530AB76M0000DGR Allicdata Electronics
Allicdata Part #:

530AB76M0000DGR-ND

Manufacturer Part#:

530AB76M0000DGR

Price: $ 5.56
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Silicon Labs
Short Description: SINGLE FREQUENCY XO, OE PIN 2 (O
More Detail: 76MHz XO (Standard) LVPECL Oscillator 3.3V Enable/...
DataSheet: 530AB76M0000DGR datasheet530AB76M0000DGR Datasheet/PDF
Quantity: 1000
250 +: $ 5.05454
Stock 1000Can Ship Immediately
$ 5.56
Specifications
Absolute Pull Range (APR): --
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): 121mA
Operating Temperature: -40°C ~ 85°C
Series: Si530
Frequency Stability: ±20ppm
Voltage - Supply: 3.3V
Output: LVPECL
Function: Enable/Disable
Frequency: 76MHz
Type: XO (Standard)
Part Status: Active
Packaging: Tape & Reel (TR) 
Description

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Oscillators can be referred to a class of electronic circuits built to produce periodic waves. These waves can be in the form of a square wave, triangle wave, or sinusoidal wave. Oscillators often play a vital role in electrical and electronic circuits. The oscillator or oscillatory circuit is generally used to produce a precision frequency of oscillatory energy that can be used to generate signals in order to control systems or serve as the time reference for a circuit. The subject of oscillators could theoretically be divided into many subtopics, but here we will take a closer look at 530AB76M0000DGR oscillators and their application fields and working principle.

530AB76M0000DGR

The 530AB76M0000DGR is one of the oscillator models commonly used in electronic circuits. This model features an output coupling pin, maximum frequency of operation range up to 1.300MHZ with load of 3000 pF, no external load capacitance required, low supply current of 0.03mA, low noise at the output with a pulse width of 1.5us, wide supply voltage range of 3.3V to 5V, low phase noise with only 0.47 CDR (cycle-to-cycle jitter) and few other features. It is built with a frequency tolerance of ±50ppm or ±25ppm as well as temperature stability of -40°C to 85°C and the size of 8-pin DIP.

Application fields

The 530AB76M0000DGR oscillator is widely used in electronic circuits and devices for a variety of applications. It has a wide range of operations and could be used in cost-sensitive applications such as high-volume control and automation, industrial and military applications for frequency synthesis, and other instrumentation applications. It is also suitable for automotive, medical, telecommunications, GPS signal conditioning, and aerospace applications.

The 530AB76M0000DGR oscillator has an excellent frequency stability over a wide temperature range and could be used for precision-frequency control applications such as clock synchronization, frequency hopping systems, frequency synthesis, and signal processing. It is also widely used in multi-function timing modules, automotive controllers, pressure sensing, and testers.

Working Principle

Oscillators generate a continuous output waveform by using some sort of feedback. The 530AB76M0000DGR oscillator is a type of pulse-based oscillator and works on a different principle than that of an sine-wave or a triangle-wave oscillator. In this type of oscillator, a pulse from an input source is sent to an amplifier, and then the amplified output is sent back to the input. This feedback is used to ensure the waveform remains constant, and the frequency at which this waveform oscillates is determined by the feedback system within the amplifier.

To ensure that the frequency and the amplitude of the output signal remain constant, the 530AB76M0000DGR oscillator uses components such as a voltage-controlled resonator, voltage-controlled empirical oscillator, and control logic. The voltage-controlled empirical oscillator is responsible for creating the pulses of energy and the voltage-controlled resonator is used to control the frequency. The control logic is used to adjust the frequency to ensure that the output waveform remains constant.

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

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