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  • Machine Learning for Solar Array Monitoring, Optimization, and Control

    Machine Learning for Solar Array Monitoring, Optimization, and Control by Rao, Sunil; Katoch, Sameeksha; Narayanaswamy, Vivek;

    Series: Synthesis Lectures on Engineering, Science, and Technology;

      • GET 8% OFF

      • The discount is only available for 'Alert of Favourite Topics' newsletter recipients.
      • Publisher's listprice EUR 71.00
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        29 447 Ft (28 045 Ft + 5% VAT)
      • Discount 8% (cc. 2 356 Ft off)
      • Discounted price 27 091 Ft (25 801 Ft + 5% VAT)

    29 447 Ft

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    Product details:

    • Publisher Morgan & Claypool Publishers
    • Date of Publication 30 August 2020
    • Number of Volumes Hardback

    • ISBN 9781681739090
    • Binding Hardback
    • No. of pages91 pages
    • Size 235x191 mm
    • Language English
    • 0

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    Short description:

    Develops machine learning and neural network algorithms for fault classification. In addition, the authors use weather camera data for cloud movement prediction using kernel regression techniques which serves as the input that guides topology reconfiguration.

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    Long description:

    The efficiency of solar energy farms requires detailed analytics and information on each panel regarding voltage, current, temperature, and irradiance.

    Monitoring utility-scale solar arrays was shown to minimize the cost of maintenance and help optimize the performance of the photo-voltaic arrays under various conditions. We describe a project that includes development of machine learning and signal processing algorithms along with a solar array testbed for the purpose of PV monitoring and control. The 18kW PV array testbed consists of 104 panels fitted with smart monitoring devices. Each of these devices embeds sensors, wireless transceivers, and relays that enable continuous monitoring, fault detection, and real-time connection topology changes. The facility enables networked data exchanges via the use of wireless data sharing with servers, fusion and control centers, and mobile devices. We develop machine learning and neural network algorithms for fault classification. In addition, we use weather camera data for cloud movement prediction using kernel regression techniques which serves as the input that guides topology reconfiguration. Camera and satellite sensing of skyline features as well as parameter sensing at each panel provides information for fault detection and power output optimization using topology reconfiguration achieved using programmable actuators (relays) in the SMDs. More specifically, a custom neural network algorithm guides the selection among four standardized topologies. Accuracy in fault detection is demonstrate at the level of 90+&&&37; and topology optimization provides increase in power by as much as 16% under shading.

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    Machine Learning for Solar Array Monitoring, Optimization, and Control

    Machine Learning for Solar Array Monitoring, Optimization, and Control

    Rao, Sunil; Katoch, Sameeksha; Narayanaswamy, Vivek;

    29 447 HUF

    27 091 HUF

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