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Effect of encapsulation on electrolyte leakage in aluminum electrolytic capcitors under constant thermal and electrical loading.

机译:恒定热负荷和电负荷下封装对铝电解电容器电解液泄漏的影响。

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摘要

This study focuses on the influence of encapsulation (with silicone elastomer potting compound) on electrolyte leakage in aluminum electrolytic capacitors. Experiments were conducted on potted capacitors at constant elevated temperature and rated DC voltage, and results were compared to those from a control batch of unpotted capacitors. The weight, ESR and capacitance were periodically monitored. Encapsulation was found to decelerate electrolyte loss rate and ESR degradation. There was an increasingly discernible deceleration of capacitance degradation but the magnitude did not reach statistically significant thresholds within the test period. A simplified axisymmetric finite element model was constructed for theoretical understanding of the electrolyte loss process. The experimental measurements were used to guide the selection of the material properties in the model. The model addresses several possible sources of non-uniformities in the mass flux density in the test specimen: (i) radial nonuniformity of mass transport properties of the rubber seal; and (ii) delamination between the potting compound and the capacitor leads. This model was then used: (i) to conduct parametric investigation of the effect of mass transport properties of the potting compound; and (ii) in conjunction with the experimental results to estimate the electrolyte mass loss from the capacitor through the rubber seal.
机译:这项研究集中在铝电解电容器的封装(使用有机硅弹性体灌封化合物)对电解质泄漏的影响上。在恒定的高温和额定DC电压下对封装电容器进行了实验,并将结果与​​对照组的未封装电容器进行了比较。定期监测重量,ESR和电容。发现封装降低了电解质损失速率和ESR降解。电容退化的减速越来越明显,但在测试期间内,幅度未达到统计学上显着的阈值。构造了简化的轴对称有限元模型以从理论上理解电解质损失过程。实验测量值用于指导模型中材料属性的选择。该模型解决了试样中质量通量密度不均匀性的几种可能来源:(i)橡胶密封件传质的径向不均匀性; (ii)封装化合物和电容器引线之间的分层。然后使用该模型:(i)对灌封料的传质特性的影响进行参数研究; (ii)结合实验结果来估计通过橡胶密封件从电容器中损失的电解质质量。

著录项

  • 作者

    Parsa, Ehsan.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Mechanical engineering.
  • 学位 M.S.
  • 年度 2014
  • 页码 130 p.
  • 总页数 130
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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