A vibration energy harvesting system for Self-Powered applications in heavy railways
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Tingsheng Zhang | Yajia Pan | Zutao Zhang | Tianming Zhang | Xiaoping Wu | Dabing Luo | Weihua Kong | Jianyang Liu
[1] H. Zou,et al. Hybrid energy harvesting for self-powered rotor condition monitoring using maximal utilization strategy in structural space and operation process , 2022, Applied Energy.
[2] D. Luo,et al. A review of vibration energy harvesting in rail transportation field , 2022, iScience.
[3] Wenming Zhang,et al. Dynamically synergistic regulation mechanism for rotation energy harvesting , 2021, Mechanical Systems and Signal Processing.
[4] Zutao Zhang,et al. Knowledge structuring for enhancing mechanical energy harvesting (MEH): An in-depth review from 2000 to 2020 using CiteSpace , 2021 .
[5] Muhammad Yaqoob Javed,et al. High-efficiency hybrid PV-TEG system with intelligent control to harvest maximum energy under various non-static operating conditions , 2021 .
[6] Bin Bao,et al. Review on engineering structural designs for efficient piezoelectric energy harvesting to obtain high power output , 2021 .
[7] Jinyue Yan,et al. Kinetic energy harvesting technologies for applications in land transportation: A comprehensive review , 2021, Applied Energy.
[8] Yanping Yuan,et al. A novel kinetic energy harvester using vibration rectification mechanism for self-powered applications in railway , 2021 .
[9] Lei Meng,et al. Emerging cellulose-derived materials: a promising platform for the design of flexible wearable sensors toward health and environment monitoring , 2021 .
[10] Ping Wang,et al. Efficient piezoelectric harvester for random broadband vibration of rail , 2020 .
[11] Bapi Debnath,et al. Meandering-trapezoidal shaped MEMS structure for low frequency vibration based energy harvesting applications , 2020 .
[12] N. Taniguchi,et al. Harvesting contact-separation-compression vibrations using a flexible and compressible triboelectric generator , 2020 .
[13] Fei Li,et al. High output power density of a shear-mode piezoelectric energy harvester based on Pb(In1/2Nb1/2)O3-Pb(Mg1/3Nb2/3)O3-PbTiO3 single crystals , 2020 .
[14] Ryutaro Maeda,et al. System level design of wireless sensor node powered by piezoelectric vibration energy harvesting , 2020 .
[15] Yipeng Wu,et al. Design and development of a rotational energy harvester for ultralow frequency vibrations and irregular human motions , 2020 .
[16] Luigi Patrono,et al. Internet of Things (IoT): Opportunities, issues and challenges towards a smart and sustainable future , 2020, Journal of Cleaner Production.
[17] Saman Farhangdoust,et al. Enhancement of the low-frequency acoustic energy harvesting with auxetic resonators , 2020 .
[18] Wenbin Huang,et al. A hula-hooping-like nonlinear buckled elastic string electromagnetic energy harvester for omnidirectional broadband excitations , 2020, Smart Materials and Structures.
[19] W. Liao,et al. Acoustic energy harvesting enhanced by locally resonant metamaterials , 2020, Smart Materials and Structures.
[20] Maurizio Cirrincione,et al. Design simulation of a novel fluid based footstep energy harvesting system , 2020, Sustainable Energy Technologies and Assessments.
[21] C. Jean-Mistral,et al. A two degree-of-freedom linear vibration energy harvester for tram applications , 2020 .
[22] Liqun Chen,et al. Improving energy harvesting by internal resonance in a spring-pendulum system , 2020 .
[23] Saurabh Pathak,et al. Ultra-low friction self-levitating nanomagnetic fluid bearing for highly efficient wind energy harvesting , 2020, Sustainable Energy Technologies and Assessments.
[24] Zhong Lin Wang,et al. A universal and arbitrary tactile interactive system based on self-powered optical communication , 2020 .
[25] Marco P. Soares dos Santos,et al. Electromagnetic energy harvesting using magnetic levitation architectures: A review , 2020, Applied Energy.
[26] Adrien Morel,et al. Maximum power point of piezoelectric energy harvesters: a review of optimality condition for electrical tuning , 2020, Smart Materials and Structures.
[27] Yanping Yuan,et al. A high-efficiency regenerative shock absorber considering twin ball screws transmissions for application in range-extended electric vehicles , 2020, Energy and Built Environment.
[28] Kexiang Wei,et al. Mechanical modulations for enhancing energy harvesting: Principles, methods and applications , 2019 .
[29] Arturo Montoya,et al. Harvesting kinetic energy from roadway pavement through an electromagnetic speed bump , 2019, Applied Energy.
[30] Feng Qian,et al. Modeling and field-test of a compact electromagnetic energy harvester for railroad transportation , 2019, Applied Energy.
[31] P. Laws,et al. Modified Savonius wind turbine for harvesting wind energy from trains moving in tunnels , 2019, Renewable Energy.
[32] Gianluca Gatti,et al. On the target frequency for harvesting energy from track vibrations due to passing trains , 2019, Mechanical Systems and Signal Processing.
[33] Lei Zuo,et al. Efficient electromagnetic energy harvester for railroad transportation , 2018, Mechatronics.
[34] Lei Zuo,et al. Modeling and field testing of an electromagnetic energy harvester for rail tracks with anchorless mounting , 2018 .
[35] Hong Hee Yoo,et al. Piezoelectric energy harvesting system with magnetic pendulum movement for self-powered safety sensor of trains , 2016 .
[36] Yanping Yuan,et al. A portable high-efficiency electromagnetic energy harvesting system using supercapacitors for renewable energy applications in railroads , 2016 .
[37] Mehrdad Moallem,et al. Regenerative Shock Absorber Using a Two-Leg Motion Conversion Mechanism , 2015, IEEE/ASME Transactions on Mechatronics.
[38] Adnan Harb,et al. Energy harvesting: State-of-the-art , 2011 .
[39] Xiaolin Song,et al. Prediction of high-speed train induced ground vibration based on train-track-ground system model , 2010 .
[40] P. J. Grabe,et al. Axle load and track deflection on a heavy haul line , 2010 .
[41] Chris Jones,et al. Ground vibration generated by a load moving along a railway track , 1999 .
[42] Wanming Zhai,et al. Dynamic interaction between a lumped mass vehicle and a discretely supported continuous rail track , 1997 .