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Fuse Technical Principles

Fuse I²t and Energy Let-Through: How to Coordinate Fuse Protection with Downstream Equipment

September 7, 2026 · 7 min read · By liro8527@gmail.com

Fuse I²t and Energy Let-Through: How to Coordinate Fuse Protection with Downstream Equipment

Fuse I2t and Energy Let-Through: How to Coordinate Fuse Protection with Downstream Equipment

I2t (ampere-squared seconds) is the most important parameter for understanding how a current-limiting fuse protects downstream equipment. Every published fuse datasheet includes pre-arcing I2t, total clearing I2t, and peak let-through current values that define exactly how much thermal and mechanical stress the fuse will pass through to downstream components during a short-circuit event.

This article explains what these values mean, how they relate to each other, and how to coordinate fuse I2t with the withstand ratings of downstream equipment like motor starters, semiconductors, and cables.

What Is I2t?

I2t is the integral of current squared over time during the fuse’s opening operation. It represents the thermal energy delivered to the circuit during a short circuit and has units of ampere-squared seconds (A2s).

For any protective device, the total clearing I2t is the energy that reaches the downstream circuit. For the fuse element itself, the pre-arcing I2t is the energy required to melt the element. The difference (total clearing I2t minus pre-arcing I2t) is the energy dissipated in the arc inside the fuse after the element melts.

Two I2t values are commonly published:

  • Pre-arcing I2t (I2t_p): Energy required to begin melting the element. Determined by element mass, material, and geometry.
  • Total clearing I2t (I2t_t): Energy delivered until the arc is fully extinguished. Higher than pre-arcing because of arcing time.

Why I2t Matters for Downstream Protection

The thermal energy that a short circuit delivers to a downstream component follows:

Energy (J) = I2 × R × t

Where R is the circuit resistance and t is the fault duration. For a fuse with a given pre-arcing I2t, the downstream component must be able to withstand this energy without damage.

Components with published I2t withstand ratings include:

  • Motor contactors and starters (typically 50,000 to 500,000 A2s at various fault durations)
  • Semiconductor devices (diodes, thyristors, IGBTs — often 1,000 to 100,000 A2s)
  • Cables (limited by adiabatic heating equation I2t = k2 × S2, where S is conductor cross-section)
  • Bus bars and bracing (specified by short-circuit withstand in kA peak or kA2s)

If the fuse’s total clearing I2t exceeds the component’s withstand, the component will be damaged even though the fuse operated correctly.

Peak Let-Through Current (Ip)

In addition to I2t, fuses have a peak let-through current (Ip) — the maximum instantaneous current that passes through the fuse before it opens. For a current-limiting fuse, Ip is much lower than the peak available fault current.

For example, a 200 kA prospective fault current through a 100 A LPJ fuse might have an Ip of only 20,000 A — a 10:1 reduction. This peak let-through is critical for:

  • Mechanical stress on bus bars and bracing (proportional to I2)
  • Semiconductor peak current ratings
  • Cable electromagnetic forces that can damage terminations

Manufacturer datasheets publish let-through curves that show Ip as a function of available fault current at a given fuse rating.

Reading Manufacturer I2t Data

A typical Bussmann LPJ datasheet includes a table like:

Ampere rating Pre-arcing I2t (A2s) Total clearing I2t @ 600 V (A2s) Peak let-through Ip (kA)
30 A 350 1,800 8
60 A 1,400 7,500 14
100 A 4,000 22,000 22
200 A 16,000 90,000 35
400 A 65,000 350,000 55
600 A 145,000 800,000 75

These values are determined by laboratory testing under controlled fault conditions and verified by UL certification.

Coordinating Fuse I2t with Downstream Devices

The standard coordination rule is:

Downstream device I2t withstand ≥ Fuse total clearing I2t at the maximum fault current

If the downstream device has a lower I2t rating than the fuse, you have three options:

  1. Use a smaller upstream fuse: A smaller fuse has lower I2t but may nuisance-trip on normal load
  2. Use a faster-acting fuse class: Semiconductor fuses (aR) are designed for very low I2t
  3. Use a coordination study tool: Bussmann and other manufacturers offer online tools that match fuse I2t to motor starter I2t withstand for known combinations

Selective Coordination Between Fuses

When two fuses are in series (main + feeder), selective coordination ensures that only the downstream fuse operates for faults on its circuit. The upstream fuse must have a higher total clearing I2t than the downstream fuse’s pre-arcing I2t at the fault current.

The rule for coordination:

Upstream fuse pre-arcing I2t ≥ Downstream fuse total clearing I2t × safety margin

A safety margin of 1.5× or 2× is typically applied to account for fuse aging, manufacturing tolerances, and ambient temperature variations.

I2t Considerations for Specific Components

Motor contactors: Most IEC motor contactors have published I2t withstand values (sometimes called “conditional short-circuit current”). Match the upstream fuse’s I2t to the contactor rating using the manufacturer’s coordination tables.

Semiconductor devices (diodes, SCRs, IGBTs): Semiconductor I2t withstand is typically much lower than electromechanical device ratings. Use aR-class semiconductor fuses (Bussmann FWH, FWJ series) specifically designed for low I2t and very fast clearing.

Cables: The IEC 60364 adiabatic equation gives: “ t = (k × S / I)2 “ Where k is the cable material constant (115 for copper with PVC, 143 for XLPE), S is the conductor cross-section in mm2, I is the fault current, and t is the maximum fault duration. The fuse must clear before this time.

Practical Example: Coordinating a 200 A LPJ with a 100 A Motor Starter

System: 480 V three-phase, 65 kA available fault current, 200 A LPJ main, 100 A motor starter feeder.

Step 1 — Look up 100 A motor starter I2t withstand: A typical 100 A IEC contactor withstands 50,000 A2s at 65 kA.

Step 2 — Look up 100 A LPJ total clearing I2t at 65 kA: From the curve, total clearing I2t ≈ 22,000 A2s.

Step 3 — Verify: 22,000 A2s < 50,000 A2s ✅ Coordinated.

The starter can safely interrupt the let-through energy from the LPJ fuse. If the calculation had failed (e.g., with a smaller starter), you would either upsize the starter or add a smaller fuse upstream of the starter.

Tools and Software

Bussmann offers the FuseSelector and Coordination tools for free with registration. These tools:

  • Calculate available fault current
  • Recommend fuse types and ratings
  • Generate coordination tables automatically
  • Verify I2t matching for common motor starter combinations

For complex systems, third-party tools like ETAP or SKM PowerTools provide full coordination studies with time-current curves, I2t, and Ip verification across the entire electrical system.

Frequently Asked Questions

Does I2t change with system voltage? Yes, slightly. Higher system voltages cause faster arcing extinction, reducing total clearing I2t. Manufacturer datasheets typically publish values at 600 V AC.

Are higher I2t values better? Not necessarily. For coordination purposes, lower I2t is better — it means less stress on downstream equipment. But a fuse with very low I2t may nuisance-trip on inrush.

What is “Ip” vs “I2t”? Ip is the peak instantaneous current (kA). I2t is the energy (A2s). Both matter for different downstream stress types.

Can two fuses with different I2t values coordinate? Yes, if the upstream pre-arcing I2t is larger than the downstream total clearing I2t. Coordination depends on the I2t ratio, not absolute values.

Where to Get I2t Data for Bussmann Fuses

Every FuseStock product page links to the manufacturer’s published datasheet with full I2t, Ip, and time-current curve data. Submit a request for our coordination study support if you need help matching fuse I2t to your specific downstream equipment.


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