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04/06/06 - USPTO Class 429 |  148 views | #20060073377 | Prev - Next | About this Page  429 rss/xml feed  monitor keywords

Battery system thermal management

USPTO Application #: 20060073377
Title: Battery system thermal management
Abstract: Power supply systems and associated methods of operation are provided based on the incorporation of a supply of phase change material in thermal contact with at least one cell element capable of a heat-generating charge or discharge of power. Also disclosed, such as for increased or improved heat transfer and dissipation, is battery module incorporation of a heat-conductive containment lattice member such as having a plurality of openings wherein at least a portion of the supply of the phase change material can be disposed as well as the inclusion of a plurality of module housing-protruding heat transfer fins. (end of abstract)



Agent: Pauley Petersen & Erickson - Hoffman Estates, IL, US
Inventors: Said Al-Hallaj, Jan Robert Selman
USPTO Applicaton #: 20060073377 - Class: 429120000 (USPTO)

Related Patent Categories: Chemistry: Electrical Current Producing Apparatus, Product, And Process, With Heat Exchange Feature

Battery system thermal management description/claims


The Patent Description & Claims data below is from USPTO Patent Application 20060073377, Battery system thermal management.

Brief Patent Description - Full Patent Description - Patent Application Claims
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CROSS REFERENCE TO RELATED APPLICATION

[0001] This application is a continuation-in-part of U.S. application, Ser. No. 09/515,268, filed on 28 Feb. 2000. The co-pending parent application is hereby incorporated by reference herein in its entirety and is made a part hereof, including but not limited to those portions which specifically appear hereinafter.

BACKGROUND OF THE INVENTION

[0002] This invention relates generally to battery power supply and, more particularly, to thermal management in such battery power supply systems. The word "battery" here is meant to include various forms of electrochemical power generation which have in common that chemical energy, in the form of one or more chemical reactants stored in a confined space, react with each other or with an external reactant in an electrochemical reaction, so as to produce electric power when desired.

[0003] Various uses of battery power supplies have been well established. For example, the packaging together of a plurality of cells in a parallel or series configuration to form a battery module or pack for use as a power supply for personal electronic devices such as cell phones, lap top computers, camcorders or the like have become well-known and common. In addition, desirable properties or characteristics of battery power supplies including, for example, the capability of certain battery power supplies to be recharged makes such battery power supplies an attractive potential power source for vehicle propulsion, i.e., electric vehicles (EV). Recently, the concept as well as the application of battery power have been extended to include "fuel batteries" or "fuel cell batteries", in which a fuel cell reaction is used to generate electric power in a manner somewhat similar to that of a conventional rechargeable battery, but in which one of the reactants (the fuel) must be replenished from time to time.

[0004] In various such applications, it is common that a number of cells are packed together in a preselected configuration (e.g., in parallel or in series) to form a battery module. A number of such battery modules may, in turn, be combined or joined to form various battery packs such as are known in the art. During operation and discharge, such cells, battery modules or battery packs commonly produce or generate quantities of heat which can significantly detrimentally impact the performance that results therefrom. Thus, in order to maintain desired or optimal performance by such cells or resulting battery modules or battery packs, it is generally important to maintain the temperature of such cells, battery modules or battery packs within fairly narrow prescribed ranges.

[0005] In practice, temperature variations between individual cells can result from one or more of a variety of different factors including, for example: [0006] 1) changes in ambient temperature; [0007] 2) unequal impedance distribution among cells and [0008] 3) differences in heat transfer efficiencies among cells. Differences in heat transfer efficiencies among cells can typically be primarily attributed to the cell pack configuration. For example, cell elements at the center of a module or cell pack configuration may tend to accumulate heat while those cell elements at the periphery of the module or cell pack configuration will generally tend to be more easily or freely cooled as a result of greater relative heat transfer to the surrounding environment. Further, such variation in heat transfer efficiencies may lead to further differences in impedance such as may serve to amplify capacity differences among the cells. Such capacity imbalances can cause or result in some cells being over-charged or over-discharged which in turn may result in premature failure of a specific cell element or of an associated cell pack or module. In particular, such failures may take the form of thermal runaway or accelerating capacity fading.

