UMV1E4R7MFD1TP Allicdata Electronics

UMV1E4R7MFD1TP Capacitors

Allicdata Part #:

493-10318-3-ND

Manufacturer Part#:

UMV1E4R7MFD1TP

Price: $ 0.06
Product Category:

Capacitors

Manufacturer: Nichicon
Short Description: CAP ALUM 4.7UF 20% 25V RADIAL
More Detail: 4.7µF 25V Aluminum Electrolytic Capacitors Radial,...
DataSheet: UMV1E4R7MFD1TP datasheetUMV1E4R7MFD1TP Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
2000 +: $ 0.05571
4000 +: $ 0.05261
10000 +: $ 0.04952
14000 +: $ 0.04797
50000 +: $ 0.04333
100000 +: $ 0.04023
Stock 1000Can Ship Immediately
$ 0.06
Specifications
Series: UMV
Packaging: Tape & Box (TB) 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 4.7µF
Tolerance: ±20%
Voltage - Rated: 25V
ESR (Equivalent Series Resistance): --
Lifetime @ Temp.: 5000 Hrs @ 105°C
Operating Temperature: -40°C ~ 105°C
Polarization: Polar
Ratings: --
Applications: General Purpose
Ripple Current @ Low Frequency: 13mA @ 120Hz
Ripple Current @ High Frequency: 19.5mA @ 10kHz
Lead Spacing: 0.059" (1.50mm)
Size / Dimension: 0.157" Dia (4.00mm)
Height - Seated (Max): 0.236" (6.00mm)
Surface Mount Land Size: --
Mounting Type: Through Hole
Package / Case: Radial, Can
Description

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Aluminum electrolytic capacitors are polarized capacitors, characterised by a very high capacitance value for their size. They take advantage of an oxide layer that forms on the surface of aluminum foil when an electrical voltage is applied to it. The oxide layer has a very large dielectric constant, allowing the capacitor to hold a very large amount of charge. The capacitor\'s structure consists of an anode and a cathode, separated by an electrolyte. The main feature of these capacitors is their ability to store large amounts of energy with a relatively small footprint. The UMV1E4R7MFD1TP is an aluminum electrolytic capacitor.

The UMV1E4R7MFD1TP is a highly reliable, long life, very low leakage capacitor. It features a solid tantalum case and electrolyte design, making it ideal for use in applications requiring maximum performance and low ESR. The device has a large current capability, with a maximum current rating of 45A. It is highly resistant to shock and vibration, which makes it suitable for use in a variety of industrial and automotive applications. Its temperature ratings range from -40 to +125 C. Its rated voltage is 250V.

In terms of applications, the UMV1E4R7MFD1TP is widely used in high-reliability systems, such as industrial power supplies, automotive electronics, energy storage systems, and other harsh environment applications. Its long life and low leakage make it suitable for applications that require long-term stability and high reliability. The device also has high ripple handling capability, making it ideal for applications that require filtering and ripple minimization. Finally, it is also suitable for setting up supercapacitors in various high-voltage systems.

The working principle of the UMV1E4R7MFD1TP is based on the Faraday Law of Electromagnetism. It states that when a conductor is exposed to a changing magnetic field, a voltage is induced in the conductor. The anode of the capacitor acts as the conductor, and when an alternating current is applied to the terminals, an AC voltage is created. The magnitude of the voltage depends on the magnitude of the current, the capacitance of the capacitor and the frequency of the current. When the device is connected to a load, the current drawn from the capacitor is equal to the current applied to the terminals and the voltage across the capacitor remains constant.

In conclusion, the UMV1E4R7MFD1TP aluminum electrolytic capacitor is a highly reliable, long-life capacitor. It has a wide range of applications, including industrial power supplies and automotive electronics, due to its high current handling capabilities and low leakage material. Furthermore, its working principle is based on the Faraday Law of Electromagnetism, which describes the voltage induced in a conductor when exposed to a changing magnetic field.

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

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