Permeability (electromagnetism)

In electromagnetism, permeability is the measure of magnetization that a material obtains in response to an applied magnetic field. Permeability is typically represented by the (italicized) Greek letter μ. The term was coined by William Thomson, 1st Baron Kelvin in 1872,[1] and used alongside permittivity by Oliver Heaviside in 1885. The reciprocal of permeability is magnetic reluctivity.

In SI units, permeability is measured in henries per meter (H/m), or equivalently in newtons per ampere squared (N/A2). The permeability constant μ0, also known as the magnetic constant or the permeability of free space, is the proportionality between magnetic induction and magnetizing force when forming a magnetic field in a classical vacuum.

A closely related property of materials is magnetic susceptibility, which is a dimensionless proportionality factor that indicates the degree of magnetization of a material in response to an applied magnetic field.


In the macroscopic formulation of electromagnetism, there appears two different kinds of magnetic field:

The concept of permeability arises since in many materials (and in vacuum), there is a simple relationship between H and B at any location or time, in that the two fields are precisely proportional to each other:[2]


where the proportionality factor μ is the permeability, which depends on the material. The permeability of vacuum (also known as permeability of free space) is a physical constant, denoted μ0. The SI units of μ are volt-seconds/ampere-meter, equivalently henry/meter. Typically μ would be a scalar, but for an anisotropic material, μ could be a second rank tensor.

However, inside strong magnetic materials (such as iron, or permanent magnets), there is typically no simple relationship between H and B. The concept of permeability is then nonsensical or at least only applicable to special cases such as unsaturated magnetic cores. Not only do these materials have nonlinear magnetic behaviour, but often there is significant magnetic hysteresis, so there is not even a single-valued functional relationship between B and H. However, considering starting at a given value of B and H and slightly changing the fields, it is still possible to define an incremental permeability as:[2]


assuming B and H are parallel.

In the microscopic formulation of electromagnetism, where there is no concept of an H field, the vacuum permeability μ0 appears directly (in the SI Maxwell's equations) as a factor that relates total electric currents and time-varying electric fields to the B field they generate. In order to represent the magnetic response of a linear material with permeability μ, this instead appears as a magnetization M that arises in response to the B field: . The magnetization in turn is a contribution to the total electric current—the magnetization current.

Relative permeability and magnetic susceptibility

Relative permeability, denoted by the symbol , is the ratio of the permeability of a specific medium to the permeability of free space μ0:

where 4π × 10−7 H/m is the magnetic permeability of free space.[3] In terms of relative permeability, the magnetic susceptibility is

The number χm is a dimensionless quantity, sometimes called volumetric or bulk susceptibility, to distinguish it from χp (magnetic mass or specific susceptibility) and χM (molar or molar mass susceptibility).


Diamagnetism is the property of an object which causes it to create a magnetic field in opposition of an externally applied magnetic field, thus causing a repulsive effect. Specifically, an external magnetic field alters the orbital velocity of electrons around their atom's nuclei, thus changing the magnetic dipole moment in the direction opposing the external field. Diamagnets are materials with a magnetic permeability less than μ0 (a relative permeability less than 1).

Consequently, diamagnetism is a form of magnetism that a substance exhibits only in the presence of an externally applied magnetic field. It is generally a quite weak effect in most materials, although superconductors exhibit a strong effect.


Paramagnetism is a form of magnetism which occurs only in the presence of an externally applied magnetic field. Paramagnetic materials are attracted to magnetic fields, hence have a relative magnetic permeability greater than one (or, equivalently, a positive magnetic susceptibility).

The magnetic moment induced by the applied field is linear in the field strength, and it is rather weak. It typically requires a sensitive analytical balance to detect the effect. Unlike ferromagnets, paramagnets do not retain any magnetization in the absence of an externally applied magnetic field, because thermal motion causes the spins to become randomly oriented without it. Thus the total magnetization will drop to zero when the applied field is removed. Even in the presence of the field, there is only a small induced magnetization because only a small fraction of the spins will be oriented by the field. This fraction is proportional to the field strength and this explains the linear dependency. The attraction experienced by ferromagnets is non-linear and much stronger so that it is easily observed, for instance, in magnets on one's refrigerator.


For gyromagnetic media (see Faraday rotation) the magnetic permeability response to an alternating electromagnetic field in the microwave frequency domain is treated as a non-diagonal tensor expressed by:[4]

Values for some common materials

The following table should be used with caution as the permeability of ferromagnetic materials varies greatly with field strength. For example, 4% Si steel has an initial relative permeability (at or near 0 T) of 2,000 and a maximum of 35,000[5] and, indeed, the relative permeability of any material at a sufficiently high field strength trends toward 1 (at magnetic saturation).

