• English
    • العربية
  • العربية
  • Login
  • QU
  • QU Library
  •  Home
  • Communities & Collections
View Item 
  •   Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Student Thesis & Dissertations
  • College of Engineering
  • Mechanical Engineering
  • View Item
  • Qatar University Digital Hub
  • Qatar University Institutional Repository
  • Academic
  • Student Thesis & Dissertations
  • College of Engineering
  • Mechanical Engineering
  • View Item
  •      
  •  
    JavaScript is disabled for your browser. Some features of this site may not work without it.

    A HYBRID NONLINEAR VIBRATION ENERGY HARVESTER FOR REMOTE SENSING APPLICATIONS

    Thumbnail
    View/Open
    Muhammad Hafizh_ OGS Approved Thesis.pdf (1.461Mb)
    Date
    2023-01
    Author
    HAFIZH, MUHAMMAD
    Metadata
    Show full item record
    Abstract
    Energy harvesting mechanisms can be used to extract energy from ambient surroundings to power small electronic devices which has a significant advantage in realizing self-sustaining wireless devices. The piezoelectric energy harvester was modeled with a Macro Fiber Composite (MFC) P2-type while the electromechanical transduction was modeled by an elastic magnet coupled to the bluff body movement. A numerical solver was used to estimate harvestable voltage for this submerged hybrid energy harvester model by using ordinary differential equations. Computational fluid dynamics and finite element analysis with ANSYS were used to visualize the response in synchronization and output the voltage extracted from the harvesting mechanisms. Increasing the water velocity increases the overall output voltage and is a maximum at the natural frequency of the system when synchronization phenomena is observed. Broadband energy harvester is achieved by attaching magnets on the bluff body and is useful for increasing the harvestable range of variable flows. While conventional narrowband energy harvesters are still superior when near the natural frequency, the magnet coupling broadens the synchronization range of the harvesters by 35%. Implementing a hybrid piezoelectric-electromagnetic energy harvesting system increased the voltage output by up to 23% compared to a conventional piezoelectric energy harvester.
    DOI/handle
    http://hdl.handle.net/10576/40567
    Collections
    • Mechanical Engineering [‎65‎ items ]

    entitlement


    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Home

    Submit your QU affiliated work

    Browse

    All of Digital Hub
      Communities & Collections Publication Date Author Title Subject Type Language Publisher
    This Collection
      Publication Date Author Title Subject Type Language Publisher

    My Account

    Login

    Statistics

    View Usage Statistics

    Qatar University Digital Hub is a digital collection operated and maintained by the Qatar University Library and supported by the ITS department

    Contact Us | Send Feedback
    Contact Us | Send Feedback | QU

     

     

    Video