LNT1H334MSEB Allicdata Electronics
Allicdata Part #:

LNT1H334MSEB-ND

Manufacturer Part#:

LNT1H334MSEB

Price: $ 86.59
Product Category:

Capacitors

Manufacturer: Nichicon
Short Description: CAP ALUM 330000UF 20% 50V SCREW
More Detail: 330000µF 50V Aluminum Electrolytic Capacitors Radi...
DataSheet: LNT1H334MSEB datasheetLNT1H334MSEB Datasheet/PDF
Quantity: 1000
5 +: $ 78.71650
Stock 1000Can Ship Immediately
$ 86.59
Specifications
Ratings: --
Package / Case: Radial, Can - Screw Terminals
Mounting Type: Chassis Mount
Surface Mount Land Size: --
Height - Seated (Max): 8.780" (223.00mm)
Size / Dimension: 3.543" Dia (90.00mm)
Lead Spacing: 1.252" (31.80mm)
Ripple Current @ High Frequency: 36.45A @ 10kHz
Ripple Current @ Low Frequency: 24.3A @ 120Hz
Applications: General Purpose
Series: LNT
Polarization: Polar
Operating Temperature: -40°C ~ 105°C
Lifetime @ Temp.: 2000 Hrs @ 105°C
ESR (Equivalent Series Resistance): --
Voltage - Rated: 50V
Tolerance: ±20%
Capacitance: 330000µF
Part Status: Active
Description

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Aluminum electrolytic capacitors, or electrolytic capacitors, have been widely used in many circuits and equipment due to their high capacity, low cost and long life. The LNT1H334MSEB, in particular, is a long-life, high-capacity aluminum electrolytic capacitor designed to meet the specific needs of power electronics applications. It is extremely versatile, capable of supporting a wide range of operating temperatures, dielectric properties and capacitance ratings.

LNT1H334MSEB capacitors use an aluminum oxide dielectric layer, formed by an anodizing process, to create a very thin insulation barrier between two layers of aluminum foil. This dielectric layer allows them to store very high levels of energy and provide long service life. The aluminum oxide dielectric layer helps to protect against corrosion, oxidation, mechanical and chemical damage, and electrical shorts.

Other features of the LNT1H334MSEB aluminum electrolytic capacitors include their excellent thermal stability, high capacitance ratings (up to 5,000 µF) and their ability to store a large amount of energy in a relatively small volume. They also feature a low equivalent series resistance (ESR) for high ripple current and high reliability, and are capable of tolerating higher surge currents than other varieties of aluminum electrolytics.

The LNT1H334MSEB capacitors have many uses in power electronics applications. They are commonly used in dc-dc converters, motor drives, switching power supplies and power conditioning circuitry. In switching power supplies, the capacitor\'s high level of energy storage helps to maintain a steady voltage output regardless of load or AC line variations. In dc-dc converters, they help to smooth power pulses to facilitate efficient energy transfer. In motor drives, they support current spikes associated with the load inversion/commutation process. And in power conditioning circuits, they store energy from a dc rectifier to maintain output voltage.

The working principle of the LNT1H334MSEB aluminum electrolytic capacitors is based on the fact that a capacitor stores energy by means of an electrical field. When a dc voltage is applied to the capacitor\'s plates, electrons flow from one plate to the other. This current creates an electric field between the plates, which allows the capacitor to store energy. When the applied voltage is removed, the electrons flow in the opposite direction, converting this stored energy back into electrical current. Thus, the capacitor acts as a sort of energy reservoir, storing and releasing electrical energy in response to the changes in voltage.

In conclusion, the LNT1H334MSEB aluminum electrolytic capacitors are reliable, versatile and cost-effective components used in many power electronics applications. They are capable of storing very high levels of energy, and feature a wide range of temperature ranges, dielectric properties and capacitance ratings. Their working principle is based on the flow of electrons between two plates, which creates an electric field, allowing the capacitor to store and release energy in response to voltage changes.

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

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