A typical qualifying 200 A dwelling service can use 2/0 AWG copper or 4/0 AWG aluminum conductors under the NEC dwelling-service provisions. However, these sizes do not apply automatically to every 200 A service or feeder. The correct conductor size depends on whether NEC 310.12 applies, required ampacity, conductor and terminal temperature ratings, adjustment factors, installation conditions, and voltage drop. This guide explains how to evaluate these requirements using practical sizing examples.

Figure 1. Copper and Aluminum Service-Entrance Conductors for a 200 Amp Electrical Service
For a qualifying 200 A dwelling service or whole-dwelling feeder, NEC 310.12 permits 2/0 AWG copper or 4/0 AWG aluminum or copper-clad aluminum conductors when the applicable conditions are met. [1]
| Conductor Material | Common Size for a Qualifying 200 A Dwelling Service or Feeder |
| Copper | 2/0 AWG |
| Aluminum or Copper-Clad Aluminum | 4/0 AWG |
These sizes come from the dwelling-service provisions of NEC 310.12. They should not be treated as universal conductor sizes for every 200 A circuit, feeder, or service. [1]
The 2/0 AWG copper and 4/0 AWG aluminum or copper-clad aluminum sizes apply only when the installation qualifies under NEC 310.12. This generally includes a single-phase dwelling service supplying the entire dwelling load and a qualifying feeder supplying the entire dwelling load. A feeder serving only part of a dwelling, such as a garage or subpanel feeder, does not qualify simply because it is installed at a residence. [1]
Before using the NEC dwelling-service sizing table, verify the NEC edition adopted locally and confirm that the conductor or cable has the required insulation temperature rating. Ambient temperature, conductor grouping, terminal ratings, and other correction or adjustment factors can also require a larger conductor. [1]
For qualifying dwelling services and whole-dwelling feeders, NEC 310.12 allows conductor sizing using the 83% provision rather than requiring the conductor’s standard ampacity to equal the full 200 A service rating. [1]
This provision is why certain conductor sizes with standard ampacities below 200 A may still be permitted for a qualifying 200 A dwelling installation. The 83% calculation and conductor-selection requirements are explained in Section 2.2.
Sizing a 200 A service conductor requires more than choosing a standard wire size. First confirm whether the dwelling-service provisions apply, then check ampacity, temperature ratings, correction or adjustment factors, voltage drop, and the installation method.
The applicable NEC edition, local amendments, utility rules, and AHJ requirements should also be verified.
NEC 310.12 applies only to qualifying single-phase dwelling services and whole-dwelling feeders rated 100–400 A. [1]
| Installation | Can NEC 310.12 Apply? |
| Service supplying the entire one-family dwelling | Yes, if requirements are met |
| Feeder supplying the entire dwelling load | Potentially yes |
| Detached-garage feeder | Normally no |
| Partial-load subpanel | No |
| Commercial 200 A service | No |
A conductor does not qualify for dwelling-service sizing simply because it is installed in a house or protected by a 200 A breaker.
For a qualifying 200 A dwelling service or whole-dwelling feeder under NEC 310.12:
Required ampacity = 200 A × 0.83 = 166 A [1]
At 75°C, 2/0 AWG copper is rated 175 A, while 4/0 AWG aluminum or copper-clad aluminum is rated 180 A, so both exceed the 166 A requirement under qualifying conditions. [1]
These sizes should not be used automatically for every 200 A installation. Verify the locally adopted NEC edition, conductor insulation rating, terminal temperature rating, and any required correction or adjustment factors before making the final selection. [1]
For circuits over 100 A, equipment terminations are generally based on the 75°C ampacity column unless the equipment is specifically identified for another rating. [1]
A 90°C-rated conductor may be used when applying permitted correction or adjustment factors, but its final allowable ampacity must still comply with the applicable terminal limitation.
In practice:
• verify conductor insulation rating;
• verify terminal temperature rating;
• apply required correction or adjustment factors;
• confirm the final ampacity does not exceed the terminal limit.
Ampacity may need to be reduced for conditions such as high ambient temperature, multiple current-carrying conductors, cable or conductor arrangements covered by NEC 310.15. [1]
For example, a 90°C-rated 2/0 copper conductor has a 195 A ampacity. With a 0.82 correction factor:
195 A × 0.82 = 159.9 A
Because 159.9 A is below the required 166 A, 2/0 copper would not be sufficient in this example. A larger conductor may therefore be required. [1]
A conductor can meet ampacity requirements but still have excessive voltage drop on a long run.
