 1998

s differ ditions, the for-

For y of the

* As defined in NEC Article 500

** Base Civil Engineers will perform if separate medical facility maintenance branch does not exist.

*** Also known as Hardened Aircraft Shelter (HAS)

1.1.4. Review the lightning protection system on each facility at least annually or after repair actions have been completed.

1.2. Users. Users will maintain lightning and electrical grounding systems as identified in Table 1.

2. Codes and Specifications. Follow applicable codes and specifications in Attachment 1 unless mod-ified in this instruction, or deviations are justified due to local conditions.

3. Required Maintenance. Perform required maintenance at the frequencies specified in Table 1.

When possible, plan for and schedule maintenance when facility users will be least affected.

4. Recordkeeping and Review.

4.1. Inspectors and testers must compile and maintain records of their inspections and tests to include:

4.1.1. A sketch of the grounding and lightning protection system showing test points, and where services enter the facility. Sketch should also show the location of the probes during the ground resistance test. (Separate sketches are suggested for static, earth ground, and lightning protection systems on large complex facilities.)

4.1.2. Date action was performed.

4.1.3. Inspector's or tester’s name.

4.1.4. General condition of air terminals, conductors, and other components.

4.1.5. General condition of corrosion protection measures.

4.1.6. Security of attachment for conductors and components.

4.1.7. Resistance measurements of the various parts of the ground terminal system.

4.1.8. Variations from the requirements of this instruction.

4.1.9. Discrepancies noted and corrective actions taken.

4.1.10. Date of repairs.

4.2. Review records for deficiencies; also analyze the data for undesirable trends. If test value substantially from previous or original tests obtained under the same test procedure and con determine the reason and make necessary repairs.

4.3. Keep test and inspection records for a minimum of six inspection cycles.

5. Forms. Suggest the use of Air Force general purpose forms (3100 series) to record tests. Use mat listed in MIL-HDBK-419A, Grounding, Bonding, and Shielding for Electronic Equipments and Facilities for communications facilities. Provide copies of completed forms to the facility user.

munitions facilities maintained by host nation civil engineers, the using agency must receive a cop completed forms.

AFI32-1065 1 OCTOBER 1998 7

6. Personnel Qualifications. Workers maintaining, repairing, modifying, and testing grounding systems must be thoroughly familiar with test equipment operation; lightning protection, grounding, and bonding theory and practices; referenced codes and standards; and specific requirements and procedures in this instruction. Attachments 2 through 5 provide information suitable for use in training and familiarization.

7. Developing Procedures. The organization performing inspections and tests must develop procedures based on the requirements in this instruction.

Section B—Grounding Resistance and Continuity Tests and Visual Inspections

8. Testing Requirements. See Attachment 6 for resistance and continuity test requirements for typical systems. Instruments must be able to measure 10 ohms +10 percent for ground resistance tests, and 1 ohm +10 percent for continuity testing. Only instruments designed specifically for earth-ground systems are acceptable for ground resistance testing. Follow the manufacturer’s instruction manual except as modi-fied herein when using the instruments. Earth ground resistance should be less than 25 ohms unless spec-ified different in this document. Periodic tests should be made at approximately the same time each year to minimize confusion resulting from seasonal changes (see Attachment 2). If the resistance measured during continuity tests is greater than 1 ohm, check for deficiencies and repair, then retest. When per-forming a continuity test over very long lengths of conductors (more than 20m with no parallel paths), readings above one ohm but less than 3 ohms may occur. This is acceptable. The MAJCOM electrical engineer may modify the test procedures due to local conditions, as long as the intent of the test is still achieved.

9. Visual Inspections of Lightning Protection Systems. Inspect all visible parts of the system. Pulling or tugging on conductors and connections to insure soundness is a necessary part of these inspections, but be careful not to damage the system in the process. Visual/physical inspection must determine if:

9.1. The system is in good repair.

9.2. There are loose connections that might cause high resistance joints.

9.3. Corrosion or vibration has weakened any part of the system.

9.4. Down conductors, roof conductors, and ground terminals are intact.

9.5. Braided bonding wires are excessively frayed (cross sectional area reduced by half).

9.6. Ground wires on lightning protection masts are damaged by lawn mowers or other equipment.

9.7. Conductors and system components are securely fastened to mounting surfaces. Relocate con-nections as necessary to better protect against accidental displacement.

9.8. Additions or alterations to the protected structure require additional protection.

9.9. Surge suppression (overvoltage) devices appear damaged.

9.10. The system complies with applicable sections of NFPA 780, Standard for the Installation of Lightning Protection Systems (Attachment 4).

