SIT1602BC-72-28S-33.333300D Allicdata Electronics
Allicdata Part #:

SIT1602BC-72-28S-33.333300D-ND

Manufacturer Part#:

SIT1602BC-72-28S-33.333300D

Price: $ 0.41
Product Category:

Crystals, Oscillators, Resonators

Manufacturer: SiTime
Short Description: -20 TO 70C, 2016, 25PPM, 2.8V, 3
More Detail: Oscillator
DataSheet: SIT1602BC-72-28S-33.333300D datasheetSIT1602BC-72-28S-33.333300D Datasheet/PDF
Quantity: 1000
3000 +: $ 0.36898
Stock 1000Can Ship Immediately
$ 0.41
Specifications
Series: *
Packaging: Tape & Reel (TR) 
Part Status: Active
Description

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Oscillators are electrical circuits that generate an output signal, usually alternating current, in the form of periodic waves electronic in nature. Many different types of oscillators exist, such as quartz, RLC, voltage-controlled, voltage-dependent, and delay-line oscillators, among many others. SIT1602BC-72-28S-33.333300D oscillators are a specific type of oscillator that has some unique features and properties that make it well-suited to most applications.

Features of SIT1602BC-72-28S-33.333300D Oscillators

SIT1602BC-72-28S-33.333300D oscillators have a number of features that make them desirable for use in many applications. One of the most notable features of this type of oscillator is its stability over a wide range of temperatures and operating conditions. This type of oscillator is capable of maintaining stability over a wide range of temperatures, from -55 to +125°C, while also providing protection against voltage drops and EMI disturbances. In addition, it is capable ofwithstanding high-voltage surges and offers an immunity to shock, vibration, and other environmental factors. The oscillators also feature internal trimming and have a large mechanical tolerance to tolerance errors.

Other features of SIT1602BC-72-28S-33.333300D oscillators include a low frequency drift of less than 0.75 ppm/°C, a low EMI noise of -40 dBc or higher, and an ultra-low standby current of 3 μA or lower. They also have a low phase noise of -110 dBc/Hz max, and an input dynamic range of 6.0V to 36.0V.

Applications of SIT1602BC-72-28S-33.333300D Oscillators

Due to the features mentioned above, SIT1602BC-72-28S-33.333300D oscillators are well-suited for a number of applications. These oscillators are commonly used in communications systems, such as car navigation systems and GSM/GPRS/UMTS solutions. They are also effective in industrial control applications, medical device applications, and sensors and transmitter applications. Other applications for this type of oscillator include automotive gadgets, medical patient monitors, radar systems, and satellite systems.

Working Principle of SIT1602BC-72-28S-33.333300D Oscillators

The working principle of SIT1602BC-72-28S-33.333300D oscillators is based on the principle of negative resistance. The basic circuit of the oscillator consists of two parts: an amplifier stage and a feedback loop. In the amplifier stage, a DC voltage is applied to the input of a differential amplifier which amplifies the input signal and produces an amplified output. This output is then fed back to the input of the differential amplifier through the feedback loop. The feedback loop modifies the gain of the amplifier to create a negative resistance to the DC voltage, thus producing an oscillation.

The frequency of the oscillation can be controlled by changing the gain of the amplifier. The gain can be changed by adjusting the bias voltage or by changing the value of the feedback resistor. The oscillator can also be tuned to a specific frequency by varying the resistor values or the capacitor values in the feedback loop.

SIT1602BC-72-28S-33.333300D oscillators are highly stable and reliable, making them ideal for many applications. The oscillators have a wide operating temperature range, low phase noise, low EMI noise, low frequency drift, and low standby current, making them well-suited for use in communications systems, industrial control systems, medical devices, and various other applications. The oscillator can also be tuned to a specific frequency by varying the resistor and capacitor values in the feedback loop.

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

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