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Modeling memoryless degradation under variable stress

机译:在可变压力下建模无记忆劣化

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Accelerated degradation tests can be used as the basis for predicting the performance or state of health of products and materials at use conditions over time. Measurements acquired at accelerated levels of stress are used to develop models that relate to the degradation of one or more performance measures. Frequently, products/materials of interest are subjected to variable stress levels during their lifetimes. However, testing is usually performed only at a few fixed stress levels. In such cases, cumulative degradation models are developed and assessed by using data acquired under those fixed stress conditions. The degradation rate at any stress condition within the range of the model can be estimated by the derivative of the cumulative model at that stress condition. It follows that, to predict cumulative degradation over variable use conditions, one might integrate the fluctuating degradation rate over time. Existing approaches for doing this consider degradation rates that depend only on the current stress level. Here, we propose to allow the degradation rate to also depend on the current state of health as indicated by the associated performance measure(s). The resulting modeling approach is capable of portraying a broader range of degradation behavior than existing approaches. The assertion of memoryless degradation by using this or any other approach should be assessed experimentally with data acquired under variable stress in order to increase confidence that the integrated rate model is accurate. In this article, we demonstrate the additional capability of the proposed approach by developing empirical memoryless rate-based degradation models to predict resistance increase and capacity decrease in lithium-ion cells that are being evaluated for use in electric vehicles. We then assess the plausibility of these models.
机译:加速降解试验可用作预测产品和材料的健康状态随时间的效果或状态。在加速压力水平上获得的测量用于开发与一种或多种性能措施的降解有关的模型。通常,在其寿命期间,兴趣的产品/物质受到可变胁迫水平。然而,测试通常仅在几个固定的应力水平下执行。在这种情况下,通过使用根据这些固定应力条件下获得的数据来开发和评估累积劣化模型。可以通过该应力条件的累积模型的衍生物估算模型范围内的任何应力条件的降解速率。因此,为了预测通过可变使用条件的累积降级,可以随着时间的推移整合波动的降解速率。执行此操作的现有方法仅考虑仅取决于当前应力级别的劣化率。在这里,我们建议允许降解率也取决于当前的健康状况,如相关性能措施所示。所产生的建模方法能够描绘比现有方法更广泛的劣化行为。应通过在可变压力下获得的数据进行实验评估通过使用此或任何其他方法的无记忆降级的断言,以增加综合速率模型准确的信心。在本文中,我们通过开发基于经验的无核速率的降解模型来证明所提出的方法的额外能力,以预测正在评估用于电动车辆的锂离子电池的抗性增加和容量降低。然后我们评估这些模型的合理性。

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