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Träfflista för sökning "WFRF:(Pakrashi Vikram) "

Search: WFRF:(Pakrashi Vikram)

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1.
  • Cahill, Paul, et al. (author)
  • Energy Harvesting from Train-Induced Response in Bridges
  • 2014
  • In: Journal of Bridge Engineering. - 1084-0702 .- 1943-5592. ; 19:9, s. 04014034-
  • Journal article (peer-reviewed)abstract
    • The integration of large infrastructure with energy-harvesting systems is a growing field with potentially new and important applications. The possibility of energy harvesting from ambient vibration of bridges is a new field in this regard. This paper investigates the feasibility of energy harvesting for a number of trains considering their passage over a bridge. The power that can be derived from an energy-harvesting device due to a train crossing a bridge at different speeds is compared against typical demands of small wireless devices and is found to be adequate for powering such devices. These estimates of harvested energy also relate to the individual signatures of trains. In this work, the modeled dynamic responses of a bridge traversed by trains are compared against full-scale experimental analysis of train-bridge interactions. A potential application in structural health monitoring (SHM) using energy harvesting has also been demonstrated and compared with laboratory experimental data. Consistent and monotonic damage calibration curves have been constructed using estimated harvested energy.
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2.
  • Cahill, Paul, et al. (author)
  • Vibration energy harvesting based monitoring of an operational bridge undergoing forced vibration and train passage
  • 2018
  • In: Mechanical systems and signal processing. - : Academic Press. - 0888-3270 .- 1096-1216. ; 106, s. 265-283
  • Journal article (peer-reviewed)abstract
    • The application of energy harvesting technology for monitoring civil infrastructure is a bourgeoning topic of interest. The ability of kinetic energy harvesters to scavenge ambient vibration energy can be useful for large civil infrastructure under operational conditions, particularly for bridge structures. The experimental integration of such harvesters with full scale structures and the subsequent use of the harvested energy directly for the purposes of structural health monitoring shows promise. This paper presents the first experimental deployment of piezoelectric vibration energy harvesting devices for monitoring a fullscale bridge undergoing forced dynamic vibrations under operational conditions using energy harvesting signatures against time. The calibration of the harvesters is presented, along with details of the host bridge structure and the dynamic assessment procedures. The measured responses of the harvesters from the tests are presented and the use the harvesters for the purposes of structural health monitoring (SHM) is investigated using empirical mode decomposition analysis, following a bespoke data cleaning approach. Finally, the use of sequential Karhunen Loeve transforms to detect train passages during the dynamic assessment is presented. This study is expected to further develop interest in energy harvesting based monitoring of large infrastructure for both research and commercial purposes.
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