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Hybrid battery system for a pocket computer

机译:用于掌上电脑的混合电池系统

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Summary form only given as follows. Hybrid battery systems that contain both primary and secondary cells may offer compelling advantages for our smallest and most personal electronic devices. While either commodity alkaline cells or a Li-ion pack are used in most such applications today, small air-breathing power sources, such as metal-air cells and fuel cells, promise much higher specific energy and correspondingly longer runtimes. Unfortunately, in scenarios demanding high peak power, the high impedance of most such cells requires using a capacitor or secondary cell for load leveling. We have explored this hybrid approach using our Itsy pocket computer. We started with the largest available commodity Zn-air button cells (#675/PR44) and the smallest available Li-ion and Li-polymer cells. After characterization, we selected a small Li-polymer cell and built two simple hybrid power systems. We evaluated runtime using three benchmarks: sleep-mode, idle-mode, and an MPEG multimedia player. The experiments showed this approach to be practical for systems of up to 50 mW average power, and that the hybrid offers approximately twice the energy of a Li-ion pack of comparable size. We found proper cell-holder design to be critical to realize this potential. With wider availability of large Zn-air cells, higher average power levels are possible, and for sufficiently large cells, the secondary cell could be entirely eliminated. Retaining the secondary cell, however, allows both hot swap battery changes and extending system runtime via opportunistic charging. It is unknown how well this more complex usage model can be understood and exploited by consumers.
机译:摘要表格仅如下给出。包含主电池和二级单元的混合电池系统可以为我们最小和最个人的电子设备提供令人信服的优势。虽然在大多数此类应用中使用商品碱性细胞或锂离子组件,但是小型空气呼吸动力源,例如金属 - 空气电池和燃料电池,承诺更高的特定能量和相应的较长倍数。遗憾的是,在要求高峰功率的情况下,大多数此类电池的高阻抗需要使用电容器或二次电池进行负载调平。我们探讨了使用我们的ITSY Pocket Computer的混合动力车方法。我们从最大可用的商品Zn-Air按钮单元(#675 / Pr44)和最小可用的锂离子和锂聚合物电池开始。特征在于,我们选择了一个小的锂聚合物电池,并建立了两个简单的混合动力系统。我们使用三个基准评估运行时:睡眠模式,空闲模式和MPEG多媒体播放器。实验表明,这种方法对于高达50 MW的平均功率的系统是实用的,并且杂交机提供了大约两倍的锂离子包的相当大小的能量。我们发现适当的细胞保持器设计对于实现这种潜力至关重要。具有大的Zn-Air电池的更广泛的可用性,可以更高的平均功率水平,并且对于足够大的电池,可以完全消除二次电池。然而,保留二次电池允许通过机会充电改变热插拔电池和扩展系统运行时。这是未知的,这种更复杂的使用模型可以被消费者理解和利用。

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