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    A new method for improving the solar photovoltaic unit efficiency through neem oil as coolant medium for high power applications-an experimental investigation

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    s00202-024-02337-4.pdf (1.370Mb)
    Date
    2024
    Author
    Ganesan, Karthikeyan
    Palanisamy, Satheeshkumar
    Muthusamy, Suresh
    Muthusamy, Prabha Maheswari
    Ramamoorthi, Ponarun
    Ravi, Ranjith Kumar
    Sha, Mizaj Shabil
    Sadasivuni, Kishor Kumar
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    Abstract
    The utilization of electric energy is rising in the technological world. Solar PV (photovoltaic) cells convert sunlight into electricity, and sunlight radiation also has heat, reducing the panel's efficiency. The heat should control the limited value or otherwise reduce the panel's performance so that heat is moved to the cooling medium, thus maintaining the heat within the functioning limit. The proposed method is explained by the probability of cooling the monocrystalline and polycrystalline structures used as neem oil through an integrated oil container fitted into the unit's backside-the neem oil acts as phase-changing material (PCM). The solar PV rear side neem oil absorbs the heat of the solar PV panel. The neem oil is not filled in the backside tank completely for the reason that the oil needed some breathing gap. The breathing gap of PCM is to enhance the heat-withstand efficiency. The backside neem oil is replaced every 30 min. As an outcome, the front side of solar PV heat is reduced. Neem oil has not polluted the environment and is thus also used to exchange noxious mineral oils. The neem oil moved from the depository tank to the backside of the unit and together into an additional depositor tank, thus being able to be reused. The proposed method is investigated, and functioning comparison occurs in different PV types, such as monocrystalline and polycrystalline modules, with various kinds of edible oil. Thus, the critical outcomes of the monocrystalline and polycrystalline PV panels are to decrease the panel temperature by 2.29% and 4.34%, respectively, and enhance the efficiency of the PV panels by 15.0% and 17.8%, respectively.
    DOI/handle
    http://dx.doi.org/10.1007/s00202-024-02337-4
    http://hdl.handle.net/10576/63058
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    • Center for Advanced Materials Research [‎1482‎ items ]
    • Mechanical & Industrial Engineering [‎1460‎ items ]

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