How to Size Grounding and Bonding Conductors under the NEC

“Grounding cable” is a common commercial term, but it is not specific enough for NEC design work.

Before selecting a conductor size, you must first identify what the conductor is required to do.

It may be:

  • An equipment grounding conductor, or EGC
  • A grounding electrode conductor, or GEC
  • A main bonding jumper
  • A system bonding jumper
  • A supply-side bonding jumper
  • An equipment bonding jumper
  • A temporary protective grounding cable used during maintenance

These conductors do not all use the same sizing method.

An EGC is normally selected from the upstream overcurrent protective device. A GEC is selected from the ungrounded supply conductors and grounding electrode rules. Main, system and supply-side bonding jumpers follow their own bonding provisions.

Temporary protective grounding cables used for substation or line maintenance require a different selection process.

This guide explains the differences in simple terms and shows how engineers and buyers can prepare a clearer grounding conductor specification.

Important Code Note

This article uses NEC terminology for general education and procurement planning.

The final conductor size must be confirmed according to:

  • The NEC edition adopted by the authority having jurisdiction
  • Local amendments
  • Project drawings and specifications
  • The electrical system design
  • The conductor installation method
  • Equipment listings and manufacturer instructions
  • Approval by the project designer and authority having jurisdiction

Do not use this article as a replacement for final electrical design or code approval.

Quick Answer: Which Grounding Table or Rule Applies?

Conductor TypeMain Sizing BasisMain Purpose
Equipment Grounding ConductorUpstream breaker or fuse rating and applicable NEC rulesProvides a ground-fault current path with the circuit
Grounding Electrode ConductorLargest ungrounded supply conductor or equivalent parallel area, plus electrode rulesConnects the system to the grounding electrode system
Main Bonding JumperLargest ungrounded service conductor and applicable bonding rulesConnects the grounded conductor to the equipment grounding path at the service
System Bonding JumperUngrounded conductors of the separately derived systemEstablishes the required bonding connection at a separately derived system
Supply-Side Bonding JumperUngrounded supply conductors associated with the jumperBonds metal enclosures and raceways on the supply side
Equipment Bonding JumperInstallation location, OCPD and specific bonding ruleMaintains continuity between equipment grounding components
Temporary Protective Grounding CableFault current, clearing time, cable length, clamp rating and work procedureProtects workers during maintenance on de-energized equipment

The first question should never be:

“What grounding cable size do I need?”

The first question should be:

“Which type of grounding or bonding conductor am I sizing?”

EGC vs GEC vs Bonding Jumper

These terms are often confused.

Equipment Grounding Conductor

An equipment grounding conductor runs with the circuit conductors or forms part of the wiring method.

Its purpose is to provide an effective ground-fault current path so that the protective device can operate when a fault occurs.

The EGC is not normally selected from the grounding electrode or soil resistance.

Grounding Electrode Conductor

A grounding electrode conductor connects the grounded conductor or equipment to the grounding electrode system.

The grounding electrode system may include:

  • Ground rods
  • Underground metal water pipe
  • Concrete-encased electrodes
  • Ground rings
  • Building structural metal
  • Other recognized electrodes

The GEC is not normally sized from a downstream branch-circuit breaker.

Bonding Jumper

A bonding jumper connects conductive parts to establish electrical continuity.

Depending on its location, it may be a:

  • Main bonding jumper
  • System bonding jumper
  • Supply-side bonding jumper
  • Equipment bonding jumper

Bonding helps maintain electrical continuity, reduce potential differences and support an effective ground-fault current path.

It does not guarantee that all touch-voltage risk is eliminated.

Information You Need Before Sizing

Collect the following information before looking at a conductor table.

Required InputWhy It Matters
NEC editionArticle numbers and requirements may change between editions
Authority having jurisdictionLocal adoption and amendments control final approval
Conductor functionDetermines whether EGC, GEC or bonding rules apply
OCPD ratingCommon starting point for EGC sizing
Ungrounded conductor sizeCommon starting point for GEC and certain bonding jumpers
Conductor materialCopper and aluminum use different table columns
Parallel conductor arrangementEquivalent conductor area or individual raceway rules may apply
Wiring methodMetal raceway, cable, wire-type EGC or cable tray may affect the design
Grounding electrode typeSpecial GEC rules may apply
EnvironmentCorrosion, moisture, soil contact and physical damage affect materials
Terminal ratingConnectors must match conductor material and temperature rating
Project documentationDrawings, grounding schedule and acceptance records may be required

Without these inputs, a conductor size alone has little engineering value.

