550MJ409M600DG Allicdata Electronics
Allicdata Part #:

550MJ409M600DG-ND

Manufacturer Part#:

550MJ409M600DG

Price: $ 25.24
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Silicon Labs
Short Description: VCXO; DIFF/SE; SINGLE FREQ; 10-1
More Detail: 409.6MHz VCXO LVPECL Oscillator 3.3V Enable/Disabl...
DataSheet: 550MJ409M600DG datasheet550MJ409M600DG Datasheet/PDF
Quantity: 1000
50 +: $ 22.71480
Stock 1000Can Ship Immediately
$ 25.24
Specifications
Frequency Stability: ±20ppm
Current - Supply (Disable) (Max): 75mA
Height - Seated (Max): 0.071" (1.80mm)
Size / Dimension: 0.276" L x 0.197" W (7.00mm x 5.00mm)
Package / Case: 6-SMD, No Lead
Mounting Type: Surface Mount
Ratings: --
Current - Supply (Max): 130mA
Operating Temperature: -40°C ~ 85°C
Absolute Pull Range (APR): ±130ppm
Series: Si550
Voltage - Supply: 3.3V
Output: LVPECL
Function: Enable/Disable
Frequency: 409.6MHz
Type: VCXO
Base Resonator: Crystal
Part Status: Active
Packaging: Strip
Description

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Oscillators form an important class of electronic circuits that have broad applications. One such oscillator is the 550MJ409M600DG, whose characteristics qualify it for a host of applications. This article outlines the various fields in which 550MJ409M600DG oscillators are used and their working principle.

Application Fields of 550MJ409M600DG Oscillators

550MJ409M600DG oscillators have the right combination of features to make them applicable in numerous fields. Some of these fields are:

  • Communication: Communication systems use oscillators for critical frequency control. Here, 550MJ409M600DG oscillators are useful due to their high precision and accuracy. Moreover, the low power requirements of these oscillators make it an ideal choice for low-power communication systems.
  • Measurement and Control: In operational and control systems, oscillators are used to generate signals that are used to measure physical quantities such as temperature, pressure, and light intensity. Here, 550MJ409M600DG oscillators can be used for precise modulation and control of these signals.
  • Medical Imaging: Digital imaging systems used in medical applications require highly accurate timing signals. 550MJ409M600DG oscillators are exceptionally stable and accurate and are thus finding uses in such systems.
  • Electricity Meters: Electricity meters are used to measure the consumption of electricity by consumers. Here, 550MJ409M600DG oscillators are widely used due to their wide frequency range and low power requirements.
  • Computers and Peripherals: Computers and other digital electronics systems require oscillators to generate signals for seamless operation. 550MJ409M600DG oscillators are thus used in computers, modems, etc., to produce the required signals.

Working Principle

An oscillator is a circuit that produces an output that oscillates between two voltage values that are equal and opposite in nature. These values are known as the swing values. The output of the oscillator is then controlled by feedback components, which can be capacitors, resistors, transistors, etc. The feedback component sets the oscillator operating point, which is the point where the output is a maximum. The circuit continues to oscillate until the oscillator reaches its maximum output, at which point it is said to be stable and the output oscillations are known as generated waves. The generated waves are then connected to an amplifier to increase the output level.

In the case of the 550MJ409M600DG oscillator, its working principle is based on the above-described principles. Its tank circuit includes two capacitors and two inductors that have been tuned for controlling the speed and size of the generated signals. The tank circuit is connected to a buffer amplifier and the generated wave is then connected to an amplifier. The output of the amplifier is then given to an envelope follower. The envelope follower tunes the signal and produces the final output.

Conclusion

The 550MJ409M600DG oscillator is an important exception in terms of its wide range of applications and precise timing control. It finds use in communication, medical imaging, measuring and control, and electricity meter circuits. Its working principle includes the use of a tank circuit that produces wave oscillations, followed by a buffer amplifier to amplify the signal, and an envelope follower to tune the final output.

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

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