
Allicdata Part #: | TRAB3803P-ND |
Manufacturer Part#: |
TRAB3803P |
Price: | $ 43.73 |
Product Category: | RF/IF and RFID |
Manufacturer: | Laird Technologies IAS |
Short Description: | OMNI PH PMT 380-400MHZ |
More Detail: | 390MHz Dome RF Antenna 380MHz ~ 400MHz 3dBi Conne... |
DataSheet: | ![]() |
Quantity: | 1000 |
1 +: | $ 39.75300 |
Return Loss: | -- |
Applications: | -- |
Height (Max): | 4.135" (105.03mm) |
Mounting Type: | Panel Mount |
Ingress Protection: | -- |
Termination: | Connector, N Female |
Features: | -- |
Power - Max: | 100W |
Gain: | 3dBi |
Series: | Phantom® |
VSWR: | 2 |
Number of Bands: | 1 |
Antenna Type: | Dome |
Frequency Range: | 380MHz ~ 400MHz |
Frequency (Center/Band): | 390MHz |
Frequency Group: | UHF (300 MHz ~ 1 GHz) |
Part Status: | Active |
Packaging: | Bulk |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
The TRAB3803P is a type of RF antenna designed specifically for applications where extremely wide bandwidth is needed. It is a dual-band array antenna with a gain of 5 dB at the frequency range from 1800 MHz to 3800 MHz.
The wireless antennas of this type are designed to provide high performance communication, including long distance and high data rate communication. This type of antenna is typically used in wireless infrastructures where it is necessary to provide reliable communication over a wide frequency range. The dual-band antenna system is used mainly in base stations, access points and mobile stations.
The TRAB3803P utilizes a unique design that incorporates two radiators and a common reflector. This allows for a wide frequency range coverage without having to make several modifications to the antenna. The two radiators are comprised of one strip radiator and one patch radiator. The combination of the two radiators provides a large gain while maintaining a minimum amount of radiation pattern distortion.
The operation of the antenna utilizes the back scattering principle where the antenna receives and transmits signals with the same radiation pattern. The antennas gain is achieved by radiating the reflections from the antenna reflection and utilizing the back-scattering technique, which significantly improves the antennas performance. It also eliminates the need for complicated tracking devices or multiple antenna array designs.
The performance of the antenna is dependent on the size of the antenna, the number of radiators and the overall physical configuration. The frequency bandwidth of the antenna is also determined by the size of the antenna, as this will determine the amount of energy that can be received and transmitted by the antenna. The bandwidth of the antenna is also affected by the physical characteristics of the antenna, such as the type of material used for the radiators and the reflector.
The radiation pattern of the antenna is also affected by the physical characteristics of the antenna, such as the location of the radiators and the reflection pattern of the antenna. The radiation pattern of the antenna will determine the overall performance of the antenna, and also the amount of noise and interference that may exist in the environment.
The antenna is also capable of providing a high gain with low distortion. The antenna gain is higher than a standard single antenna design, and is higher than most antenna designs with multiple elements. The gain is also very stable over the frequency range, and it is excellent for providing the required signal levels over long distances.
In conclusion, the TRAB3803P is a high quality RF antenna designed specifically for applications that require extremely wideband operation. It provides a wide frequency range coverage, high gain, and low distortion, making it ideal for wireless infrastructures. It is also capable of providing excellent performance in reception and transmission of signals, making it a perfect choice for mobile stations, base stations, and access points.
The specific data is subject to PDF, and the above content is for reference
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