The invention relates generally to methods and apparatus for configuring a battery and, more particularly, to methods and apparatus for adapting and reconfiguring a battery.
Battery operation time per charge are among the most important performance parameters for today's networked embedded systems such as wireless sensors, active radio frequency identification (RFID) tags, personal digital assistants (PDAs), cellular or mobile telephones, and other battery powered devices. In some critical mission scenarios such as emergency rescue, law enforcement, fire fighting, and the battlefield, an optimal battery operation time could save more lives. Furthermore, each year millions of various depleted rechargeable batteries are discarded, causing not only a high cost to dispose of these batteries but also an environmental issue to consider. As such, it is beneficial to improve both battery operation time and a battery's lifespan.
Embodiments of the present invention relate to methods and apparatus for a dynamic reconfigurable battery system for supporting power-aware computing. The present invention allows each cell of a multi-cell battery to be charged and/or discharged separately. The present invention permits a battery's capacity to be fully utilized by, for example, taking advantage of power requirement diversity in a power-aware computing platform. The present invention, the dynamic reconfigurable multi-cell battery system, may support dynamic voltage scaling (DVS) by providing fine-tuned voltage levels to satisfy the various power requirements imposed by different system components. Also, this system is adaptable to isolate fully discharged or failed cells from other functioning cells. The dynamic reconfigurable design of the present invention provides a solution for an emergent power supply for mission-critical tasks.
This Summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an aid in determining the scope of the claimed subject matter.
Embodiments are described in detail below with reference to the attached drawing figures, wherein:
The subject matter of embodiments of the present invention is described with specificity herein to meet statutory requirements. However, the description itself is not intended to limit the scope of this patent. Rather, the inventors have contemplated that the claimed subject matter might also be embodied in other ways, to include different steps or combinations of steps similar to the ones described in this document, in conjunction with other present or future technologies. Moreover, although the terms “step” and/or “block” may be used herein to connote different elements of methods employed, the terms should not be interpreted as implying any particular order among or between various steps herein disclosed unless and except when the order of individual steps is explicitly described.
Referring to the drawings in general, and initially to
The battery 100 includes a plurality of battery cells and a set of positive and negative terminals. In
With the multiple cells within the battery system, multiple cells can produce a connection between each other. These connections are fully adaptable depending on the external load applied to the battery system. The connections are configured to selectively form an electrical connection between the positive connection of the pair of battery connection and the positive terminal of at least one of the battery cells. The connections are also configured to selectively form an electrical connection between the negative connection of the pair of battery connection and the negative terminal of at least one of the battery cells.
A configuration processor 170 senses the external load that is applied to the multi-cell battery system. The processor 170 adapts the plurality of adaptable connections between the terminals of the individual battery cells and the pair of battery connections. The processor 170 controls the connections through the dotted lines illustrated in
The battery 200 illustrated in
The present invention, as illustrated in both
i1=i2=in=I (1)
Based on these parameters, the Remaining Capacity (RC) of this configuration is
Here, v′j can be obtained from Equation (3), and each RCj (ij, vj) can be derived, based on the required voltage and discharge current, from the model in An Analytical Model for Predicting the Remaining Battery Capacity of Lithium-Ion Batteries by Rong Peng, Massoud Pedram; IEEE TRANSACTIONS ON VERY LARGE SCALE INTEGRATION (VLSI) SYSTEMS, VOL. 14, NO. 5, MAY 2006. If the terminal voltages (v1j and v2j) are known for different currents i1j and i2j, then the output voltage vj of each battery cell with the discharge current i at time t can be calculated as
where:
Vini is the initial voltage
Vcutoff is the cutoff voltage
For a parallel configuration, the output voltages across the parallel connected battery cells are the same, however, their output current is independent. For example, if n batteries are connected in parallel, and the voltage of each battery cell is v1,v2, vn, then
v1=v2==vn=vparallel (5)
Therefore, the Remaining Capacity (RC) of this configuration is
Where, v′j can be obtained by equation (3). If the required current of user is i, then
I=i
1
+i
2
++i
n (7)
If we know the terminal voltages v1p and v2p, for different currents i1p and i2p, and the output of the parallel connected battery cells is vparallel, then the terminal voltage at current i at time t can be calculated as
For a series-parallel connected configuration in a multi-cell battery, n*m cells can be connected in a series-parallel configuration. The i11=i22==inm, can be obtained through equation (9). The remaining capacity is
where v′ij can be obtained by equation (3). Therefore, all kinds of connections can be calculated by equations (2), (6), and (10) when p battery cells are series connected with n*m series-paralleled connected battery cells, and the required discharge current is i, then the remaining capacity RCs-s-p of the p+m battery system is
The battery 300 illustrated in
In
It is to be understood that the specific embodiments of the present invention that are described herein are merely illustrative of certain applications of the principles of the present invention. It will be appreciated that, although an exemplary embodiment of the present invention has been described in detail for purposes of illustration, various modifications may be made without departing from the spirit and scope of the invention. Therefore, the invention is not to be limited except as by the appended claims.