SLPX561M220C5P3 Allicdata Electronics
Allicdata Part #:

SLPX561M220C5P3-ND

Manufacturer Part#:

SLPX561M220C5P3

Price: $ 0.83
Product Category:

Capacitors

Manufacturer: Cornell Dubilier Electronics (CDE)
Short Description: CAP ALUM 560UF 20% 220V SNAP
More Detail: 560µF 220V Aluminum Electrolytic Capacitors Radial...
DataSheet: SLPX561M220C5P3 datasheetSLPX561M220C5P3 Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
1000 +: $ 0.75269
Stock 1000Can Ship Immediately
$ 0.83
Specifications
Polarization: Polar
Package / Case: Radial, Can - Snap-In
Mounting Type: Through Hole
Surface Mount Land Size: --
Height - Seated (Max): 1.378" (35.00mm)
Size / Dimension: 0.984" Dia (25.00mm)
Lead Spacing: 0.394" (10.00mm)
Ripple Current @ High Frequency: 3.5A @ 20kHz
Ripple Current @ Low Frequency: 2.38A @ 120Hz
Applications: General Purpose
Ratings: --
Series: SLPX
Operating Temperature: -40°C ~ 85°C
Lifetime @ Temp.: 3000 Hrs @ 85°C
ESR (Equivalent Series Resistance): 355 mOhm @ 120Hz
Voltage - Rated: 220V
Tolerance: ±20%
Capacitance: 560µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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Aluminum electrolytic capacitors, also known as electrolytic capacitors, are a type of capacitor that utilizes an electrolyte to achieve a larger capacitance due to the increased electrical conductivity of the electrolyte. The SLPX561M220C5P3 is an electrolytic capacitor manufactured by Lelon Electronics and is one of the highest-rated aluminum electrolytic capacitors on the market. This capacitor is designed for general-purpose applications, such as microcontroller-driven printing systems, computer peripherals, RF transceivers, and consumer audio equipment. It has a capacitance of 220 μF, a surge rating of 10 V, and an operating temperature range of -40°C to +105°C.

The SLPX561M220C5P3 is designed in accordance with industry standards and has a long life time, reducing the need for frequent replacements. Its low impedance and low dissipation factor also ensure stable and accurate energy transfer over long periods of time. The capacitor is designed to have low ESR (equivalent series resistance) and offers excellent heat dissipation due to a special mounting tab. It also has a low total harmonic distortion, making it suitable for a wide range of audio applications.

The SLPX561M220C5P3 also offers superior stability when used in temperature range applications. Its excellent tempco characteristics ensure that it is suitable for applications that require excellent stability. Additionally, its long-term reliability and low voltage assurance makes it suitable for high-end audio systems and LED displays.

The working principle of the SLPX561M220C5P3 aluminum electrolytic capacitor is simple. An electrolyte, which is an ionic conductor, is suspended in the capacitor between two metallic electrodes. When a positive voltage is applied to the positive electrode of the capacitor, the anions in the electrolyte migrate towards the negative electrode and the cations towards the positive electrode. This ionic motion creates a current flow between the two electrodes and a potential difference across them.

The transfer of charge between the two plates results in the formation of a positive and negative electric dipole between them, creating an electric field. The electric field causes a separation of electric charge, resulting in the accumulation of electric charge on each of the electrodes. This charge is stored in the form of an electrostatic field in the capacitor and as such acts as a simple capacitor, absorbing energy.

In conclusion, the SLPX561M220C5P3 is classified as an aluminum electrolytic capacitor and is commonly used for general-purpose applications such as consumer audio equipment, RF transceivers, and computer peripherals. The capacitor is designed for long-term reliability with low ESR and low voltage assurance. Its working principle is based on the flow of current through an electrolyte between two electrodes, resulting in the accumulation of electric charge on each of the electrodes.

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

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