Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring

A technology drift is currently taking place from traditional battery-powered sensor networks, which exhibit limited lifetime, to the new Energy-Harvesting Wireless Sensor Networks (EH-WSN), which open the way towards self-sustained operation. However, this emergent modality also brings up new chall...

Full description

Bibliographic Details
Main Authors: Sebastià Galmés, Soledad Escolar
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Sensors
Subjects:
MAC
Online Access:http://www.mdpi.com/1424-8220/18/8/2499
id doaj-7a5e6981b05649aa9f0b369a618963d7
record_format Article
spelling doaj-7a5e6981b05649aa9f0b369a618963d72020-11-24T22:13:25ZengMDPI AGSensors1424-82202018-08-01188249910.3390/s18082499s18082499Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental MonitoringSebastià Galmés0Soledad Escolar1Department of Mathematics and Computer Science, University of Balearic Islands, 07122 Palma de Mallorca, SpainSchool of Computing Engineering, University of Castilla-La Mancha, 13071 Ciudad Real, SpainA technology drift is currently taking place from traditional battery-powered sensor networks, which exhibit limited lifetime, to the new Energy-Harvesting Wireless Sensor Networks (EH-WSN), which open the way towards self-sustained operation. However, this emergent modality also brings up new challenges, especially due to the time-varying nature and unpredictability of ambient energy sources. Most proposals for implementing EH-WSN rely on heuristic approaches to redesign the duty-cycling mechanism at the MAC layer, with the ultimate goal of optimizing network performance while preserving self-sustained and continuous operation. In contrast to the common system-wide reduced duty cycle of battery-powered sensor networks, the duty cycle in EH-WSN is much larger and adapted to the energy harvesting rate and traffic load of each node in the network. In this paper, we focus on solar-based EH-WSN devoted to environmental monitoring. In contrast to current works, we follow an analytical approach, which results into closed-form expressions for the duty cycle and initial energy storage that guarantee self-sustained operation to any node in a solar-based EH-WSN. To center the analysis, we consider TinyOS sensor nodes, though we postulate that the essential components of the obtained formulation will contribute to further develop duty cycle adaptation schemes for TinyOS and other software platforms.http://www.mdpi.com/1424-8220/18/8/2499wireless sensor networkenergy consumption modelduty cyclelow power listeningMACTinyOSenergy harvesting modelsolar irradiance
collection DOAJ
language English
format Article
sources DOAJ
author Sebastià Galmés
Soledad Escolar
spellingShingle Sebastià Galmés
Soledad Escolar
Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
Sensors
wireless sensor network
energy consumption model
duty cycle
low power listening
MAC
TinyOS
energy harvesting model
solar irradiance
author_facet Sebastià Galmés
Soledad Escolar
author_sort Sebastià Galmés
title Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
title_short Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
title_full Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
title_fullStr Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
title_full_unstemmed Analytical Model for the Duty Cycle in Solar-Based EH-WSN for Environmental Monitoring
title_sort analytical model for the duty cycle in solar-based eh-wsn for environmental monitoring
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2018-08-01
description A technology drift is currently taking place from traditional battery-powered sensor networks, which exhibit limited lifetime, to the new Energy-Harvesting Wireless Sensor Networks (EH-WSN), which open the way towards self-sustained operation. However, this emergent modality also brings up new challenges, especially due to the time-varying nature and unpredictability of ambient energy sources. Most proposals for implementing EH-WSN rely on heuristic approaches to redesign the duty-cycling mechanism at the MAC layer, with the ultimate goal of optimizing network performance while preserving self-sustained and continuous operation. In contrast to the common system-wide reduced duty cycle of battery-powered sensor networks, the duty cycle in EH-WSN is much larger and adapted to the energy harvesting rate and traffic load of each node in the network. In this paper, we focus on solar-based EH-WSN devoted to environmental monitoring. In contrast to current works, we follow an analytical approach, which results into closed-form expressions for the duty cycle and initial energy storage that guarantee self-sustained operation to any node in a solar-based EH-WSN. To center the analysis, we consider TinyOS sensor nodes, though we postulate that the essential components of the obtained formulation will contribute to further develop duty cycle adaptation schemes for TinyOS and other software platforms.
topic wireless sensor network
energy consumption model
duty cycle
low power listening
MAC
TinyOS
energy harvesting model
solar irradiance
url http://www.mdpi.com/1424-8220/18/8/2499
work_keys_str_mv AT sebastiagalmes analyticalmodelforthedutycycleinsolarbasedehwsnforenvironmentalmonitoring
AT soledadescolar analyticalmodelforthedutycycleinsolarbasedehwsnforenvironmentalmonitoring
_version_ 1725801048310808576