How to Size an Equipment Grounding Conductor

An equipment grounding conductor is generally selected using the rating or setting of the overcurrent protective device ahead of the circuit.

Basic EGC Workflow

  1. Identify the breaker or fuse rating.
  2. Confirm the adopted NEC edition.
  3. Find the applicable EGC table and conductor material column.
  4. Select copper or aluminum.
  5. Review the installation method.
  6. Check parallel raceway or cable requirements.
  7. Review whether any conductor upsizing affects the EGC requirement.
  8. Confirm terminal compatibility and physical protection.

Illustrative EGC Example

Assume a feeder is protected by a 400A circuit breaker.

Using the commonly referenced NEC EGC table:

InputExample
Upstream OCPD400A circuit breaker
EGC materialCopper
Table basisOCPD rating
Illustrative minimum EGC3 AWG copper

For aluminum or copper-clad aluminum, the corresponding illustrative table value is 1 AWG.

This is a simple example only.

The engineer must still confirm:

  • The adopted NEC edition
  • Whether the circuit is installed in one or several raceways
  • Whether a metal raceway is used as the EGC
  • Whether the phase conductors were increased
  • Whether fault-path impedance requires a larger conductor
  • Whether special equipment rules apply

What If the Breaker Rating Is Not Listed?

Where the exact OCPD rating does not appear in the applicable table, the next higher listed rating may need to be used.

Do not interpolate between table values unless the applicable rule permits it.

What If the Phase Conductors Are Increased?

Do not automatically apply a universal percentage rule.

If ungrounded conductors are increased beyond their normal required size, check the specific NEC edition adopted for the project to determine whether and how the EGC must also be increased.

The applicable rule may depend on:

  • Why the conductors were increased
  • The conductor ampacity
  • The installed conductor area
  • The required ground-fault path performance
  • The wording of the adopted NEC edition

Record the design basis in the grounding schedule.

EGCs in Parallel Raceways and Cables

Parallel installations require careful review.

Do not assume one EGC arrangement applies to every parallel circuit.

Installation ArrangementWhat Must Be Checked
Parallel conductors in separate racewaysEGC requirement in each raceway
Parallel multiconductor cablesEGC arrangement within each cable
Conductors in one racewayWhether one common EGC is permitted
Conductors in cable trayApplicable tray and EGC provisions
Metal raceway used as EGCListing, continuity, fittings and installation
Underground parallel runsRaceway arrangement and bonding at both ends

A simplified statement such as “each conduit always gets the same full-size EGC” may not describe every installation correctly.

Use the specific NEC rule for the actual layout.

Can Metal Raceway Be Used as the EGC?

Some listed metal raceways and fittings can serve as an equipment grounding conductor when installed correctly.

The complete path must maintain electrical continuity.

Check:

  • Raceway type
  • Listed fittings
  • Expansion joints
  • Flexible sections
  • Corrosion
  • Painted surfaces
  • Mechanical damage
  • Bonding bushings or jumpers where required
  • Continuity across equipment sections

Where the raceway path is uncertain, a wire-type EGC may be specified by the project designer.

How to Size a Grounding Electrode Conductor

A grounding electrode conductor is generally selected from the largest ungrounded supply conductor or the equivalent area of parallel conductors.

However, the final requirement also depends on the type of grounding electrode.

Basic GEC Workflow

  1. Confirm whether the conductor is for a service, building supply or separately derived system.
  2. Identify the largest ungrounded conductor.
  3. For parallel conductors, calculate the equivalent area where required.
  4. Select the correct copper or aluminum column.
  5. Determine the grounding electrode type.
  6. Apply any electrode-specific sizing provisions.
  7. Check conductor routing and physical protection.
  8. Confirm connector and corrosion requirements.

Illustrative GEC Example with Parallel Conductors

Assume a service uses two parallel 500 kcmil copper conductors per phase.

Step 1: Calculate the Equivalent Area

2 × 500 kcmil = 1000 kcmil copper

Step 2: Use the Applicable GEC Table

An equivalent area of 1000 kcmil copper falls within the commonly referenced range of over 600 through 1100 kcmil.

Illustrative Result

The corresponding illustrative GEC size is:

2/0 AWG copper

InputExample
Conductors per phaseTwo
Size of each conductor500 kcmil copper
Equivalent area1000 kcmil copper
Illustrative GEC2/0 AWG copper

This result may change when electrode-specific provisions apply.

Why the Grounding Electrode Type Matters

The GEC is not always required to be as large as the basic table result.

Different rules may apply when the conductor connects only to certain electrode types.

