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Dust, fallen leaves, or obstructions on the photovoltaic panels are automatically identified as hazards by OpenMV.

The photovoltaic panel “appears to be fine,” but this does not necessarily indicate normal power generation efficiency. Localized shading and dust accumulation often persist for extended periods yet remain difficult to detect. OpenMV enables photovoltaic operation and maintenance without full reliance on manual inspections.

光伏板异物识别

During photovoltaic power station operation, foreign matter such as dust accumulation, fallen leaves, and bird droppings on the surface of PV modules directly reduces light absorption efficiency, leading to decreased power generation; over time, this may even accelerate component aging and shorten equipment service life.

For large-scale photovoltaic arrays, manual inspection is not only inefficient but also unable to promptly detect localized anomalies. Leveraging SingTown’s OpenMV intelligent camera, long-term and stable visual monitoring of photovoltaic panel operating status can be achieved, enabling automatic identification and timely handling of foreign object issues.

The camera can be securely mounted on a support structure to cover multiple photovoltaic module areas and continuously capture images of the PV panel surfaces. OpenMV performs edge-side regional segmentation to delineate the effective operating areas of the PV panels and, by integrating foreign-object feature recognition with status comparison analysis, automatically detects anomalies such as abnormal dust accumulation, leaf obstruction, or localized contamination.

By comparing the current image with a normal reference, the system identifies abnormal areas affecting power generation efficiency and outputs the detection results. These results can directly trigger on-device cleaning equipment, operation and maintenance systems, or alarm modules to enable immediate response upon detection, eliminating the need to upload large volumes of image data to the cloud.

Leveraging OpenMV’s edge computing capabilities and low-power design, this solution is particularly suitable for long-term deployment in large-scale, distributed photovoltaic scenarios.

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