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    Demonstrating the Importance of Applying a New Probabilistic Power Flow Strategy to Evaluate Power Systems with High Penetration of Wind Farms

    Source: Journal of Energy Engineering:;2016:;Volume ( 142 ):;issue: 004
    Author:
    Mohammad Reza Khalghani
    ,
    Maryam Ramezani
    ,
    Mostafa Rajabi-Mashhadi
    DOI: 10.1061/(ASCE)EY.1943-7897.0000332
    Publisher: American Society of Civil Engineers
    Abstract: Because today’s power systems encounter so many uncertainties, probabilistic methods, such as probabilistic power flow (PPF), are useful to analyze the systems. One of these methods is Monte-Carlo Simulation (MCS), which has the ability to consider all uncertainties, including renewable energy power production, load, and random outages of components. In this paper, the proposed method is based on MCS and data clustering to improve drawback of MCS, which include high burden of computations. The proposed method cannot only reduce the runtime, but also considers correlation between load and wind power generation (WPG). This correlation would be important to power systems having large-scale wind farms (WFs). The proposed method first was validated by applying it on an IEEE 24-bus reliability test system (RTS). Then the modified version of the method, which can model outages of components, was implemented by using analysis software on a power system that is an actual bulk power system. To demonstrate importance of applying the proposed method, the method was implemented on the system two times. For the first time, the power system was analyzed in the presence of a WF; in the second one, the power system was analyzed such that conventional power plants were replaced with the WF. The results show how much is necessary to apply the probabilistic power flow method on power systems, including WFs.
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      Demonstrating the Importance of Applying a New Probabilistic Power Flow Strategy to Evaluate Power Systems with High Penetration of Wind Farms

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    contributor authorMohammad Reza Khalghani
    contributor authorMaryam Ramezani
    contributor authorMostafa Rajabi-Mashhadi
    date accessioned2017-05-08T22:34:54Z
    date available2017-05-08T22:34:54Z
    date copyrightDecember 2016
    date issued2016
    identifier other50681701.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/83045
    description abstractBecause today’s power systems encounter so many uncertainties, probabilistic methods, such as probabilistic power flow (PPF), are useful to analyze the systems. One of these methods is Monte-Carlo Simulation (MCS), which has the ability to consider all uncertainties, including renewable energy power production, load, and random outages of components. In this paper, the proposed method is based on MCS and data clustering to improve drawback of MCS, which include high burden of computations. The proposed method cannot only reduce the runtime, but also considers correlation between load and wind power generation (WPG). This correlation would be important to power systems having large-scale wind farms (WFs). The proposed method first was validated by applying it on an IEEE 24-bus reliability test system (RTS). Then the modified version of the method, which can model outages of components, was implemented by using analysis software on a power system that is an actual bulk power system. To demonstrate importance of applying the proposed method, the method was implemented on the system two times. For the first time, the power system was analyzed in the presence of a WF; in the second one, the power system was analyzed such that conventional power plants were replaced with the WF. The results show how much is necessary to apply the probabilistic power flow method on power systems, including WFs.
    publisherAmerican Society of Civil Engineers
    titleDemonstrating the Importance of Applying a New Probabilistic Power Flow Strategy to Evaluate Power Systems with High Penetration of Wind Farms
    typeJournal Paper
    journal volume142
    journal issue4
    journal titleJournal of Energy Engineering
    identifier doi10.1061/(ASCE)EY.1943-7897.0000332
    treeJournal of Energy Engineering:;2016:;Volume ( 142 ):;issue: 004
    contenttypeFulltext
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