Allicdata Part #: | CMD5D13NP-6R8MC-ND |
Manufacturer Part#: |
CMD5D13NP-6R8MC |
Price: | $ 0.37 |
Product Category: | Inductors, Coils, Chokes |
Manufacturer: | Sumida America Components Inc. |
Short Description: | FIXED IND 6.8UH 900MA 144 MOHM |
More Detail: | 6.8µH Unshielded Inductor 900mA 144 mOhm Max Nons... |
DataSheet: | CMD5D13NP-6R8MC Datasheet/PDF |
Quantity: | 1000 |
1000 +: | $ 0.34272 |
DC Resistance (DCR): | 144 mOhm Max |
Height - Seated (Max): | 0.059" (1.50mm) |
Size / Dimension: | 0.236" L x 0.205" W (6.00mm x 5.20mm) |
Supplier Device Package: | -- |
Package / Case: | Nonstandard |
Mounting Type: | Surface Mount |
Inductance Frequency - Test: | 100kHz |
Operating Temperature: | -- |
Ratings: | -- |
Frequency - Self Resonant: | -- |
Q @ Freq: | -- |
Series: | CMD5D13 |
Shielding: | Unshielded |
Current - Saturation: | 1.4A |
Current Rating: | 900mA |
Tolerance: | ±20% |
Inductance: | 6.8µH |
Material - Core: | -- |
Type: | -- |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Fixed Inductors
Inductors, also known as coils or reactors, are passive electric components used in a variety of electrical circuits for regulation, measuring and conduction of currents. They are typically wound from copper wire or magnetic cores, while the windings are connected in series with other inductors to form a complex inductor networks. Fixed inductors can be categorized into many types, and one such type is the CMD5D13NP-6R8MC inductor, used as a part of numerous applications across different fields.
CMD5D13NP-6R8MC Application Field and Working Principle
The CMD5D13NP-6R8MC inductor is a type of fixed inductor, and is mainly used in power supplies, supplemental lighting, consumer electronics and in various other circuit applications. The working principle of a CMD5D13NP-6R8MC inductor is that it\'s core material is composed of a dedicated ferrite material with a magnetic resistance index of 14.5mΩ, which creates an electromagnetic field when an alternating current is applied across the inductor\'s terminals. This electromagnetic field then reacts with the inductor\'s windings, creating a magnetic field.
This magnetic field is created by the electric induction effect and generates a magnetic effect at the inductor\'s coils, which then produces a Faraday\'s law of induction. This law states that the voltage induced across an inductor is directly proportional to the rate of change in the current passing through the inductor\'s coils. The voltage output from the CMD5D13NP-6R8MC inductor is of a constant polarity, making it suitable for a wide range of applications.
The CMD5D13NP-6R8MC inductor is also designed to absorb and store the electric current in the form of a magnetic field, which helps to reduce losses during energy conversion processes. Its design greatly helps in stabilizing the output voltage, improving the efficiency and helping to reduce the total power loss in the conversion processes. Additionally, this inductor has a typical self damping coefficient ofa 0.00045 Ωm, which is much lower than that of other inductors in the market, ensuring minimal losses under load.
The CMD5D13NP-6R8MC inductor also boasts of exceptional longevity, high temperature resistance and low core loss characteristics. Its temperature coefficient of inductance (TCL) is 0.0052%/K, and its working temperature range is between -40℃ and 120℃. It also provides a high DC current rating of 6.3A, making it the perfect choice for a wide range of applications that require precision and stability. It\'s thermal resistance of 120K/W ensures that it can withstand a maximum temperature rise of 60℃ without any damage or degradation.
Conclusion
The CMD5D13NP-6R8MC inductor is a type of fixed inductor that is widely used in applications across different industries. It provides excellent stability, precision and longevity due to its magnetic core material, Faraday\'s law of induction as well as its thermal resistance and temperature coefficient characteristics. It is an ideal solution for applications that require a constant polarity voltage and maximum efficiency in energy conversion processes.
The specific data is subject to PDF, and the above content is for reference
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