Power management for energy harvesting wireless sensors

被引:89
|
作者
Arms, SW [1 ]
Townsend, CP [1 ]
Churchill, DL [1 ]
Galbreath, JH [1 ]
Mundell, SW [1 ]
机构
[1] MicroStrain Inc, Williston, VT 05495 USA
关键词
energy; harvesting; wireless; strain; sensors; RF; piezoelectric; solar;
D O I
10.1117/12.600302
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The objective of this work was to demonstrate smart wireless sensing nodes capable of operation at extremely low power levels. These systems were designed to be compatible with energy harvesting systems using piezoelectric materials and/or solar cells. The wireless sensing nodes included a microprocessor, on-board memory, sensing means (1000 ohm foil strain gauge), sensor signal conditioning, 2.4 GHz IEEE 802.15.4 radio transceiver, and rechargeable battery. Extremely low power consumption sleep currents combined with periodic, timed wake-up was used to minimize the average power consumption. Furthermore, we deployed pulsed sensor excitation and microprocessor power control of the signal conditioning elements to minimize the sensors' average contribution to power draw. By sleeping in between samples, we were able to demonstrate extremely low average power consumption. At 10 Hz, current consumption was 300 microamps at 3 VDC (900 microwatts); at 5 Hz: 400 microwatts, at I Hz: 90 microwatts. When the RF stage was not used, but data were logged to memory, consumption was further reduced. Piezoelectric strain energy harvesting systems delivered similar to 2000 microwatts under low level vibration conditions. Output power levels were also measured from two miniature solar cells; which provided a wide range of output power (similar to 100 to 1400 microwatts), depending on the light type & distance from the source. In summary, system power consumption may be reduced by: 1) removing the load from the energy harvesting & storage elements while charging, 2) by using sleep modes in between samples, 3) pulsing excitation to the sensing and signal conditioning elements in between samples, and 4) by recording and/or averaging, rather than frequently transmitting, sensor data.
引用
收藏
页码:267 / 275
页数:9
相关论文
共 50 条
  • [1] Power Management and Data Rate Maximization in Wireless Energy Harvesting Sensors
    Murthy, Chandra R.
    [J]. 2008 IEEE 19TH INTERNATIONAL SYMPOSIUM ON PERSONAL, INDOOR AND MOBILE RADIO COMMUNICATIONS, 2008, : 1950 - 1954
  • [2] Power management and data rate maximization in wireless energy harvesting sensors
    Murthy C.R.
    [J]. International Journal of Wireless Information Networks, 2009, 16 (3) : 102 - 117
  • [3] Energy harvesting and management for wireless autonomous sensors
    Weddell, Alex S.
    Merrett, Geoff V.
    Harris, Nick R.
    Al-Hashimi, Bashir M.
    [J]. MEASUREMENT & CONTROL, 2008, 41 (04): : 104 - 108
  • [4] Vibration Energy Harvesting in Automobiles to Power Wireless Sensors
    Zhu, Qingyuan
    Guan, Mingjie
    He, Yuanqin
    [J]. PROCEEDING OF THE IEEE INTERNATIONAL CONFERENCE ON INFORMATION AND AUTOMATION, 2012, : 349 - 354
  • [5] Energy Management for Energy Harvesting Wireless Sensors With Adaptive Retransmission
    Yadav, Animesh
    Goonewardena, Mathew
    Ajib, Wessam
    Dobre, Octavia A.
    Elbiaze, Halima
    [J]. IEEE TRANSACTIONS ON COMMUNICATIONS, 2017, 65 (12) : 5487 - 5498
  • [6] Energy harvesting and power management of wireless sensors for structural control applications in civil engineering
    Casciati, Sara
    Faravelli, Lucia
    Chen, Zhicong
    [J]. SMART STRUCTURES AND SYSTEMS, 2012, 10 (03) : 299 - 312
  • [7] Energy harvesting for wireless sensors
    Roth, Kurt
    Brodrick, James
    [J]. ASHRAE JOURNAL, 2008, 50 (05) : 84 - +
  • [8] RF Energy Harvesting for Ubiquitous, Zero Power Wireless Sensors
    Saeed, Warda
    Shoaib, Nosherwan
    Cheema, Hammad M.
    Khan, Muhammad U.
    [J]. INTERNATIONAL JOURNAL OF ANTENNAS AND PROPAGATION, 2018, 2018
  • [9] Review of Power Conversion and Energy Management for Low-Power, Low-Voltage Energy Harvesting Powered Wireless Sensors
    Newell, David
    Duffy, Maeve
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2019, 34 (10) : 9794 - 9805
  • [10] Autonomous Energy Management System Achieving Piezoelectric Energy Harvesting in Wireless Sensors
    Kassan, Sara
    Gaber, Jaafar
    Lorenz, Pascal
    [J]. MOBILE NETWORKS & APPLICATIONS, 2020, 25 (02): : 794 - 805