500DAAC100M000ACFR Crystals, Oscillators, Resonators |
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Allicdata Part #: | 500DAAC100M000ACFR-ND |
Manufacturer Part#: |
500DAAC100M000ACFR |
Price: | $ 0.95 |
Product Category: | Crystals, Oscillators, Resonators |
Manufacturer: | Silicon Labs |
Short Description: | SILICON OSC; DIFF; 0.9-200 MHZ |
More Detail: | 100MHz XO (Standard) LVPECL Oscillator 3.3V Standb... |
DataSheet: | 500DAAC100M000ACFR Datasheet/PDF |
Quantity: | 1000 |
1000 +: | $ 0.85491 |
Frequency Stability: | ±10ppm |
Current - Supply (Disable) (Max): | 1.9mA |
Height - Seated (Max): | 0.035" (0.90mm) |
Size / Dimension: | 0.157" L x 0.126" W (4.00mm x 3.20mm) |
Package / Case: | 6-SMD, No Lead |
Mounting Type: | Surface Mount |
Ratings: | -- |
Current - Supply (Max): | 36mA |
Operating Temperature: | 0°C ~ 70°C |
Absolute Pull Range (APR): | -- |
Series: | Si500D |
Voltage - Supply: | 3.3V |
Output: | LVPECL |
Function: | Standby (Power Down) |
Frequency: | 100MHz |
Type: | XO (Standard) |
Base Resonator: | Crystal |
Part Status: | Active |
Packaging: | Tape & Reel (TR) |
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Oscillators are devices that produce electrical energy in the form of waves. Waveforms are often used for the purpose of communication. In telecommunications, oscillators are used to generate broadcast-quality sound signals, to measure and identify frequencies, and to generate higher-frequency signals. 500DAAC100M000ACFR oscillators are a type of electronic oscillator commonly used in the telecommunications industry, specifically to generate high-frequency signals. This article will discuss 500DAAC100M000ACFR oscillators, their applications, and their working principle.
The 500DAAC100M000ACFR oscillator is a highly specialized type of oscillator, designed to generate very high-frequency signals. The high-frequency signals it produces are typically used to launch digital communications of different kinds, such as those related to wireless communications. Power levels for these signals usually range from 20mW to 1W of power.
500DAAC100M000ACFR oscillators are made up of two main components. The first is a battery or AC power supply that provides the necessary electrical power. The second is a transistor, which acts as the active component of the oscillator, and performs the task of amplifying the input signal. Both components must be included in the design of the 500DAAC100M000ACFR oscillator.
The 500DAAC100M000ACFR oscillator is mainly used in the telecommunications industry for generating high-frequency signals. 500DAAC100M000ACFR oscillators are designed to be suitable for long-range applications, and require minimal maintenance and careful operation. They are typically used to generate signals of 50MHz-2.5GHz. Thanks to their high power output, they are usually used to launch digital communications in wireless communication.
In addition to the telecommunications industry, the 500DAAC100M000ACFR oscillator can be used in other applications such as automotive radar systems and military communications. They are also used in scientific instruments, including the Virgo interferometer. The high power output makes them useful for a variety of applications that involve high-frequency signals.
The 500DAAC100M000ACFR oscillator works by amplifying the input voltage signal by the transistor. This amplified signal is then sent to the battery or AC power supply, where it is converted into a higher frequency signal. This signal is then fed back to the transistor, where it is amplified further. This process repeats until the desired frequency is generated.
The 500DAAC100M000ACFR oscillator is a highly specialized type of oscillator used mainly in the telecommunications industry. It is used to generate high-frequency signals, and is often used to launch digital communications of different kinds, such as those related to wireless communications. It is composed of two main components: a battery or AC power supply and a transistor. 500DAAC100M000ACFR oscillators perform the task of amplifying the input signal, and require minimal maintenance and careful operation. The oscillator works by amplifying the input voltage signal, and then converting it into a higher frequency signal, which is then fed back to the transistor thus creating the desired frequency output.
The specific data is subject to PDF, and the above content is for reference
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