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Design and Experimental Evaluation on an Advanced Multisource Energy Harvesting System for Wireless Sensor Nodes

机译:先进的无线传感器节点多源能量采集系统的设计与实验评估

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摘要

An effective multisource energy harvesting system is presented as power supply for wireless sensor nodes (WSNs). The advanced system contains not only an expandable power management module including control of the charging and discharging process of the lithium polymer battery but also an energy harvesting system using the maximum power point tracking (MPPT) circuit with analog driving scheme for the collection of both solar and vibration energy sources. Since the MPPT and the power management module are utilized, the system is able to effectively achieve a low power consumption. Furthermore, a super capacitor is integrated in the system so that current fluctuations of the lithium polymer battery during the charging and discharging processes can be properly reduced. In addition, through a simple analog switch circuit with low power consumption, the proposed system can successfully switch the power supply path according to the ambient energy sources and load power automatically. A practical WSNs platform shows that efficiency of the energy harvesting system can reach about 75–85% through the 24-hour environmental test, which confirms that the proposed system can be used as a long-term continuous power supply for WSNs.
机译:提出了一种有效的多源能量收集系统,作为无线传感器节点(WSN)的电源。先进的系统不仅包含可扩展的电源管理模块,包括对锂聚合物电池的充电和放电过程的控制,还包含使用最大功率点跟踪(MPPT)电路和模拟驱动方案收集太阳能的能量收集系统和振动能源。由于使用了MPPT和电源管理模块,因此该系统能够有效实现低功耗。此外,系统中集成了超级电容器,因此可以适当减少锂聚合物电池在充电和放电过程中的电流波动。另外,通过简单的低功耗模拟开关电路,该系统可以成功地根据周围的能源和负载功率自动切换电源路径。实际的无线传感器网络平台显示,通过24小时的环境测试,能量收集系统的效率可以达到约75-85%,这证实了所提出的系统可以用作无线传感器网络的长期连续电源。

著录项

  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(2014),-1
  • 年度 -1
  • 页码 671280
  • 总页数 13
  • 原文格式 PDF
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  • 中图分类
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