10. Visual Inspection of Facility Grounds. Unless otherwise specified by references in Table 1., con-duct visual inspections as follows. Inspect all visible and accessible parts of the system. Determine if

8 AFI32-1065 1 OCTOBER 1998

they are in good condition and the installation meets NEC requirements (Attachment 2). Typical items to check:

10.1. The system is in good repair.

10.2. There are no loose connections.

10.3. The system neutral is grounded at the service entrance (this includes the connection to the grounding electrode).

10.4. Separately derived systems are properly grounded.

10.5. Flashover protection is installed on insulating fittings on underground metallic pipelines enter-ing the facility.

10.6. Grounding systems within the facility are bonded together at ground level or below.

Section C— Grounding and Lightning Protection Requirements

11. Introduction. This section covers requirements for grounding and lightning protection systems, including systems installed on or in areas such as explosives buildings, magazines, operating locations and shelters. Use these requirements when inspecting to determine compliance and when repairing or modifying systems. See AFMAN 91-201, Explosive Safety Standards.

12. Testing and Inspecting Static and Lightning Protection Systems and Grounding:

12.1. Procedures. Use Attachment 4 and Attachment 5 as a guide for establishing proper mainte-nance procedures and a check during self inspections.

12.2. Inspection and Testing. Inspect the static and lightning protection systems and grounding for buildings and facilities visually and electrically according to Sections A, Maintenance Policy and B, Grounding Resistance and Continuity Tests and Visual Inspections, and the special requirements in this section.

12.3. Records. Keep records of test and inspections for explosives facilities for a minimum of six inspection cycles (see paragraph 4.). Figure 1. is an example sketch of a grounding and lightning pro-tection system with test points.

AFI32-1065 1 OCTOBER 1998 9

Figure 1. Example Sketch of Test Points (Typical).

13. Static Protection.

13.1. Equipment Grounding. The best methods to eliminate or reduce the hazard from static electric-ity are bonding and grounding. Bonding minimizes potential differences between conductive objects.

10 AFI32-1065 1 OCTOBER 1998

Grounding minimizes potential differences between objects and the ground. Inspect and test facilities for compliance with NFPA 77, Static Electricity, which contains the minimum acceptable static grounding and bonding requirements for Air Force activities, except as modified herein.

13.1.1. Bonding and grounding wires must be large enough to withstand mechanical damage.

Minimum size for existing bonds is AWG No. 8. Make repairs with wires no smaller than AWG No. 6 copper. Static grounds for portable or movable equipment must use braided cable for added flexibility.

13.1.2. Static grounds must be 10,000 ohms or less, unless otherwise stated. Static electricity cre-ates extremely small (milliamps) currents, so even this large resistance is small enough to bleed off static charges. But because the static grounding system must be connected to the facility grounding system, resistances of less than 25 ohms are common.

13.2. Static Bus Bars. Static bus bars are usually 2- by 1/4-inch copper bars installed on the interior wall of the facility. Bond static bus bars directly to each lightning protection down conductor where it crosses the down conductor if separation between the two is within NFPA 780 bonding distance and the bus or down conductor cannot be relocated. They must also be connected directly to the facility grounding electrode system. See Attachment 6 for testing requirements. Use static bus bars only for static grounding. Do not connect telephone grounds, electrical conduit or intrusion systems to this bus. Static bus bars must not be used as a grounding medium for these systems. As a general rule, do not connect a static bus to any facility metal body or use this bus to ground structural components of a facility; however, coincidental connections of the bus bar through its anchoring/mounting system are acceptable as is the mounting of the static bars on the skin of a metal structure. Portable grounding straps from equipment to the static grounding bus are not real property. Visual inspections and conti-nuity checks for these straps are the responsibility of the user.

13.3. Belting Requirements. On equipment such as belt-driven compressors and conveyor belts, if static electricity is a hazard, use non-static-producing belting. Belting must have a resistance not exceeding 1,000,000 ohms when measured according to IEEE STD 142, chapter 3.

13.4. Conductive Floor Grounds. If the facility requires conductive floors, the resistance of the floor must be less than 1,000,000 ohms. Additionally, the resistance between the floor and ground connec-tions must not be less than 25,000 ohms. This requirement protects personnel from electric shock haz-ard and allows bleed off of static buildup in people and operating equipment. See Attachment 6 for testing requirements. The testing and using agency must keep a record of test results.

14. Lightning Protection Systems. AFMAN 91-201 identifies explosives facilities that require light-ning protection systems. Many other structures housing critical or sensitive supplies or equipment also require protection. The following requirements may be used as a guide for facilities that require lightning protection.

