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首页> 外文期刊>American journal of engineering and applied sciences >Advanced Manufacturing for Novel Materials in Industrial Design Applications
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Advanced Manufacturing for Novel Materials in Industrial Design Applications

机译:工业设计应用中的新型材料的先进制造

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摘要

The research presented starts with a focus on Smart Materials, or rather materials with properties that react to external stimuli (temperature, electric or magnetic field, pH or mechanical stress, for example) related to the environmental changes, modifying one or some of their own properties (mechanical, electrical, appearance, etc.). Afterward, one category of Smart Materials, Shape Memory Alloys (SMAs), has been investigated with the aim to develop an industrial application. In particular, a smart and active shadow system for thermal comfort of urban or indoor environments, based on the valorization of the unique property of SMAs to change their shape depending on the temperature (SME, Shape Memory Effect). Without the need to use expensive and complex mechanical system composed of many parts to assemble and characterized by higher cost of energy required for its functioning and its manufacturing. In order to develop the system, SMAs like Nitinol (Ni-Ti) wires with a diameter of 0,75 mm (Austenite finish 85°C) have been studied. Particularly, DSC (Differential Scanning Calorimetry) thermal analysis, aimed to investigate a characteristic range of temperature for martensitic and austenitic transformations and get data to plan more suitable and optimized procedures, conditions and parameters for heat treatments needed for Nitinol training have been carried out. In parallel, CAD models have been developed to simulate and better understand forces needed for a proper functioning of the smart shadow system, to predict its behavior, to have a support for a correct choice of SMA wires (selecting wires with a diameter suitable to produce a force high enough to produce strains), to decide wires positioning and quantity. Finally, for "as-drawn" Nitinol wires, using the data experimentally collected with DSC thermal analysis, SME training procedures have experimented. With the wires, programmed to have a two-way memory effect, using milling and additive technologies, prototypes where the wires are embedded in casted polymers (rubber silicone or polyurethane) or assembled to parts manufactured with additive technologies have been built, in order to test and enhance product functioning and manufacturability. The results obtained for the application, although the Smart Shadow System is not completely engineered and other evolutionary steps for it are possible, show that the use of SMAs gives the possibility to have an active system able to be weather responsive, ensuring a significant shape memory effect depending on the temperature. This advanced property, in fact, gives the possibility, optimizing functioning parameters (temperatures, thicknesses, geometry, structure), to have a sensitive, adaptive and smart system that can ensure the best thermal condition for any meteorological situation.
机译:提出的研究开始于智能材料的关注,而是具有与环境变化有关的外部刺激(温度,电磁场,pH或机械应力,改变一个或一些自身的物质的物质的材料性质(机械,电气,外观等)。之后,已经调查了一类智能材料,形状记忆合金(SMA),并旨在开发工业应用。特别是,用于城市或室内环境的热舒适性的智能和有源阴影系统,基于SMA的独特性能,根据温度(SME,形状记忆效应)来改变它们的形状。无需使用昂贵且复杂的机械系统,由许多部件组成以组装并以其运作和制造所需的更高的能量成本为特征。为了开发系统,已经研究了直径为0.75mm(奥氏体结束85°C)的镍钛诺(Ni-Ti)电线等酶。特别是,DSC(差示扫描量热法)热分析,旨在研究马氏体和奥氏体转化的特征范围,并获取数据以规划更合适的和优化的程序,进行Nitinol训练所需的热处理的条件和参数。并行地,已经开发了CAD模型来模拟和更好地了解智能影子系统的适当运行所需的力量,以预测其行为,以支持正确选择SMA线(选择具有适于产生直径的电线一种足够高以产生菌株的力),以确定电线定位和数量。最后,对于“如绘制的”Nitinol导线,使用通过DSC热分析进行实验收集的数据,中小企业训练程序已经进行了实验。使用电线,使用铣削和添加剂技术,使用铣削和添加剂技术进行双向内存效果,其中导线嵌入浇铸聚合物(橡胶硅胶或聚氨酯)或组装到用添加剂技术制造的零件,以便测试和提高产品功能和可制造性。申请获得的结果,虽然智能影子系统没有完全设计,但是可以实现其他进化步骤,表明SMA的使用使得有可能具有能够响应的气象的有源系统,确保了重要的形状记忆根据温度的影响。事实上,这种先进的财产提供了优化功能参数(温度,厚度,几何,结构),具有敏感,自适应和智能系统,可确保任何气象状况的最佳热条件。

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