NFZ5BBW140LN10L Allicdata Electronics

NFZ5BBW140LN10L Filters

Allicdata Part #:

490-12170-2-ND

Manufacturer Part#:

NFZ5BBW140LN10L

Price: $ 0.13
Product Category:

Filters

Manufacturer: Murata Electronics North America
Short Description: FERRITE BEAD 14 OHM 2020 1LN
More Detail: N/A
DataSheet: NFZ5BBW140LN10L datasheetNFZ5BBW140LN10L Datasheet/PDF
Quantity: 2500
500 +: $ 0.11819
1000 +: $ 0.10055
2500 +: $ 0.09702
5000 +: $ 0.09349
12500 +: $ 0.08820
Stock 2500Can Ship Immediately
$ 0.13
Specifications
Series: EMIFIL®, NFZ5BBW
Packaging: Tape & Reel (TR) 
Part Status: Active
Filter Type: --
Number of Lines: 1
Impedance @ Frequency: 14 Ohms @ 1MHz
Current Rating (Max): 2.6A
DC Resistance (DCR) (Max): 36 mOhm
Ratings: --
Operating Temperature: -40°C ~ 125°C
Package / Case: 2020 (5050 Metric)
Mounting Type: Surface Mount
Height (Max): 0.087" (2.20mm)
Size / Dimension: 0.197" L x 0.197" W (5.00mm x 5.00mm)
Description

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Ferrite Beads and Chips are utilized in a wide range of electronic components due to their desirable properties of vector acceptance and dissipative properties. In recent times, there has been an increased use of these products, particularly amongst DIY (Do-It-Yourself) circuits and designers, as they are relatively easy to install and allow for high performance, with low power consumption. One such example of a Ferrite Beads and Chips product is the NFZ5BBW140LN10L.

The NFZ5BBW140LN10L is a ferrite bead that is designed specifically for RF applications. It is a relatively low-power component and utilizes a low impedance topology with an inductor value of 1.40 nH. The NFZ5BBW140LN10L also has an operating frequency range of up to 5.0 GHz and can handle up to 100 W of continuous power. It is a single inductor system, and is generally used to filter out high-frequency signals, reduce unwanted noise, or improve the performance of a circuit.

The primary application of the NFZ5BBW140LN10L is to suppress high-frequency noise in RF applications, such as cellular phones, GPS systems, radio receivers, and more. It is also used to filter out broadband noise from digital circuits. The use of the NFZ5BBW140LN10L offers several advantages over other noise-reduction solutions, such as its integration into a single package, its low cost, and its convenient size. Additionally, its performance remains consistent over a wide range of temperature conditions.

The working principle of the NFZ5BBW140LN10L is based on the notion of vector acceptance. This term is used to describe the process by which the ferrite beads act as an impedance matching element, in order to block a certain frequency band while allowing other frequencies to pass through. This is accomplished through the creation of an inductive field in the ferrite bead. This inductive field, coupled with the resistance of the bead, form a low-pass filter that reduces the amplitude of a certain frequency passing through it.

The working of the NFZ5BBW140LN10L is designed to ensure that high-frequency signals are blocked, while the desired signal is allowed to pass through. In fact, the frequency response of the device is based on the quality of the chip design. Generally, when the frequency of a signal is lower than the range of the device, the signal will pass through with minimal attenuation. On the other hand, if the frequency of the signal is higher than the range of the device, then the signal will be filtered out. The NFZ5BBW140LN10L is typically designed to filter out frequencies between 500 MHz and 5.0 GHz, with minimal signal attenuation.

In conclusion, the NFZ5BBW140LN10L is an important component in the field of RF applications due to its desirable properties of vector acceptance and dissipation. It is used to reduce noise, improve performance, and even create low-pass filters for digital circuits. Its working principle is based on inductive field transfer within the ferrite bead, which results in an effective low-pass filter that suppresses high-frequency signals and allows desired signals to pass through. The NFZ5BBW140LN10L is an effective and cost-efficient solution for noise-reduction.

The specific data is subject to PDF, and the above content is for reference

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