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首页> 外文期刊>International journal of structural integrity >Carbon footprint and financial evaluation of an aeronautic component production using different manufacturing processes
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Carbon footprint and financial evaluation of an aeronautic component production using different manufacturing processes

机译:使用不同制造工艺的航空零件生产的碳足迹和财务评估

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摘要

Purpose - The purpose of this paper is to quantify the environmental footprint and cost and thus compare different manufacturing scenarios associated with the production of aeronautical structural components. Design/methodology/approach - A representative helicopter canopy, i. e., canopy of the EUROCOPTER EC Twin Star helicopter described in Pantelakis et al (2009), has been considered for the carbon footprint (life cycle energy and climate change impact analysis) along with the life cycle costing analysis. Four scenarios - combinations of different manufacturing technologies (autoclave and resin transfer molding (RTM)) and end-of-life treatment scenarios (mechanical recycling and pyrolysis) are considered. Findings - Using the models developed the expected environmental and cost benefits by involving the RTM technique have been quantified. The environmental impact was expressed in terms of energy consumption and of Global Warming Potential-100. From an environmental standpoint, processing the canopy using the RTM technique leads to decreased energy demands as compared to autoclaving because of the shorter curing cycles exhibited from this technique and thus the less time needed. As far as the financial viability of both processing scenarios is concerned, the more steps needed for preparing the mold and the need for auxiliary materials increase the material and the labor cost of autoclaving as compared to RTM. Originality/value - At the early design stages in aeronautics, a number of disciplines (environmental, financial and mechanical) should be taken into account in order to evaluate alternative scenarios (material, manufacturing, recycling, etc.). In this paper a methodology is developed toward this direction, quantifying the environmental and financial viability of different manufacturing scenarios associated with the production of aeronautical structures.
机译:目的-本文的目的是量化环境足迹和成本,从而比较与航空结构部件生产相关的不同制造方案。设计/方法/方法-代表性的直升机机盖,i。例如,Pantelakis等人(2009)中描述的EUROCOPTER EC双星直升机的机盖已被考虑用于碳足迹(生命周期能量和气候变化影响分析)以及生命周期成本分析。考虑了四种方案-不同制造技术(高压釜和树脂传递模塑(RTM))和报废处理方案(机械回收和热解)的组合。研究结果-使用所开发的模型,通过使用RTM技术,可以量化预期的环境和成本效益。对环境的影响用能源消耗和全球变暖潜力100表示​​。从环境的角度来看,与高压灭菌法相比,使用RTM技术处理冠层可降低能源需求,因为该技术显示出更短的固化周期,因此所需时间更少。就两种加工方案的财务可行性而言,与RTM相比,准备模具所需的更多步骤以及对辅助材料的需求增加了高压灭菌的材料和人工成本。原创性/价值-在航空设计的早期阶段,应考虑许多学科(环境,金融和机械),以评估替代方案(材料,制造,回收等)。在本文中,朝着这个方向发展了一种方法,量化了与航空结构生产相关的不同制造方案的环境和财务可行性。

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