Electrode TypeImportant Sizing Consideration
Rod, pipe or plate electrodeA permitted maximum required conductor size may apply
Concrete-encased electrodeA separate permitted maximum may apply
Ground ringThe conductor may be related to the ground-ring conductor size
Underground metal water pipeFull table-based sizing may be required
Structural metal electrodeConfirm applicable table and bonding rules
Multiple-electrode systemCheck how the GEC and bonding jumpers connect through the complete system

For example, a conductor connected only to a qualifying rod, pipe or plate electrode may not be required to be larger than the permitted code maximum, even when the general GEC table indicates a larger conductor.

However, if the same conductor continues to another electrode that requires a larger size, the smaller limitation may no longer apply to that conductor segment.

This is why the electrode layout must be known before the final GEC is specified.

GECs for Separately Derived Systems

Transformers and generators may create separately derived systems.

In these cases, confirm:

  • Secondary ungrounded conductor size
  • Grounded conductor arrangement
  • System bonding jumper location
  • Grounding electrode connection
  • Whether the bonding point is at the source or first disconnect
  • Whether parallel neutral paths could be created
  • Applicable GEC and bonding conductor rules

Do not treat every transformer secondary grounding conductor as an ordinary feeder EGC.

How to Size Bonding Jumpers

“Bonding jumper” is not one single conductor type.

The correct sizing rule depends on the jumper’s function and location.

Main Bonding Jumper

The main bonding jumper connects the grounded service conductor to the equipment grounding system at the service.

It is generally sized from the largest ungrounded service conductor or equivalent parallel conductor area using the applicable bonding provisions.

System Bonding Jumper

The system bonding jumper performs a similar function at a separately derived system.

The permitted bonding location must be confirmed so that unwanted parallel current paths are not created.

Supply-Side Bonding Jumper

A supply-side bonding jumper bonds metal equipment and raceways on the supply side of the service disconnect or separately derived system disconnect.

Its sizing basis is generally related to the associated ungrounded supply conductors.

Equipment Bonding Jumper

An equipment bonding jumper connects two or more portions of the equipment grounding path.

Its size may depend on:

  • OCPD rating
  • Equipment grounding conductor rules
  • Raceway or equipment arrangement
  • The specific NEC section that requires the jumper

Do not assume every equipment bonding jumper uses the same table as a main bonding jumper.

Illustrative Supply-Side Bonding Jumper Example

Assume one raceway contains 400 kcmil copper supply conductors.

Using the commonly referenced bonding table:

InputExample
Ungrounded conductor in the raceway400 kcmil copper
Jumper typeSupply-side bonding jumper
Sizing basisUngrounded supply conductor
Illustrative jumper1/0 AWG copper

For an installation with several raceways, each individual supply-side bonding jumper may need to be sized from the conductors in its own raceway.

A single common jumper for the full parallel conductor area follows a different calculation method.

Large Parallel Supply Conductors

Where the total equivalent area exceeds the range shown in the applicable bonding table, a percentage calculation may be required.

For example:

Five parallel 400 kcmil copper conductors:

5 × 400 kcmil = 2000 kcmil

Using an illustrative 12.5% rule where applicable:

2000 kcmil × 0.125 = 250 kcmil copper

This type of calculation applies only when the relevant NEC rule and conductor arrangement support it.

Always confirm:

  • Jumper type
  • Conductor material
  • Parallel conductor arrangement
  • Table notes
  • NEC edition
  • Location of the bonding connection

Permanent NEC Grounding Is Not Temporary Protective Earthing

This distinction is especially important for utility, substation and industrial maintenance buyers.

The EGC, GEC and bonding conductors discussed above are part of a permanent electrical installation.

A portable earthing and short-circuit kit is temporary safety equipment used during maintenance on de-energized equipment.

These products do not use the same sizing method.

Permanent NEC ConductorTemporary Protective Grounding Cable
Part of the installed electrical systemApplied temporarily during maintenance
May be sized from OCPD or supply conductorsSized from fault current and clearing time
Uses NEC installation and bonding rulesUses temporary grounding equipment standards and site procedures
Usually remains installedInstalled and removed for each work activity
May use building wiring conductorsUsually uses highly flexible cable assemblies
Does not require portable clampsRequires rated clamps, ferrules and connection interfaces

Temporary protective grounding selection should consider:

  • Maximum available fault current
  • Protective device clearing time
  • Required cable cross-section
  • Cable length
  • Cable flexibility
  • Clamp rating
  • Ferrule and lug rating
  • Connection-point geometry
  • Mechanical strength
  • Thermal withstand
  • Work method and grounding sequence

Do not size a temporary grounding cable only from an NEC EGC table.