14.1. General. Systems must comply with NFPA 780 and AFM 88-9, Chapter 3, Electrical Design Lightning and Static Electricity Protection (except as modified herein). Early streamer emission sys-tems or charge dissipation systems are not permitted. Parts and materials must carry the Underwriters Laboratories (UL) label or equivalent. Otherwise, such components must be approved by the MAJ- COM electrical engineer in charge of lightning protection. Facilities in foreign countries may use host nation codes and standards if they offer equivalent protection, as determined by the MAJCOM electri-cal engineer with concurrence from HQ AFCESA/CESE and approval of the DoD Explosive Safety

AFI32-1065 1 OCTOBER 1998 11

Board (DDESB). Otherwise, the Status of Forces Agreement (SOFA) must permit their use. Where the SOFA requires compliance with host nation codes, translate those required codes into English, make them available to all appropriate personnel, and perform necessary training. Maintain all installed systems according to this instruction. If not required, remove the system with coordination through the using agency.

14.2. Bonding Requirements. Adequate bonding is more important than grounding. Bonding ensures all metallic objects are at equal potentials, preventing dangerous flashovers. Inspect and test facilities for compliance with NFPA 780 and Attachment 3 of this instruction.

14.3. Grounding Resistance. Low resistance is desirable but not essential for lightning protection.

For most facilities, resistance to ground should be less than 25 ohms. If this cannot be achieved where only ground rods are used (no ground loop conductor), install a ground loop conductor. The resis-tance to ground of a ground loop system is acceptable even if greater than 25 ohms. See Attachment 2.

14.4. Lightning Protection For Explosives Facilities. Use the basic practices in Attachment 4, with the following additions:

14.4.1. The system must be designed for a 30.5-meter (100-foot) striking distance.

14.4.2. Installation of ground wells (hand holes) at corner ground rods is recommended to aid access for testing.

14.4.3. Replace existing bolted connectors on down conductors and roof conductors needing repair with high compression or exothermic-weld type connectors. Connections to air terminals are an exception, but they must be tight and in good repair. Bolted connections to aluminum bod-ies (such as vents) and to metal bodies for the purpose of bonding are also acceptable. Brazing to metal bodies is allowed but not recommended due to the possibility of a cold weld with inadequate strength.

14.4.4. Structural elements of a facility may serve as air terminals, down conductors, or the earth electrode.

14.5. Explosives Facilities with Large Perimeters. New explosives facilities (including igloos) with a perimeter over 91.4 meters (300 feet) that require lightning protection and do not use the structural steel as the air terminals must use either a mast system or an overhead wire system. See Attachment 4 for requirements. Since these systems provide better protection, and maintenance is easier, consider using this type of protection for other kinds of facilities. The MAJCOM may waive this requirement (overhead or mast system).

14.6. Protective Aircraft Shelters (PAS) (also known as Hardened Aircraft Shelter (HAS)). PASs with interior steel arches or interconnected rebar (i.e., floor rebar that is connected to wall rebar) and grounded ventilators of metal at least 4.78 millimeters (0.188 inch) thick do not need air terminals.

Metal ventilators less than 4.78 millimeters (0.188 inch) thick must be protected by an air terminal.

All metal bodies in the PAS must be properly bonded and grounded. See Attachment 3. An adequate grounding system is also required.

15. Surge Protection.

15.1. Entering or exiting metallic power, intrusion detection, communication antenna, and instrumen-tation lines must have surge protection sized for lightning surges to reduce transient voltages to a

12 AFI32-1065 1 OCTOBER 1998

harmless level. Install the surge protection as soon as practical where the conductor enters the interior of the facility. Devices commonly used for this include metal oxide varistors, gas tube arresters, and transzorbs. The lines must enter the facility in shielded cables or metallic conduits run underground for at least 15.24 meters (50 feet) from the facility. The antenna leads from antennae on the facility and within the zone of protection do not have to go underground.

15.2. Steam, water, and air conditioning lines must be bonded to the facility’s lightning protection system before entering the structure. For explosive facilities, all metallic utility lines must run under-ground for at least 15.24 meters (50 feet) from the facility.

WILLIAM P. HALLIN, Lt General, USAF DCS/Installations & Logistics

AFI32-1065 1 OCTOBER 1998 13

Attachment 1

GLOSSARY OF REFERENCES AND SUPPORTING INFORMATION

References

DoD Publications

DoD 6055.9-STD, Ammunition Explosives Safety Standards

MIL-HDBK-419A, Grounding, Bonding, and Shielding for Electronic Equipments and Facilities

Federal Information Processing Standards (FIP) Pub 94, Guidelines on Electrical Power for ADP Instal-lations. (Available from National Technical Information Center, US Department of Commerce, Spring-field VA 22161.)