For a simplified single-phase calculation:
VD = (2 × K × I × L) ÷ CM
where VD is voltage drop, K is conductor resistivity, I is current, L is one-way length, and CM is conductor area.
Voltage drop increases with current and distance and generally decreases with larger conductor size. Long runs may therefore justify using a conductor larger than the minimum ampacity-based size.
NEC informational material commonly references 3% for a feeder or branch circuit and 5% for the combined feeder and branch-circuit path as design guidance, not as a universal mandatory sizing rule. [1]
See Section 4.2 for a long-run example.
The conductor must also be listed for the installation environment.
• Underground raceway: use conductors rated for wet locations. [1]
• Overhead service: use a permitted conductor and wiring method.
• Raceway: verify conductor type and conduit fill.
• Cable assemblies: confirm the cable is permitted for the location.
• Aluminum conductors: verify terminal and connector compatibility.
Select the conductor based on electrical requirements first, then verify raceway size, bending space, physical protection, and installation conditions.

Figure 2. Copper and Aluminum Conductors Used for 200 Amp Residential Service
For context, a common comparison for a qualifying 200 A dwelling service is 2/0 AWG copper versus 4/0 AWG aluminum. This section focuses on how the two conductor materials differ in resistance, physical size, weight, cost, termination requirements, and installation.
| Comparison | 2/0 AWG Copper | 4/0 AWG Aluminum | Meaning |
| Common qualifying dwelling size | 2/0 AWG | 4/0 AWG | Aluminum generally requires a larger conductor size than copper for comparable applications. |
| AC resistance at 75°C | About 0.097 Ω/1,000 ft | About 0.100 Ω/1,000 ft | At these respective sizes, resistance is very similar. A same-size copper conductor would generally have lower resistance than aluminum. |
| Approximate conductor outside diameter | 0.524 in | 0.591 in | The larger aluminum conductor requires more physical space. Check raceway fill, bending space, and terminal capacity. |
| Approximate finished conductor weight | 452 lb/1,000 ft | 247 lb/1,000 ft | The aluminum conductor is about 45% lighter in this comparison, which can make handling and pulling easier. |
| Conductor cost | Generally higher | Generally lower | Aluminum can reduce material cost for large conductors. Actual pricing varies with supplier, conductor type, and metal prices. [4] |
| Terminal compatibility | Use terminals identified for copper where applicable | Use terminals identified for aluminum or the applicable conductor material | Verify equipment and connector markings rather than assuming compatibility based on physical fit. [1] |
| Termination preparation | Follow specified conductor preparation and terminal torque | Follow specified preparation, compatible-terminal, and torque requirements | Proper installation is important for both materials. Follow manufacturer instructions regarding oxide-inhibiting compound rather than treating it as universally required. [1,4] |
| Corrosion considerations | Generally less sensitive to connection-related oxidation issues | Requires careful use of compatible materials and proper connection preparation | Listed connectors and manufacturer installation procedures are especially important for reliable aluminum terminations. [4] |
| Space requirements | Smaller conductor can simplify routing and termination | Larger conductor may require more raceway and terminal space | Check conduit fill, bending space, and the equipment's permitted conductor-size range. |
| Practical selection | Useful where compact routing or copper-specific equipment is important | Useful where lower conductor weight and material cost are priorities | Consider installed cost, available space, conductor length, voltage drop, equipment compatibility, and local requirements. |
Example data note: The resistance, diameter, and weight values above compare Southwire SIMpull XHHW-2 copper and aluminum conductors from the same general product family. Dimensions and weights can vary between manufacturers and conductor constructions. [2,3]
The correct conductor size for a 200 A installation depends on what the conductor supplies, the installation conditions, and the design requirements. The following examples show why a qualifying dwelling service can use a different conductor size from a long service run or an ordinary 200 A feeder.
These examples assume 75°C-rated or higher conductors and equipment suitable for the stated conductor sizes. Actual installations must also follow the NEC edition adopted locally, utility requirements, equipment listings, and requirements of the authority having jurisdiction. [1]

Figure 3. Typical Residential Main Service Panel with Service-Entrance Conductors
Assumptions:
• single-family dwelling;
• 120/240 V, single-phase service;
• service conductors supply the entire dwelling load;
• 200 A service rating;
• short conductor run;
• no correction or adjustment factors;
• voltage drop is not a limiting factor.