For temporary grounding products, review the JINPOWER grounding cable and complete portable earthing kit options according to your confirmed system and work procedure.

Copper vs Aluminum Grounding Conductors

Copper and aluminum must be selected from the correct table columns and matched with compatible terminations.

FactorCopperAluminum
ConductivityHigher conductivity for the same cross-sectionUsually requires a larger size for an equivalent table position
WeightHeavierLighter
FlexibilityDepends on strand constructionDepends on alloy and construction
Corrosion considerationsStill requires correct material interfacesRequires careful control of environment and connector compatibility
TerminationsUse listed copper-compatible connectorsUse connectors listed for aluminum or dual-rated use
MaintenanceFollow connector instructionsFollow preparation, inhibitor and torque instructions exactly

Do not automatically apply antioxidant compound to every aluminum termination.

Use it only when required by:

  • Connector instructions
  • Equipment listing
  • Project specification
  • Approved installation procedure

Do not re-torque a connection unless the listed product instructions or approved maintenance procedure require it.

Grounding Cable Lugs, Clamps and Terminations

The conductor size alone does not make a reliable grounding or bonding connection.

The complete interface must be checked.

Termination Checklist

ItemWhat to Verify
Conductor materialCopper, aluminum or copper-clad aluminum
Conductor sizeAWG, kcmil or mm²
Lug listingListed for the conductor material and size
Number of conductorsLug approved for one or multiple conductors
Temperature ratingCompatible with conductor and equipment ratings
Crimp toolCorrect tool and die
PreparationFollow manufacturer cleaning and preparation instructions
TorqueUse the specified torque value
Contact surfaceRemove paint only where required by the approved connection method
Corrosion controlMatch metals and environmental conditions
Strain reliefPrevent movement at the termination
IdentificationCircuit, size, material and connection point clearly marked

For more detail, read our guide to grounding cable terminations.

Grounding and Bonding RFQ Checklist

When requesting grounding conductor or hardware pricing, provide a confirmed technical specification.

RFQ ItemInformation to Provide
Conductor functionEGC, GEC, bonding jumper or temporary grounding cable
Code basisAdopted NEC edition or project standard
Conductor materialCopper, aluminum or tinned copper
Required sizeAWG, kcmil or mm²
LengthPer conductor or per assembly
InsulationBare, insulated or jacketed
ColorGreen, green/yellow, black or project-specific
TerminationLug, ferrule, clamp or bare end
Connector detailsHole size, palm width, barrel size and material
QuantityTotal length or number of assemblies
EnvironmentIndoor, outdoor, underground, corrosive or humid
MarkingCircuit ID, length mark, serial number or QR code
DocumentsSpecification, drawings, inspection records or test reports
PackagingCoil, reel, carton, pallet or complete kit

The final electrical size should already be confirmed by the project designer.

A supplier should not guess the final NEC conductor size from incomplete project information.

Goods-In and Commissioning Checklist

When grounding conductors and bonding hardware arrive on site, check more than the packing quantity.

Inspection ItemWhat to Check
Conductor markingSize, material, insulation and manufacturer identification
Quantity and lengthMatch purchase order and drawings
EGC scheduleCircuit ID, OCPD and conductor size agree
GEC basisSupply conductor and electrode information are recorded
Bonding jumper typeMain, system, supply-side or equipment jumper clearly identified
Lugs and clampsCorrect material, conductor range and interface
Crimp qualityCorrect die marks and no visible damage
Torque recordsRecorded where required
Corrosion protectionSuitable for the installation environment
Raceway continuityVerified where raceway is part of the grounding path
Bonding across jointsJumpers installed at required breaks and transitions
IdentificationLabels and circuit references remain readable
DocumentationDrawings, grounding schedule and inspection records filed

Suggested Grounding Schedule Fields

A useful grounding schedule may include:

  • Circuit or equipment ID
  • Conductor type
  • OCPD rating
  • Ungrounded conductor size
  • Copper or aluminum
  • Number of parallel runs
  • EGC size
  • GEC size
  • Bonding jumper type and size
  • Electrode type
  • Raceway type
  • Lug or clamp model
  • Torque value
  • Drawing reference
  • Inspection status

Common Grounding Conductor Sizing Mistakes

Treating Every Green Cable as an EGC

A green conductor may be an EGC, but conductor color alone does not define its electrical function.

Identify the system connection and design purpose.