Air Force Publications

AFI 32-1063, Electrical Power Systems

AFI 41-203, Electrical Safety in Medical Treatment Facilities

AFMAN 91-201, Explosive Safety Standards

AFJMAN 32-1082, Facilities Engineering, Electrical Exterior Facilities

AFM 85-16, Maintenance of Petroleum Systems

AFM 88-9, Chapter 3, Electrical Design Lightning and Static Electricity Protection

AFOSH STD 91-38, Hydrocarbon Fuels

Other

ANSI C2, National Electrical Safety Code (IEEE). (Copies available from The Institute of Electrical and Electronics Engineers, 345 East 47th Street, New York NY 10017.)

DNA-A-86-60, V1-3, DNA EMP Engineering Handbook for Ground-Based Facilities

*IEEE STD 142, IEEE Recommended Practice for Grounding for Industrial and Commercial Power Sys-tems (Green Book)

*IEEE STD 446, Recommended Practice for Emergency and Standby Power (Orange Book)

**NFPA 70, The National Electrical Code

**NFPA 77, Static Electricity

**NFPA 99, Standard Health Care Facilities

**NFPA 780, Standard for the Installation of Lightning Protection Systems

Additional References

*IEEE STD 81, IEEE Guide for Measuring Earth Resistivity, Ground Impedance, and Earth Surface Potentials of a ground System

*IEEE STD 1100, IEEE Recommended Practice for Powering and Grounding Sensitive Electronic Equipment (Emerald Book)

14 AFI32-1065 1 OCTOBER 1998

*Available from The Institute of Electrical and Electronic Engineers, 345 East 47th Street, New York NY 10017.

**Available from National Fire Protection Association, 1 Batterymarch Park, Quincy MA 02269-9990.

Abbreviations and Acronyms

ANG—Air National Guard

ANSI—American National Standards Institute

AWG—American wire gauge

BBF—basic bonding formula

DDESB—Department of Defense Explosive Safety Board

DoD STD—Department of Defense Standard

EMP—electromagnetic pulse

FIPS—Federal Information Processing Standard

IEEE— Institute of Electrical and Electronics Engineers

IG— isolated ground

LOX— liquid oxygen

MAJCOM— major command

MIL HDBK— Military Handbook

MOV— metal oxide varistor

NBN—no bonding needed

NEC—National Electrical Code

NFPA—National Fire Protection Association

PAS—Protective Aircraft Shelter (also known as Hardened Aircraft Shelter (HAS))

POL—petroleum, oils, lubricants

PMEL— Precision Measurement Equipment Laboratory

SDS—separately derived system

SOFA—Status of Forces Agreement

T.O.—Technical Order

WS3—Weapon Storage and Security System

Terms

Air Terminal— The component of the lightning protection system intended to intercept lightning flashes, placed on or above a building, structure, or tower. A building’s grounded structural elements may be used as an air terminal. Sometimes air terminals are referred to as lightning rods.

AFI32-1065 1 OCTOBER 1998 15

Bonding—An electrical connection between an electrically conductive object and a component of a lightning protection system that is intended to significantly reduce potential differences created by lightning currents.

Conductor, Bonding—A conductor used for equalization potential between metal bodies and the lightning protection subsystem.

Catenary System—A lightning protection system consisting of one or more overhead wires. Each overhead wire forms a catenary between masts, and serves the function of both a strike termination device and a main conductor.

Conductor, Main—A conductor intended to carry lightning currents from the point of interception to ground terminals.

Copper Clad Steel—Steel with a coating of copper bonded on it.

Down Conductor, Lightning—The conductor connecting the roof conductors or overhead ground wire to the earth ground subsystem.

Ground Loop—A conductor, buried 3 to 8 feet from a structure, encircling the structure interconnecting ground electrodes. The conductor may be connected to buried copper or steel plates or ground rods.

These are installed to establish a low resistance contact with earth. (Also referred to as counterpoise, loop conductor, or closed loop systems.)

Facility Ground System—The electrically interconnected system of conductors and conductive elements that provides multiple current paths to earth. The facility ground system can include the earth electrode subsystem, lightning protection subsystem, signal reference protection subsystem, fault protection subsystem, static ground subsystem, as well as the building structure, equipment racks, cabinets, conduit, junction boxes, raceways, duct work, pipes, and other normally non-current-carrying metal elements.

Ground—The electrical connection to earth primarily through an earth electrode subsystem. This connection is extended throughout the facility by the facility ground system.

Ground Terminal— The portion of a lightning protection system such as a ground rod, ground plate, or ground conductor that is installed for the purpose of providing electrical contact with the earth.

