| Main Function | A circuit breaker box, also called a distribution board or electrical panel, distributes electricity to individual circuits and provides overcurrent protection. | Residential distribution, commercial distribution, industrial distribution | Homes, offices, retail buildings, workshops, and industrial facilities | Confirm that the enclosure, breakers, busbars, and terminals are designed to work together as a complete assembly. |
| Installation Type | Describes how the enclosure is mounted and how much space it occupies. | Flush-mounted, surface-mounted, floor-standing | Flush-mounted units are common in finished walls; surface-mounted units are practical for renovations and utility areas. | Check wall construction, available depth, cable-entry direction, and maintenance access before ordering. |
| Number of Ways | The number of outgoing circuit positions available in the enclosure. | 4, 6, 8, 12, 18, 24, 36, or more ways | Small residential installations generally need fewer ways, while commercial and industrial systems require more circuits. | Allow spare ways for future expansion; the exact usable capacity depends on the breaker format and local design rules. |
| Rated Voltage | The maximum system voltage for which the assembly is designed. | 230 V single-phase systems; 400 V three-phase systems are common in many IEC-based markets | Residential, commercial, and light industrial power distribution | Match the panel rating with the local electrical supply, phase arrangement, insulation system, and applicable standard. |
| Rated Current | The continuous current that the distribution assembly can carry under specified conditions. | Common panel ratings include 40 A, 63 A, 100 A, 125 A, 250 A, and higher | Determined by the incoming supply, connected load, conductor size, and installation method | The rating must not exceed the capacity of the incoming cable, main protective device, busbar, or other critical components. |
| Breaker Technology | The type of protective device used to interrupt abnormal current conditions. | MCB for overload and short-circuit protection; MCCB for higher current applications; RCBO for combined overcurrent and residual-current protection | MCBs are widely used for final circuits; MCCBs are used in larger feeders; RCBOs provide individual circuit residual-current protection. | Verify pole count, tripping characteristics, breaking capacity, terminal compatibility, and coordination with upstream devices. |
| Residual-Current Protection | Protection that detects leakage or imbalance between line and neutral conductors to reduce electric-shock and fire risks. | RCCB or RCD; RCBO for combined residual-current and overcurrent protection | Socket-outlet circuits, wet areas, outdoor circuits, and other locations where residual-current protection is required | Trip sensitivity and time characteristics must comply with local regulations and the intended application; residual-current devices do not replace overcurrent protection unless they are RCBOs. |
| Short-Circuit Breaking Capacity | The maximum prospective fault current that a breaker can safely interrupt at its rated voltage. | Common low-voltage ratings include 4.5 kA, 6 kA, 10 kA, and higher, depending on the device and market | Selection depends on the calculated prospective short-circuit current at the installation point. | Do not select solely by rated current; the breaking-capacity rating must be equal to or greater than the available fault current. |
| Enclosure Material | The material provides mechanical protection, insulation, and environmental resistance. | Insulating thermoplastic, steel, stainless steel, or other application-specific materials | Insulating enclosures are common for indoor distribution; metal enclosures are often selected for higher mechanical protection. | Consider impact resistance, corrosion exposure, heat dissipation, UV exposure, and whether a metal enclosure requires protective earthing. |
| Ingress Protection | The IP code indicates protection against solid objects and water under defined test conditions. | IP20 for basic indoor protection; IP40 or IP41 for selected indoor uses; higher ratings for dust or water exposure | Indoor rooms, utility spaces, workshops, outdoor locations, and industrial environments | Choose the IP rating based on the actual installation environment. A higher IP rating does not automatically provide corrosion or impact protection. |
| Busbar Arrangement | Conductive bars distribute power from the incoming supply to outgoing protective devices. | Single-phase line and neutral arrangements; three-phase line, neutral, and protective-earth arrangements | Depends on the supply system and the number of poles used by the outgoing circuits. | Check current rating, insulation, phase identification, touch protection, spacing, and compatibility with the selected breakers. |
| Neutral and Earth Terminals | Dedicated terminal blocks provide organized connections for neutral and protective-earth conductors. | Separate neutral and earth bars; insulated neutral bar where required by the system design | Residential, commercial, and industrial distribution boards | Neutral and protective-earth conductors must be arranged according to the local earthing system and wiring regulations. |
| Operating Environment | The temperature, humidity, altitude, dust, chemicals, and mechanical conditions surrounding the enclosure. | Indoor dry areas; humid areas; dusty areas; outdoor or corrosive environments | Buildings, factories, agricultural facilities, construction sites, and outdoor electrical installations | Review operating-temperature limits, derating requirements, condensation risk, corrosion resistance, and ventilation needs. |
| Applicable Standards | Standards define safety, performance, testing, dimensions, and marking requirements. | IEC 61439 for low-voltage switchgear and controlgear assemblies; IEC 60898-1 for household and similar MCBs; IEC 60947-2 for circuit breakers in broader industrial applications | International projects and markets using IEC-based electrical systems | Confirm the destination market's required standards, certification documents, test reports, and conformity-marking rules. |
| Customization Requirements | Modifications made to match a project’s electrical layout or installation conditions. | Custom way count, busbar layout, cable-entry openings, labeling, lockable door, transparent cover, surge protection, or metering space | Large projects, export installations, OEM assemblies, and special industrial applications | Provide a single-line diagram, circuit schedule, enclosure dimensions, environmental conditions, and required certification before production. |
| Quality Verification | Checks that confirm the assembly and protective devices meet the specified design and safety requirements. | Visual inspection, dimensional inspection, torque verification, insulation testing, dielectric testing, protective-circuit continuity testing, and functional checks | Pre-shipment inspection, factory acceptance testing, and project quality control | Request documented test procedures, inspection records, component specifications, and traceable production information where required. |