Skip to main content
Top
Published in: Microsystem Technologies 6/2021

25-11-2020 | Technical Paper

Backpack energy harvester managed by a modified fly-back converter

Authors: W.-W. Yen, Paul C.-P. Chao

Published in: Microsystem Technologies | Issue 6/2021

Log in

Activate our intelligent search to find suitable subject content or patents.

search-config
loading …

Abstract

A backpack energy harvester (EH) managed by a modified fly-back converter is proposed. This modified fly-back converter is controlled by a constant-on time control (COT) algorithm, The COT is one of pulse frequency modulation schemes, which switches in boundary conduction mode. Due to the structure of the modified fly-back converter and the alternator, the energy delivery to battery is proportional to the voltage of coupled capacitor. As opposed to the conventional fly-back, the proposed modified fly-back has the metal–oxide–semiconductor field-effect transistor and the capacitor exchanged in roles to achieve input rectified voltage sensing. Moreover, the proposed modified fly-back converter utilizes the internal winding inductance of the alternator utilized as part of the fly-back converter, to save the size of the converter circuitry and lower the cost. With the COT control strategy, the output power is estimated by measuring the capacitor voltage, which is converted to digitals by a 10-bit analog-to-digital converter and a time-to-digital converter. The results show clearly the fair linearity between the rotational speed of alternator, capacitor voltage and output power. Finally, the control algorithm of boundary conduction mode (BCM) is utilized for tackling well the intermittent input power generated by the EH. The average output powers of 1.166 W for striding and 1.766 W for jogging are successfully achieved.