Inherent Bond—Where metal bodies located in a steel-framed structure are electrically bonded to the structure through the construction.

Integral System—A system which uses air terminals mounted directly on the structure to be protected.

Lightning Protection System—A complete system consisting of components (such as air terminals, interconnecting conductors, ground terminals, surge suppression devices, and other connectors or fittings) and subsystems required to assure a lightning discharge will be safely conducted to earth.

Mast System—A lightning protection system using masts that are remote from the structure to provide the primary protection from a lightning strike.

Overhead Wire System—System using conductors routed over the facility, at a specified height, designed to provide the required zone of protection. Also known as overhead shield wire system and catenary system.

Side Flash—Electrical arcing between metal objects caused by difference of potential from a lightning discharge.

16 AFI32-1065 1 OCTOBER 1998

Strike Termination Device—A component of a lightning protection system intended to intercept lightning flashes and connect these flashes to a path to ground. Strike termination devices include air terminals, masts, permanent parts of structures, and overhead wires in catenary systems.

TEMPEST—Unclassified name for investigation/study of compromising emanation.

Zone of Protection—Space below and adjacent to a lightning protection subsystem that is likely to avoid direct lightning discharges.

AFI32-1065 1 OCTOBER 1998 17

Attachment 2

BASIC REQUIREMENTS FOR GROUNDING SYSTEMS

A2.1. Types of Grounds. There are five basic types of grounding systems which must be inspected if present in a facility: static grounds, equipment grounds, electrical system grounds, lightning grounds, and signal reference grounds.

A2.1.1. Static Grounds. A static ground is a connection between a piece of equipment and earth to drain off static electricity charges before they reach a sparking potential. Typically, static grounding involves connecting large metal objects such as fuel tanks or aircraft to earth through a ground rod.

Static grounds are not part of an electrical power system. But if an equipment grounding conductor is adequate for power circuits, it is also adequate for static grounding.

A2.1.2. Equipment Grounds. Equipment grounding involves interconnecting and connecting to earth all non-current-carrying metal parts of an electrical wiring system and equipment connected to the system. The purpose of grounding equipment is to ensure personnel safety by reducing any charge in an equipment item to near zero volts with respect to ground. Equipment ground must be capable of carrying the maximum ground fault current possible without causing a fire or explosive hazard, until the circuit protective device clears the fault. An example is the bare copper wire or green insulated conductor connected to the frames of electric motors, breaker panels, and outlet boxes. The equip-ment ground is connected to an electrical system ground (neutral) only at the electrical service entrance of a building and should not exceed 25 ohms to ground.

A2.1.3. Electrical System Ground. The purpose of electrical system grounds is to stabilize voltage to ground and give a low impedance path for fault currents. One wire or point of an electrical circuit in an electrical system ground is connected to earth. This connection is usually at the electrical neutral (though not always), and is called the "system ground." Examples of electrical system grounds are generator or transformer neutral points connected to earth, and the grounded neutral of an interior wir-ing system. The resistance of most electrical system grounds below 600 Vac should not be more than 25 ohms. Medium voltage systems (1-15kV) frequently are grounded through a resistor (or reactor) and may exceed 25 ohms. This limits ground fault current to a manageable level.

A2.1.4. Lightning Grounds. The purpose of lightning grounds is to safely dissipate lightning strokes into the earth. They are part of a lightning protection system which usually includes air terminals (lightning rods), down conductors, arresters, and other connectors or fittings required for a complete system. The sole purpose of a lightning protection system for a facility is to protect the building, its occupants, and contents from the thermal, mechanical and electrical effects of lightning.

A2.1.5. Signal Reference Grounds. The purpose of a signal reference ground is to provide a low impedance signal reference system for electronic equipment to minimize noise-induced voltages and thereby reduce equipment malfunctions. Common configurations include planes and grids. See FIPS Pub 94, Guidelines on Electrical Power for ADP Installations, for details.

A2.1.6. Subsystem Grounds. Each of the grounding systems described above may be a subsystem of a total facility grounding system. All grounds (and subsystems) must be bonded together according to NFPA 780 and NFPA 70, The National Electrical Code. MIL-HDBK-419A contains example sketches of grounding subsystem interconnections.

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A2.2. NEC Grounding Requirements. Electrical systems and circuit conductors are grounded to limit voltages during lightning and to facilitate overcurrent device operation in case of a ground fault. The NEC allows the system neutral to be grounded and limits the location of this neutral to earth connection to the source side of the service entrance disconnect or at a separately derived system (NEC, articles 250-23 and 250-26). Since the neutral will carry current under normal operating conditions, the NEC often refers to it as the grounded conductor. If a building service is at less than 1000 volts, a neutral con-ductor (if required by NEC, article 250-5) must be run to each service entrance from the servicing trans-former and bonded to the disconnecting panel enclosure. In contrast to the neutral, the equipment ground conductor (green insulated or bare wire) is referred to as the grounding conductor. The grounding con-ductor is used to ground metallic enclosures and motor frames, and must be connected to neutral only on the source side of the service entrance disconnect.

