ECW-H10123HVB Allicdata Electronics
Allicdata Part #:

ECW-H10123HVB-ND

Manufacturer Part#:

ECW-H10123HVB

Price: $ 0.18
Product Category:

Capacitors

Manufacturer: Panasonic Electronic Components
Short Description: CAP FILM 0.012UF 3% 1KVDC RADIAL
More Detail: 0.012µF Film Capacitor 1000V (1kV) Polypropylene ...
DataSheet: ECW-H10123HVB datasheetECW-H10123HVB Datasheet/PDF
Quantity: 1000
Moisture Sensitivity Level (MSL): 1 (Unlimited)
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
600 +: $ 0.15908
Stock 1000Can Ship Immediately
$ 0.18
Specifications
Operating Temperature: -40°C ~ 105°C
Features: --
Ratings: --
Applications: High Frequency, Switching
Lead Spacing: 0.394" (10.00mm)
Termination: PC Pins
Height - Seated (Max): 0.728" (18.50mm)
Size / Dimension: 0.709" L x 0.256" W (18.00mm x 6.50mm)
Package / Case: Radial
Mounting Type: Through Hole
Series: ECW-H(V)
Dielectric Material: Polypropylene (PP), Metallized
Voltage Rating - DC: 1000V (1kV)
Voltage Rating - AC: --
Tolerance: ±3%
Capacitance: 0.012µF
Moisture Sensitivity Level (MSL): --
Part Status: Active
Lead Free Status / RoHS Status: --
Packaging: Bulk 
Description

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Film capacitors are an increasingly common type of capacitor in a range of applications. They are primarily composed of thin film layers of conductive material, sandwiched between two dielectric layers. Film capacitors are relatively small components but are extremely reliable and able to deliver excellent performance in a variety of applications.

The ECW-H10123HVB is a film capacitor from the EPCOS/TDK range. This component is optimised for high frequency switching power supplies and applications requiring high peak current handling capacity. The ECW-H10123HVB is made up of two dielectric layers of polyester and polycarbonate sandwiched together. The layers are separated by a thin metal layer of aluminium. The thin film layers provide a high degree of stability and low dielectric absorption. The capacitor also benefits from an improved temperature coefficient of capacitance.

The operating range is between 30 kHz and 2.2 MHz, with a capacitance range of 20 to 1000 pF. The peak current range is from 200 to 740 mA. The capacitor has an impedance-temperature coefficient of 1.2 ppm/K. It can function in temperatures between -55 and +105°C. The product operates at a rated voltage of 10 V and has a 4.5 mm lead pitch, allowing it to fit within a compact package.

The ECW-H10123HVB is primarily used in the signal and audio processing industry, in various applications involving high frequencies, such as digital signal processors (DSPs), radio frequency (RF) transceivers, and other high-speed switching power supplies and circuits. The product is also often used in industrial control systems and the automotive industry. Due to its high dielectric strength, the component is well suited for use in harsh environments such as high-voltage industrial applications.

The working principle of the ECW-H10123HVB is based on a storage of electrical charge in a conductive layer between two dielectric layers. Charge is stored as electrons and it is this charge which produces an electric field. This electric field determines the capacitance, which is a measure of the amount of charge stored on the capacitor\'s plates. When a voltage is applied to the capacitor, charge begins to move between the two dielectric layers. This movement of charge creates an alternating current, which is then used to drive the circuit.

In summary, the ECW-H10123HVB is a polyester/polycarbonate film capacitor manufactured by the EPCOS/TDK range. It is optimised for high frequency switching applications and is suitable for a range of industries, including signal and audio processing, industrial control systems, and the automotive industry. The capacitor has a capacitance range of 20 to 1000 pF, a peak current range of 200 to 740 mA, and a temperature range of -55 to +105°C. The working principle of the capacitor is based on the storage of electrical charge between two dielectric layers. This charge produces an electric field and creates a current when a voltage is applied.

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

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