Comprehensive reference chart for current transformer (CT) ratios from 50A to 6000A. Use this guide to select the
correct CT ratio for metering, protection, and monitoring applications per IEC 61869-2 standards.
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What is CT Ratio?
The CT ratio (Current Transformer ratio) defines how much a current transformer reduces the primary
current. For example, a 400:5 CT steps down 400 Amps to 5 Ampsβan 80:1 reduction. This allows high
currents to be safely measured with standard 5-Ampere meters.
π Quick Formula
Primary Current = Secondary Current Γ Turns Ratio
Example: If a 400:5 CT shows 2.5A on the meter: 2.5 Γ 80 = 200
Amps (primary)
Low Current CT Ratios (50A – 200A)
These CTs are commonly used for residential, light commercial, and branch circuit monitoring.
| CT Ratio | Turns Ratio | Accuracy Class | Burden (VA) | Window Size | Typical Application | Specs |
|---|---|---|---|---|---|---|
| 50:5 | 10:1 | 0.5S / 5P20 | 2.5 | 0.75″ | Small branch circuits, sub-panels | View β |
| 75:5 | 15:1 | 0.5S / 5P20 | 2.5 | 0.75″ | Small three-phase panels | View β |
| 100:5 | 20:1 | 0.5S / 5P20 | 5 | 1.0″ | Residential 100A main panels | View β |
| 150:5 | 30:1 | 0.5 / 5P20 | 5 | 1.25″ | Small commercial buildings | View β |
| 200:5 | 40:1 | 0.5 / 5P20 | 5 | 1.5″ | 200A service entrance | View β |
Medium Current CT Ratios (250A – 800A)
Used for commercial buildings, industrial feeders, and motor control centers.
| CT Ratio | Turns Ratio | Accuracy Class | Burden (VA) | Window Size | Typical Application | Specs |
|---|---|---|---|---|---|---|
| 250:5 | 50:1 | 0.5 / 5P20 | 5 | 1.5″ | Medium commercial, HVAC feeders | View β |
| 300:5 | 60:1 | 0.5 / 5P20 | 10 | 2.0″ | Motor control centers, industrial feeders | View β |
| 400:5 | 80:1 | 0.5 / 5P20 | 10 | 2.0″ | Industrial main switchboards | View β |
| 500:5 | 100:1 | 0.5 / 5P20 | 10 | 2.5″ | Large industrial distribution | View β |
| 600:5 | 120:1 | 0.5 / 5P20 | 15 | 2.5″ | Large commercial, industrial substations | View β |
| 750:5 | 150:1 | 0.5 / 5P20 | 15 | 3.0″ | Bus duct monitoring, large feeders | View β |
| 800:5 | 160:1 | 0.5 / 5P20 | 15 | 3.0″ | Main distribution switchgear | View β |
High Current CT Ratios (1000A – 6000A)
Used for utility metering, substations, power plants, and high-voltage applications. These are
typically bar-type CTs with larger window sizes.
| CT Ratio | Turns Ratio | Accuracy Class | Burden (VA) | Window Size | Typical Application | Specs |
|---|---|---|---|---|---|---|
| 1000:5 | 200:1 | 0.5 / 5P20 | 15 | 3.5″ | Substation metering, MV applications | View β |
| 1200:5 | 240:1 | 0.5 / 5P20 | 15 | 4.0″ | Transformer primary side metering | View β |
| 1500:5 | 300:1 | 0.5 / 5P20 | 15 | 4.0″ | Large industrial plants, substation feeders | View β |
| 2000:5 | 400:1 | 0.5 / 5P20 | 30 | 4.5″ | Utility-grade metering | View β |
| 2500:5 | 500:1 | 0.5 / 5P20 | 30 | 4.5″ | High capacity substations | View β |
| 3000:5 | 600:1 | 0.5 / 5P20 | 30 | 5.0″ | Generator monitoring, substation mains | View β |
| 4000:5 | 800:1 | 0.5 / 10P20 | 30 | 5.0″ | Power plant outputs | View β |
| 5000:5 | 1000:1 | 0.5 / 10P20 | 30 | 6.0″ | Main bus monitoring, HV substations | View β |
| 6000:5 | 1200:1 | 0.5 / 10P20 | 30 | 6.0″ | Utility main bus, major industrial | View β |
How to Select the Right CT Ratio
Step 1: Determine Maximum Load Current
Calculate or measure the maximum expected current in the circuit. The CT primary rating should be equal to or
slightly higher than this value.
