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Life-Cycle Integration of Titanium Alloys into the Automotive Segment for Vehicle Light-Weighting: Part II - Component Life-Cycle Modeling and Cost Justification

机译:钛合金的生命周期集成到用于汽车轻量化的汽车领域:第二部分-组件生命周期建模和成本合理性

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To warrant the substitution of traditionally used structural automotive materials with titanium alloys, the material substitutional and redesign advantages must be attainable at a justifiable cost. Typically, during material replacement with such 'exotic' aerospace alloys, the initial raw material cost is high; therefore, cost justification will need to be realized from a life-cycle cost standpoint. Part I of this paper highlighted the redesign, fabrication, and validation of an automotive component. Part II details the particulars of constructing the total life-cycle cost model for both prototypes (P1, P2). Considerations in the model include adaptation to a high volume production scenario, availability of near-net size plate/bar stock, etc. Further, response surfaces of fuel costs savings and consequent life-cycle costs (state-variables) are generated against life-cycle duration and unit fuel price (design-variables) to identify profitable operating conditions. In conclusion, it is evident that total life-cycle costs (primary metric) are closely comparable to that of the original component, thereby cost-justifying the redesigns as well as substantiating the practicality of replacement.
机译:为了保证用钛合金替代传统的汽车结构材料,必须以合理的成本获得材料替代和重新设计的优势。通常,在用这种“外来”航空合金替代材料的过程中,初始原材料成本很高;因此,需要从生命周期成本的角度实现成本合理性。本文的第一部分重点介绍了汽车零部件的重新设计,制造和验证。第二部分详细介绍了为两个原型(P1,P2)构建总生命周期成本模型的细节。模型中的考虑因素包括适应大批量生产的情况,接近净尺寸的板/棒材的可用性等。此外,燃料成本节省的响应面和随之而来的生命周期成本(状态变量)是根据生命周期产生的。循环持续时间和单位燃料价格(设计变量),以识别有利的运行条件。总而言之,很明显总的生命周期成本(主要指标)与原始组件的成本非常可比,从而使重新设计的成本合理,并证明了更换的实用性。

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