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ADAR1000ACCZN
+StücklistePHASED ARRAY-RADAR CHIPSET-AESA
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HerstellerAnalog Devices Inc.
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Herstellerteil #ADAR1000ACCZN
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Datenblatt ADAR1000ACCZN DataSheet
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Auf Lager1380
365 Tage Qualitätsgarantie
7*24 Stunden-Servicegarantie
90-Tage Kundendienstgarantie
Originalproduktgarantie
Spezifikationen
| Attribut | Wert |
| Package | Tray |
| ProductStatus | Active |
| Function | Modulator |
| RFFrequency | 8GHz ~ 16GHz |
| P1dB | 10dBm |
| OutputPower | 14dBm |
| Voltage-Supply | 3.1V ~ 3.5V |
| TestFrequency | 9.5GHz, 11.5GHz, 14GHz |
Übersicht
Description
The ADAR1000ACCZN provides capabilities for steering RF beams electronically, which enhances the performance and flexibility of phased array antenna systems. It includes functions such as gain control, phase shifting, and digital beamforming, allowing for dynamic adjustment of signal paths. This enables the creation of highly directive and agile antenna beams that can be reconfigured in real-time without mechanical movement.
Integrated into the ADAR1000ACCZN are several signal processing features that simplify system design and reduce the need for additional components, thus saving space and cost. Its compact form factor and robust performance make it an attractive solution for defense, aerospace, and communication industries looking to improve their RF systems.
Equivalent
1. Texas Instruments AWMF-0123: A millimeter-wave beamforming IC.
2. Intel/Infineon BGT24ATR12: A radar transceiver IC for beamforming.
3. Qorvo QPB9329: A front-end module for beamforming applications.
These products offer similar functionalities for applications in phased array antennas and radar systems. Always verify the specific requirements and datasheets for compatibility in your application.
Features
1. Frequency Range: Operates within the X-band frequency range, ideal for radar and satellite communications.
2. Channels: Supports four independent transmit/receive channels, enabling simultaneous multiple beamforming.
3. Phase Shifting: Provides fine phase shifting capabilities for precise beam steering and shaping.
4. Gain Control: Includes adjustable gain control for each channel to optimize antenna performance.
5. Low Power: Designed for low power consumption, which is crucial for portable and power-sensitive applications.
6. Digital Interface: Offers a SPI digital interface for easy programming and control.
7. Integration: Highly integrated, reducing the need for external components and simplifying system design.
8. Packaging: Comes in a compact package, suitable for dense antenna arrays.
These features make the ADAR1000ACCZN a versatile component for modern RF systems requiring efficient and flexible beamforming capabilities.
Pinout
The primary function of the ADAR1000ACCZN is to control and steer antenna beams electronically without the need for mechanically moving parts. It achieves this through its four-channel transmitter and receiver beamforming capabilities. Each channel includes variable gain amplifiers, phase shifters, and digital step attenuators for precise control over signal amplitude and phase.
Additionally, the ADAR1000ACCZN supports both transmit and receive modes, allowing for full-duplex operation. It is equipped with an integrated power detector for transmit power monitoring and features control interfaces like SPI (Serial Peripheral Interface) for configuration and calibration.
For detailed pin functions and specifications, consulting the datasheet from Analog Devices is recommended.
Manufacturer
Application
1. Radar Systems: Used in automotive radar for advanced driver-assistance systems (ADAS), weather monitoring, and defense systems.
2. Satellite Communications: Facilitates phased array antennas in satellite ground stations for better signal quality and tracking.
3. 5G Infrastructure: Supports beamforming in 5G base stations to enhance signal directionality and network capacity.
4. Wireless Communication: Improves performance in point-to-point communication systems.
This IC is valued for its efficiency in enabling electronically steerable antennas, reducing size, weight, and power consumption in advanced RF applications.