A2.2.1. Facility Ground. The NEC requires a premises wiring system to have a grounding electrode at each service. This electrode may be of several different types or systems. Each of the types listed below must be bonded together to form the grounding electrode system. Where none of the listed electrodes are present, ground rods or ground plates must be used. Ground rods must be at least 2.44 meters (8 feet) in length (10 feet for lightning protection; see Attachment 4) and no closer than 1.83 meters (6 feet) from other rods or plates. Ground rods or plates must not be aluminum. The Air Force also prohibits stainless steel ground rods.

A2.2.1.1. Where a metal underground water pipe (uncoated) is in direct contact with the earth for

3.05 meters (10 feet) or more, do not bond around insulation flanges installed for cathodic protec-tion. If the underground water pipe is the only electrode available, ground rods must supplement it.

A2.2.1.2. The metal frame of a building where the building is effectively grounded.

A2.2.1.3. An electrode encased by at least 51 millimeters (2 inches) of concrete, made of at least

6.1 meters (20 feet) of one or more steel reinforcing bars, located within and near the bottom of a concrete foundation or footing in direct contact with the earth. This is known as a Ufer ground.

A2.2.1.4. A ground ring encircling the building at least 0.76 meters (2.5 feet) deep. The ground ring must be at least 6.1 meters long and use at least AWG No. 2 copper (1/0 copper for lightning protection ground ring conductor; see Attachment 4).

A2.2.2. Separately Derived Systems (SDS). A separately derived system is a premises wiring system where power is derived from a generator, transformer, or converter. An SDS has no direct electrical (metallic) connection, including the neutral, to the supply conductors originating in another system.

The neutral of an SDS must be connected to a nearby grounding electrode. In order of preference, this grounding electrode may be building steel, grounded water pipe, or a separate ground rod. The equip-ment grounding conductor (green wire) is bonded to the neutral at this point only. A ground rod can be used only when other types of grounding electrodes are not available. All grounding electrodes must be connected to the facility grounding systems.

A2.2.2.1. Dry type transformers (isolation and non-isolation) are common sources of SDSs in a facility. Usually, they are connected in a delta-wye configuration. SDS transformers are widely used in sensitive electronic installations (computer power distribution centers are essentially SDS transformers), since they effectively establish a local ground at the electronic equipment. This minimizes the impedance to ground as seen by the load.

AFI32-1065 1 OCTOBER 1998 19

A2.2.2.2. Standby or emergency generators are also common sources of separately derived sys-tems. However, a generator connected to a facility through a transfer switch is not a separately derived system if the neutral conductor remains connected to the normal commercial power source neutral after transfer (the neutral is not switched along with the phase conductors). In this case, the required connection of the neutral to the facility’s grounding electrode system for both the commercial power source and the generator must be made only on the supply side of the com-mercial power service disconnect. Providing an additional connection between the generator neu-tral and a grounding electrode at the generator would be a grounding connection on the load side of the service disconnect and a violation of the NEC. Refer to IEEE Standard 446, Recommended Practice for Emergency and Standby Power (The Orange Book), for additional information and requirements on grounding emergency and standby generators.

A2.3. Grounding Electrodes:

A2.3.1. Connection To Earth. The most practical method of connecting to earth is to bury a solid body, such as a metal rod, pipe, or sheet, and connect a grounding conductor to it. This solid body is known as a grounding electrode.

A2.3.2. Methods for Obtaining Better Grounds. Frequently a satisfactorily low electrode resistance cannot be obtained because of high soil resistivity. Use the following methods if it is necessary to lower the resistance of the electrode.

A2.3.2.1. Deeper Rod. As a rod is driven more deeply into the soil, it not only has more surface contact with the earth, but it also begins to reach soil which is more conductive. The deeper the electrode, the less the effect of surface moisture content and temperature changes.

A2.3.2.2. Parallel Ground Rods. Rods driven in parallel to each other should have space between them at least the length of the rods. Multiple rods connected by a conductor have a greater ability to equalize potential over the installation area.

A2.3.2.3. Soil Replacement. You can significantly lower the resistance of a ground rod by low-ering the resistivity of the soil immediately surrounding it. Use a mixture of 75 percent gypsum, 20 percent bentonite (well driller’s mud), and 5 percent sodium sulfate. This mixture is available from cathodic protection supply companies. The mixture is better than chemical salts because it lasts much longer and chemical salts may not be compatible with environmental requirements.

