Miniature Circuit Breaker

MCB Manufacturer in China

If you’re looking for MCBs for a project, you already know the specs matter. What makes the difference is whether your supplier actually delivers what they promise — on time, to spec, without surprises.

At Licen, that’s what we do. We make miniature circuit breakers that meet real-world demands, and we keep the process simple so you can focus on your work, not on chasing orders.

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Wholesale Finished Miniature Circuit Breakers

Different projects call for different MCBs. Use the tabs below to explore the options by type and find the one that matches your requirements.

  • Z Curve MCB

    Trips at 2–3x rated current. Ultra-sensitive protection for semiconductors and sensitive electronics.

    Explore Z Curve MCB →
    Front view of a white three-pole circuit breaker with a single blue handle linking three switches. It features three sets of screw terminals at the top and bottom, and three small green indicator windows, with the label 'Z63' printed above the leftmost window.
  • B Curve MCB

    Trips at 3–5x rated current. Ideal for lighting circuits, domestic sockets, and resistive loads.

    Explore B Curve MCB →
    A white B40 2-pole miniature circuit breaker with a blue toggle handle and top/bottom terminal screws, used for electrical overload and short-circuit protection
  • C Curve MCB

    Trips at 5–10x rated current. The standard choice for commercial circuits, motors, fans, and transformers.

    Explore C Curve MCB →
  • K Curve MCB

    Trips at 10–14x rated current. Specialized for inductive loads with frequent switching — hoists, lifts, and conveyors.

    Explore K Curve MCB →
    A white two-pole circuit breaker with a central blue switch handle, two green indicator windows, and the marking 'K63' on the front.
  • D Curve MCB

    Trips at 10–20x rated current. Designed for heavy industrial equipment with high startup surges.

    Explore D Curve MCB →
    White 2P D16 miniature circuit breaker, double-pole design with red linked operating handle and green status indicator windows, D-curve tripping characteristic
  • AC MCB

    When we talk about miniature circuit breakers, we’re typically referring to AC MCBs — the industry standard for 50/60Hz systems.

    Available in 1P, 2P, 3P, and 4P configurations up to 125A. Suitable for residential, commercial, and industrial distribution boards. Provides overload and short-circuit protection for AC circuits.

    Explore AC MCB →
  • DC MCB

    DC miniature circuit breakers are engineered specifically for direct current applications where AC MCBs cannot be used.

    Purpose-built for solar PV systems, battery storage, EV charging, and DC power supplies. Rated for 250V–500V DC with polarity markings (+/−) for correct installation.

    Explore DC MCB →
    A white-background product close-up showing a gray and white two-pole DC MCB. The top terminals are marked with '+' and '-' polarity symbols, and the front face features the 'DC' logo and '500V' DC rated voltage parameter. A red linked operating handle is located at the bottom, representing a key safety protection and switching control component in DC power distribution systems.
  • Control & Auxiliary Circuits

    For control circuits, signaling, instrumentation, and other low-current auxiliary applications where you want a little extra precision in protection.

    0.2A0.5A1A2A3A4A
  • Lighting & General Circuits

    Handles lighting, general branch circuits, and standard wall sockets — the bread and butter of most residential and light commercial work.

    6A8A10A13A16A
  • Dedicated Equipment & Medium Loads

    For dedicated outlets running things like ovens or air conditioning units, plus medium-load branches that a 16A circuit just won't cut.

    20A25A32A
  • Main Feeders & Sub-Distribution

    The workhorses — main incoming switches or sub-distribution feeders in smaller commercial and residential panels.

    40A50A63A
  • High-Current Distribution

    For heavier distribution and large loads. Worth noting: once you go above 80A, you're typically looking at MCCBs rather than MCBs in most panel designs.

    80A100A 125A
  • 1P MCB

    Single-pole protection for lighting and low-power circuits. Protects the live wire only — neutral remains permanently connected. A standard 1P breaks live only, which means the neutral can remain live during maintenance and pose a safety risk.

    Best for: Residential lighting, general sockets, low-power equipment.

