SFD37T50-10K391E-F Allicdata Electronics
Allicdata Part #:

SFD37T50-10K391E-F-ND

Manufacturer Part#:

SFD37T50-10K391E-F

Price: $ 0.00
Product Category:

Capacitors

Manufacturer: Cornell Dubilier Electronics (CDE)
Short Description: CAP 370VAC 2.0" OVAL QC TERM
More Detail: 10µF, 50µF Bussed Capacitor 2 Array 370V Radial, ...
DataSheet: SFD37T50-10K391E-F datasheetSFD37T50-10K391E-F Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Dielectric Material: Polypropylene (PP) Film, Metallized
Height - Seated (Max): 4.030" (102.36mm)
Size / Dimension: 2.620" Dia (66.55mm), Lip
Package / Case: Radial, Can
Mounting Type: Chassis Mount
Ratings: --
Temperature Coefficient: --
Circuit Type: Bussed
Number of Capacitors: 2
Series: SF, Dual Motor Start
Voltage - Rated: 370V
Tolerance: ±10%
Capacitance: 10µF, 50µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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Capacitor Networks, Arrays

A capacitor network, array is an electronic circuit composed of capacitors and other components, typically arranged in parallel or in series. It can be used in various applications, such as storing energy and filtering signals, among other things. In this article, we will discuss the application and working principle of SFD37T50-10K391E-F capacitor network.

Application

The SFD37T50-10K391E-F capacitor network is designed for efficient power delivery in low-profile applications. It is frequently used in power delivery systems for medical, industrial, and military applications. The network is also used in audio amplifiers, power supplies, motor control systems, and servo motors. It is composed of a multi-layer, high-density polypropylene dielectric material and two metal electrodes. The capacitor network is highly efficient and reliable and offers a low-resistance and leakage-free connection.

Working Principle

The SFD37T50-10K391E-F capacitor network works by storing electrical energy within its dielectric material and then releasing it when an external voltage is applied across the network. When the device is not connected to any power supply, the capacitors are fully charged and can release electrical energy for a period of time. When the external voltage is applied, an electrical field is generated and the stored energy is then released. This happens because the voltage applied to the metal plates causes the electrons in the dielectric material to move, creating a current. In this way, the capacitor can be used to store and release electrical energy.

Advantages

The SFD37T50-10K391E-F capacitor network offers several advantages. It is highly efficient and reliable, and provides a low-resistance and leakage-free connection. It is also able to deliver high amounts of power over long periods of time. The network is also robust and durable, with a high temperature rating and an electrostatic discharge rating. Additionally, the network is available in different configurations, allowing for greater flexibility in the design of power systems.

Disadvantages

Despite the advantages of the SFD37T50-10K391E-F capacitor network, it also has some drawbacks. The device has a limited capacity, meaning that it cannot store large amounts of energy. Additionally, it is relatively expensive compared to other capacitor networks and its size makes it difficult to use in some applications. It also requires frequent maintenance and replacement of components to ensure optimal performance.

Conclusion

The SFD37T50-10K391E-F capacitor network is an efficient and reliable power delivery device. It is commonly used in medical, industrial, and military applications and offers a low-resistance and leakage-free connection. While it is a robust and durable device, it has a limited capacity and can be relatively expensive. With regular maintenance, however, it can provide high performance in many types of applications.

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

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