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Development of micromachine tool prototypes for microfactories

机译:开发用于微工厂的微机床原型

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At present, many areas of industry have strong tendencies towards miniaturization of products. Mechanical components of these products as a rule are manufactured using conventional large-scale equipment or micromechanical equipment based on microelectronic technology (MEMS). The first method has some drawbacks because conventional large-scale equipment consumes much energy, space and material. The second method seems to be more advanced but has some limitations, for example, two-dimensional (213) or 2.5-dimensional shapes of components and materials compatible with silicon technology. In this paper, we consider an alternative technology of micromechanical device production. This technology is based on micromachine tools (MMT) and microassembly devices, which can be produced as sequential generations of microequipment. The first generation can be produced by conventional large-scale equipment. The machine tools of this generation can have overall sizes of 100-200 mm. Using microequipment of this generation, second generation microequipment having smaller overall sizes can be produced. This process can be repeated to produce generations of micromachine tools having overall sizes of some millimetres. In this paper we describe the efforts and some results of first generation microequipment prototyping. A micromachining centre having an overall size of 130 x 160 x 85 mm(3) was produced and characterized. This centre has allowed us to manufacture micromechanical details having sizes from 50 mum to 5 mm. These details have complex three-dimensional shapes (for example, screw, gear, graduated shaft, conic details, etc), and are made from different materials, such as brass, steel, different plastics etc. We have started to investigate and to make prototypes of the assembly microdevices controlled by a computer vision system. In this paper we also describe an example of the applications (microfilters) for the proposed technology. [References: 45]
机译:当前,许多工业领域具有使产品小型化的强烈趋势。通常使用常规的大型设备或基于微电子技术(MEMS)的微机械设备来制造这些产品的机械组件。第一种方法具有一些缺点,因为常规的大型设备消耗大量的能量,空间和材料。第二种方法似乎更先进,但有一些局限性,例如与硅技术兼容的组件和材料的二维(213)或2.5维形状。在本文中,我们考虑了微机械设备生产的替代技术。这项技术基于微型机床(MMT)和微型装配设备,可以作为微型设备的连续生产而生产。第一代可以通过常规的大型设备生产。这一代的机床可具有100-200 mm的整体尺寸。使用这一代的微型设备,可以生产具有较小整体尺寸的第二代微型设备。可以重复该过程以产生具有几毫米的总尺寸的几代微型机床。在本文中,我们描述了第一代微设备原型设计的努力和一些结果。产生并表征了整体尺寸为130 x 160 x 85 mm(3)的微加工中心。这个中心使我们能够制造尺寸从50毫米到5毫米的微机械零件。这些细节具有复杂的三维形状(例如,螺钉,齿轮,刻度轴,圆锥形细节等),并由不同的材料制成,例如黄铜,钢,不同的塑料等。我们已经开始研究并制造由计算机视觉系统控制的装配微型设备的原型。在本文中,我们还描述了所提出技术的应用程序(微过滤器)的示例。 [参考:45]

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