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What Is the Difference Between Maximum Operating Temperature and Curie Temperature?

Short answer

Maximum operating temperature is the highest temperature a magnet can typically handle in normal use without a significant permanent loss of strength. Curie temperature is the much higher point where the material stops being ferromagnetic and loses its magnetism altogether. They aren’t interchangeable: a standard N-grade neodymium magnet is rated about 80 °C (176 °F) but has a Curie temperature of roughly 310 °C (590 °F), and it starts losing strength for good long before it gets that hot. When you choose a magnet for heat, use the maximum operating temperature, with some margin.

What Is Maximum Operating Temperature?

The maximum operating temperature, also called the maximum working temperature, is the highest temperature a magnet can typically withstand in normal use without significant permanent loss of magnetic strength. Below it, a neodymium magnet gets a little weaker as it warms and recovers fully when it cools.

Each neodymium grade class has its own rating, set mainly by the letters after the number (N42, N42SH and so on). The rating is a guideline, not a guarantee: the real limit for your magnet also depends on its shape, what it’s attached to and the conditions it works in.

What Is Curie Temperature?

The Curie temperature is the temperature at which a magnetic material loses its ferromagnetic properties. Above it, the material can no longer hold magnetism, and the magnet is fully demagnetized.

The Curie temperature is a property of the alloy itself, so it changes little from grade to grade. In our grade data it’s about 310 °C (590 °F) for standard N grades and about 340 to 350 °C (644 to 662 °F) for the higher-temperature grades. It’s a physical ceiling, not a design limit: a magnet loses much of its strength long before it gets there.

Maximum Operating Temperature vs. Curie Temperature

Maximum operating temperature Curie temperature
What it means The practical limit for normal use without significant permanent loss The point where the material stops being ferromagnetic
What sets it Grade, plus shape, magnetic circuit and conditions The alloy’s chemistry
Typical value, standard N grades About 80 °C (176 °F) About 310 °C (590 °F)
Typical value, high-temperature grades About 100 to 230 °C (212 to 446 °F), depending on the letters (M to AH) About 340 to 350 °C (644 to 662 °F)
Past this point Part of the strength is lost for good, more as it gets hotter All magnetism is lost
Use it for Choosing a magnet grade Understanding the material, not for design
Temperature scale: normal operating range, then the maximum operating temperature, then increasing irreversible loss, then the Curie temperature where the magnet is no longer magnetic Normal Operating RangeIncreasing Irreversible LossNo LongerMagneticMaximum OperatingTemperatureCurieTemperatureWeaker While Hot, but FullStrength Returns on CoolingPart of the Strength Is Lost for Good,More the Hotter and Longer It GetsFullyDemagnetizedTemperature
Between the maximum operating temperature and the Curie temperature, a magnet doesn't stop working; it loses more strength for good the hotter it gets.

Why Does a Magnet Lose Strength Before Its Curie Temperature?

Heat affects a neodymium magnet in two ways.

  • Reversible loss. A warm magnet is a little weaker, roughly 0.1% for each degree Celsius above room temperature, and full strength returns when it cools. A standard magnet at 80 °C is several percent weaker while it’s hot.
  • Irreversible loss. Heat also lowers the magnet’s coercivity, its resistance to being demagnetized. Once the magnet’s own field, or an outside field, can overcome that resistance, part of the material flips direction. That part stays flipped when the magnet cools, so some strength is lost for good. This is a form of demagnetization, and it’s what the maximum operating temperature guards against.
Conceptual chart of magnet strength versus temperature: while hot and after cooling, showing reversible loss below the maximum operating temperature and permanent loss above it 0%25%50%75%100%Maximum OperatingTemperatureCurieTemperatureRoomTempPermanent LossReturns on CoolingStrengthWhile HotAfter CoolingConceptual Curves: The Shape of the Effect, Not Data for a Specific Grade
Below the maximum operating temperature, strength dips while hot and comes back. Above it, part of the loss stays after the magnet cools, and the share grows with temperature.

Strength lost this way can only be restored by remagnetizing the magnet in an industrial magnetizer, and only if the heat hasn’t damaged the material. For most buyers, replacing the magnet is simpler.

What Happens If a Neodymium Magnet Gets Too Hot?

It depends on how hot, and for how long:

  1. Below its maximum operating temperature: it’s slightly weaker while warm, then back to normal once it cools.
  2. A little above it: it loses a small part of its strength for good. You might notice it holds a bit less than before.
  3. Well above it: the permanent loss grows quickly. The magnet may hold only a fraction of its rating, or hold unevenly across its face.
  4. At or above the Curie temperature: it’s fully demagnetized and no longer acts as a permanent magnet.

Heat can also damage what’s around the magnet. Nickel plating handles these temperatures, but adhesive backings, rubber and plastic coatings and epoxy usually have lower limits than the magnet itself, so check them separately. Soldering and welding heat a magnet far past its limits; see can I solder or weld to neodymium magnets?