Magnetic susceptibility and permeability data for selected materials
Medium Susceptibility,
volumetric, SI, χm
Relative permeability,
max., μ/μ0
μ (H/m)
Frequency, max.
Vacuum 0 1, exactly[6] 1.25663706212 × 10−6 (μ0)
Metglas 2714A (annealed) 1000000[7] 1.26×100 At 0.5 T 100 kHz
Iron (99.95% pure Fe annealed in H) 200000[8] 2.5×10−1
Permalloy 8000 100000[9] 1.25×10−1 At 0.002 T
NANOPERM® 80000[10] 1.0×10−1 At 0.5 T 10 kHz
Mu-metal 50000[11] 6.3×10−2
Mu-metal 20000[12] 2.5×10−2 At 0.002 T
(high permeability strip material)
18000[13] 2.3×10−2
Iron (99.8% pure) 5000[8] 6.3×10−3
Electrical steel 4000[14] 5.0×10−3 At 0.002 T
Ferritic stainless steel (annealed) 1000 – 1800[15] 1.26×10−32.26×10−3
Martensitic stainless steel (annealed) 750 – 950[15] 9.42×10−41.19×10−3
Ferrite (manganese zinc) 350 – 20 000[16] 4.4×10−42.51×10−2 At 0.25 mT Approx. 100 Hz – 4 MHz
Ferrite (nickel zinc) 10 – 2300[17] 1.26×10−52.89×10−3 At ≤ 0.25 mT Approx. 1 kHz – 400 MHz
Ferrite (magnesium manganese zinc) 350 – 500[18] 4.4×10−46.28×10−4 At 0.25 mT
Ferrite (cobalt nickel zinc) 40 – 125[19] 5.03×10−51.57×10−4 At 0.001 T Approx. 2 MHz – 150 MHz
Mo-Fe-Ni powder compound
(molypermalloy powder, MPP)
14 – 550[20] 1.76×10−56.91×10−4 Approx. 50 Hz – 3 MHz
Nickel iron powder compound 14 – 160[21] 1.76×10−52.01×10−4 At 0.001 T Approx. 50 Hz – 2 MHz
Al-Si-Fe powder compound (Sendust) 14 – 160[22] 1.76×10−52.01×10−4 Approx. 50 Hz – 5 MHz[23]
Iron powder compound 14 – 100[24] 1.76×10−51.26×10−4 At 0.001 T Approx. 50 Hz – 220 MHz
Silicon iron powder compound 19 – 90[25][26] 2.39×10−51.13×10−4 Approx. 50 Hz – 40 MHz
Carbonyl iron powder compound 4 – 35[27] 5.03×10−64.4×10−5 At 0.001 T Approx. 20 kHz – 500 MHz
Carbon steel 100[12] 1.26×10−4 At 0.002 T
Nickel 100[12] – 600 1.26×10−47.54×10−4 At 0.002 T
Martensitic stainless steel (hardened) 40 – 95[15] 5.0×10−51.2×10−4
Austenitic stainless steel 1.003 – 1.05[15][28][note 1] 1.260×10−68.8×10−6
Neodymium magnet 1.05[29] 1.32×10−6
Platinum 1.000265 1.256970×10−6
Aluminum 2.22×10−5[30] 1.000022 1.256665×10−6
Wood 1.00000043[30] 1.25663760×10−6
Air 1.00000037[31] 1.25663753×10−6
Concrete (dry) 1[32]
Hydrogen −2.2×10−9[30] 1.0000000 1.2566371×10−6
Teflon 1.0000 1.2567×10−6[12]
Sapphire −2.1×10−7 0.99999976 1.2566368×10−6
Copper −6.4×10−6 or
0.999994 1.256629×10−6
Water −8.0×10−6 0.999992 1.256627×10−6
Bismuth −1.66×10−4 0.999834 1.25643×10−6
Pyrolytic carbon 0.9996 1.256×10−6
Superconductors −1 0 0
Magnetisation curve for ferromagnets (and ferrimagnets) and corresponding permeability

A good magnetic core material must have high permeability.[33]

For passive magnetic levitation a relative permeability below 1 is needed (corresponding to a negative susceptibility).

Permeability varies with a magnetic field. Values shown above are approximate and valid only at the magnetic fields shown. They are given for a zero frequency; in practice, the permeability is generally a function of the frequency. When the frequency is considered, the permeability can be complex, corresponding to the in-phase and out of phase response.

