X3LEECNANF-27.120000 Allicdata Electronics

X3LEECNANF-27.120000 Crystals, Oscillators, Resonators

Allicdata Part #:

1664-1402-2-ND

Manufacturer Part#:

X3LEECNANF-27.120000

Price: $ 0.41
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Taitien
Short Description: CRYSTAL 27.12MHZ 6PF SMD
More Detail: 27.12MHz ±30ppm Crystal 6pF 150 Ohms 4-SMD, No Lea...
DataSheet: X3LEECNANF-27.120000 datasheetX3LEECNANF-27.120000 Datasheet/PDF
Quantity: 3000
3000 +: $ 0.36997
6000 +: $ 0.35721
15000 +: $ 0.34445
Stock 3000Can Ship Immediately
$ 0.41
Specifications
Series: X3
Packaging: Tape & Reel (TR) 
Part Status: Active
Type: MHz Crystal
Frequency: 27.12MHz
Frequency Stability: ±30ppm
Frequency Tolerance: ±30ppm
Load Capacitance: 6pF
ESR (Equivalent Series Resistance): 150 Ohms
Operating Mode: Fundamental
Operating Temperature: -20°C ~ 70°C
Ratings: --
Mounting Type: Surface Mount
Package / Case: 4-SMD, No Lead
Size / Dimension: 0.063" L x 0.047" W (1.60mm x 1.20mm)
Height - Seated (Max): 0.018" (0.45mm)
Description

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Crystals: X3LEECNANF-27.120000 Application Field and Working Principle

Crystals are one of the most important elements in modern electronics, playing a vital role in a number of technological applications. X3LEECNANF-27.120000 is a type of crystal device that has a number of uses in the industry, from low power systems to high-precision communications. This article looks at the X3LEECNANF-27.120000\'s application fields, as well as its working principle.X3LEECNANF-27.120000 is a piezoelectric device, meaning that it is capable of converting mechanical energy into electrical energy, and vice versa. This means that X3LEECNANF-27.120000 is able to act as a transducer, taking in mechanical signals from an outside source and converting it into electrical signals and vice versa. As a result, this makes X3LEECNANF-27.120000 suitable for use in a number of applications, from low power systems to high-precision communications.One of the primary applications of X3LEECNANF-27.120000 is in low-power systems. X3LEECNANF-27.120000 is able to convert energy from an outside source into an electrical signal, which makes it ideal for use in battery-powered systems, as it will offer an efficient and reliable way to provide power to the system. This is particularly useful in situations where the system is unable to access power from the grid.In addition to its use in low-power systems, X3LEECNANF-27.120000 is also used in high-precision communications. X3LEECNANF-27.120000 is able to take in mechanical signals from an outside source and convert it into electrical signals, which makes it ideal for use in telecommunication applications, such as mobile phones and other radio-based communication systems. Furthermore, its ability to convert mechanical signals into electrical signals make it suitable for use in a number of other applications, such as in medical imaging technologies and in diagnostic and therapeutic instruments.While X3LEECNANF-27.120000 has a number of different applications, its working principle is the same across all of them. X3LEECNANF-27.120000 operates according to the piezoelectric effect, which states that when a crystal is subjected to mechanical stresses such as pressure or strain, it will generate an electrical charge. This charge can then be harvested and used for various purposes.In the case of X3LEECNANF-27.120000, a mechanical stress is applied to the crystal in order to induce a voltage potential. The voltage potential is then used to generate an electrical signal that can be used to power a circuit or to transmit a signal. By carefully controlling the magnitude and direction of this mechanical stress, it is possible to control the strength of the electrical signals generated by the X3LEECNANF-27.120000.In conclusion, X3LEECNANF-27.120000 is a type of crystal device that has a number of uses, from low-power systems to high-precision communication systems. This is possible thanks to its ability to convert mechanical energy into electrical energy, and vice versa. X3LEECNANF-27.120000 operates according to the piezoelectric effect, where mechanical stresses are applied to the crystal in order to generate a voltage potential that can then be harvested and used for various purposes.

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