How Grade, Shape, Magnetic Circuit and Conditions Affect Heat Resistance

Thin Magnet, on Its Own: heat tolerance 2 of 5. Low thickness for its width: starts losing strength sooner Thin Magnet, on Its OwnHeat ToleranceLow Thickness for Its Width:Starts Losing Strength SoonerThick Magnet: heat tolerance 3 of 5. More thickness for its width: holds up better to heat Thick MagnetNNSSHeat ToleranceMore Thickness for Its Width:Holds Up Better to HeatOn Steel or in a Cup: heat tolerance 5 of 5. Steel completes the magnetic circuit: the most heat tolerant On Steel or in a CupNNSSHeat ToleranceSteel Completes the MagneticCircuit: The Most Heat TolerantRepelling Magnets: heat tolerance 1 of 5. Like poles facing push each other toward demagnetization Repelling MagnetsNNSSSSNNHeat ToleranceLike Poles Facing Push Each OtherToward Demagnetization
The same grade can handle more or less heat depending on its shape and how it's used.

Magnet Grade

The letters after the number set the temperature class. Higher classes, such as H, SH, UH and EH, use alloys with higher coercivity, so they resist demagnetization at higher temperatures. The number still sets the strength: an N42SH magnet is about as strong as an N42 at room temperature.

Shape

Thin magnets, with little thickness for their diameter, are more easily demagnetized by heat than thicker magnets of the same grade. Engineers describe this with the permeance coefficient (Pc), or load line: the lower it is, the sooner a magnet starts losing strength as it warms. A very thin disc on its own may need a higher grade, or more temperature margin, than a thick one.

Magnetic Circuit

A magnet attached to steel, or set in a steel cup like a pot magnet, works in a more closed magnetic circuit and holds up better to heat. A magnet standing alone in air, or working across a large air gap, is more vulnerable.

Operating Conditions

Opposing magnetic fields, such as two magnets repelling each other or the fields inside a motor, push a magnet toward demagnetization and lower its real temperature limit. Long exposure, repeated heating and cooling, and hot spots near motors, heaters or lighting add up too.

Is N52 More Heat Resistant than N42?

No. N52 has the same temperature rating as N42: both are standard N-class grades rated about 80 °C (176 °F). N52 is stronger, but its minimum coercivity in our grade data is slightly lower (Hcj 11 kOe or more, versus 12 kOe or more for N42), so in thin shapes or demanding circuits it can begin losing strength a little sooner. Strength and heat resistance are separate specifications. See N42 vs. N52.

What Does the SH Magnet Grade Mean?

SH is a high-temperature class with a typical maximum operating temperature of about 150 °C (302 °F). It doesn’t add strength: our 1 × 3/8 Inch Disc is rated 37.8 lb in both N42 and N42SH. The difference is that the N42SH version keeps that strength at temperatures that would permanently weaken a standard N42.

Typical Maximum Operating Temperature by Grade Class

Typical Ratings from Our Grade Data. Real Limits Depend on the Magnet's Shape, Circuit and Conditions.

N (N35 to N52)80 °C / 176 °F
M100 °C / 212 °F
H120 °C / 248 °F
SH150 °C / 302 °F
UH180 °C / 356 °F
EH200 °C / 392 °F
AH230 °C / 446 °F

Which Magnet Grade Should I Choose for High-Temperature Applications?

  1. Find the peak temperature, not the average. Include sunlight, enclosed spaces and nearby motors, heaters or lights. A car dashboard in summer sun, for example, can approach or exceed the 80 °C rating of standard grades.
  2. Choose a grade class rated above that peak, with some margin.
  3. Add more margin for thin magnets, magnets without steel behind them, magnets that repel each other or sit near other strong fields, and long exposure.
  4. Check everything else that gets hot, such as adhesive, coating, glue and the parts around the magnet.
  5. Test in real conditions before committing to a large order.
Grade class Typical max operating temperature Common fits
N (N35 to N52) About 80 °C (176 °F) Room-temperature uses: home, office, retail, crafts, most fixtures
M and H About 100 to 120 °C (212 to 248 °F) Warm enclosures and equipment, small motors
SH About 150 °C (302 °F) Motors, sensors and automotive or other hot environments
UH, EH and AH About 180 to 230 °C (356 to 446 °F) High-temperature motors and industrial equipment

See our stock high-temperature magnets in the High Temperature Neodymium Magnets collection. Other grades, including H, UH and EH, are available as custom magnets. For temperatures beyond what neodymium can handle, samarium cobalt magnets are the usual choice; see neodymium vs. samarium cobalt.

Practical Takeaway

Design to the maximum operating temperature, not the Curie temperature. Pick a grade class rated above your peak temperature, leave extra margin for thin magnets, open circuits and opposing fields, and remember that N52 is about strength, not heat. If a project runs hot, an SH grade or a custom high-temperature grade will keep its strength where a standard magnet would fade.

More Questions About Magnets and Heat

Can moisture and temperature affect neodymium magnets?

Yes. Heat above the grade’s rating weakens them permanently, and moisture can corrode them if the coating is damaged. See moisture and temperature.

Can you demagnetize a neodymium magnet?

Yes, mainly with heat past its rating or a strong opposing field, but it’s hard to do by accident at room temperature. See demagnetizing neodymium magnets.

What do the letters in a magnet grade mean?

They set the temperature class: no letter for standard grades, then M, H, SH, UH, EH and AH for increasing heat resistance. See neodymium magnet grades.

What does the N rating on neodymium magnets mean?

The number is the material’s maximum energy product in MGOe, which sets its strength at a given size. See what the N rating means.

Can I solder or weld to a neodymium magnet?

No. The heat far exceeds the magnet’s rating and permanently weakens it. Glue or mechanical mounting works instead. See soldering and welding magnets.


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