Dont have a licence yet? Then find out more about our products and how to get one now:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Literature
go back to reference Andrade PE, Orellana JD, Pesantez XM, Cabrera DR, Urgiles PF, and Zapatan RA (2015) Analysis of the effects of carrying a backpack on the angles of the hip and knee during gait. In 2015 CHILEAN Conference on Electrical, Electronics Engineering, Information and Communication Technologies (CHILECON) 943–946 Andrade PE, Orellana JD, Pesantez XM, Cabrera DR, Urgiles PF, and Zapatan RA (2015) Analysis of the effects of carrying a backpack on the angles of the hip and knee during gait. In 2015 CHILEAN Conference on Electrical, Electronics Engineering, Information and Communication Technologies (CHILECON) 943–946
go back to reference Dickson AJ, Burton S, Shepertycky M, Liu YF, Li Q (2015) Digitally controlled energy harvesting power management system. IEEE J Emer Select Top Power Elect 4(1):303–317CrossRef Dickson AJ, Burton S, Shepertycky M, Liu YF, Li Q (2015) Digitally controlled energy harvesting power management system. IEEE J Emer Select Top Power Elect 4(1):303–317CrossRef
go back to reference Donelan JM, Li Q, Naing V, Hoffer JA, Weber DJ, Kuo AD (2008) Biomechanical energy harvesting: generating electricity during walking with minimal user effort. Science 319(5864):807–810CrossRef Donelan JM, Li Q, Naing V, Hoffer JA, Weber DJ, Kuo AD (2008) Biomechanical energy harvesting: generating electricity during walking with minimal user effort. Science 319(5864):807–810CrossRef
go back to reference Elmes J, Gaydarzhiev V, Mensah A, Rustom K, Shen J, and Batarseh I (2007) Maximum energy harvesting control for oscillating energy harvesting systems. In: IEEE Power Electronics Specialists Conference 2792–2798 Elmes J, Gaydarzhiev V, Mensah A, Rustom K, Shen J, and Batarseh I (2007) Maximum energy harvesting control for oscillating energy harvesting systems. In: IEEE Power Electronics Specialists Conference 2792–2798
go back to reference Harman E, Hoon K, Frykman P, and Pandorf C (2000) The effects of backpack weight on the biomechanics of load carriage. Army research Inst of environmental medicine Natick Ma military performancediv, No. USARIEM-T00–17 Harman E, Hoon K, Frykman P, and Pandorf C (2000) The effects of backpack weight on the biomechanics of load carriage. Army research Inst of environmental medicine Natick Ma military performancediv, No. USARIEM-T00–17
go back to reference Li Q, Shepertycky M, and Martin JP (2015) Lower-limb driven energy harvesting backpack: Design, performance and energetics,”. In: 34th Chinese Control Conference (CCC) 7821–7826 Li Q, Shepertycky M, and Martin JP (2015) Lower-limb driven energy harvesting backpack: Design, performance and energetics,”. In: 34th Chinese Control Conference (CCC) 7821–7826
go back to reference Mi J, Xu L, Zhu Z, Liu M, Zuo L (2018) Design, modeling and testing of a one-way energy harvesting backpack. In active and passive smart structures and integrated systems XII. Int Soc Opt Phot 10595:1059520 Mi J, Xu L, Zhu Z, Liu M, Zuo L (2018) Design, modeling and testing of a one-way energy harvesting backpack. In active and passive smart structures and integrated systems XII. Int Soc Opt Phot 10595:1059520
go back to reference Park JH, Stegall P, Zhang H, Agrawal S (2016) Walking with aBackpack using load distribution and dynamic load compensation reduces metabolic cost and adaptations to loads. IEEE Transactions Neural Syst Rehab Eng 25(9):1419–1430CrossRef Park JH, Stegall P, Zhang H, Agrawal S (2016) Walking with aBackpack using load distribution and dynamic load compensation reduces metabolic cost and adaptations to loads. IEEE Transactions Neural Syst Rehab Eng 25(9):1419–1430CrossRef
go back to reference Rome LC (2005) Generating Electricity While Walking with Loads. Science 309(5741):1725–1728 Rome LC (2005) Generating Electricity While Walking with Loads. Science 309(5741):1725–1728
go back to reference Rome LC, Flynn L, Yoo TD (2006) Rubber bands reduce the cost of carrying loads. Nature 444(7122):1023–1024CrossRef Rome LC, Flynn L, Yoo TD (2006) Rubber bands reduce the cost of carrying loads. Nature 444(7122):1023–1024CrossRef
go back to reference Rubinshtein ZE, Peretz MM, and Riemer R (2014) Biomechanical energy harvesting system with optimal cost-of-harvesting tracking algorithm. In: IEEE Applied Power Electronics Conference and Exposition (APEC 2014) 3105–3109 Rubinshtein ZE, Peretz MM, and Riemer R (2014) Biomechanical energy harvesting system with optimal cost-of-harvesting tracking algorithm. In: IEEE Applied Power Electronics Conference and Exposition (APEC 2014) 3105–3109
go back to reference Wang G, Luo C, Hofmann H, and Rome L (2009) Power electronic circuitry for energy harvesting backpack. In: IEEE Energy Conversion Congress and Exposition 3544–3549 Wang G, Luo C, Hofmann H, and Rome L (2009) Power electronic circuitry for energy harvesting backpack. In: IEEE Energy Conversion Congress and Exposition 3544–3549
go back to reference Xie L, Li J, Cai S, Li X (2016) Design and experiments of a self-charged power bank by harvesting sustainable human motion. Adv Mech Eng 8(5):1687814016651371CrossRef Xie L, Li J, Cai S, Li X (2016) Design and experiments of a self-charged power bank by harvesting sustainable human motion. Adv Mech Eng 8(5):1687814016651371CrossRef
go back to reference Yang Z, and Khaligh A (2012) A flat linear generator with axial magnetized permanent magnets with reduced accelerative force for backpack energy harvesting. In: Twenty-Seventh Annual IEEE Applied Power Electronics Conference and Exposition (APEC) 2534–2541 Yang Z, and Khaligh A (2012) A flat linear generator with axial magnetized permanent magnets with reduced accelerative force for backpack energy harvesting. In: Twenty-Seventh Annual IEEE Applied Power Electronics Conference and Exposition (APEC) 2534–2541
go back to reference Yang Z, Tang Y, Zeng P, and Khaligh A (2012) Reducing detent force while harvesting energy from center of gravity: an 11-poles, 12-slots Generator Design,”. In: IEEE Energy Conversion Congress and Exposition (ECCE) 380–387 Yang Z, Tang Y, Zeng P, and Khaligh A (2012) Reducing detent force while harvesting energy from center of gravity: an 11-poles, 12-slots Generator Design,”. In: IEEE Energy Conversion Congress and Exposition (ECCE) 380–387
go back to reference Yuan Y, Zuo L (2016) Dynamics of energy harvesting backpack with human being interaction, in active and passive smart structures and integrated systems. Int Soc Opt Phot 9799:97991 Yuan Y, Zuo L (2016) Dynamics of energy harvesting backpack with human being interaction, in active and passive smart structures and integrated systems. Int Soc Opt Phot 9799:97991
go back to reference Yuan Y, Liu M, Tai WC, Zuo L (2017) Design and experimental studies of an energy harvesting backpack with mechanical motion rectification”, In sensors and smart structures technologies for civil, mechanical, and aerospace systems. Int Soc Opt Phot 10168:1016825 Yuan Y, Liu M, Tai WC, Zuo L (2017) Design and experimental studies of an energy harvesting backpack with mechanical motion rectification”, In sensors and smart structures technologies for civil, mechanical, and aerospace systems. Int Soc Opt Phot 10168:1016825
Metadata
Title
Backpack energy harvester managed by a modified fly-back converter
Authors
W.-W. Yen
Paul C.-P. Chao
Publication date
25-11-2020
Publisher
Springer Berlin Heidelberg
Published in
Microsystem Technologies / Issue 6/2021
Print ISSN: 0946-7076
Electronic ISSN: 1432-1858
DOI
https://doi.org/10.1007/s00542-020-05111-1

Other articles of this Issue 6/2021

Microsystem Technologies 6/2021 Go to the issue