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Neodymium Grades Explained: N35–N52 and M/H/SH/UH/EH

The grade code on every NdFeB quotation is two decisions in one — strength and temperature survival. Here is how to read it, and how to choose without over-specifying.

Every NdFeB quotation carries a grade like N42 or N48SH. That short code contains two independent decisions — one about magnetic strength, one about temperature survival — and confusing the two is the single most common grade-selection error we see.

The Number: Maximum Energy Product

The number after "N" is the magnet's maximum energy product, (BH)max, in Mega-Gauss-Oersteds (MGOe). It tells you how much magnetic energy a given volume of material can deliver. N35 stores roughly 35 MGOe; N52 roughly 50–53 MGOe — the practical ceiling of commercial production.

In design terms: a higher number means the same flux from a smaller magnet, or more flux from the same volume. It says nothing about temperature resistance.

GradeRemanence Br (typical)(BH)max (typical)Design note
N351.17–1.21 T33–36 MGOeWorkhorse grade, best cost efficiency
N421.29–1.33 T40–43 MGOeCommon default for motors
N481.37–1.41 T46–49 MGOeCompact designs
N521.42–1.47 T50–53 MGOeHighest commercial strength; tightest geometry tolerance needed

Typical ranges — exact values vary slightly between manufacturers and material lots.

The Letter: Coercivity and Temperature Survival

The letter suffix (M, H, SH, UH, EH) indicates intrinsic coercivity Hcj — the material's resistance to demagnetization — which in practice defines its maximum operating temperature. Higher coercivity is achieved with heavy rare earth content (dysprosium or terbium), which is why high-temperature grades cost significantly more.

SuffixIntrinsic coercivity Hcj (min., typical)Max. operating temperature
(none)≥ 12 kOe≈ 80°C
M≥ 14 kOe≈ 100°C
H≥ 17 kOe≈ 120°C
SH≥ 20 kOe≈ 150°C
UH≥ 25 kOe≈ 180°C
EH≥ 30 kOe≈ 200°C

AH grades (≈ 220–230°C) exist for special cases. Above that, you are in SmCo territory — see our material comparison.

Why the Temperature Rating Matters More Than Strength

NdFeB loses flux two ways when hot. Reversible loss (about −0.12 %/°C for Br) comes back when the magnet cools. Irreversible loss does not: once the operating point crosses the material's knee point, the magnet is permanently weaker — and your motor, sensor or latch now underperforms forever, even though nothing looks damaged.

The classic failure: an engineer specifies N52 for maximum performance in a motor that runs at 110–120°C. N52 has no temperature suffix — it is an 80°C-class material. The samples test beautifully at room temperature; six months into field operation, the irreversible losses show up as torque fade and customer complaints.

Rule of thumb: the strongest magnet is the one that is still magnetized at your operating temperature. An N42SH that survives will outperform an N52 that doesn't.

A Four-Step Selection Workflow

  • Define your true maximum operating temperature — including worst-case ambient, self-heating, and transient peaks. Add margin.
  • Choose the suffix first. Temperature survival is non-negotiable; flux can be recovered with geometry.
  • Choose the lowest N-number that meets your flux requirement. Every step up in strength or coercivity adds cost; high-coercivity grades carry heavy-rare-earth premiums.
  • Validate at temperature, not at the desk. Sample testing should include your real thermal profile, not just room-temperature flux checks.

What We Ask Before Quoting a Grade

When you send us an inquiry, expect these questions: continuous and peak operating temperature, external demagnetizing fields (in motors and sensors), required flux or holding force, and available volume. With those four answers, grade selection stops being guesswork — and you don't pay for dysprosium you don't need.

Prefer the printable version?

Grades, material families, coatings, tolerances and an RFQ checklist — condensed into a free 2-page PDF you can pin next to your CAD station.

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