9900-381-6006 Allicdata Electronics
Allicdata Part #:

1171-1170-ND

Manufacturer Part#:

9900-381-6006

Price: $ 0.00
Product Category:

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Manufacturer: API Technologies Corp
Short Description: CAP FEEDTHRU 0.045UF 35V AXIAL
More Detail: 0.045µF Feed Through Capacitor 35V 10A 10 mOhm Axi...
DataSheet: 9900-381-6006 datasheet9900-381-6006 Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: --
Packaging: Bulk 
Part Status: Discontinued at Digi-Key
Capacitance: 0.045µF
Tolerance: --
Voltage - Rated: 35V
Current: 10A
DC Resistance (DCR) (Max): 10 mOhm
Operating Temperature: -55°C ~ 125°C
Insertion Loss: 45dB @ 100MHz
Temperature Coefficient: --
Ratings: --
Mounting Type: Chassis Mount
Package / Case: Axial, Bushing
Size / Dimension: 0.156" Dia x 0.350" L (3.96mm x 8.90mm)
Height (Max): --
Thread Size: 4-40
Description

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Feed Through Capacitors are components that, as the name implies, are capacitors that connect to a circuit through a connection port. 9900-381-6006 application field and working principles specifically refer to a type of feed through capacitor called a multiple capacitor. Multiple capacitors, as the name suggests, consist of many individual capacitors or capacitors in a series of two active components.

Multiple capacitors are primarily used to filter out unwanted signals, or static electricity, in a circuit, particularly when used in high-end applications such as in computers, cell phones, and audio cards. The multiple capacitors are often connected together in order to form a larger band-pass filter which serves to reduce the noise of a circuit or to provide a higher signal-to-noise ratio.

The 9900-381-6006 multiple capacitors are constructed with two series of capacitors called the “input” and the “output” capacitors. The input capacitors are designed to offer resistance to incoming static electronic noise, while the output capacitors are designed to provide resistance to outgoing static noise. This dual stage design allows the capacitance to be adjusted to suit different needs, for example, for high frequency circuits or low frequency signals.

The 9900-381-6006 application field and working principle can also be referred to as a “feed through capacitor” since it serves to filter out unwanted signals from a circuit. The theory behind the feed through capacitor is that the static electrical current is introduced to the circuit and then filtered out before leaving the circuit. This is done by means of the capacitive network formed by the input and output capacitors.

The working principle of the 9900-381-6006 multiple capacitor is relatively simple. When the static electricity or noise reaches the capacitor, it is spread out through the capacitive network. Due to the design of the capacitors, the static electricity is then confined to a smaller area, thus the noise is effectively filtered out before leaving the circuit.

The 9900-381-6006 application field and working principles are widely used in many different types of electronics, from cell phones, computers, and audio cards, to automated control systems and medical equipment. The multiple capacitor can provide a number of important benefits, such as improved signal-to-noise ratios, greater stability, and improved circuit reliability.

The 9900-381-6006 multiple capacitor also offers a number of other benefits, such as reduced crosstalk in circuits, improved performance, improved impedance matching, and improved cost effectiveness. In addition, the multiple capacitors also help to reduce system EMI and RFI noise.

In conclusion, the 9900-381-6006 application field and working principle makes it an ideal component for applications that require high-end filtering of electrical noise. This makes them essential components for many industrial, commercial, and consumer applications. The multiple capacitor is specifically designed to provide the highest quality signal-to-noise ratio and improved circuit stability, while also being cost effective.

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

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