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首页> 外文期刊>Journal of Failure Analysis and Prevention >Novel Approach to Improve Electronics Reliability in the Next Generation of US Army Small Unmanned Ground Vehicles Under Complex Vibration Conditions
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Novel Approach to Improve Electronics Reliability in the Next Generation of US Army Small Unmanned Ground Vehicles Under Complex Vibration Conditions

机译:在复杂振动条件下提高下一代美军小型无人地面车辆电子可靠性的新方法

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摘要

The functionality of next generation the US Army's platforms, such as the Small Unmanned Ground Vehicles and Small Unmanned Arial Vehicles, is strongly dependent on the reliability of electronics-rich devices. Thus, the performance and accuracy of these systems will be dependent on the life-cycle of electronics. These electronic systems and the critical components in them experience extremely harsh environments such as shock and vibration. Therefore, it is imperative to identify the failure mechanisms of these components through experimental and virtual failure assessment. One of the key challenges in re-creating lifecycle vibration conditions during design and qualification testing in the lab is the re-creation of simultaneous multi-axial excitation that the product experiences in the field. Instead, the common practice is to use sequential single-axis excitation in different axes or uncontrolled multiaxial vibration on repetitive shock shakers. Consequently, the dominant failure modes in the field are sometimes very difficult to duplicate in a laboratory test. This paper presents the joint effort by the US Army Materiel Systems Analysis Activity (AMSAA) and the Center of Advanced Life Cycle Engineering (CALCE) at the University of Maryland to develop test methods and analytical models that better capture unforeseen design weaknesses prior to the qualification phase, by better replication of the life-cycle vibration conditions. One approach was to utilize a novel multi-degrees-of-freedom (M-DoF) electrodynamic shaker to ruggedize designs for fatigue damage due to multi-directional random vibration. The merits of vibration testing methods with six-DoF shaker and cost saving associated with such an approach will be addressed in this paper. There is a potential for M-DoF to detect critical design vulnerabilities earlier in the development cycle than has been traditionally possible with existing shaker technologies; and therefore to produce more cost effective, reliable and safe systems for the warfighters.
机译:小型无人地面车辆和小型无人Arial车辆等下一代美国陆军平台的功能在很大程度上取决于电子设备丰富的可靠性。因此,这些系统的性能和准确性将取决于电子设备的生命周期。这些电子系统及其中的关键组件会经受极其恶劣的环境,例如冲击和振动。因此,必须通过实验和虚拟故障评估来确定这些组件的故障机制。在实验室的设计和鉴定测试过程中,重新创建生命周期振动条件的主要挑战之一是产品在现场所经历的同时多轴激励的再创造。取而代之的是,通常的做法是在不同的轴上使用顺序的单轴激励,或者在重复的振动台上使用不受控制的多轴振动。因此,有时在实验室测试中很难复制现场的主要失效模式。本文介绍了美国陆军装备系统分析活动(AMSAA)和马里兰大学高级生命周期工程中心(CALCE)的共同努力,旨在开发测试方法和分析模型,以便在资格认证之前更好地捕捉无法预见的设计缺陷阶段,可以更好地复制生命周期的振动条件。一种方法是利用新颖的多自由度(M-DoF)电动振动筛,对由于多方向随机振动而引起的疲劳损伤进行加固设计。本文将讨论采用六自由度振动筛的振动测试方法的优点以及与这种方法相关的成本节省。 M-DoF有可能在开发周期中比传统的振动筛技术更早地发现关键设计漏洞。因此,为战士们提供了更具成本效益,可靠和安全的系统。

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