EMIFIL®, NFZ5BBW Series, Ferrite Beads and Chips

Results:
25
Manufacturer
Series
Impedance @ Frequency
DC Resistance (DCR) (Max)
Current Rating (Max)
Ratings
Operating Temperature
Mounting Type
Size / Dimension
Height (Max)
Package / Case
Number of Lines
Filter Type
Features
Results remaining25
Applied Filters:
EMIFIL®, NFZ5BBW
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ImageProduct DetailPriceAvailabilityECAD ModelMounting TypeFeaturesOperating TemperatureFilter TypeRatingsSize / DimensionHeight (Max)Package / CaseNumber of LinesSeriesImpedance @ FrequencyCurrent Rating (Max)DC Resistance (DCR) (Max)
NFZ5BBW170LZ10L
FERRITE BEAD 17 OHM 2020 1LN
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
-
-40°C ~ 125°C
-
AEC-Q200
0.197" L x 0.197" W (5.00mm x 5.00mm)
0.087" (2.20mm)
2020 (5050 Metric)
1
EMIFIL®, NFZ5BBW
17 Ohms @ 1 MHz
2.5A
42mOhm
NFZ5BBW220LZ10L
FERRITE BEAD 22 OHM 2020 1LN
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Quantity
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PCB Symbol, Footprint & 3D Model
Surface Mount
-
-40°C ~ 125°C
-
AEC-Q200
0.197" L x 0.197" W (5.00mm x 5.00mm)
0.087" (2.20mm)
2020 (5050 Metric)
1
EMIFIL®, NFZ5BBW
22 Ohms @ 1 MHz
2.3A
53mOhm
NFZ5BBW310LZ10L
FERRITE BEAD 31 OHM 2020 1LN
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-
-40°C ~ 125°C
-
AEC-Q200
0.197" L x 0.197" W (5.00mm x 5.00mm)
0.087" (2.20mm)
2020 (5050 Metric)
1
EMIFIL®, NFZ5BBW
31 Ohms @ 1 MHz
2A
70mOhm
NFZ5BBW450LZ10L
FERRITE BEAD 45 OHM 2020 1LN
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-
-40°C ~ 125°C
-
AEC-Q200
0.197" L x 0.197" W (5.00mm x 5.00mm)
0.087" (2.20mm)
2020 (5050 Metric)
1
EMIFIL®, NFZ5BBW
45 Ohms @ 1 MHz
1.65A
100mOhm
NFZ5BBW4R5LZ10L
FERRITE BEAD 4.5 OHM 2020 1LN
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Quantity
Contact us
PCB Symbol, Footprint & 3D Model
Surface Mount
-
-40°C ~ 125°C
-
AEC-Q200
0.197" L x 0.197" W (5.00mm x 5.00mm)
0.087" (2.20mm)
2020 (5050 Metric)
1
EMIFIL®, NFZ5BBW
4.5 Ohms @ 1 MHz
3.4A
18mOhm

About  Ferrite Beads and Chips

Ferrite cores are specialized devices specifically engineered to mitigate high-frequency noise and electromagnetic interference (EMI). These cores are designed to be incorporated into electric circuits, offering effective noise suppression and improved signal integrity. When selecting a ferrite core, several key characteristics need to be considered. The first is the filter type, which can be differential, signal, or power, depending on the specific application requirements. The number of lines that the ferrite core will interact with is also an important consideration, as it determines the core's ability to suppress noise across multiple channels. Another crucial characteristic is the maximum current rating, which indicates the highest current that the ferrite core can handle without compromising its functionality. This specification ensures that the core is suitable for the intended circuit and prevents any potential damage due to excessive current flow. The impedance and specified frequency are essential parameters to consider when selecting a ferrite core. Impedance determines the opposition that the core presents to the flow of alternating current at a specific frequency range. Matching the impedance of the ferrite core to the circuit's impedance helps in achieving optimal noise suppression. Lastly, the mounting type should be chosen based on the circuit's design and requirements. Ferrite cores can be free-hanging, surface-mounted, or through-hole mounted, allowing for flexibility in installation and integration within the electric circuit. In summary, ferrite cores serve as effective tools for reducing high-frequency noise and electromagnetic interference in electric circuits. Their characteristics, such as filter type, number of lines, max current rating, impedance, specified frequency, and mounting type, play vital roles in ensuring proper noise suppression and improved signal integrity. By carefully selecting and integrating ferrite cores into circuits, engineers can enhance the overall performance and reliability of electronic systems.