Sizing a GEC from the Main Breaker

A GEC is generally not sized from a downstream breaker.

It is commonly based on the ungrounded supply conductor and electrode rules.

Using the GEC Table for a Bonding Jumper

Main, system and supply-side bonding jumpers follow bonding rules, not the GEC table.

Applying One Rule to Every Parallel Installation

Separate raceways, multiconductor cables and cable trays may require different grounding arrangements.

Ignoring the Grounding Electrode Type

Ground rods, concrete-encased electrodes, ground rings and metal water pipes may not have the same conductor requirement.

Using an Automatic Percentage for Every Upsized EGC

The correct treatment depends on the adopted NEC edition and installation conditions.

Do not apply a general rule without checking the applicable section.

Treating Temporary Grounding Cable as a Permanent EGC

Portable protective grounding sets are selected from fault-current duty and work procedures, not only from a breaker-based EGC table.

Selecting the Cable but Ignoring the Lug

A correctly sized conductor can still fail acceptance if the lug, clamp, crimp or torque is wrong.

Using Aluminum Hardware Without Checking the Listing

Connector material, preparation and environmental suitability must be confirmed.

Providing a Size Without a Design Basis

A grounding specification should record:

  • Conductor function
  • Sizing rule
  • Input data
  • Table or section reference
  • Material
  • Installation arrangement
  • Connector details

FAQ About NEC Grounding Conductor Sizing

Is an EGC the Same as a GEC?

No.

An EGC provides a ground-fault current path with a circuit. A GEC connects the electrical system to the grounding electrode system.

They have different purposes and sizing methods.

Is Grounding Cable Size Based on Breaker Size?

Only some conductors use the breaker or fuse as the main sizing input.

An EGC is generally based on the upstream OCPD.

A GEC and certain bonding jumpers use different inputs.

Does a Larger Phase Conductor Always Require a Larger EGC?

Not automatically in every situation.

Check the adopted NEC edition, reason for conductor upsizing and applicable EGC rule.

How Is a GEC Sized for Parallel Conductors?

The equivalent area of the corresponding parallel ungrounded conductors may need to be added together.

The result is then compared with the applicable GEC table, subject to grounding electrode rules.

Are All Bonding Jumpers Sized from the EGC Table?

No.

Main, system and supply-side bonding jumpers commonly use bonding provisions based on the ungrounded supply conductors.

Equipment bonding jumpers may use different rules.

Can a Metal Raceway Be Used as the EGC?

Certain listed raceways can be used as an equipment grounding conductor when installed with the correct fittings and continuous bonding path.

The complete installation must satisfy the applicable requirements.

Is a Temporary Substation Grounding Cable Sized from the NEC EGC Table?

No.

Temporary protective grounding cable should be selected from fault current, clearing time, conductor length, clamp rating and the approved work procedure.

Which NEC Edition Should I Use?

Use the edition adopted by the authority having jurisdiction for the project location.

Also check local amendments and project specifications.

Can JINPOWER Provide the Final NEC Grounding Design?

JINPOWER can supply grounding cable, clamps, lugs and temporary earthing products according to a confirmed specification.

Final NEC sizing, system design and installation approval should be completed by the project designer and authority having jurisdiction.

Final Guidance

There is no single formula for every “grounding cable.”

Use this sequence:

  1. Identify the conductor type.
  2. Confirm the adopted NEC edition.
  3. Collect the correct input data.
  4. Use the rule for EGC, GEC or the specific bonding jumper.
  5. Check parallel conductors and grounding electrode type.
  6. Confirm copper or aluminum.
  7. Match lugs, clamps and terminations.
  8. Record the sizing basis.
  9. Complete inspection and continuity checks.
  10. Obtain final project and AHJ approval.

The most important distinction is simple:

EGC, GEC and bonding jumpers are not interchangeable.

Temporary protective grounding cables used during maintenance are also not sized by the same method as permanent NEC grounding conductors.

Need Grounding Cable or Connection Hardware for Your Project?

Tell us the confirmed conductor type, copper or aluminum material, cross-section, cable length, insulation, terminal type, clamp interface, quantity, packaging and document requirements.

JINPOWER can support:

  • Grounding cable
  • Lugs and ferrules
  • Grounding clamps
  • Grounding sticks
  • Portable earthing and short-circuit kits
  • Temporary protective grounding assemblies
  • Product identification and project packaging

Explore our grounding stick, portable earthing and short-circuit kits, power engineering safety solutions and substation safety solutions.

Final NEC sizing and installation approval should be confirmed by the project designer and authority having jurisdiction.

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