
Allicdata Part #: | ABM12W-33.3300MHZ-6-K2Z-T3-ND |
Manufacturer Part#: |
ABM12W-33.3300MHZ-6-K2Z-T3 |
Price: | $ 0.41 |
Product Category: | Crystals, Oscillators, Resonators |
Manufacturer: | Abracon LLC |
Short Description: | CRYSTAL 33.3300MHZ 6PF SMD |
More Detail: | 33.33MHz ±20ppm Crystal 6pF 100 Ohms 4-SMD, No Lea... |
DataSheet: | ![]() |
Quantity: | 1000 |
3000 +: | $ 0.36540 |
Series: | ABM12W |
Packaging: | Tape & Reel (TR) |
Part Status: | Active |
Type: | MHz Crystal |
Frequency: | 33.33MHz |
Frequency Stability: | ±50ppm |
Frequency Tolerance: | ±20ppm |
Load Capacitance: | 6pF |
ESR (Equivalent Series Resistance): | 100 Ohms |
Operating Mode: | Fundamental |
Operating Temperature: | -40°C ~ 125°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): | 0.016" (0.40mm) |
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Crystals are used in numerous applications today, including in communication equipment, computer systems and military or aerospace applications. The ABM12W-33.3300MHZ-6-K2Z-T3 is a crystal that can be used to construct a crystal oscillator. In order to understand its application and working principle, it is important to start with a definition of what a crystal oscillator is.
A crystal oscillator is a circuit used to generate a constant frequency of oscillation. It makes use of an acoustically favorable quartz crystal or other piezoelectric material, cut in a certain shape, to establish an electrical resonant circuit. The resonant frequency of the crystal oscillator is determined by the shape and natural frequency of the crystal it contains, and other factors including the capacitance of the circuit and inductors added to the system.
The ABM12W-33.3300MHZ-6-K2Z-T3 crystal is an example of a quartz crystal that can be used to construct a crystal oscillator. It is a fundamental-mode, 6.0pF parallel-load, 9.5mm radial-package crystal. This crystal is designed to oscillate at a frequency of 33.3300 MHZ, with a tolerance of 200ppm (parts per million over the specified temperature range of -20° to +70°C). The total aging rate is 8ppm/year.
The ABM12W-33.3300MHZ-6-K2Z-T3 crystal can be used in a variety of applications, including radio frequency (RF) circuits, metrology systems, frequency counters, and telecommunicating receivers. The quartz crystal can also be used in combination with electronic components such as capacitors, inductors and filters to construct various types of crystal oscillators. Vandate and Pierce Oscillators are the two most common types.
The most basic type of crystal oscillator is the Pierce Oscillator, which is also known as a “passive-3rd overtone oscillator.” It consists of three components: a quartz crystal, a resistor and a capacitor. The quartz crystal functions as a filter to the sand the frequency, while the capacitor and resistor form a series circuit that acts to drive the crystal when the power is applied. The crystal’s resonant frequency is determined by the value of the capacitor and resistor in the circuit. When the oscillator is switched on, the capacitor is charged until its voltage matches the resonant frequency of the crystal, at which point an inductive voltage spike is created in the circuit. This initiates the oscillation at the resonant frequency.
The Vandate Oscillator is a more advanced type of crystal oscillator, which is also known as a “plug-in oscillator.” It uses a quartz crystal to control the resonant frequency, in combination with a variety of electronic components, including resistors, capacitors, transistors and diodes. It is a more stable oscillator than the Pierce Oscillator, as it is less affected by external noise sources.
The ABM12W-33.3300MHZ-6-K2Z-T3 crystal can be used to construct both the Pierce and Vandate oscillators and is suitable for a wide range of applications. It is a reliable and cost-effective solution for producing a precise, stable oscillation frequency, which makes it a popular choice for use in telecommunications systems and other communications equipment.
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