Different kinds of energy harvesters from human activities
暂无分享,去创建一个
Geng Liu | Bing Han | Xin Zhou | Xiaoli Liu | Geng Liu | Bing Han | Xiaoli Liu | Xin Zhou
[1] Alperen Toprak,et al. Piezoelectric energy harvesting: State-of-the-art and challenges , 2014 .
[2] Chengkuo Lee,et al. A non-resonant rotational electromagnetic energy harvester for low-frequency and irregular human motion , 2018, Applied Physics Letters.
[3] P. Moughan,et al. A model to predict the ATP equivalents of macronutrients absorbed from food. , 2013, Food & function.
[4] J. Jur,et al. Effects of thermal energy harvesting on the human – clothing – environment microsystem , 2017 .
[5] Mor Mordechai Peretz,et al. Biomechanical Energy Harvesting System With Optimal Cost-of-Harvesting Tracking Algorithm , 2016, IEEE Journal of Emerging and Selected Topics in Power Electronics.
[6] Shad Roundy,et al. Analysis of Upper Bound Power Output for a Wrist-Worn Rotational Energy Harvester from Real-World Measured Inputs , 2014 .
[7] Itthipon Jeerapan,et al. Stretchable Biofuel Cells as Wearable Textile-based Self-Powered Sensors. , 2016, Journal of materials chemistry. A.
[8] A. Dollar,et al. Estimation of Quasi-Stiffness of the Human Knee in the Stance Phase of Walking , 2013, PloS one.
[9] Christopher J. Harvey,et al. Formulation and stability of a novel artificial human sweat under conditions of storage and use. , 2010, Toxicology in vitro : an international journal published in association with BIBRA.
[10] Khushboo,et al. A triboelectric energy harvester using human biomechanical motion for low power electronics , 2019, Bulletin of Materials Science.
[11] M. Kwiatkowski,et al. Removing Fats, Oils and Greases from Grease Trap by Hybrid AOPs (Ozonation and Sonication) , 2012 .
[12] Yi Qi,et al. Nanotechnology-enabled flexible and biocompatible energy harvesting , 2010 .
[13] Chang-Hyeon Ji,et al. Macro fiber composite-based low frequency vibration energy harvester , 2015 .
[14] C. Charalambous. The Major Determinants in Normal and Pathological Gait , 2014 .
[15] Jinshi Cui,et al. An Omnidirectional Biomechanical Energy Harvesting (OBEH) Sidewalk Block for a Self-Generative Power Grid in a Smart City , 2018 .
[16] M.K.A. Ahamed Khan,et al. Development of Biomechanical Energy Harvesting Device Using Heel Strike , 2015 .
[17] Meiling Zhu,et al. Plucked piezoelectric bimorphs for knee-joint energy harvesting: modelling and experimental validation , 2011 .
[18] Xiaodong Li,et al. Knee-braced energy harvester: Reclaim energy and assist walking , 2019, Mechanical Systems and Signal Processing.
[19] Matsuhiko Nishizawa,et al. Sheet-shaped biofuel cell constructed from enzyme-modified nanoengineered carbon fabric , 2012 .
[20] Chengkuo Lee,et al. Investigation of the Nonlinear Electromagnetic Energy Harvesters From Hand Shaking , 2015, IEEE Sensors Journal.
[21] Jingjing Zhao,et al. A Shoe-Embedded Piezoelectric Energy Harvester for Wearable Sensors , 2014, Sensors.
[22] Matsuhiko Nishizawa,et al. Flexible, layered biofuel cells. , 2013, Biosensors & bioelectronics.
[23] Dmitry Pankratov,et al. Transparent and flexible, nanostructured and mediatorless glucose/oxygen enzymatic fuel cells , 2015 .
[24] J. A. Hoffer,et al. Biomechanical Energy Harvesting: Generating Electricity During Walking with Minimal User Effort , 2008, Science.
[25] P. Shetty,et al. Net mechanical efficiency during stepping in chronically energy-deficient human subjects. , 1992, Annals of human biology.
[26] Shaker A. Meguid,et al. Performance assessment of the suspended-load backpack , 2011 .
[27] Lei Ren,et al. Predictive modelling of human walking over a complete gait cycle. , 2007, Journal of biomechanics.
[28] Per Aagaard,et al. Molecular aging and rejuvenation of human muscle stem cells , 2009, EMBO molecular medicine.
