PBRC4.91MR10X000 Allicdata Electronics
Allicdata Part #:

1253-1635-2-ND

Manufacturer Part#:

PBRC4.91MR10X000

Price: $ 0.00
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Kyocera International Inc. Electronic Components
Short Description: CERAMIC RES 4.91MHZ 15PF SMD
More Detail: 4.91MHz Ceramic Resonator Built in Capacitor 15pF ...
DataSheet: PBRC4.91MR10X000 datasheetPBRC4.91MR10X000 Datasheet/PDF
Quantity: 1000
1 +: 0.00000
Stock 1000Can Ship Immediately
$ 0
Specifications
Series: PBRC-M, Kyocera
Packaging: Tape & Reel (TR) 
Part Status: Last Time Buy
Type: Ceramic
Frequency: 4.91MHz
Frequency Stability: ±0.1%
Frequency Tolerance: ±0.1%
Features: Built in Capacitor
Capacitance: 15pF
Operating Temperature: -40°C ~ 85°C
Mounting Type: Surface Mount
Package / Case: 3-SMD, No Lead
Size / Dimension: 0.177" L x 0.079" W (4.50mm x 2.00mm)
Height: 0.047" (1.19mm)
Description

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Resonators: PBRC4.91MR10X000 Application Field and Working Principle

Resonators are components used in electrical and electronic circuits to achieve specific resonance responses. They are generally used in radio frequency, amplitude and phase modulation and other applications. The PBRC4.91MR10X000 is a type of resonator that has a wide range of applications in different fields. This article will discuss the PBRC4.91MR10X000 in terms of its application field and working principle.

Applications of PBRC4.91MR10X000

The PBRC4.91MR10X000 resonator is a ceramic resonator with a 4.91 MHz resonant frequency and high accuracy over temperature. It is suitable for applications such as radio frequency (RF) frequency, phase and amplitude modulation, digital signal processing and many other communications system related applications. It is also used in various remote applications such as automatic meter reading and home security systems. It can also be used in oscillators, voltage-controlled oscillators and phase-locked loop applications.

The PBRC4.91MR10X000 has low phase noise and temperature stability, making it suitable for communication and digital signal processing. It is also suitable for use in medical devices and wearables, as well as automotive and navigation systems. Additionally, it is used in consumer electronics and other applications where high accuracy and low power consumption are needed.

Working Principle of PBRC4.91MR10X000

The PBRC4.91MR10X000 resonator works by vibrating along its natural axis at the resonant frequency that is specified in the product datasheet. This resonance is created by the application of an alternating electric current through the resonator. The current causes the resonator to vibrate, thus generating a frequency that is consistent over temperature and time. This frequency can be controlled and adjusted depending on the application.

The resonator creates a standing wave, which is created by the interference of waves coming from both sides of the resonator and reflects around the edges. The standing wave is the frequency of the resonator, which is dependent on the size, shape and material properties of the resonator itself. The PBRC4.91MR10X000 has a highly stable resonant frequency due to its construction and materials.

When an alternating current is applied to the resonator, an electromotive force (EMF) is generated. This EMF adjusts the resonator\'s frequency to the applied electric current. The frequency of the current can be adjusted to a specific or range of frequencies depending on the application. The frequency is stable over time and temperature, making it ideal for use in applications where accuracy and stability are important.

Conclusion

The PBRC4.91MR10X000 is a type of ceramic resonator commonly used in a variety of applications. It has a wide range of applications, from remote communication and navigation systems to consumer electronics and medical devices. Its resonant frequency is highly stable and accurate, making it suitable for applications where accuracy and stability are important. It works by vibrating along its natural frequency when an alternating current is applied, creating a standing wave of the specified frequency. This wave is then adjusted by the application of an EMF to adjust the frequency of the wave. This makes it an ideal choice for applications that require accurate and stable frequencies.

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

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