USF0J101MDD Allicdata Electronics
Allicdata Part #:

493-17265-ND

Manufacturer Part#:

USF0J101MDD

Price: $ 0.24
Product Category:

Capacitors

Manufacturer: Nichicon
Short Description: CAP ALUM 100UF 20% 6.3V RADIAL
More Detail: 100µF 6.3V Aluminum Electrolytic Capacitors Radial...
DataSheet: USF0J101MDD datasheetUSF0J101MDD Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
1 +: $ 0.21600
10 +: $ 0.14985
100 +: $ 0.08987
500 +: $ 0.06740
1000 +: $ 0.05692
2500 +: $ 0.05392
5000 +: $ 0.05093
Stock 1000Can Ship Immediately
$ 0.24
Specifications
Polarization: Polar
Package / Case: Radial, Can
Mounting Type: Through Hole
Surface Mount Land Size: --
Height - Seated (Max): 0.315" (8.00mm)
Size / Dimension: 0.248" Dia (6.30mm)
Lead Spacing: 0.098" (2.50mm)
Impedance: 800 mOhms
Ripple Current @ High Frequency: 160mA @ 100kHz
Ripple Current @ Low Frequency: 80mA @ 120Hz
Applications: General Purpose
Ratings: --
Series: USF
Operating Temperature: -55°C ~ 105°C
Lifetime @ Temp.: 1000 Hrs @ 105°C
ESR (Equivalent Series Resistance): --
Voltage - Rated: 6.3V
Tolerance: ±20%
Capacitance: 100µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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Aluminum electrolytic capacitors are an important part of the electronic component industry. They are widely used for a variety of applications including power, signal processing, and energy storage. USF0J101MDD is an aluminum electrolytic capacitor specifically designed for high voltage, high ripple current applications. This article will discuss the application field of this capacitor and its working principle.

USF0J101MDD is a high-temperature resistant aluminum electrolytic capacitor featuring a high ripple current and a relatively low ESR. It is suitable for circuits with a high-peak current and where a long operating life is expected, such as in motor control circuits, compressor circuits, inverter circuits, and high-intensity lighting circuits. This capacitor is designed with a cylindrical shape and features an anode wound around a non-conductive winding core to reduce the capacitor’s ESR. The unique construction of the USF0J101MDD ensures an optimal capacitance-ripple current ratio, allowing it to operate in a wide temperature range from -55°C to +125°C.

The working principle of the USF0J101MDD is based on the Faraday effect. This effect states that when a voltage is applied across an electrolyte, the electrical field causes a displacement of charge. The displacement of charge causes an accumulation of positive ions on one side of the electrolyte and an accumulation of negative ions on the other side. This creates an electrical potential difference between the two sides of the electrolyte, which is directly proportional to the applied voltage. This process forms the basis of aluminum electrolytic capacitors.

The USF0J101MDD operates according to a similar principle. It consists of two electrodes separated by a dielectric material, with an electrolyte injected between them. When a voltage is applied across the terminals of the capacitor, an electric field is created which causes a displacement of charge between the two electrodes. This displacement of charge generates an electric potential difference between the two sides of the capacitor, resulting in a capacitance. The value of the capacitor depends on the area of the electrodes, the dielectric material, and the applied voltage.

The USF0J101MDD is a highly reliable aluminum electrolytic capacitor, designed specifically for high voltage, high ripple current applications. Its cylindrical shape and anode winding constructions allow for an optimized capacitance-ripple current ratio. Additionally, its wide temperature range from -55°C to +125°C offers reliability in harsh environments. The Faraday effect forms the basis of the capacitor’s working principle, where an electric field created by an applied voltage causes a displacement of charge between the two electrodes, resulting in an electric potential difference and capacitance.

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

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