LXZ63VB22RM6X11LL Allicdata Electronics
Allicdata Part #:

LXZ63VB22RM6X11LL-ND

Manufacturer Part#:

LXZ63VB22RM6X11LL

Price: $ 0.00
Product Category:

Capacitors

Manufacturer: United Chemi-Con
Short Description: CAP ALUM 22UF 20% 63V RADIAL
More Detail: 22µF 63V Aluminum Electrolytic Capacitors Radial, ...
DataSheet: LXZ63VB22RM6X11LL datasheetLXZ63VB22RM6X11LL Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Contains lead / RoHS non-compliant
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Ratings: --
Package / Case: Radial, Can
Mounting Type: Through Hole
Surface Mount Land Size: --
Height - Seated (Max): 0.453" (11.50mm)
Size / Dimension: 0.248" Dia (6.30mm)
Lead Spacing: 0.098" (2.50mm)
Impedance: 1 Ohms
Ripple Current @ High Frequency: 240mA @ 100kHz
Ripple Current @ Low Frequency: 96mA @ 120Hz
Applications: General Purpose
Series: LXZ
Polarization: Polar
Operating Temperature: -55°C ~ 105°C
Lifetime @ Temp.: 2000 Hrs @ 105°C
ESR (Equivalent Series Resistance): --
Voltage - Rated: 63V
Tolerance: ±20%
Capacitance: 22µF
Part Status: Obsolete
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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Aluminum electrolytic capacitors are one of the most widely used components in electrical and electronic equipment. The LXZ63VB22RM6X11LL is an aluminum electrolytic capacitor specifically designed for applications that require high-capacitance levels and long life, such as power supplies, pulse power circuits, and frequency conversion circuits. This article will explain the application field and working principle of the LXZ63VB22RM6X11LL.

The LXZ63VB22RM6X11LL is a general-purpose aluminum electrolytic capacitor that is rated for a maximum voltage of 63VDC and an operating temperature of -40 to +85°C. It has a capacitance range of 22µF to 3300µF, which ensures that it can handle a wide range of capacitance demands. In addition, it has an internal impedance of 3.4Ω (Max.) and a high ripple current rating of 3,900µA. This makes it suitable for applications where high ripple current fluxes are needed.

The LXZ63VB22RM6X11LL is primarily used in DC applications, where its ability to withstand high levels of current and voltage, as well as its wide operating temperature range, make it an excellent choice for power supplies, frequency conversion circuits, and other applications that require reliable operation across a range of power requirements. It is also suitable for applications where long-term reliability is a must, such as battery back-up systems.

The working principle of the LXZ63VB22RM6X11LL is the same as that of any other type of aluminum electrolytic capacitor. It is comprised of an anode (aluminum foil) and a cathode (paper impregnated with a manganese dioxide electrolyte), separated by a dielectric (aluminum oxide layer). When a voltage is applied, current is allowed to flow, charging the anode and developing an electrostatic field between the two electrodes, which is responsible for the capacitance. As the capacitance increases, so does the voltage, until it reaches a maximum value at which point the capacitor has become fully charged.

The LXZ63VB22RM6X11LL has been designed specifically for applications that require high-capacitance levels and long life. Its combination of high capacitance, low impedance, and high ripple current ratings make it an ideal choice for any application requiring reliable performance in a range of extreme conditions.

In conclusion, the LXZ63VB22RM6X11LL is an aluminum electrolytic capacitor designed for applications that require high-capacitance levels and long life. It has a maximum voltage rating of 63VDC and a range of capacitance values from 22µF to 3300µF. It is suitable for use in power supplies, pulse power circuits, frequency conversion circuits, and other high-capacitance applications where reliable operation is paramount. The working principle of the LXZ63VB22RM6X11LL is the same as any other aluminum electrolytic capacitor. It is composed of an anode and a cathode, separated by a dielectric. When a voltage is applied, current is allowed to flow, charging the anode and developing an electrostatic field between the two electrodes, which is responsible for the capacitance.

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

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