CMR05F391GODP Allicdata Electronics
Allicdata Part #:

CMR05F391GODP-ND

Manufacturer Part#:

CMR05F391GODP

Price: $ 4.78
Product Category:

Capacitors

Manufacturer: Cornell Dubilier Electronics (CDE)
Short Description: CAP MICA 390UF 500V
More Detail: 390pF Mica Capacitor 500V Radial
DataSheet: CMR05F391GODP datasheetCMR05F391GODP Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Contains lead / RoHS non-compliant
Moisture Sensitivity Level (MSL): 1 (Unlimited)
22 +: $ 4.34332
Stock 1000Can Ship Immediately
$ 4.78
Specifications
Series: CMR
Packaging: Bulk 
Lead Free Status / RoHS Status: --
Part Status: Active
Moisture Sensitivity Level (MSL): --
Capacitance: 390pF
Tolerance: ±2%
Voltage - Rated: 500V
Dielectric Material: Mica
Operating Temperature: -55°C ~ 125°C
Mounting Type: Through Hole
Package / Case: Radial
Lead Spacing: 0.224" (5.70mm)
Features: General Purpose
Size / Dimension: 0.469" L x 0.220" W (11.90mm x 5.60mm)
Height - Seated (Max): 0.402" (10.20mm)
Description

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Mica and PTFE capacitors are widely used components in today’s electronic devices. A great example of this technology is the CMR05F391GODP capacitor. This specific capacitor is a high-specification, reliable, robust, and low-loss component designed for a variety of applications. CMR05F391GODP capacitors use two electrodes—one made of mica and the other made of PTFE. This technology is advantageous because of the superior insulation between elements still allowing them to remain electrically connected. This specific capacitor has an ESR of 0.3 mΩ max at 100 KHz, with a maximum capacitance of 390 pF. Mica and PTFE capacitors provide a range of benefits for users. Firstly, the insulation between the two electrodes helps to reduce the amount of noise generated by the capacitor, while at the same time being extremely reliable and robust. This feature helps to increase reliability and reduce the chance of failure. Secondly, these capacitors are low-loss and highly efficient. This efficiency helps to increase stability when used in oscillator circuits or for filtering. The low temperature coefficient makes these capacitors suitable for power circuits, as they keep a stable performance even in extreme temperature conditions. In addition, these capacitors also offer excellent voltage and frequency characteristics, which, combined with their low loss and stability, make them well-suited for applications that require precise control over the frequency and temperature of the circuit. Furthermore, due to their long-term stability, these capacitors are often used in resonance circuits and amplifiers. The improved performance of CMR05F391GODP capacitors has made them a popular choice for applications in a variety of fields, including audio, video, telecommunication, automotive, and industrial applications. Moreover, as these capacitors use both mica and PTFE materials, they possess excellent mechanical properties. This includes superior electrical insulation, a robust design that can withstand high levels of environmental pressure, temperature and other environmental conditions, and corrosion and wear resistance. In terms of working principle, mica and PTFE capacitors work by forming an insulation layer between two conducting materials, which increases the amount of capacitance stored between them. This allows them to store static charges which, when the capacitors are discharged, are distributed evenly in the circuit. In addition, this capacitance layer helps dampen the effects of noise and electrical interference, keeping the circuit’s performance stable. Overall, the CMR05F391GODP capacitor offers a host of benefits for users. It offers reliable, robust and low-loss performance, as well as superior voltage and frequency characteristics. It is also extremely durable, suitable for hazardous environments, and highly resistant to corrosion and wear. Additionally, its ability to reduce noise and dampen electrical interference make it an ideal choice for a variety of applications.

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

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