[29] L. Moro,et al. Harvested power and sensitivity analysis of vibrating shoe-mounted piezoelectric cantilevers , 2010 .
[30] Kevin M. Farinholt,et al. Energy harvesting from a backpack instrumented with piezoelectric shoulder straps , 2007 .
[31] Carlotta Mummolo,et al. Quantifying dynamic characteristics of human walking for comprehensive gait cycle. , 2013, Journal of biomechanical engineering.
[32] J. Park,et al. A human locomotion inspired hybrid nanogenerator for wrist-wearable electronic device and sensor applications , 2018 .
[33] Jean-Paul Martin,et al. Generating electricity while walking with a medial–lateral oscillating load carriage device , 2019, Royal Society Open Science.
[34] Ayman Habib,et al. OpenSim: Open-Source Software to Create and Analyze Dynamic Simulations of Movement , 2007, IEEE Transactions on Biomedical Engineering.
[35] Niilo Saranummi,et al. Mobile and personal health and wellness management systems , 2006 .
[36] Ming-Yu Li,et al. Harvesting Energy from Human Activity: Ferroelectric Energy Harvesters for Portable, Implantable, and Biomedical Electronics , 2018 .
[37] J. Y. Park,et al. A wrist-band coupled, human skin based triboelectric generator for harvesting biomechanical energy , 2015, 2015 Transducers - 2015 18th International Conference on Solid-State Sensors, Actuators and Microsystems (TRANSDUCERS).
[38] R. Kram,et al. Mechanical and metabolic determinants of the preferred step width in human walking , 2001, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[39] 新 雅夫,et al. ASHRAE(American Society of Heating,Refrigerating and Air-Conditioning Engineers)大会"国際年"行事に参加して , 1975 .
[40] David P. Arnold,et al. An energy harvesting system for passively generating power from human activities , 2013 .
[41] A. A. Romanovsky,et al. Skin temperature: its role in thermoregulation , 2014, Acta physiologica.
[42] W.L. Woo,et al. Thermoelectric energy harvesting for mobile phone charging application , 2016, 2016 IEEE Region 10 Conference (TENCON).
[43] A. Delnavaz,et al. Electromagnetic micro-power generator for energy harvesting from breathing , 2012, IECON 2012 - 38th Annual Conference on IEEE Industrial Electronics Society.
[44] Longhan Xie,et al. An In-Shoe Harvester With Motion Magnification for Scavenging Energy From Human Foot Strike , 2015, IEEE/ASME Transactions on Mechatronics.
[45] Zichen Chen,et al. Design and Fabrication of Wearable Thermoelectric Generator Device for Heat Harvesting , 2018, IEEE Robotics and Automation Letters.
[46] Vladimir Leonov,et al. Thermoelectric Energy Harvesting of Human Body Heat for Wearable Sensors , 2013, IEEE Sensors Journal.
[47] Deqing Mei,et al. Design of a Wearable Thermoelectric Generator for Harvesting Human Body Energy , 2017 .
[48] D. Eckberg,et al. The human respiratory gate. , 2003, The Journal of physiology.
[49] Joseph A. Paradiso,et al. Energy scavenging for mobile and wireless electronics , 2005, IEEE Pervasive Computing.
[50] M. Augustynek,et al. Measuring of Dependency between Heart Rate, Respiratory Rate and the Human Movement , 2013, PDeS.
[51] J. Donelan,et al. Mechanical work for step-to-step transitions is a major determinant of the metabolic cost of human walking. , 2002, The Journal of experimental biology.
[52] Joseph A. Paradiso,et al. Energy Scavenging with Shoe-Mounted Piezoelectrics , 2001, IEEE Micro.
[53] Zichen Chen,et al. Wearable thermoelectric generator for harvesting heat on the curved human wrist , 2017 .
[54] G. Mihalakakou,et al. Social acceptance of renewable energy sources: A review of contingent valuation applications , 2014 .
[55] Kangqi Fan,et al. Scavenging energy from human walking through a shoe-mounted piezoelectric harvester , 2017 .
[56] M. A. Halim,et al. An electromagnetic rotational energy harvester using sprung eccentric rotor, driven by pseudo-walking motion , 2018 .
[57] K. C. Divya,et al. Battery Energy Storage Technology for power systems-An overview , 2009 .
