Allicdata Part #: | CX2016DB35416K0DZFA1-ND |
Manufacturer Part#: |
CX2016DB35416K0DZFA1 |
Price: | $ 0.41 |
Product Category: | Crystals, Oscillators, Resonators |
Manufacturer: | Kyocera International Inc. Electronic Components |
Short Description: | CRYSTAL 35.4160MHZ 8PF SMD |
More Detail: | 35.416MHz ±10ppm Crystal 8pF 60 Ohms 4-SMD, No Lea... |
DataSheet: | CX2016DB35416K0DZFA1 Datasheet/PDF |
Quantity: | 1000 |
1000 +: | $ 0.37800 |
Series: | CX2016DB, Kyocera |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Type: | MHz Crystal |
Frequency: | 35.416MHz |
Frequency Stability: | ±15ppm |
Frequency Tolerance: | ±10ppm |
Load Capacitance: | 8pF |
ESR (Equivalent Series Resistance): | 60 Ohms |
Operating Mode: | Fundamental |
Operating Temperature: | -10°C ~ 70°C |
Ratings: | -- |
Mounting Type: | Surface Mount |
Package / Case: | 4-SMD, No Lead |
Size / Dimension: | 0.079" L x 0.063" W (2.00mm x 1.60mm) |
Height - Seated (Max): | 0.018" (0.45mm) |
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Crystals are typically categorized according to their regular, three-dimensional arrangement of atoms, ions or molecules. They have a variety of uses, including in electronics, optics and biochemistry. The CX2016DB35416K0DZFA1 is a type of crystal with unique properties. In this article, we will explore the applications and working principles of the CX2016DB35416K0DZFA1.
Description of CX2016DB35416K0DZFA1
The CX2016DB35416K0DZFA1 crystal is a type of quartz crystal that exhibits a high-frequency response and low-frequency vibration. It is composed of a crystalline lattice of silicon dioxide molecules. The crystal’s external structure consists of a single six-sided plate, while its internal structure consists of multiple small plates arranged in alternating planes. It has a high-temperature-resistant shell and a low-temperature-resistant internal structure.
Applications of CX2016DB35416K0DZFA1
The CX2016DB35416K0DZFA1 crystal has a wide range of applications in electronics and other fields. Due to its high frequency-response and low-vibration characteristics, the crystal is used in a variety of electronic products, such as oscillators, timers, filters and sensors. It is also a key component in medical equipment and communication devices. The CX2016DB35416K0DZFA1 is also used as a dielectric material in capacitors and microelectromechanical systems (MEMS).
The CX2016DB35416K0DZFA1 crystal is also used in biochemistry applications. It is used to produce a single crystal of insulin, which can be used in drug research and development. Additionally, the crystal is used in epigenetic research, as its vibration characteristics can be used to detect and measure epigenetic variables such as gene expression levels.
Working Principle of CX2016DB35416K0DZFA1
The CX2016DB35416K0DZFA1 crystal works by converting an electrical signal into an oscillating vibration. This vibration is then transferred to the external and internal layers of the crystal, causing them to vibrate in tune with the signal. As the vibration frequency increases, the electrical signal is amplified. The amplified signal is then relayed to the device\'s components, such as a capacitor or oscillator, where it is then used to control the device.
The CX2016DB35416K0DZFA1 crystal\'s working principle can be understood by examining its crystalline lattice structure. The crystal is composed of a lattice of microscopic silicon dioxide molecules. When an electrical signal is applied to the crystal, it causes the molecules in the lattice to vibrate in resonance with the signal. As the frequency of the signal increases, the lattice molecules vibrate faster and amplify the signal. This amplified signal is then transferred to the device\'s components, where it can be used to control the device.
Conclusion
The CX2016DB35416K0DZFA1 crystal is a type of quartz crystal with a wide range of applications in electronics, optics and biochemistry. Its high-frequency response and low-vibration characteristics make it an ideal choice for a variety of electronic products, such as oscillators, timers, filters and sensors. The crystal works by converting an electrical signal into an oscillation and amplifying the signal when the frequency of the signal increases. The amplified signal is then relayed to the device\'s components, where it is used to control the device.
The specific data is subject to PDF, and the above content is for reference
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