Because the conductors supply the entire dwelling load, NEC 310.12(A) can apply. [1]
From Section 2.2, the required minimum ampacity for this qualifying 200 A service is 166 A.
| Material | Conductor Size | 75°C Ampacity | Meets 166 A Requirement? |
| Copper | 2/0 AWG | 175 A | Yes |
| Aluminum or copper-clad aluminum | 4/0 AWG | 180 A | Yes |
Therefore, under these assumptions, the qualifying 200 A dwelling service can use 2/0 AWG copper or 4/0 AWG aluminum/copper-clad aluminum. [1]
This result applies only when the installation qualifies under NEC 310.12 and the applicable installation conditions do not require a larger conductor.
Consider a qualifying 200 A dwelling service with a long underground run.
Assumptions:
• 200 A single-family dwelling service;
• 120/240 V, single phase;
• 300 ft one-way conductor length;
• aluminum conductors;
• XHHW-2 conductors in underground raceway;
• representative operating load of 160 A;
• no additional ampacity correction or adjustment factors;
• voltage-drop comparison based on the 240 V line-to-line circuit.
From Section 2.2, 4/0 AWG aluminum satisfies the assumed minimum ampacity requirement for this qualifying service. However, the 300 ft distance makes voltage drop an important design consideration.
For a simplified resistance-based estimate:
VD ≈ 2 × I × L × R ÷ 1000
Southwire lists approximately 0.100 Ω/1,000 ft at 75°C for 4/0 aluminum XHHW-2 and 0.071 Ω/1,000 ft for 300 kcmil aluminum. [3]
| Conductor | Simplified Estimated Voltage Drop | Percentage at 240 V |
| 4/0 AWG aluminum | 9.6 V | 4.0% |
| 300 kcmil aluminum | 6.82 V | 2.84% |
These 9.6 V and 6.82 V values are simplified estimates for the stated 240 V line-to-line, 160 A example. Increasing the conductor from 4/0 AWG to 300 kcmil aluminum reduces the estimated voltage drop by about 29%.
The key point is that 4/0 aluminum meets the assumed ampacity requirement, while 300 kcmil aluminum may be selected to improve voltage performance over the long run. The larger conductor is therefore a voltage-drop design choice, not a correction for insufficient ampacity.
Actual AC voltage drop can differ from this simplified resistance-only estimate because it also depends on factors such as conductor reactance and load power factor. The 3% value may be used as a design target in appropriate applications, but it should not be presented as a universal mandatory limit for all service conductors. [1]
The ungrounded service conductors are only part of a 200 A installation. The neutral, grounding electrode conductor, and any equipment grounding conductor have different functions and are sized under different NEC rules. They should not be assumed to have the same size simply because they are part of the same electrical system. [1]
No. The neutral does not automatically have to be the same size as the ungrounded service conductors.
For a typical 120/240 V single-phase dwelling service, the neutral carries the unbalanced portion of the line-to-neutral loads. Loads connected directly from line to line at 240 V do not normally add to the neutral load. Under the 2026 NEC, Section 120.61 defines the feeder or service neutral load based on the maximum calculated unbalance between the neutral and any ungrounded conductor. [1]
For example, a house can have a 200 A service while its calculated neutral load is substantially less than 200 A because many major appliances, such as some water heaters, ranges, EV chargers, and HVAC equipment, operate at 240 V.
However, this does not mean that the neutral can be reduced to any convenient size. The final neutral conductor must satisfy all applicable requirements, including: the calculated neutral load, permitted demand factors or reductions, conductor ampacity requirements, nonlinear-load requirements where applicable, and minimum grounded service-conductor sizing and bonding requirements.
For service equipment, NEC 250.24 also establishes minimum requirements for the grounded service conductor used as part of the service grounding and bonding system. [1]
Therefore, a statement such as “a 200 A service always uses a ___ AWG neutral” is not technically reliable. The neutral must be calculated for the actual installation.
The grounding electrode conductor (GEC) connects the service grounding system to the grounding electrode system, which can include electrodes such as metal underground water piping, concrete-encased electrodes, ground rods, building steel, and ground rings.
