Mn-Zn Ferrite Core
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Mn-Zn Ferrite Core

Manganese-Zinc Ferrites
This type is the most common and used in many more applications than the nickel-zinc ferrites. Within the MnZn category a large variety of materials is possible. The material selection is mainly a function of the application that needs to be accommodated. Manganese-zinc ferrite is primarily used for frequencies less than 2 MHz.
Nickel-Zinc Ferrites
This class is characterized by its high material resistivity, several orders of magnitude higher than MnZn ferrites. NiZn ferrite is the material of choice for operating from l-2 MHz to several hundred megahertz. To cover such a wide frequency range and different applications, a large number of nickel-zinc materials have been developed over the years. Certain nickel chemistries, especially those containing cobalt, can be adversely changed by some types of stress such as mechanical shocks from dropping or from some grinding operations. Resulting changes can include increasing of permeability and core loss (lowering of Q). These changes cannot be reversed but in some cases, a thermal anneal at high temperature can restore some of the initial properties.
Core Geometries
Core geometries can be tailored to meet specific magnetic and mechanical requirements. A tunable high Q inductor dictates a different core shape than one used in TV line output transformers.
Mn-Zn Ferrite Core Material Characteristics
|
Characteristics \ Materal |
Unit |
F2B |
F2BD |
F2B1 |
F2A |
F3 |
||
|
Initial Permeability μi |
2500 ± 25% |
2500 ± 25% |
2300 ± 25% |
2400 ± 25% |
3000 ± 25% |
|||
|
Amplitude Permeability μi |
/ |
3200min |
3000min |
3000min |
/ |
|||
|
Saturation magnetic flux density (H=1194A/M) |
25 ℃ |
mT |
500 |
510 |
510 |
510 |
470 |
|
|
100 ℃ |
mT |
390 |
390 |
390 |
390 |
370 |
||
|
Remanence Br |
25 ℃ |
mT |
115 |
110 |
100 |
110 |
120 |
|
|
100 ℃ |
mT |
65 |
60 |
55 |
60 |
85 |
||
|
Coercivity |
25 ℃ |
A/m |
15 |
12 |
14 |
13 |
12 |
|
|
100 ℃ |
A/m |
12 |
10 |
9 |
6.5 |
7.0 |
||
|
Pcv Power Loss |
25KHz 200mT sine wave |
25 ℃ |
kW/m3 |
164 |
/ |
/ |
/ |
168 |
|
100 ℃ |
kW/m3 |
154 |
/ |
/ |
/ |
154 |
||
|
100KHz 200mT sine wave |
25 ℃ |
kW/m3 |
/ |
700 |
600 |
600 |
/ |
|
|
100 ℃ |
kW/m3 |
/ |
600 |
410 |
300 |
/ |
||
|
120 ℃ |
kW/m3 |
/ |
/ |
500 |
380 |
/ |
||
|
Electrical resistivity ρ |
Ω-m |
6.0 |
9 |
6.5 |
6.5 |
/ |
||
|
Curie temperature Tc |
℃ |
220 |
230 |
215 |
215 |
190 |
||
|
Density d |
kg/m3 |
4.8×103 |
4.8×103 |
4.8×103 |
4.8×103 |
4.8×103 |
||
|
Characteristics \ Materal |
Unit |
F2 |
F1.B |
F2Z |
F2 |
F5D |
||
|
Initial Permeability μi |
2000 ± 25% |
1800 ± 25% |
2300 ± 25% |
2300 ± 25% |
5500 ± 25% |
|||
|
Amplitude Permeability μi |
≥3000 |
≥3000 |
≥3000 |
≥3000 |
/ |
|||
|
Saturation magnetic flux density (H=1194A/M) |
25 ℃ |
mT |
500 |
510 |
480 |
500 |
500 |
|
|
100 ℃ |
mT |
390 |
410 |
360 |
380 |
380 |
||
|
Remanence Br |
25 ℃ |
mT |
120 |
170 |
130 |
130 |
95 |
|
|
100 ℃ |
mT |
85 |
/ |
/ |
/ |
55 |
||
|
Coercivity |
25 ℃ |
A/m |
12 |
11 |
16 |
14 |
7.0 |
|
|
100 ℃ |
A/m |
7 |
/ |
/ |
/ |
5.8 |
||
|
Pcv Power Loss |
16KHz 150mT |
25 ℃ |
kW/m3 |
52.8 |
/ |
/ |
/ |
/ |
|
100 ℃ |
kW/m3 |
43.2 |
20.2 |
16.8 |
14.4 |
/ |
||
|
64KHz 200mT |
25 ℃ |
kW/m3 |
/ |
700 |
600 |
600 |
/ |
|
|
100KHz 200mT |
100 ℃ |
kW/m3 |
/ |
600 |
410 |
300 |
/ |
|
|
120 ℃ |
kW/m3 |
/ |
/ |
500 |
380 |
/ |
||
|
Electrical resistivity ρ |
Ω-m |
6.0 |
9 |
6.5 |
6.5 |
/ |
||
|
Curie temperature Tc |
℃ |
220 |
200 |
200 |
200 |
210 |
||
|
Density d |
kg/m3 |
4.8×103 |
4.8×103 |
4.8×103 |
4.8×103 |
4.8×103 |
||
Ferrite beads are passive electronic components that can suppress high frequency signals on a power supply line. These beads work according to Faraday’s Law: the magnetic core around a conductor induces a back EMF in the presence of a high frequency signal, essentially attenuating the ferrite frequency response.

Advantages of ferrite core

The biggest advantage of ferrite core is high permeability, good temperature characteristics, and low attenuation rate. Ferrites with a high permeability exhibit greater impedance at low frequencies and smaller impedance at high frequencies.
FAQ
Chongqing Great Wall Technology Co., Ltd. is well-known as one of the leading mn-zn ferrite core manufacturers and suppliers in China. Please feel free to buy or wholesale high quality mn-zn ferrite core made in China here from our factory. For customized service, contact us now.
MnZn Ferrite Core, Mn Zn Ferrite Core, MnZn Ferrite Toroid Core









