DocumentCode :
1438016
Title :
Optimum Transmission Policies for Battery Limited Energy Harvesting Nodes
Author :
Tutuncuoglu, Kaya ; Yener, Aylin
Author_Institution :
Dept. of Electr. Eng., Pennsylvania State Univ., University Park, PA, USA
Volume :
11
Issue :
3
fYear :
2012
fDate :
3/1/2012 12:00:00 AM
Firstpage :
1180
Lastpage :
1189
Abstract :
Wireless networks with energy harvesting battery equipped nodes are quickly emerging as a viable option for future wireless networks with extended lifetime. Equally important to their counterpart in the design of energy harvesting radios are the design principles that this new networking paradigm calls for. In particular, unlike wireless networks considered to date, the energy replenishment process and the storage constraints of the rechargeable batteries need to be taken into account in designing efficient transmission strategies. In this work, such transmission policies for rechargeable nodes are considered, and optimum solutions for two related problems are identified. Specifically, the transmission policy that maximizes the short term throughput, i.e., the amount of data transmitted in a finite time horizon is found. In addition, the relation of this optimization problem to another, namely, the minimization of the transmission completion time for a given amount of data is demonstrated, which leads to the solution of the latter as well. The optimum transmission policies are identified under the constraints on energy causality, i.e., energy replenishment process, as well as the energy storage, i.e., battery capacity. For battery replenishment, a model with discrete packets of energy arrivals is considered. The necessary conditions that the throughput-optimal allocation satisfies are derived, and then the algorithm that finds the optimal transmission policy with respect to the short-term throughput and the minimum transmission completion time is given. Numerical results are presented to confirm the analytical findings.
Keywords :
battery management systems; energy harvesting; energy storage; infinite horizon; minimisation; radio networks; telecommunication network reliability; battery capacity; battery limited energy harvesting nodes; battery replenishment; design principles; discrete packets; energy arrivals; energy causality; energy harvesting battery equipped nodes; energy harvesting radios; energy replenishment process; energy storage; extended lifetime; finite time horizon; necessary conditions; networking paradigm; optimal transmission policy; optimum transmission policy; rechargeable battery; rechargeable nodes; short term throughput; short-term throughput; storage constraints; throughput-optimal allocation; transmission completion time; transmission strategy; wireless networks; Batteries; Energy harvesting; Optimization; Power transmission; Resource management; Throughput; Transmitters; Energy harvesting; battery limited nodes; optimal scheduling; wireless networks;
fLanguage :
English
Journal_Title :
Wireless Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-1276
Type :
jour
DOI :
10.1109/TWC.2012.012412.110805
Filename :
6144764
Link To Document :
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