rating. This ensures optimal accuracy within the CT’s linear range.
Step 2: Check Conductor Size vs. Window Size
Ensure your conductor (cable or bus bar) will physically fit through the CT window:
| Window Size | Suitable Conductor (Approx.) |
|---|---|
| 0.75″ | Up to #4 AWG |
| 1.0″ | Up to #1 AWG |
| 1.5″ | Up to 250 MCM |
| 2.0″ | Up to 500 MCM |
| 2.5″ | Up to 750 MCM or small bus bar |
| 3.0″ – 4.0″ | Large cables or bus bars |
Step 3: Select Accuracy Class
- Revenue Metering (Billing): Use Class 0.2S or 0.5S for accurate billing over varying loads.
- Energy Management: Class 0.5 is sufficient for monitoring and control.
- Protection: Use 5P20 or 10P20 class for relay applications requiring high fault current
accuracy.
Understanding CT Accuracy Classes (IEC 61869-2)
| Class | Ratio Error at Rated Current | Typical Application |
|---|---|---|
| 0.2 | Β±0.2% | High-precision laboratory, utility revenue metering |
| 0.2S | Β±0.2% (from 20% to 120% In) | Revenue metering with variable loads |
| 0.5 | Β±0.5% | Standard energy management, sub-metering |
| 0.5S | Β±0.5% (from 20% to 120% In) | Extended range monitoring |
| 1.0 | Β±1.0% | Indication, general monitoring |
| 5P20 | 5% composite error up to 20Γ In | Overcurrent protection relays |
| 10P20 | 10% composite error up to 20Γ In | High-fault-current protection |
Understanding CT Burden (VA)
The burden is the total load connected to the CT secondaryβincluding meters, relays, and wiring
resistance. Exceeding the rated burden degrades accuracy.
between 25% and 100% of its rated VA. Operating below 25% may cause positive errors.
Standard IEC Burden Ratings
2.5 VA | 5 VA | 10 VA | 15 VA | 30 VA
Modern electronic meters typically have very low burden (0.1-0.5 VA), so low-burden CTs (2.5-5 VA) are often
sufficient for new installations.
Frequently Asked Questions
β What does CT ratio 400:5 mean?
current. This allows safe measurement with a 5A ammeter.
β Can I use a CT with a higher ratio than needed?
the CT’s rated primary current.
β What is the difference between 5P20 and 10P20 protection
classes?
relays.
10P20: 10% composite error at up to 20Γ rated current. Used for high-fault-current
applications where wider tolerance is acceptable.
Standards & References
Current transformer specifications are governed by the following international standards. For official documentation,
visit the respective standards organizations:
- IEC
61869-2: Instrument transformers β Part 2: Additional
requirements for current transformers - IEEE
C57.13: IEEE Standard Requirements for Instrument Transformers - ANSI C12.1: American National Standard for Electric Meters β Code
for Electricity Metering - NIST Handbook
44: Specifications for Current Transformers Used in
Metering
For more background on current transformer principles and operation, see
the Wikipedia article on
Current Transformers.
Related Resources
π Current Transformer Complete Guide
CT
fundamentals & theory
π Transformer Sizing Chart
Power transformer
selection
Disclaimer: Specifications shown are typical reference values per IEC 61869-2. Actual specifications vary by
manufacturer. Always consult manufacturer datasheets for exact values. Last updated: January 2026