FC4SDCBMF12.0-T1 Allicdata Electronics
Allicdata Part #:

631-1013-1-ND

Manufacturer Part#:

FC4SDCBMF12.0-T1

Price: $ 0.22
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Fox Electronics
Short Description: CRYSTAL 12.0000MHZ 20PF SMD
More Detail: 12MHz ±30ppm Crystal 20pF 60 Ohms HC-49/US
DataSheet: FC4SDCBMF12.0-T1 datasheetFC4SDCBMF12.0-T1 Datasheet/PDF
Quantity: 41684
1 +: $ 0.19530
10 +: $ 0.16380
50 +: $ 0.14729
100 +: $ 0.13098
500 +: $ 0.12443
Stock 41684Can Ship Immediately
$ 0.22
Specifications
Series: HC49SDLF
Packaging: Cut Tape (CT) 
Part Status: Active
Type: MHz Crystal
Frequency: 12MHz
Frequency Stability: ±50ppm
Frequency Tolerance: ±30ppm
Load Capacitance: 20pF
ESR (Equivalent Series Resistance): 60 Ohms
Operating Mode: Fundamental
Operating Temperature: -20°C ~ 70°C
Ratings: --
Mounting Type: Surface Mount
Package / Case: HC-49/US
Size / Dimension: 0.461" L x 0.197" W (11.70mm x 5.00mm)
Height - Seated (Max): 0.177" (4.50mm)
Description

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Crystals are one of the most widely used materials in the electronics industry, due to their unique structures and properties. The distributed feedback crystals, typically denoted as FC4SDCBMF12.0-T1 (Four-channel, Surface Mount, CR-based, Batch-fabricated Micromechanical Filming, 12.0 mm x 1 mm), is an example of such crystals, which can be used in a variety of applications to produce very precise frequency and time output. This article will discuss the application field and working principle of FC4SDCBMF12.0-T1.

The FC4SDCBMF12.0-T1 is a four-channel distributed feedback crystal that uses surface-mount technology. It has excellent stability, low power consumption, and a very high frequency and time precision. Its properties make it suitable for use in a wide range of applications, such as digital communication, frequency synthesis, and timing clock. Additionally, it is widely used for time keeping, for temperature and pressure sensing, and for acoustical acquisition.

The FC4SDCBMF12.0-T1’s fabrication process includes the use of photolithography to create the intricate structures that make up the crystal. The material used is a combination of ceramic and metal which is then etched to form the required pattern. This combination of materials and techniques provides excellent stability and protection against interference and environmental factors. The resulting crystal can easily be integrated into a variety of electronic devices, such as clock and timing systems, microcontrollers, and embedded systems.

The FC4SDCBMF12.0-T1 makes use of several novel design techniques to achieve its precision. Firstly, it utilizes distributed feedback oscillators, which stabilize the output frequency while creating low output noise. Secondly, it employs a multi-layer design which increases its immunity to undesirable environmental factors. Finally, its highly-stabilized long-term frequency stability allows it to be used in high-precision systems, particularly those that require continuous monitoring.

The FC4SDCBMF12.0-T1 works by converting electrical energy into mechanical energy using a piezo-electric crystal film. The film, which contains a resonance frequency, is placed between two pieces of metal film. This creates a combined resonant frequency which is then amplified by a crystal amplifier to create a very precise frequency and time output. This output is inherently stable and highly resistant to environmental disturbances, meaning that it can be used for precision timekeeping, frequency synthesis, and other electronic applications.

Overall, the FC4SDCBMF12.0-T1 is an extremely versatile and precise distributed feedback crystal that is suitable for a variety of applications. Its combination of materials and design techniques allows it to achieve an excellent frequency and time output while having a very low power consumption. Furthermore, its design and fabrication process also makes it highly resistant to interference and environmental factors. Therefore, theFC4SDCBMF12.0-T1 is an ideal choice for use in digital communication, frequency synthesis, time keeping, temperature and pressure sensing, and acoustical acquisition.

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

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