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Condition-based maintenance of mechanical setup in aluminum wire bonding equipment by data mining

机译:通过数据挖掘对铝线键合设备的机械设置进行基于状态的维护

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On the way to full production control, wire bonding equipment requires data-driven condition-based maintenance of the mechanical setup. In this paper, we identify aspects of regular mechanical equipment setups that severely affect bonding quality and equipment health in mass production. We show that mechanical equipment setups lower process stability in aluminum wire bonding. Typical faults in mechanical setup directly influence device quality, which is measured through the use of pull and shear tests. In this paper we demonstrate that data mining can detect mechanical setup faults by extracted features of monitored machine data. Condition-based maintenance enables the verification of mechanical setup conditions after manual adjustments and individual bonding events. This novel condition-based maintenance has the potential to partially substitute pull and shear tests, and hence avoid related equipment downtime as well as additional cost.
机译:在实现全面生产控制的过程中,引线键合设备需要基于数据的条件维护机械装置。在本文中,我们确定了常规机械设备设置的各个方面,这些方面会严重影响批量生产中的键合质量和设备健康状况。我们表明,机械设备设置会降低铝线键合过程的稳定性。机械设置中的典型故障直接影响设备的质量,这是通过使用拉力和剪切力测试来测量的。在本文中,我们证明了数据挖掘可以通过提取受监视机器数据的特征来检测机械设置故障。基于条件的维护可以在手动调整和个别键合事件之后验证机械设置条件。这种新颖的基于状态的维护有可能部分替代拉伸和剪切测试,从而避免了相关设备的停机时间以及额外的成本。

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