9C-18.432MAGK-T Allicdata Electronics
Allicdata Part #:

9C-18.432MAGK-T-ND

Manufacturer Part#:

9C-18.432MAGK-T

Price: $ 0.16
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: TXC Corporation
Short Description: CRYSTAL 18.432MHZ 20PF SMD
More Detail: 18.432MHz ±50ppm Crystal 20pF 30 Ohms HC-49/US
DataSheet: 9C-18.432MAGK-T datasheet9C-18.432MAGK-T Datasheet/PDF
Quantity: 1000
1000 +: $ 0.15120
Stock 1000Can Ship Immediately
$ 0.16
Specifications
Series: 9C
Part Status: Active
Type: MHz Crystal
Frequency: 18.432MHz
Frequency Stability: ±30ppm
Frequency Tolerance: ±50ppm
Load Capacitance: 20pF
ESR (Equivalent Series Resistance): 30 Ohms
Operating Mode: Fundamental
Operating Temperature: -40°C ~ 85°C
Ratings: --
Mounting Type: Surface Mount
Package / Case: HC-49/US
Size / Dimension: 0.449" L x 0.189" W (11.40mm x 4.80mm)
Height - Seated (Max): 0.161" (4.10mm)
Description

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Crystals: 9C-18.432MAGK-T Application Field and Working Principle

Crystals are piezoelectric components that convert electrical signals into mechanical vibrations and vice versa. Crystal oscillators are the most common crystal-based components and they are used in a wide range of applications. 9C-18.432MAGK-T is a crystal oscillator that is mainly used in the avionics, military, and telecommunications industries. This article will provide an overview of the 9C-18.432MAGK-T and its applications, as well as a detailed explanation of the principles behind its operation.The 9C-18.432MAGK-T is a miniature crystal oscillator that operates at a frequency of 18.43MHz. It is designed for applications that require low power consumption and high frequency stability. Its miniature size (3.2mm x 2.5mm x 0.85mm) makes it ideal for portable and mobile devices. Furthermore, it is capable of providing excellent temperature stability and reliability.The 9C-18.432MAGK-T consists of two electrodes and a quartz crystal element. When an alternating current is applied to the crystal, the quartz piezoelectric element vibrates, producing a sinusoidal waveform. This waveform is then fed into a frequency divider circuit, which divides the frequency and produces a divided frequency signal. This divided frequency signal is then amplified and outputted.The 9C-18.432MAGK-T is primarily used in avionics, military, and telecommunications applications. In avionics applications, the 9C-18.432MAGK-T is used in a variety of navigation and autopilot systems. In the military, it is used in radars, radios, and sonars. In the telecommunications industry, it is used in antennas, base stations, and cellular networks.The 9C-18.432MAGK-T is also used in a range of consumer electronics and medical devices. In consumer electronics, it is used to provide accurate timing in smartphones and other devices. In medical devices, it is used to power pacemakers, defibrillators, and other medical monitoring equipment.The 9C-18.432MAGK-T is designed for long-term reliability and performance. Its temperature compensation and anti-aging characteristics help to ensure that the frequency is stable and accurate over the long term. Its vibration resistance also helps to reduce the risk of damage due to shock or vibration, making it suited for use in industrial and commercial applications.The working principle of the 9C-18.432MAGK-T is based on the piezoelectric effect. When a voltage is applied to the quartz crystal, the crystal vibrates and produces a sinusoidal waveform. This waveform is then divided and amplified, before being outputted. The frequency of the waveform can be easily adjusted by changing the voltage applied to the crystal.In conclusion, the 9C-18.432MAGK-T is a miniature low-power crystal oscillator used in a variety of avionics, military, and telecommunications applications. Its small size, lower power consumption, temperature stability and vibration resistance also make it suitable for use in a wide range of consumer electronics and medical devices. The working principle is based on the piezoelectric effect, in which a voltage is applied to a quartz crystal, causing it to vibrate and producing an output waveform.

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