| 12 V DC | Small control circuits, vehicle auxiliaries, portable equipment, and battery-powered systems. | 1 pole is commonly used when the breaker is specifically rated for the circuit. | The breaker’s marked DC voltage rating must be at least the maximum continuous system voltage, including charging voltage. | Although the voltage is relatively low, DC current does not naturally pass through zero as it does in AC. The breaker still needs a suitable DC interrupting design. | Verify continuous current, short-circuit interrupting rating, polarity requirements, and whether the negative conductor must also be isolated. |
| 24 V DC | Industrial controls, automation panels, instrumentation, and communications equipment. | 1 pole is common for individual branch circuits; multi-pole isolation may be required by the installation design. | Use a breaker with a certified DC voltage rating equal to or higher than the actual maximum operating voltage. | Control power supplies can deliver high fault current when connected to large battery banks or low-impedance power supplies, so interrupting capacity remains important. | Check the available fault current at the installation point and confirm compatibility with the power supply’s short-circuit behavior. |
| 48–60 V DC | Telecommunications, data-network power systems, solar-battery storage, and industrial battery systems. | 1 pole or 2 poles, depending on grounding arrangement, isolation requirements, and the breaker’s certified configuration. | Do not assume an AC rating applies to DC. Confirm the exact DC voltage rating for the number of poles connected in series. | Arc energy increases with available battery current. Magnetic blowout, arc chutes, contact spacing, and the specified current direction may affect performance. | Confirm whether the circuit is floating, positive-grounded, or negative-grounded, and whether both conductors need simultaneous disconnection. |
| 110–125 V DC | Substation control power, railway auxiliaries, industrial protection systems, and medium-size battery banks. | 2 poles in series may be required when each pole has a lower individual DC voltage rating; use only the manufacturer-certified arrangement. | The complete pole configuration must be rated for the system’s maximum DC voltage. A single-pole AC rating is not sufficient evidence of DC suitability. | Higher voltage sustains an arc for longer. Series-connected contacts increase the total arc voltage, but only when the breaker is designed and tested for that arrangement. | Check the pole wiring diagram, permitted polarity, voltage per pole, total interrupting rating, and required clearances. |
| 220–250 V DC | Large battery systems, industrial DC distribution, photovoltaic combiner outputs, and control-power distribution. | 2 poles in series is frequently used; higher-pole arrangements may be specified for particular breaker designs. | Select the rating from the breaker’s DC test data for the exact number of poles and wiring method, not from the nominal voltage alone. | Arc extinction requires sufficient contact separation, magnetic arc control, and an arc chamber designed for DC. Incorrect pole polarity can reduce interruption capability. | Match system voltage, prospective short-circuit current, time-current curve, conductor size, ambient temperature, and isolation requirements. |
| 400–500 V DC | Photovoltaic strings, DC-link circuits, battery energy-storage systems, and industrial power electronics. | 2, 3, or more poles in series, only as specified by the breaker’s certified DC application data. | The breaker must be rated for the full maximum DC voltage, including the highest expected open-circuit or charging condition. | Stored energy in capacitors and batteries can maintain fault current after the source is disconnected. Pre-charge circuits and DC-link discharge paths may be necessary. | Evaluate maximum prospective fault current, source backfeed, photovoltaic reverse current, capacitor discharge, polarity, and safe isolation distance. |
| 600–750 V DC | Electric-vehicle charging equipment, traction auxiliaries, photovoltaic arrays, and high-power industrial DC systems. | Multi-pole series configuration is normally required unless a breaker is specifically certified for the full voltage on fewer poles. | Use a DC-rated breaker whose tested voltage and interrupting capacity cover the complete system, including transient and regenerative conditions. | Longer arcs and higher stored energy make pole coordination, arc-chute performance, creepage, clearance, and correct polarity especially important. | Verify coordination with fuses, contactors, insulation-monitoring equipment, emergency disconnects, and the upstream protection device. |
| 800–1,000 V DC | Utility-scale photovoltaics, battery energy-storage systems, traction power, and high-voltage DC equipment. | Purpose-designed multi-pole configuration; do not create a series arrangement unless it is explicitly covered by the product’s certification. | Confirm the rated operational voltage, insulation voltage, impulse withstand level, and DC short-circuit interrupting rating for the intended installation. | Arc extinction is highly dependent on the tested contact system and arc chamber. Battery fault current can remain high for a long duration. | Use a documented protection study covering fault current, selective coordination, isolation, touch safety, thermal limits, and service procedures. |