[58] Xin Zhou,et al. Design and Research of Lower Limb Exoskeleton Based on a Hill-Type Muscle Model for Assisting People to Walk , 2020, 2020 6th International Conference on Control, Automation and Robotics (ICCAR).
[59] Xuesong Mei,et al. Overview of Human Walking Induced Energy Harvesting Technologies and Its Possibility for Walking Robotics , 2019, Energies.
[60] J. Weber,et al. Design of an agonist-antagonist active knee prosthesis , 2008, 2008 2nd IEEE RAS & EMBS International Conference on Biomedical Robotics and Biomechatronics.
[61] Kyle Pietrzyk,et al. Power generation modeling for a wearable thermoelectric energy harvester with practical limitations , 2016 .
[62] Seon Jeong Kim,et al. High-power biofuel cell textiles from woven biscrolled carbon nanotube yarns , 2014, Nature Communications.
[63] J. Vilas-Boas,et al. Forward trunk lean with arm support affects the activity of accessory respiratory muscles and thoracoabdominal movement in healthy individuals. , 2018, Human movement science.
[64] Yang Kuang,et al. Characterisation of a knee-joint energy harvester powering a wireless communication sensing node , 2016 .
[65] Bing Han,et al. Kinematic & Dynamic Models of Human Lower Extremity during the Gait Cycle , 2020, 2020 6th International Conference on Control, Automation and Robotics (ICCAR).
[66] E. Saitoh,et al. Observation of the spin Seebeck effect in epitaxial Fe3O4 thin films , 2012, 1212.3142.
[67] S. Ben-Yaakov,et al. Modeling and analysis of brushless generator based biomechanical energy harvesting system , 2012, 2012 IEEE Energy Conversion Congress and Exposition (ECCE).
[68] Miah A. Halim,et al. A non-resonant, frequency up-converted electromagnetic energy harvester from human-body-induced vibration for hand-held smart system applications , 2014 .
[69] Peng Li,et al. Thermal design and management for performance optimization of solar thermoelectric generator , 2012 .
[70] Gregory S. Sawicki,et al. Reducing the energy cost of human walking using an unpowered exoskeleton , 2015, Nature.
[71] Dong Sung Kim,et al. Extremely high and elongated power output from a mechanical mediator-assisted triboelectric nanogenerator driven by the biomechanical energy , 2019, Nano Energy.
[72] S. K. Panda,et al. Thermal energy harvesting from human warmth for wireless body area network in medical healthcare system , 2009, 2009 International Conference on Power Electronics and Drive Systems (PEDS).
[73] Aime Lay-Ekuakille,et al. Thermoelectric generator design based on power from body heat for biomedical autonomous devices , 2009, 2009 IEEE International Workshop on Medical Measurements and Applications.
[74] Qingguo Li,et al. Journal of Neuroengineering and Rehabilitation Development of a Biomechanical Energy Harvester , 2022 .
[75] Yiannos Manoli,et al. Energy harvesting from human motion: exploiting swing and shock excitations , 2015 .
[76] Lingyun Wang,et al. Highly Flexible and Transparent Polyionic‐Skin Triboelectric Nanogenerator for Biomechanical Motion Harvesting , 2018, Advanced Energy Materials.
[77] Anna G. Warrener,et al. Effects of stride frequency and foot position at landing on braking force, hip torque, impact peak force and the metabolic cost of running in humans , 2015, Journal of Experimental Biology.
[78] Abdennaceur Kachouri,et al. Improvement of energy harvested from the heat of the human body , 2016, 2016 17th International Conference on Sciences and Techniques of Automatic Control and Computer Engineering (STA).
[79] Xiaodong Fang,et al. A self-sustaining pyroelectric nanogenerator driven by water vapor , 2016 .
[80] C. Van Hoof,et al. Micromachined Thermopiles for Energy Scavenging on Human Body , 2007, TRANSDUCERS 2007 - 2007 International Solid-State Sensors, Actuators and Microsystems Conference.
[81] Frede Blaabjerg,et al. Renewable energy resources: Current status, future prospects and their enabling technology , 2014 .
[82] Sergey Shleev,et al. Biofuel cell as a power source for electronic contact lenses. , 2012, Biosensors & bioelectronics.
[83] A. Kuo,et al. Comparison of kinematic and kinetic methods for computing the vertical motion of the body center of mass during walking. , 2004, Human movement science.