  • 1P + N MCB

    Single-pole protection with neutral switching. The live wire has full overload and short-circuit protection. The neutral only switches on/off with the live — it has no protection capability of its own. Compared to standard 1P, the advantage is that it breaks both live and neutral simultaneously, making maintenance safer. Same 18mm width as 1P.

    Best for: Residential lighting circuits, general socket circuits — a safety upgrade from 1P.

  • 2P MCB

    Double-pole protection with full protection on both live and neutral. Unlike 1P+N, the neutral in a 2P MCB has its own independent overload and short-circuit protection — not just switching. Both poles trip simultaneously for complete isolation.

    Best for: Main incomer, air conditioners, kitchen outlets, water heaters — any heavy-load circuit.

  • 3P MCB

    Three-pole protection for three-phase loads. Protects all three live wires (L1, L2, L3) — neutral does not pass through the breaker. All three poles trip together if any phase faults.

    Best for: Three-phase motors, industrial pumps, central AC units, small factory panels.

  • 3P+N MCB

    Three-pole protection with neutral switching. Three live poles have full protection. Neutral switches on/off with the lives but has no protection capability — switched neutral only. Key difference from 4P: neutral is a switch, not a protected pole.

    Best for: ATS front-end isolation, main incoming isolators in three-phase boards where neutral protection is not required.

  • 4P MCB

    Full four-pole protection — both live and neutral have independent overload and short-circuit protection. Any fault on any pole trips all four simultaneously. The neutral receives the same level of protection as the live poles — this is the essential difference from 3P+N.

    Best for: TT earthing systems, healthcare/data center distribution, and any critical circuit where neutral protection matters.

What Is an MCB?

An MCB is a protective device that monitors the current flowing through a circuit and disconnects it when the current exceeds a safe level. It helps prevent damage to wiring and equipment from overloads or short circuits.

You’ll find MCBs in residential distribution boards, commercial panels, and industrial control cabinets. They’re a standard part of any low-voltage electrical installation, and they come in a range of types to suit different applications — which we covered in the section above.

One core advantage over fuses: when an MCB trips, you can simply reset it. No replacement needed, which means less downtime and fewer spare parts to keep on hand.

An open brown cardboard box filled with neatly arranged MCBs. The three units on the left feature a grey body and pinkish-red handle, while the units on the right have a white body and red handle. The front of the breakers clearly shows the 'BD1-63S C32' model number and CE certification mark.

MCB Applications

Three Key Roles of an MCB in an Electrical System

Think of an MCB as more than just a trip switch. In a well-designed electrical system, it plays a few different roles — all of which contribute to keeping things safe, stable, and easy to manage.

MCB Tripping Curve Live Simulator and Comparator

To help you better understand how different MCB trip curves work, we've put together this interactive tool. Toggle any curve, drag the slider, or click on the chart — the trip time updates instantly.

Curves:
Current (I / In): 4.5 × In
I / In Time t(s)

The Advantages and Disadvantages of MCB

MCBs are a standard part of most electrical installations, but they're not the right fit for every situation. Here's a balanced look at what they do well and where you need to be careful.

Advantages

Why Choose an MCB?
  • Reliable Circuit Protection

    When current exceeds the safe level, the MCB disconnects the circuit automatically. This protects your wiring and equipment from damage — before it happens.

  • Easy Reset and Reuse

    A tripped MCB can be reset once the fault is cleared. No replacement needed, unlike fuses. That means less downtime and fewer spare parts to keep in stock.

  • Fast Fault Response

    MCBs react quickly to short circuits and severe overloads. The faster the response, the less chance of damage to cables, components, or connected equipment.

  • Compact & Space-Saving

    MCBs take up very little room in a distribution board. You can fit multiple circuits in a compact space, which matters when panel space is tight.

  • Flexible Application

    Available in different pole configurations, trip curves, and current ratings. Whether it's a home, a shop, or a factory, there's an MCB designed for the job.

A white MCB standing vertically on top of a brown corrugated cardboard box. The breaker has a black toggle handle and metal screw terminals at the top and bottom. The background features blurred blue storage cabinets. On the surface of the box, there is a strip of transparent tape and a white label printed with a black triangular logo.

Disadvantages

What Should You Consider?
  • Limited Current Range

    MCBs are designed for lower-current circuits — typically up to 125A. For heavier loads, you'll need a MCCB or other protection device.

