531SB156M250DG Allicdata Electronics
Allicdata Part #:

531SB156M250DG-ND

Manufacturer Part#:

531SB156M250DG

Price: $ 7.57
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Silicon Labs
Short Description: SINGLE FREQUENCY XO, OE PIN 1
More Detail: 156.25MHz XO (Standard) LVDS Oscillator 2.5V Enabl...
DataSheet: 531SB156M250DG datasheet531SB156M250DG Datasheet/PDF
Quantity: 1000
50 +: $ 6.81887
Stock 1000Can Ship Immediately
$ 7.57
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): 98mA
Operating Temperature: -40°C ~ 85°C
Absolute Pull Range (APR): --
Series: Si531
Voltage - Supply: 2.5V
Output: LVDS
Function: Enable/Disable
Frequency: 156.25MHz
Type: XO (Standard)
Base Resonator: Crystal
Part Status: Active
Packaging: Strip
Description

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Oscillators

An oscillator, generally speaking, is a device that generates an output signal of a given frequency. The 531SB156M250DG oscillator is a type of oscillator, typically used to produce clocks and related signals. It is commonly used as a frequency tone source in modems and sound systems.

Application Field of The 531SB156M250DG Oscillator

The 531SB156M250DG oscillator is typically used in telecommunication, broadcasting and signal detection applications. It is an ideal source for producing signals within the frequency range of 1KHz to 150MHz. An example of an application of the 531SB156M250DG oscillator is the modulation of audio signals to be used in voice communications.

Due to its ability to produce frequencies of up to 150MHz, the 531SB156M250DG oscillator is also a popular choice for applications involving the transmission of data through a broadband network. This includes the transmission of digital audio and video data such as streaming audio, video conferencing and streaming HDTV.

The 531SB156M250DG oscillator is also used in a variety of other applications such as test and measurement, frequency or signal synthesis, and scientific research. It is a highly reliable oscillator and is used in oscilloscope, counters and frequency meters.

Working Principle of The 531SB156M250DG Oscillator

The 531SB156M250DG oscillator utilizes a phase locked loop (PLL) circuit. The circuit consists of an oscillator, a phase comparator, and a voltage or current controlled oscillator. The comparator compares the phase of the oscillator signal to a reference signal. When the phases do not match, the comparator sends an error signal to the voltage controlled oscillator. The voltage controlled oscillator then corrects the phase of the output signal until the two signals match perfectly. Once the two signals match in phase, the PLL is said to be in a locked state.

The 531SB156M250DG oscillator also utilizes an amplitude limit and a damping controller. The amplitude control limits the level of the output signal, and the damping controller adjusts the frequency of the output signal. This allows the user to adjust the frequency of the output signal, without needing to adjust the phase of the reference signal or the voltage controlled oscillator.

The 531SB156M250DG oscillator has a variety of other features, including temperature compensation, frequency stabilization, anti-resonance and frequency reply curves. These features ensure that the frequency of the output signal remains constant over a wide range of temperatures and frequencies.

Conclusion

The 531SB156M250DG oscillator is a highly reliable oscillator that is used in a wide variety of applications, ranging from telecommunication, broadcasting and signal detection to test and measurement, frequency or signal synthesizing and scientific research. The oscillator utilizes a phase locked loop circuit, an amplitude limit and a damping controller to produce stable and accurate output signals. It also has a variety of other features, including temperature compensation, frequency stabilization, anti-resonance and frequency reply curves, that allow for highly accurate output signals.

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

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