SG-9101CB-C20SGACA Allicdata Electronics
Allicdata Part #:

SG-9101CB-C20SGACA-ND

Manufacturer Part#:

SG-9101CB-C20SGACA

Price: $ 4.02
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: Epson
Short Description: OSC PROG CMOS CTR SPRD STBY SMD
More Detail: XO (Standard) CMOS 670kHz ~ 170MHz Programmable Os...
DataSheet: SG-9101CB-C20SGACA datasheetSG-9101CB-C20SGACA Datasheet/PDF
Quantity: 1000
1 +: $ 3.61620
10 +: $ 3.44484
50 +: $ 3.27650
100 +: $ 3.10842
500 +: $ 3.02439
1000 +: $ 2.65473
2500 +: $ 2.52031
Stock 1000Can Ship Immediately
$ 4.02
Specifications
Frequency Stability: --
Current - Supply (Disable) (Max): 3.7mA
Height: 0.051" (1.30mm)
Size / Dimension: 0.197" L x 0.126" W (5.00mm x 3.20mm)
Package / Case: 4-SMD, No Lead
Mounting Type: Surface Mount
Ratings: --
Current - Supply (Max): --
Spread Spectrum Bandwidth: ±2.00%, Center Spread
Operating Temperature: -40°C ~ 85°C
Frequency Stability (Total): --
Series: SG-9101
Voltage - Supply: 1.62 V ~ 3.63 V
Output: CMOS
Function: Standby
Available Frequency Range: 670kHz ~ 170MHz
Programmable Type: Programmed by Digi-Key (Enter your frequency in Web Order Notes)
Type: XO (Standard)
Base Resonator: Crystal
Part Status: Active
Packaging: Tube 
Description

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Programmable oscillators are a type of device used to generate an electrical signal of a precise frequency. They are used in a variety of applications ranging from digital clocks and watches, to communications and industrial processes. One example of a programmable oscillator is the SG-9101CB-C20SGACA. This device is commonly used in a wide variety of applications to accurately generate, control and measure signals of a given frequency and amplitude.

The SG-9101CB-C20SGACA consists of a high-grade HEMT silicon chip that is configured to generate an electronic sinusoidal waveform at a desired frequency. This waveform can be further adjusted depending on the application. The frequency range of the device is between 1 MHz and 14 GHz. It offers excellent output spectral purity, linearity and frequency stability over time. The device also has an integrated RF amplifier, and a balanced output stage comprised of four digital switches.

The most common applications for the SG-9101CB-C20SGACA include frequency synthesizers, communications systems, digital clocks and watches, and industrial processes. In frequency synthesizers, the device is used to accurately generate and control signals of a given frequency. In communications systems, it is used to generate and adjust signals to transmit data faster and more reliably. In digital clocks and watches, it is used to accurately measure time intervals between events. In industrial applications, it is used to control and regulate the speed of machines and processes, such as in automation and robotic control.

The working principle of the SG-9101CB-C20SGACA is based on the concept of electrical resonance. This phenomenon occurs when the current flowing through an inductor is equal to the current in the opposite direction flowing through a capacitor. This causes the electrical field to oscillate between the two, producing a waveform. When a voltage is applied to the induction, the waveform forms an alternating current wave. It is this current wave that the SG-9101CB-C20SGACA is capable of precisely generating. This wave can then be adjusted depending on the application, by changing the inductance and capacitance of the circuit.

The SG-9101CB-C20SGACA is a highly accurate and reliable programmable oscillator suitable for a wide variety of applications. Its integrated RF amplifier and balanced output stage provide excellent performance and stability over time. It is also capable of accurately generating, controlling and measuring signals at a desired frequency, making it suitable for frequency synthesizers, communications systems, digital clocks and watches, and other industrial processes. The working principle of the device is based on the electric resonance phenomenon, where the current flowing through an inductor is equal to the current in the opposite direction flowing through a capacitor, resulting in an alternating current wave that the device can precisely generate.

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

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