[84] Qingguo Li,et al. Generating Electricity during Walking with a Lower Limb-Driven Energy Harvester: Targeting a Minimum User Effort , 2015, PloS one.
[85] Miah A. Halim,et al. A miniaturized electromagnetic vibration energy harvester using flux-guided magnet stacks for human-body-induced motion , 2016 .
[86] Mohamed Sultan Mohamed Ali,et al. A REVIEW ON THE POTENTIAL OF SILICON NANOWIRES (SINWS) IN THERMOELECTRIC ENERGY HARVESTERS , 2015 .
[87] Chang Ming Li,et al. Silk fabric-based wearable thermoelectric generator for energy harvesting from the human body , 2016 .
[88] Chengwen Zhong,et al. Three-dimensional human thermoregulation model based on pulsatile blood flow and heating mechanism , 2018, Chinese Physics B.
[89] M. Neuman,et al. Rotational energy harvester for body motion , 2011, 2011 IEEE 24th International Conference on Micro Electro Mechanical Systems.
[90] Liyi Li,et al. Magnetostrictive energy generator for harvesting the rotation of human knee joint , 2018 .
[91] N. Prabhakar. Oxygen sensing by the carotid body chemoreceptors. , 2000, Journal of applied physiology.
[92] Longhan Xie,et al. Increased piezoelectric energy harvesting from human footstep motion by using an amplification mechanism , 2014 .
[93] Wenzhao Jia,et al. Epidermal biofuel cells: energy harvesting from human perspiration. , 2013, Angewandte Chemie.
[94] Xiaodong Li,et al. Increased energy harvesting from backpack to serve as self-sustainable power source via a tube-like harvester , 2017 .
[95] A. A. Elvin,et al. Vibrational Energy Harvesting From Human Gait , 2013, IEEE/ASME Transactions on Mechatronics.
[96] Raziel Riemer,et al. Biomechanical energy harvesting from human motion: theory, state of the art, design guidelines, and future directions , 2011, Journal of NeuroEngineering and Rehabilitation.
[97] Sheldon R Simon,et al. Quantification of human motion: gait analysis-benefits and limitations to its application to clinical problems. , 2004, Journal of biomechanics.
[98] Xiaodong Li,et al. Design and experiments of a self-charged power bank by harvesting sustainable human motion , 2016 .
[99] Qingguo Li,et al. Altering Compliance of a Load Carriage Device in the Medial-Lateral Direction Reduces Peak Forces While Walking , 2018, Scientific Reports.
[100] Zuraini Dahari,et al. Human body parts heat energy harvesting using thermoelectric module , 2015, 2015 IEEE Conference on Energy Conversion (CENCON).
[101] P. Gasnier,et al. Human-motion energy harvester for autonomous body area sensors , 2017 .
[102] Wei-Hsin Liao,et al. A knee-mounted biomechanical energy harvester with enhanced efficiency and safety , 2017 .
[103] Zhiyi Wu,et al. A Stretchable Yarn Embedded Triboelectric Nanogenerator as Electronic Skin for Biomechanical Energy Harvesting and Multifunctional Pressure Sensing , 2018, Advanced materials.
[104] Yang Kuang,et al. Energy harvesting during human walking to power a wireless sensor node , 2017 .
[105] Rodger Kram,et al. Simultaneous positive and negative external mechanical work in human walking. , 2002, Journal of biomechanics.
[106] Carlin Senter,et al. Biomechanical Analysis of Tibial Torque and Knee Flexion Angle , 2006, Sports medicine.
[107] Fan Jun,et al. A lightweight biomechanical energy harvester with high power density and low metabolic cost , 2019, Energy Conversion and Management.
[108] Jing Liu,et al. Harvesting biomechanical energy in the walking by shoe based on liquid metal magnetohydrodynamics , 2012 .
[109] Aaron M. Dollar,et al. Biomechanical considerations in the design of lower limb exoskeletons , 2011, 2011 IEEE International Conference on Rehabilitation Robotics.
[110] M. Halim,et al. A PDMS based triboelectric energy harvester as self-powered, active tactile sensor system for human skin , 2015, 2015 IEEE SENSORS.
[111] A. Montecucco,et al. Constant heat characterisation and geometrical optimisation of thermoelectric generators , 2015 .
[112] Arthur D Kuo. Harvesting Energy by Improving the Economy of Human Walking , 2005, Science.