A2.3.2.4. Concrete Encapsulation. Encapsulating ground rods with concrete increases their effective diameter. The concrete absorbs water from the soil, increasing the conductivity directly around the electrode. When buried in the earth, the resistivity of concrete is about 3,000 ohm-cm.

A2.3.2.5. Other Methods. Other more elaborate methods include installation of a ground loop conductor and extensive wire networks.

A2.4. Grounding and Corrosion. Copper grounding has been the standard of the electrical industry almost from inception. Because it is cathodic to all common construction materials, corrosion often results when copper is in contact with ferrous structures. Bonding underground ferrous structures to cop-per grounding systems can create serious corrosion problems.

A2.4.1. Corrosion of Pipelines. A typical situation exists when a facility’s copper grounding system is bonded to a coated steel pipeline (such as petroleum, oils, or lubricants (POL) or natural gas) enter-ing the facility. Outside the facility the pipe is buried in low resistivity soil. Corrosion current will be

20 AFI32-1065 1 OCTOBER 1998

high because of the potential between copper and steel, the low resistance circuit, and concentrated at the voids (holidays) in the pipe coating. One common solution to this problem is to use galvanized steel rather than copper ground rods. Another is to install an insulating fitting above the ground in the pipeline where it exits the soil and as it enters the building. Note that while the aboveground portion of the pipeline is grounded for safety, the underground portion is already grounded by contact with the soil. The resistance to earth of a typical coated piping system is usually 1 to 5 ohms.

A2.4.2. Hazardous Voltages. If insulating fittings are installed on a pipeline, take precautions against lightning flashover at the fittings or a dangerous potential difference between the pipe sections. Con-nect a metal oxide varistor (MOV) lightning arrester, zinc grounding cell, or an electrolytic cell across the insulating device. The clamping voltage should be 3.14 times the maximum output voltage of the rectifier of the cathodic protection system.

A2.4.3. Zinc Grounding Cell. A zinc grounding cell is made of two bars of 3.55 by 3.55 by 152.4-centimeter (1.4 by 1.4 by 60-inch) zinc separated by 2.54 centimeter (1-inch) spacers. Each bar has an insulated AWG No. 6 stranded copper conductor silver-brazed to a 0.64-centimeter (0.25-inch) diameter steel core rod. The unit comes prepackaged in a bag of low resistivity backfill (75 percent gypsum, 20 percent bentonite, and 5 percent sodium sulfate). The nominal resistance of a two anode grounding cell is 0.4 ohms. For lower resistance, a four cross-connected zinc anode cell with a resis-tance of 0.2 ohms is available. This resistance acts as an open circuit to the low dc voltage corrosion current, but like a short to lightning or 120 Vac commercial current.

A2.4.4. Electrolytic Cell. An electrolytic cell (Kirkcell) consists of multiple pairs of stainless steel plates immersed in a potassium hydroxide electrolyte solution with an oil film floating on top to pre-vent evaporation. The cell acts like an electrochemical switch, blocking low dc voltages in the cathodic protection range, but instantaneously shunting ac or higher dc voltages to ground.

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Attachment 3

BASIC BONDING REQUIREMENTS

A3.1. Basic Requirements. The following are basic bonding requirements for lightning protection. See NFPA 780 for more details. Three different conditions or situations determine the requirement for a bond.

A3.2. Condition 1. This condition addresses long, vertical metal bodies, grounded and ungrounded, exceeding 18.3 meters in vertical distance. For steel framed structures these long, vertical metal bodies must be bonded as near as practical at their extremities to structural steel members. For reinforced con-crete structures where the reinforcement is interconnected and grounded, these long, vertical metal bodies must be bonded to the lightning protection system (unless inherently bonded through construction) at their extremities. For other structures bonding is determined the same as condition 2.

A3.3. Condition 2. This condition addresses bonding of grounded metal bodies not covered by Condi-tion 1. Where grounded metal bodies are connected to the lightning protection system at only one extrem-ity, use the following formula to determine if additional bonding is necessary:

This basic bonding formula (BBF) is used in all Condition 2 subcategories. Only the parameter n may be defined differently. Km is defined the same in all cases and is equal to 1.0 if the flashover is through air;

or 0.5 if through dense material, such as concrete, brick, or wood.

A3.3.1. Condition 2a. For grounded metal bodies in structures 12.2 meters (40 feet) and less in height, the following apply.

