CD30FD103FO3F Allicdata Electronics
Allicdata Part #:

338-3054-ND

Manufacturer Part#:

CD30FD103FO3F

Price: $ 9.47
Product Category:

Capacitors

Manufacturer: Cornell Dubilier Electronics (CDE)
Short Description: CAP MICA 10000PF 1% 500V RADIAL
More Detail: 10000pF Mica Capacitor 500V Radial
DataSheet: CD30FD103FO3F datasheetCD30FD103FO3F Datasheet/PDF
Quantity: 143
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
1 +: $ 8.60400
10 +: $ 8.17380
100 +: $ 6.45300
500 +: $ 5.72165
Stock 143Can Ship Immediately
$ 9.47
Specifications
Series: CD30
Packaging: Bulk 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 10000pF
Tolerance: ±1%
Voltage - Rated: 500V
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: 0.799" L x 0.339" W (20.30mm x 8.60mm)
Height - Seated (Max): 0.890" (22.60mm)
Description

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Mica and PTFE Capacitors

Mica and PTFE capacitors are passive components used in a wide range of applications. Covering frequencies from Hz to GHz, these capacitors have a variety of characteristics that make them suitable for different applications. Recently, newer capacitors have become available, such as the CD30FD103FO3F. This paper will discuss the application field and working principle of the CD30FD103FO3F.The CD30FD103FO3F belongs to the category of Mica and PTFE Capacitors. These types of capacitors are commonly used for wide area of frequencies and applications. They are suitable for high-frequency applications due to their low self-inductance and-dielectric loss. Their mica-dielectric construction also helps them to have uniform capacitance and low losses.The CD30FD103FO3F is used in a large array of applications, including low- and high-frequency IF filtering, antenna and broadcast circuits, military/aerospace systems, medical electronics, instrumentation controls, DC-DC converters, and telecommunications infrastructure. This capacitor is designed for RoHS compliant applications, with a Low ESL and Insertion Loss. It is also a two-layer capacitor made of a thin Mica and PTFE dielectric, with each layer having a thickness of 30 mil.The working principle behind the CD30FD103FO3F, as with all other capacitors, is the ability of the material used in its construction to store an electric charge. The CD30FD103FO3F has two layers of dielectric, made of highly resistive oxides of mica, and PTFE. Each dielectric layer helps to maintain the desired capacitance, and also helps enhance the electrical properties of the capacitor. When a voltage is applied to the device, the layers of dielectric cause the device to create an electric field, thus creating capacitance.The CD30FD103FO3F has a number of unique features that make it perfect for use in various applications. These include a low ESR and a low insertion loss, which are essential for high-frequency applications. Additionally, the PTFE dielectric helps to reduce losses in the device, which also helps to improve the quality of the signal in applications such as filtering. Lastly, the two-layer dielectric construction helps to maintain a uniform capacitance and low losses, making the CD30FD103FO3F an ideal choice for efficient use of power.In conclusion, the CD30FD103FO3F belongs to the category of Mica and PTFE capacitors. It is a two-layer capacitor made of a thin Mica and PTFE dielectric, with each layer having a thickness of 30 mil. It is used in a variety of applications, such as low- and high-frequency filtering, antenna and broadcast circuits, military/aerospace systems, medical electronics, instrumentation controls, and telecommunication infrastructure. It has a number of features that make it suitable for these applications, including a low ESR and a low insertion loss. The working principle of the CD30FD103FO3F is based on the ability of its two layers of dielectric to create an electric field, and thus creating capacitance when a voltage is applied to the device.

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

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