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Continuous Improvement Strategies for Automated X-ray Inspection

机译:自动化X射线检查的持续改进策略

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Automated X-ray inspection (AXI) is more often a part of an effective test strategy for today's PCBAs because of the benefits it provides manufacturers in meeting challenges resulting from: 1. Continued product miniaturization amid increased product functionality 2. Increased time to market and time to volume pressures 3. Growth in outsourcing and contract manufacturing The structural defect coverage provided by AXI is complementary to electrical test; AXI helps to increase overall fault coverage when used in combination with flying probe, in-circuit and functional test methods. Despite the benefits offered by AXI, new users sometimes struggle with its implementation due to a lack of experience and procedures on how to optimize the inspection process to achieve stated performance targets. Common concerns among this user group include high false failure rates and defect escape rates. Because AXI is a relatively new test technology, many users are unaware of best practice use-models and continuous improvement methodologies that can be used to stabilize the inspection process and attain targeted performance goals for both defect detection and false failure rates. This paper will demonstrate procedures, use-models and continuous improvement methodologies that AXI users should consider when establishing norms for their own operational practices. Like any manufacturing process, appropriate procedures and metrics must be put in place to attain performance goals. Once suitable operational procedures are in place, even new manufacturing technologies like AXI will perform within predictable and acceptable performance limits. The recommendations and best practices discussed in this paper arc derived from the practical experiences of the authors in their direct work with AXI processes in volume prc duction environments.
机译:自动X射线检查(AXI)通常是当今PCBA有效测试策略的一部分,因为它为制造商提供了应对以下方面带来的挑战的优势:1.在产品功能不断增强的同时,产品不断小型化; 2.投放市场的时间更长;到达体积压力的时间3.外包和合同制造的增长AXI提供的结构缺陷覆盖率是电气测试的补充;当与飞针,在线和功能测试方法结合使用时,AXI有助于增加总体故障范围。尽管AXI提供了很多好处,但是由于缺乏有关如何优化检查过程以实现规定的性能目标的经验和程序,新用户有时仍会对其实施感到困难。该用户组普遍关注的问题包括较高的错误率和缺陷逃逸率。由于AXI是一种相对较新的测试技术,因此许多用户不了解可用于稳定检查过程并达到缺陷检测和错误故障率的目标性能目标的最佳实践使用模型和持续改进方法。本文将演示AXI用户在建立自己的操作规范时应考虑的程序,使用模型和持续改进方法。像任何制造过程一样,必须制定适当的程序和指标以实现性能目标。一旦制定了适当的操作程序,即使是像AXI这样的新制造技术,也可以在可预测的可接受性能极限内运行。本文讨论的建议和最佳实践源于作者在批量生产环境中直接使用AXI流程的实践经验。

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