PBRC12.00HR50X000 Allicdata Electronics

PBRC12.00HR50X000 Crystals, Oscillators, Resonators

Allicdata Part #:

478-2112-2-ND

Manufacturer Part#:

PBRC12.00HR50X000

Price: $ 0.15
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Kyocera International Inc. Electronic Components
Short Description: CER RES 12.0000MHZ 10PF SMD
More Detail: 12MHz Ceramic Resonator Built in Capacitor 10pF ±0...
DataSheet: PBRC12.00HR50X000 datasheetPBRC12.00HR50X000 Datasheet/PDF
Quantity: 22000
2000 +: $ 0.14112
4000 +: $ 0.13230
6000 +: $ 0.12789
10000 +: $ 0.12348
Stock 22000Can Ship Immediately
$ 0.15
Specifications
Series: PBRC-H, Kyocera
Packaging: Tape & Reel (TR) 
Part Status: Last Time Buy
Type: Ceramic
Frequency: 12MHz
Frequency Stability: ±0.1%
Frequency Tolerance: ±0.7%
Features: Built in Capacitor
Capacitance: 10pF
Operating Temperature: -40°C ~ 85°C
Mounting Type: Surface Mount
Package / Case: 3-SMD, Non-Standard
Size / Dimension: 0.291" L x 0.134" W (7.40mm x 3.40mm)
Height: 0.079" (2.00mm)
Description

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Introduction

Resonators are devices which are used to store and release energy in form of mechanical oscillations. The PBRC12.00HR50X000 is a type of resonator which consists of a ferrite material with a nickel coating and a set of electrodes. This type of resonator is highly reliable and efficient, and is used in various applications including frequency selectivity, impedance matching, filtering, and signal amplification.

Application Field

The PBRC12.00HR50X000 resonator is used mainly in the automotive and aerospace industry. It is used for a variety of purposes including frequency control, resonant circuit designs, timing applications, and signal characterization. Additionally, it has many other applications in the medical, industrial and telecommunications industries.

In the medical field, the CBRC12.00HR50X000 resonator is used in medical imaging and ultrasound devices. It is also used to calibrate pacemakers, computers, and other medical instruments. In the industrial sector, it is used to improve signal transmissions and to monitor electrical circuits.

The CBRC12.00HR50X000 resonator can also be used in the aerospace industry for vehicle guidance, navigation, and communication systems. It is also used in satellite navigation, ground-based station communication, and land and sea based vehicle navigation systems. Additionally, it is used in aircraft engines and other vehicle propulsion systems.

The CBRC12.00HR50X000 resonator can also be used in telecommunications. It is used for signal amplification and filtering, frequency selection, and impedance matching. Additionally, it is also used for frequency synthesis and the generation of broadband radio signals.

Working Principle

The PBRC12.00HR50X000 resonator works on the principle of resonance. When electrical energy flows through the resonator it is converted into an acoustic signal by the ferrite material. The acoustic signal is then picked up by the set of electrodes. The current produced by the electrodes creates an electromagnetic field, which causes the ferrite to vibrate at a specific frequency or range of frequencies.

When the ferrite vibrates at its resonant frequency, the electrical energy is converted back into its original state, but with a higher intensity. This increase in current is proportional to the Q factor of the resonator. The higher the Q factor, the higher the intensity of the current produced.

The frequency at which the ferrite vibrates is known as the resonant frequency of the resonator and is determined by the type of material used and the shape of the resonator. When the frequency is set to a specific value, it acts as a filter to block frequencies outside of that range. As a result, the PBRC12.00HR50X000 resonator is used for applications such as filtering, signal amplification, impedance matching, and frequency selection.

Conclusion

The PBRC12.00HR50X000 resonator is a reliable and efficient device used in a wide variety of applications including medical imaging and ultrasound, filtering, signal amplification, impedance matching, and frequency selection. Its working principle is based on the principle of resonance and its frequency is determined by the type of material used and the shape of the resonator. The higher the Q factor, the higher the intensity of the current produced.

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

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