  • Breaking Capacity

    Every MCB has a maximum fault current it can safely interrupt. If the prospective short-circuit current at your installation point exceeds that rating, the MCB may not provide adequate protection.

  • Only for Overcurrent

    An MCB responds to overloads and short circuits. It does not protect against earth leakage, voltage fluctuations, or other electrical issues — those require additional devices.

  • Careful Selection Required

    Choosing the right MCB isn't just about the amp rating. Voltage, poles, breaking capacity, trip curve, and coordination with other devices all need to be considered.

  • May Trip on Startup Surges

    Some equipment draws a high inrush current when starting up — motors, compressors, and transformers, for example. If the MCB isn't properly selected for the application, it may trip unnecessarily.

The Components of an MCB

An MCB looks simple from the outside, but there's a bit more going on inside. Here's a quick look at the main components and what each one does.

  • Operating Mechanism

    This is the part you interact with when you flip the handle. It controls the opening and closing of the contacts — whether you're switching the breaker manually or it's tripping automatically during a fault.

  • Bimetal Strip

    This handles overload protection. When current stays above the rated level for too long, a bimetal strip heats up, bends, and triggers the mechanism to open the circuit. It's a slow, deliberate response to sustained overcurrent.

  • Magnetic Coil

    This handles short circuits. When a massive current surge occurs, the magnetic force generated inside the breaker is strong enough to trip the mechanism instantly. It's fast — milliseconds fast.

  • Contacts

    These are the parts that actually make and break the circuit. They carry current during normal operation and separate when the breaker trips. The quality of the contacts affects how well the breaker performs over time.

  • Arc Chute

    When the contacts open under fault current, an arc forms between them. The arc chute splits, cools, and extinguishes that arc — safely and quickly — so the breaker can complete the interruption.

  • Terminal Blocks

    These are the connection points where the MCB connects to the incoming and outgoing wiring. A good connection here means less heat, less resistance, and fewer problems down the line.

  • Insulating Housing

    The outer shell that holds everything together. It provides electrical insulation, protects the internal parts from dust and impact, and keeps the breaker compact enough to mount side by side on a DIN rail.

A cross-sectional view showing the internal structure of an AC MCB. Red arrows identify key components, including top and bottom terminal blocks, electrical contacts, a magnetic coil, a bimetal strip, the operating mechanism, a red arc chute, the outer housing, and the insulating housing.
A cross-sectional view showing the internal structure of a DC MCB. Red arrows identify key components, including top and bottom terminal blocks, electrical contacts, a magnetic coil, a bimetal strip, the operating mechanism, a white multi-plate arc chute, the outer housing, and the insulating housing.

How Does an MCB Work?

An MCB protects an electrical circuit through a simple, automatic process. The following four steps explain how it responds to changing current conditions.

  1. Normal Current Flow

    Under normal conditions, current flows through the MCB and powers the connected load. The breaker stays closed, the contacts remain engaged, and the circuit operates as expected without any interruption — everything runs smoothly.

  2. Excessive Current Occurs

    When an overload or a short circuit happens, the current rises above the rated level. The MCB detects this change immediately and prepares to open the circuit before any damage can occur to wiring or equipment connected to it.

  3. The MCB Trips

    Two internal systems respond to excessive current. The thermal system handles sustained overcurrent — it heats up and triggers the mechanism. The magnetic system handles sudden surges instantly. Either way, the contacts open and the circuit is broken.

  4. The Circuit Is Interrupted

    With the contacts now open, the fault current stops flowing and the affected circuit is isolated from the power supply. Once the issue is identified and resolved, you can reset the MCB manually to restore normal operation and power to your equipment.

Why Licen for This Solution?

You're not just looking for a box of MCBs. You're looking for a supplier that understands the application, gets the specification right, delivers consistently, and supports you when something needs attention.

FAQs

Some common questions about MCBs

MCB Related Resources

Here are some useful blogs related to MCBs.

Ready to Start Your Project?

We manufacture MCBs in-house and supply them to projects worldwide. If you have a project in mind or need a reliable source for your supply chain, get in touch — we'll send you a quote promptly.