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3D Structural Deformation Radar from China Suppliers - Factory Precision Mapping for Real-Time Monitoring
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3D Structural Deformation Radar from China Suppliers - Factory Precision Mapping for Real-Time Monitoring

Introducing our advanced 3D modeling and mapping solution, designed to perform seamlessly under diverse environmental conditions such as rain, snow, fog, smoke, fire, and varying lighting scenarios. This lightweight system offers exceptional precision in deformation measurement, making it an ideal choice for complex engineering tasks. Our product stands out among China suppliers and factories by enabling rapid deployment and providing comprehensive reconstruction of 3D scenes, With its robust protective capabilities, our technology allows for real-time monitoring of minor deformations, delivering accurate and timely alerts for potential engineering disasters and geological hazards. This is crucial for ensuring the safety of on-site construction crews and rescue personnel. Trust in our innovative solution to enhance your engineering projects and safeguard your investments

    Product Introduction
    The three-dimensional scanning structural deformation measurement radar is an innovative engineering inspection and monitoring equipment based on advanced technologies such as high-resolution radar three-dimensional imaging and microwave phase interference measurement. It has strong penetration ability, high environmental adaptability, is unaffected by harsh environments such as smoke and dust, is compact and portable, easy to install and use, and has low power consumption.
    Features
    • 1 It uses millimeter-wave continuous wave radar technology, allowing it to operate in all weather conditions and times, unaffected by smoke, dust, or flames at construction and rescue sites, and unrestricted by lighting conditions, demonstrating strong environmental adaptability.
    • 2 It employs high-resolution three-dimensional radar imaging methods that enable fine imaging of a 360°×90° hemispherical space, allowing for three-dimensional reconstruction of detected scenes, with a mapping accuracy better than 5 centimeters (radial).
    • 3 It utilizes microwave phase interference measurement methods, achieving deformation measurement accuracy of up to 0.1 millimeters, with deformation fields directly superimposable on the three-dimensional scene models acquired by the device.
    • 4 It features adaptive atmospheric disturbance estimation and compensation algorithms, with a calibration error of no more than 1.5 millimeters (RMS) over 24 hours.
    • 5 It has configurable data update and upload rates, allowing for flexible selection between response time, radar power consumption, and transmission rate.
    • 6 It can adapt to external camera monitoring equipment for imaging or video evidence collection and monitoring of hazardous areas, achieving integrated radar and visual monitoring.
    • 7 The entire device's protective capability reaches IP66, with an operating temperature range of -25 to 55°C (expandable to -40 to 65°C), suitable for long-term unattended operations in the field.
    Main Parameters
    Parameter Value / Specification
    Single scan angle coverage range 360°×90° (azimuth × pitch)
    Distance range 300 m
    Distance resolution 7.5 cm
    Distance measurement accuracy ≤ 5 cm
    Angle resolution 3.5°
    Angle measurement accuracy ≤ 1°
    Deformation measurement accuracy ≤ 0.1 mm
    Single scan time ≤ 3 min
    Gaze detection data update rate ≥ 50 Hz
    Scene mapping capability Three-dimensional mapping and reconstruction
    Output information 3D scene model, 3D scattering image, 3D deformation image
    Overall power consumption ≤ 12 W
    Overall dimensions 20 cm × Φ32 cm (height × diameter)
    Overall weight ≤ 6 kg
    Operating temperature range -25 ~ 55°C / -40 ~ 65°C (optional)
    Protection level Better than IP66
    Application
    • 1 Emergency and long-term monitoring of small to medium-sized slope hazards in geological disaster risk points.
    • 2 Emergency monitoring of slopes at disaster rescue sites for earthquakes, geological disasters, etc.
    • 3 Emergency and long-term monitoring of small to medium-sized water conservancy facilities such as reservoirs and embankments.
    • 4 Emergency monitoring of buildings at disaster rescue sites for earthquakes, geological disasters, fires, building collapses, etc.
    • 5 Related scientific research and experimentation.
    Frequently Asked Questions (FAQ)
    • Q What makes this radar suitable for use in harsh environments like smoke or dust?
      The radar uses millimeter-wave continuous wave radar technology, which allows it to penetrate smoke, dust, and flames without any degradation in performance. It is also unrestricted by lighting conditions, making it fully operational day or night in challenging field conditions.
    • Q What is the deformation measurement accuracy of this radar system?
      The radar achieves deformation measurement accuracy of up to 0.1 millimeters using microwave phase interference measurement methods. Additionally, the adaptive atmospheric disturbance compensation algorithm keeps calibration error within 1.5 mm (RMS) over a 24-hour period.
    • Q Can this radar operate continuously without human supervision in the field?
      Yes. The device is designed for long-term unattended operations. With an IP66 protection rating, an operating temperature range of -25°C to 55°C (optionally -40°C to 65°C), and an overall power consumption of just 12W, it is highly suitable for remote and continuous field deployment.
    • Q What types of output data does the radar provide?
      The radar outputs three types of data: a three-dimensional scene model, a three-dimensional scattering image, and a three-dimensional deformation image. These outputs can be used for comprehensive scene analysis, structural assessment, and deformation monitoring.
    • Q Is this radar compatible with external camera systems for visual monitoring?
      Yes. The radar can be integrated with external camera monitoring equipment to support imaging or video evidence collection. This enables an integrated radar and visual monitoring solution, which is especially useful for surveillance of hazardous areas.
    • Q What are the primary application scenarios for this radar?
      The radar is primarily used for monitoring geological disaster risk points including slope hazards and water conservancy facilities such as reservoirs and embankments. It is also deployed for emergency monitoring at disaster rescue sites involving earthquakes, fires, and building collapses, as well as for scientific research and experimentation.

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