Complex permeability

A useful tool for dealing with high frequency magnetic effects is the complex permeability. While at low frequencies in a linear material the magnetic field and the auxiliary magnetic field are simply proportional to each other through some scalar permeability, at high frequencies these quantities will react to each other with some lag time.[34] These fields can be written as phasors, such that

where is the phase delay of from .

Understanding permeability as the ratio of the magnetic flux density to the magnetic field, the ratio of the phasors can be written and simplified as

so that the permeability becomes a complex number.

By Euler's formula, the complex permeability can be translated from polar to rectangular form,

The ratio of the imaginary to the real part of the complex permeability is called the loss tangent,

which provides a measure of how much power is lost in material versus how much is stored.

See also


  1. The permeability of austenitic stainless steel strongly depends on the history of mechanical strain applied to it, e.g. by cold working


  1. Magnetic Permeability, and Analogues in Electro-static Induction, Conduction of Heat, and Fluid Motion, March 1872.
  2. Jackson, John David (1998). Classical Electrodynamics (3nd ed.). New York: Wiley. p. 193. ISBN 978-0-471-30932-1.
  3. The International System of Units, page 132, The ampere. BIPM.
  4. Kales, M. L. (1953). "Modes in Wave Guides Containing Ferrites". Journal of Applied Physics. 24 (5): 604–608. Bibcode:1953JAP....24..604K. doi:10.1063/1.1721335.
  5. G.W.C. Kaye & T.H. Laby, Table of Physical and Chemical Constants, 14th ed, Longman
  6. by definition
  7. ""Metglas Magnetic Alloy 2714A", Metglas". Archived from the original on 2012-02-06. Retrieved 2011-11-08.
  8. ""Magnetic Properties of Ferromagnetic Materials", Iron". C.R Nave Georgia State University. Retrieved 2013-12-01.
  9. Jiles, David (1998). Introduction to Magnetism and Magnetic Materials. CRC Press. p. 354. ISBN 978-0-412-79860-3.
  10. ""Typical material properties of NANOPERM", Magnetec" (PDF). Retrieved 2011-11-08.
  11. "Nickel Alloys-Stainless Steels, Nickel Copper Alloys, Nickel Chromium Alloys, Low Expansion Alloys". Retrieved 2011-11-08.
  12. ""Relative Permeability", Hyperphysics". Retrieved 2011-11-08.
  13. ""Soft Magnetic Cobalt-Iron Alloys", Vacuumschmeltze" (PDF). Archived from the original (PDF) on 2016-05-23. Retrieved 2013-08-03.
  14. ""Permeability of Some Common Materials"". Retrieved 2022-12-09.
  15. Carpenter Technology Corporation (2013). "Magnetic Properties of Stainless Steels". Carpenter Technology Corporation.
  16. According to Ferroxcube (formerly Philips) Soft Ferrites data.
  17. According to Siemens Matsushita SIFERRIT data.
  18. According to PRAMET Šumperk fonox data.
  19. According to Ferronics Incorporated data.
  20. According to Magnetics MPP-molypermalloy powder data.
  21. According to MMG IOM Limited High Flux data.
  22. According to Micrometals-Arnold Sendust data.
  23. According to Micrometals-Arnold High Frequency Sendust data.
  24. "Micrometals Powder Core Solutions". Retrieved 2019-08-17.
  25. According to Magnetics XFlux data.
  26. "Micrometals Powder Core Solutions". Retrieved 2019-08-18.
  27. "Micrometals Powder Core Solutions". Retrieved 2019-08-17.
  28. British Stainless Steel Association (2000). "Magnetic Properties of Stainless Steel" (PDF). Stainless Steel Advisory Service.
  29. Juha Pyrhönen; Tapani Jokinen; Valéria Hrabovcová (2009). Design of Rotating Electrical Machines. John Wiley and Sons. p. 232. ISBN 978-0-470-69516-6.
  30. Richard A. Clarke. "Magnetic properties of materials,". Retrieved 2011-11-08.
  31. B. D. Cullity and C. D. Graham (2008), Introduction to Magnetic Materials, 2nd edition, 568 pp., p.16
  32. "Determination of dielectric properties of insitu concrete at radar frequencies". Retrieved 2011-11-08.
  33. Dixon, L H (2001). "Magnetics Design 2 – Magnetic Core Characteristics" (PDF). Texas Instruments.
  34. M. Getzlaff, Fundamentals of magnetism, Berlin: Springer-Verlag, 2008.
This article is issued from Wikipedia. The text is licensed under Creative Commons - Attribution - Sharealike. Additional terms may apply for the media files.