2D Ultrasonic Anemometer High-Precision Wind Speed ​​and Direction Measurement via the Time-of-Flight Method-Shandong Fengtu IOT Technology Co., Ltd
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2D Ultrasonic Anemometer High-Precision Wind Speed ​​and Direction Measurement via the Time-of-Flight Method

time:2026-03-30 09:51:48  source:Weather Station viewed:3 time

2D Ultrasonic Anemometer utilizes the ultrasonic time-of-flight method to measure wind speed and direction, featuring a robust, all-stainless steel housing with an IP66 protection rating. It contains no moving parts and is free from the limitations of a "starting wind speed" threshold; multiple probes transmit and receive signals in real-time to ensure highly efficient data acquisition. The device boasts a sturdy structure while remaining conveniently portable.


2D Ultrasonic Anemometer is a meteorological monitoring device designed based on the principles of the ultrasonic time-of-flight method. The device employs multiple ultrasonic probes to continuously transmit and receive ultrasonic signals within a designated measurement space. By analyzing the time difference in the propagation of sound waves traveling in downwind versus upwind directions, it accurately calculates wind speed and direction data. This measurement methodology eliminates the "starting wind speed" limitations inherent in traditional mechanical anemometers, ensuring stable output performance in environments ranging from gentle breezes to strong gales. Furthermore, its omnidirectional design—free of angular restrictions—enables the device to capture airflow changes from every direction.


In terms of structural design, 2D Ultrasonic Anemometer features a seamless, all-stainless steel exterior. This design not only provides an aesthetically pleasing appearance but also endows the device with exceptional resistance to corrosion and rust. The stainless steel housing, combined with an IP66 protection rating, enables the device to withstand various harsh outdoor conditions—including rain, snow, high humidity, and dust storms—ensuring that the housing remains free from premature aging and internal circuitry remains protected from moisture ingress during long-term deployment. As the device contains no moving parts, it avoids the risks of reduced accuracy and mechanical failure associated with wear and tear during operation, thereby significantly reducing long-term maintenance costs. Its robust overall structure, coupled with its portability, makes it ideally suited for both long-term monitoring at fixed meteorological stations and temporary meteorological observation missions.


Regarding data acquisition performance, 2D Ultrasonic Anemometer incorporates proprietary sensing technology capable of simultaneously measuring and outputting both wind speed and wind direction parameters in real-time. Its high measurement accuracy and reliable performance make it an ideal solution for a wide range of applications, including general meteorological monitoring, environmental surveillance, new energy resource assessment, and operations at ports, docks, bridges, and tunnels. The integrated stainless steel design not only enhances the product's durability but also simplifies the installation process, eliminating the need for complex external protective enclosures. The multiple ultrasonic probes work in concert within the measurement space to ensure the real-time nature and efficiency of data acquisition, thereby mitigating the risk of data interruption caused by single-point failures. Overall, 2D Ultrasonic Anemometer offers a reliable technical solution for wind speed and direction monitoring, distinguished by features such as zero-threshold startup, unrestricted angular measurement, high-precision readings, robust structural integrity, and low maintenance requirements. Whether deployed within professional meteorological observation networks or utilized as safety monitoring equipment in industrial environments, its stainless steel housing and IP66 protection rating ensure stable operation even under complex conditions.

2D Ultrasonic Anemometer High-Precision Wind Speed ​​and Direction Measurement via the Time-of-Flight Method


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