CDV30FH121FO3 Allicdata Electronics
Allicdata Part #:

CDV30FH121FO3-ND

Manufacturer Part#:

CDV30FH121FO3

Price: $ 8.10
Product Category:

Capacitors

Manufacturer: Cornell Dubilier Electronics (CDE)
Short Description: MICA
More Detail: 120pF Mica Capacitor 1.5kV Radial
DataSheet: CDV30FH121FO3 datasheetCDV30FH121FO3 Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
13 +: $ 7.36165
Stock 1000Can Ship Immediately
$ 8.1
Specifications
Series: CDV30
Packaging: Bulk 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 120pF
Tolerance: ±1%
Voltage - Rated: 1.5kV
Dielectric Material: Mica
Operating Temperature: -55°C ~ 125°C
Mounting Type: Through Hole
Package / Case: Radial
Lead Spacing: 0.437" (11.10mm)
Features: General Purpose
Size / Dimension: 0.772" L x 0.252" W (19.60mm x 6.40mm)
Height - Seated (Max): 0.850" (21.60mm)
Description

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Mica and PTFE capacitors are an essential part of many electrical and electronic systems. They are used for a wide variety of situations, including power conditioning, filtering, and voltage regulation. They also play an important role in the design of devices such as amplifiers and receivers. Understanding the principles of mica and PTFE capacitors is essential for any technician or engineer in the fields of electrical and electronic engineering.

The CDV30FH121FO3 capacitor is an example of a mica and PTFE capacitor. It is a multi-layer ceramic capacitor that utilizes a two layer design to provide high performance. It offers very low ESR and allows for high voltage and current operation. The device is ideal for applications such as power conditioning, filtering, and voltage regulation.

The capacitance of the CDV30FH121FO3 is mainly determined by the relative ratios of the dielectric mica and PTFE layers. The ceramic material used is PVD-LC-A, which provides exceptional reliable performance over the temperature range stated. The mica and PTFE capacitors are available in a range of capacitances from 0.5 pF to more than 100μF.

The application fields of the CDV30FH121FO3 capacitor are:

  • Telecommunications – used in a variety of high-tech equipment, including radio transmitters, receivers, and modems.
  • High-frequency analog and digital circuits – used for RF and power filtering.
  • Electric motors – used in a variety of motors, including DC, AC and stepper motors.
  • Electronic instruments and meters – used in a wide variety of electronic instruments, such as multimeters and oscilloscopes.
  • Power supplies – used in a number of power supplies, including switch-mode power supplies, and power control circuits.
  • High-voltage equipment – used for voltage isolation, and in high voltage rectification circuits.

The working principle of the CDV30FH121FO3 capacitor is based on using an alternating electric field to operate at a frequency that is inversely proportional to the capacitance. The alternating electric field is created by the alternating voltages, which are applied to the device via a series of electrodes. The electrical charge from the electrodes creates an electric field across the plates, which cause the electrical field to move through the device and create an alternating current.

The alternating current produced by the CDV30FH121FO3 capacitor causes a voltage drop across its terminals, which is proportional to the capacitance. This voltage drop can be used to vary resistance and inductance in an electrical circuit, as well as to filter out unwanted frequency components. This makes the device ideal for applications such as power conditioning, filtering, and voltage regulation.

In conclusion, the CDV30FH121FO3 capacitor is an example of a mica and PTFE capacitor that offers exceptional performance and reliability over a broad temperature range. It is used in a wide variety of applications, such as telecommunications, high frequency analog and digital circuits, electric motors, power supplies, and electronic instruments and meters. Its working principle is based on using an alternating electric field to create an alternating current in which causes a voltage drop across its terminals that is proportional to the capacitance.

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

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