D = the distance between a grounded body and a down conductor at which a bond becomes neces-sary.

h = he greatest vertical distance between the bond being considered and the nearest other lightning protection system bond (or to ground level if no other bond is present).

Condition 1 Condition 2 Condition 3

Long vertical metal bodies

18.3 meters (60 ft) in ver-tical length

Grounded metal bodies

a. Structures 12.2 m (40 ft) and less

b. Structures more than 12.2m (40 ft) in height

(1) Within 18.3 m (60 ft) from top of structure

(2) Below 18.3 m (60 ft) from top of structure

Isolated (nongrounded) metallic bodies

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n = 1 where only one down conductor is within a 30.5-meter (100-foot) radius of the bond in ques-tion.

n = 1.5 where only two down conductors are within a 30.5-meter radius of the bond in question.

n = 2.25 where three or more down conductors are within a 30.5-meter radius of the bond in ques-tion.

Where any two down conductors are not separated by at least 7.6 meters, they must be considered as one down conductor. An example of this calculation is shown in Figure A3.1. The height of the building is 10.7 meters (35 feet). A is a metal pipe grounded at one end, but close to down conductor B. B is the only down conductor within 30.5 meters of the point in question, so n = 1. Since any flash-over would occur through the wall, Km = 0.5. The BBF is D = [h/6(1)](0.5) = (9.14/6)(0.5) = (1.52)(0.5) = 0.76 meters (2.5 feet). This means that if pipe A is 0.76 meters or closer to the down conductor at the point in question (9.14 meters in height), bond it through the wall to the down con-ductor.

A3.3.2. Condition 2b(1). For grounded metal bodies in structures more than 12.2 meters (40 feet) in height and where the bond in question is within 18.3 meters (60 feet) from the top of the structure, the following definitions apply.

h = the greatest vertical distance between the bond being considered and the nearest other lightning protection system bond (or to ground level if no other bond is present).

n = 1 where only one down conductor is within a 30.5-meter radius of the bond in question. Down conductors must be spaced at least 7.6 meters apart.

n = 1.5 where two down conductors are within a 30.5-meter radius of the bond in question. Down conductors must be spaced at least 7.6 meters apart.

n = 2.25 where three or more down conductors are within 30.5 meters of the bond in question.

Down conductors must be spaced 7.6 meters apart.

Figure A3.2. shows bond fitting Condition 2b(1). The vertical height, h1, is 22.9 meters (75 feet). In this case, the two down conductors are within 30.5 meters of the bond at D1, and n equals 1.5. Again, the flashover would be through the wall, so Km = 0.5. The BBF is D1 = ([22.9/(6)(1.5)])0.5 = (22.9/ 9)(0.5) = 1.27 meters (4.17 feet). If pipe A is 1.27 meters or closer to the down conductor, bond it to the down conductor through the wall.

A3.3.3. Condition 2b(2). For grounded metal bodies where the bond in question is below the top 18.3 meters of a structure which is greater than 12.2 meters (40 feet) in height, the following definitions apply.

h = the vertical distance between the bond being considered and the nearest other lightning protec-tion system bond (or to ground level, if no other bond is present).

n = the total number of down conductors (spaced 7.6 meters apart) in the lightning protection sys-tem.

This type of bond is shown in figure A3.2. Pipe B comes close to a down conductor at a height below the top 18.3 meters of the structure. Km would be 0.5 for a flash through the wall and n would be the total number of down conductors for the system (assume 4). The BBF would be D2 = ([h2/6(4)])0.5 = 10.7/24(0.5) = 0.22 meters (0.73 feet). The pipe B would have to be bonded through the wall to the

AFI32-1065 1 OCTOBER 1998 23

down conductor at this location if it is 0.22 meters or closer to the conductor. Note that for buildings between 12.2 and 18.3 meters in height, Condition 2b(1) would apply.

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Figure A3.1. Typical Bonding Conditions in Structures 12.2 Meters (40 Feet) or Less.

AFI32-1065 1 OCTOBER 1998 25

Figure A3.2. Typical Bonding Conditions in Structures Greater Than 12.2 Meters (40 Feet).

A3.4. Condition 3. Condition 3 concerns ungrounded metal bodies positioned to effectively short part of the separation distance between a grounded metal body and a lightning conductor. In Figure A3.3., a window is locatedbetween a grounded metal body and a lightning protection down conductor. First, cal-culate the bonding distance between the grounded body and down conductor by using the BBF according to the correct condition [2a, 2b(1), or 2b(2)]. This will provide a distance for D. If the distance a + b is less than or equal to D, then the down conductor must be bonded directly to the grounded metal body.

Note the window itself does not have to be bonded. Continuity tests should be performed to determine if…

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