[0009] Thermal management systems based on the use of active cooling (e.g., such as based on forced circulation of air, liquid or other selected cooling medium) have been proposed for use in conjunction with such battery power supply systems. Specific forms or types of active cooling include: "internal active cooling" wherein a selected cooling medium is typically circulated internally within the battery module or pack and "external active cooling" wherein a selected cooling medium is typically circulated externally to the battery module. It will be appreciated, however, that the incorporation and use of internal active cooling regimes may introduce an undesired level of complexity in either or both power supply design and operation and such as may hinder or prevent the more widespread use of such corresponding power supply systems.

[0010] Further, the required or desired size of a battery power supply is generally dependent on the specific application thereof. Thus, certain contemplated or envisioned applications for such power supplies, such as to power electric vehicles, for example, may necessitate the use of such power supplies which have or are of significantly larger physical dimensions than those presently commonly used or available. As will be appreciated by those skilled in the art, thermal management in power supply systems can become even more critical or significant as the size of such cell, battery module, or battery pack is increased.

[0011] Thus, there is a need and a demand for new and improved power supply systems and methods of operation which permit either or both more efficient and effective thermal management. In particular, there is a need and a demand for such power supply systems and methods of operation which desirably avoid the potential complications and complexities of typically contemplated internal active cooling thermal management systems. Further, there is a need and a demand for a well designed thermal management system such as can desirably better ensure one or more of the performance, safety or capacity of an associated power supply.

SUMMARY OF THE INVENTION

[0012] A general object of the invention is to provide an improved power supply system and method of operation.

[0013] A more specific objective of the invention is to overcome one or more of the problems described above.

[0014] The general object of the invention can be attained, at least in part and in accordance with one embodiment of the invention, through a power supply system which includes at least one cell element capable of a heat-generating charge or discharge of electric power and a supply of phase change material in thermal contact with the at least one cell element whereby the phase change material absorbs at least a portion of the heat generated upon a discharge of power from the at least one cell element.

[0015] The prior art generally fails to provide a power supply system and method of operation which provides or results in thermal management which is either or both as effective and efficient as may be desired. Further, the prior art generally fails to provide power supply system thermal management and operation such as may more conveniently or effectively permit the use of larger-sized battery power supplies such as contemplated or envisioned for certain applications, such as to power electric vehicles, for example.

[0016] The invention further comprehends a method of operating a power supply system. In accordance with one embodiment of the invention, such a method includes discharging at least one cell element to produce a quantity of power and a quantity of heat. Alternatively, the charging of at least one cell element may similarly produce a quantity of heat. At least a portion of the quantity of heat is absorbed in a phase change material in thermal contact with the discharging cell element. Such method further includes subsequently releasing at least a portion of the absorbed quantity of heat from the phase change material to heat the at least one cell element.

[0017] In accordance with another embodiment, the invention provides a battery module which includes a housing and a plurality of electrochemical cell elements, capable of a heat-generating charge, contained within the housing. The battery module also includes a supply of a phase change material. The phase change material is contained within the housing in thermal contact with at least one of the plurality of electrochemical cell elements whereby the phase change material absorbs at least a portion of the heat generated upon a charge or discharge of electric power from the at least one of the plurality of electrochemical cell elements. The battery module further includes a heat-conductive containment lattice member also contained within the housing. The containment lattice member has a plurality of openings wherein at least a portion of the supply of the phase change material is disposed.

[0018] The invention also comprehends a method of operating a power supply system. In accordance with one embodiment of the invention, such a method includes discharging at least one cell element of a battery module to produce a quantity of power and a quantity of heat. At least a portion of the quantity of heat is absorbed in a phase change material in thermal contact with the discharging cell element with the phase change material disposed in a plurality of openings in a heat-conductive containment lattice member. Following discharge, at least a portion of the absorbed quantity of heat is released from the phase change material to heat the at least one cell element to a greater than ambient temperature. The heated at least one cell element is itself subsequently discharged.

[0019] Other objects and advantages will be apparent to those skilled in the art from the following detailed description taken in conjunction with the appended claims and drawings.

BRIEF DESCRIPTION OF THE DRAWINGS

[0020] FIG. 1 is a top view schematic of a battery module incorporating a thermal management system in accordance with one embodiment of the invention.

[0021] FIG. 2 is a perspective schematic of a cell element used in the battery module shown in FIG. 1.

[0022] FIG. 3 is a perspective schematic of the cell elements used in the battery module shown in FIG. 1.

[0023] FIG. 4 is a top view schematic of a corner of the simulated battery module showing two cells out of eight total cells in the module.

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