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Investigating paste additives to improve the specific energy performance of lead-acid batteries.

机译:研究糊状添加剂以改善铅酸电池的比能性能。

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摘要

In this dissertation, the change in electrical conductivity of the active material in lead acid batteries that occur during discharge was investigated. This change in conductivity limits the maximum utilization that the active material in both electrodes can realize and therefore limits the performance of these batteries. Additives, both conductive and non-conductive having different aspect ratios were evaluated with a two-dimensional computer model to determine their effect on active material utilizations. It was found that the larger conductive particles are less effective than the smaller particles for improving active material utilization. However, as the aspect ratios for the smaller particles are increased, the conductive additives begin to bridge what would have been isolated areas and this process can increase utilization.; In order to better understand the electrical conductivity of electrodes, particularly those having additives, a three-dimensional (3-D) model was developed. The simulation results of this model were compared with those theoretical numbers predicted by the Percolation Theory (PT) and the Effective Medium Theory (EMT). The results of the model were very similar to those values predicted by these theories.; In addition to the above studies of active material conductivity, tests were performed on two experimental cells to determine cell capacity at different discharge rates. Computer simulations of these cells were compared with the test results. This work was the first part of a test program that will more carefully examine the use of additives in the electrodes of lead acid batteries. Alternative designs for the lead acid battery were also investigated. These designs included a 42 V battery for automotive applications. Some concepts developed for the 42 V battery were further refined and used in a battery design for the Joint Tactical Electric Vehicle (JTEV).
机译:本文研究了放电过程中铅酸蓄电池中活性物质电导率的变化。电导率的这种变化限制了两个电极中的活性材料可以实现的最大利用率,因此限制了这些电池的性能。用二维计算机模型评估具有不同长宽比的导电和非导电添加剂,以确定它们对活性物质利用的影响。已经发现,较大的导电颗粒比较小的颗粒在提高活性材料利用率方面效果较差。但是,随着较小颗粒长径比的增加,导电添加剂开始桥接原本应该隔离的区域,该过程可以提高利用率。为了更好地理解电极,特别是具有添加剂的电极的电导率,开发了三维(3-D)模型。该模型的仿真结果与渗流理论(PT)和有效介质理论(EMT)预测的理论值进行了比较。模型的结果与这些理论预测的值非常相似。除了对活性物质电导率的上述研究以外,还对两个实验电池进行了测试,以确定不同放电速率下的电池容量。将这些电池的计算机模拟与测试结果进行了比较。这项工作是测试程序的第一部分,该程序将更仔细地检查铅酸电池电极中添加剂的使用。还研究了铅酸电池的替代设计。这些设计包括用于汽车应用的42 V电池。为42 V电池开发的一些概念得到了进一步完善,并用于联合战术电动车(JTEV)的电池设计中。

著录项

  • 作者

    Zhang, Song.;

  • 作者单位

    University of Idaho.;

  • 授予单位 University of Idaho.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 110 p.
  • 总页数 110
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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