For an AC service, NEC Table 250.66 generally sizes the GEC according to the largest ungrounded service-entrance conductor or equivalent area of parallel conductors, not simply from the 200 A service rating. [1]
For the conductor sizes commonly used for a qualifying 200 A dwelling service: [1]
| Ungrounded Service Conductors | Base GEC Size from Table 250.66 |
| 2/0 AWG copper | 4 AWG copper or 2 AWG aluminum/copper-clad aluminum |
| 4/0 AWG aluminum or copper-clad aluminum | 4 AWG copper or 2 AWG aluminum/copper-clad aluminum |
This table value is only the starting point because NEC 250.66 includes electrode-specific rules. [1]
For example:
• Rod, pipe electrode, or plate electrode: where the conductor connects only to these qualifying electrodes and does not continue to another electrode requiring a larger conductor, the GEC is not required to be larger than 6 AWG copper or 4 AWG aluminum/copper-clad aluminum. [1]
• Concrete-encased electrode: the conductor is not required to be larger than 4 AWG copper under the applicable rule. [1]
• Ground ring: the GEC is not required to be larger than the conductor used for the ground ring. [1]
These exceptions explain why the statement “every 200 A service requires a #4 copper grounding electrode conductor” is incomplete. The correct size depends on both the service-conductor size and the type and arrangement of grounding electrodes.
If several grounding electrodes are present, NEC requirements for the complete grounding electrode system must be followed rather than selecting a conductor size based on only one electrode. [1]
A grounding electrode conductor and an equipment grounding conductor are not the same conductor and should not be sized from the same table. [1]
| Conductor | Main Function | Typical Sizing Basis |
| Grounding electrode conductor (GEC) | Connects the service grounding/bonding system to the grounding electrode system | Largest ungrounded service conductor, using Table 250.66 and its electrode-specific rules |
| Equipment grounding conductor (EGC) | Provides an effective ground-fault current path for equipment and downstream circuits | Rating or setting of the upstream overcurrent protective device, using Table 250.122 |
| Neutral/grounded conductor | Carries normal unbalanced load current | Calculated neutral load plus applicable minimum service grounded-conductor requirements |
For example, on a 200 A feeder protected by a 200 A overcurrent device, Table 250.122 generally specifies a minimum wire-type equipment grounding conductor of 6 AWG copper or 4 AWG aluminum/copper-clad aluminum. If the ungrounded feeder conductors are increased in size under conditions covered by NEC 250.122(B), the equipment grounding conductor may also need to be increased. [1]
This equipment grounding conductor should not be confused with the grounding electrode conductor at the service.
At the service disconnect, the grounded service conductor, grounding electrode system, and service equipment are bonded as required by the NEC. On the load side of the service disconnect, the neutral and equipment grounding conductors are generally kept separate except where a specific NEC provision permits otherwise. [1]
The practical rule is simple: do not select the neutral, grounding electrode conductor, or equipment grounding conductor by copying the size of another conductor. Each has its own sizing method and electrical purpose.
Common errors include:
• Using 2/0 AWG copper or 4/0 AWG aluminum for every 200 A installation. These sizes apply only when the dwelling-service provisions are applicable.
• Applying dwelling-service sizing to nonqualifying feeders. Detached-building, subpanel, and partial-load feeders may require different sizing.
• Sizing only from the 200 A rating. Apply the correct ampacity rules for the specific installation.
• Ignoring terminal temperature ratings. Do not automatically use the conductor’s highest temperature rating for ampacity.
• Ignoring correction and adjustment factors. Installation conditions can reduce allowable ampacity.
• Checking ampacity but not voltage drop. Long runs may require a larger conductor.
• Using unsuitable conductors underground. Underground raceways require conductors rated for wet locations.
• Using incompatible terminals with aluminum conductors. Verify that terminals are identified for the conductor material.
• Sizing neutral and grounding conductors like the service conductors. These conductors follow separate NEC sizing rules.
• Relying on generic wire-size charts. Verify conductor material, temperature rating, installation method, distance, and applicable NEC requirements.
A 200 A service does not have one universal conductor size. First determine whether the dwelling-service sizing provision applies, then verify the required ampacity, temperature and installation conditions, and any correction or adjustment factors. For long runs, also evaluate voltage drop before finalizing the conductor size. The final design should comply with the applicable NEC edition, local requirements, utility rules, and AHJ requirements.