Allicdata Part #: | CPL-5211-10-NNN-79-ND |
Manufacturer Part#: |
CPL-5211-10-NNN-79 |
Price: | $ 0.00 |
Product Category: | RF/IF and RFID |
Manufacturer: | Cinch Connectivity Solutions Midwest Microwave |
Short Description: | COUPLER 10 DB 1-2GHZ |
More Detail: | RF Directional Coupler 1GHz ~ 2GHz 10dB ± 1dB 50W... |
DataSheet: | CPL-5211-10-NNN-79 Datasheet/PDF |
Quantity: | 1000 |
1 +: | 0.00000 |
Series: | -- |
Packaging: | Bulk |
Part Status: | Active |
Coupler Type: | Standard |
Frequency: | 1GHz ~ 2GHz |
Coupling Factor: | 10dB ± 1dB |
Applications: | -- |
Insertion Loss: | 0.2dB |
Power - Max: | 50W |
Isolation: | -- |
Return Loss: | -- |
Package / Case: | N-Type In-Line Module |
Supplier Device Package: | -- |
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A CPL-5211-10-NNN-79 RF directional coupler is a component commonly used in Radio Frequency (RF) systems. It is made up of two receiver ports, one port for a signal in, and one port for a signal out. The port for the incoming signal acts as an antenna for the device, while the port for the output signal acts as a transmission antenna, allowing the device to act as a bridge between transmitter and receiver. CPL-5211-10-NNN-79 RF directional couplers can be used in a variety of applications, including power splitting, signal monitoring, impedance matching, and sampling systems.
In power splitting applications, the CPL-5211-10-NNN-79 RF directional coupler is used to split a single incoming signal into multiple outgoing signals, each with the same gain. This can be used to power multiple antennas at the same time, in a multidirectional array or other signal-sharing configuration. The coupler can also be used to combine multiple incoming signals into a single outgoing signal, giving a single user access to signals from multiple antennas.
In signal monitoring applications, the CPL-5211-10-NNN-79 RF directional coupler is used to monitor the power or other signal characteristics of an incoming signal. This can be used to measure signal strength or to ensure the quality of the signal is consistent. Additionally, the coupler can be used to monitor the signal of multiple incoming signals, giving a single user access to multiple antennas.
In impedance matching applications, the CPL-5211-10-NNN-79 RF directional coupler is used to match the impedance of an incoming signal to the impedance of the destination device. This ensures that maximum power is transferred from the source to the destination, reducing reflections and improving signal quality. Additionally, the coupler can be used to match the impedance of multiple incoming signals, allowing multiple antennas to be connected to a single destination device.
In sampling systems, the CPL-5211-10-NNN-79 RF directional coupler is used to sample the signal from an incoming signal source. This can be used to record the signal information for quality control or other purposes. Additionally, the coupler can be used to sample signals from multiple incoming sources, allowing for multiple antennas to be used on a single device.
The working principle of the CPL-5211-10-NNN-79 RF directional coupler is based on the impedance of the device. It is designed so that the input and output ports are matched to the impedance of the device, allowing the signal to be passed from the input port to the output port. The signal is then attenuated before reaching the output port, creating the desired power-splitting, sampling, monitoring, or impedance-matching effect.
CPL-5211-10-NNN-79 RF directional couplers can be used in a variety of applications, including power splitting, signal monitoring, impedance matching, and sampling systems. Their working principle is based on impedance matching, in order to allow for efficient transfer of signal power from the source to the destination. In addition, the coupler can be used to sample multiple incoming signals, providing access to a variety of antennas. These features make the CPL-5211-10-NNN-79RF directional coupler a valuable component in any Radio Frequency (RF) system.
The specific data is subject to PDF, and the above content is for reference
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