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首页> 外文期刊>Journal of Materials Engineering and Performance >A Concurrent Product-Development Approach for Friction-Stir Welded Vehicle-Underbody Structures
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A Concurrent Product-Development Approach for Friction-Stir Welded Vehicle-Underbody Structures

机译:搅拌摩擦焊接汽车车身结构的并行产品开发方法

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摘要

High-strength aluminum and titanium alloys with superior blast/ballistic resistance against armor piercing (AP) threats and with high vehicle light-weighing potential are being increasingly used as military-vehicle armor. Due to the complex structure of these vehicles, they are commonly constructed through joining (mainly welding) of the individual components. Unfortunately, these alloys are not very amenable to conventional fusion-based welding technologies [e.g., gas metal arc welding (GMAW)] and to obtain high-quality welds, solid-state joining technologies such as friction-stir welding (FSW) have to be employed. However, since FSW is a relatively new and fairly complex joining technology, its introduction into advanced military-vehicle-underbody structures is not straight forward and entails a comprehensive multi-prong approach which addresses concurrently and interactively all the aspects associated with the components/vehicle-underbody design, fabrication, and testing. One such approach is developed and applied in this study. The approach consists of a number of well-defined steps taking place concurrently and relies on two-way interactions between various steps. The approach is critically assessed using a strengths, weaknesses, opportunities, and threats (SWOT) analysis.
机译:高强度的铝和钛合金具有极高的爆炸/弹道抵抗装甲穿甲(AP)威胁能力,并且具有很高的车辆轻量化潜力,越来越多地被用作军事车辆装甲。由于这些车辆的复杂结构,它们通常是通过各个部件的连接(主要是焊接)来构造的。不幸的是,这些合金不是很适合传统的基于熔合的焊接技术[例如,气体保护金属电弧焊(GMAW)],并且为了获得高质量的焊缝,诸如搅拌摩擦焊(FSW)的固态连接技术必须被雇用。但是,由于FSW是一种相对较新且相当复杂的连接技术,因此将其引入高级军事车辆底盘结构并不是一件容易的事,它需要一种全面的多管齐下的方法,该方法可以同时和交互地解决与零部件/车辆相关的所有方面-车身的设计,制造和测试。在本研究中开发并应用了一种这样的方法。该方法由多个同时进行的明确定义的步骤组成,并且依赖于各个步骤之间的双向交互。使用优势,劣势,机会和威胁(SWOT)分析对方法进行严格评估。

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