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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Review of single-point diamond turning process in terms of ultra-precision optical surface roughness
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Review of single-point diamond turning process in terms of ultra-precision optical surface roughness

机译:在超精密光学表面粗糙度方面回顾单点金刚石转动过程

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摘要

Ultra-precision machining is the recent realm subsequent to conventional precision machining processes. Recently, achieving nanoscale features on products has become important in manufacturing of critical components. One of the main objectives in advanced manufacturing of optics is to reach ultimately high precision in accuracy of optical surface generation. Through further development of computer numerical controlled machinery technology, single-point diamond turning (SPDT) has evolved rapidly and became a key step in the process chain of nano-machining. In SPDT, advanced and competitive technology for optical surface generation combined with ultra-precision fixtures and accurate metrological systems, high-precision surface machining with scales down to 1 nanometer, even less than 1 nanometer, are successfully achieved. Different engineering applications including medical, dental, defense, aerospace, computer science, and electronic components demand extreme smoothness and optical quality of the machined surfaces. However, there are limitations and drawbacks in SPDT process and surface generation using this technology. Different factors may significantly influence turning conditions, affect surface generation, and limit the outcome of the process. This paper attempts to provide a review of ultra-precision SPDT: technology and characteristics, manufacturing process, applications, machinable materials, and surface generation. Subsequently, influencing factors on surface generation are introduced and comprehensively discussed. Studying influencing factors on surface generation could enable setting optimized sets of machining factors and providing best possible machining conditions for generating high quality optical surfaces. Furthermore, limitations and drawbacks of standard structure SPDT process is discussed. Although a number of published studies have attempted to provide a good perspective of the SPDT process by looking into the effect of influencing factors on surface generation and existing limitations, more investigation needs to be undertaken to discover all destructive effects, origins, and influences in order to further extend the machinability of materials, reduce side effects, and improve the outcome of SPDT.
机译:超精密加工是传统精密加工过程之后最近的领域。最近,在制造关键部件的制造方面取得了纳米级特征。光学技术先进制造的主要目标之一是在光学表面产生的准确性上实现最终高精度。通过进一步开发计算机数控机械技术,单点钻石转动(SPDT)已经快速发展,成为纳米加工过程链中的一个关键步骤。在SPDT,用于光学表面发电的先进和竞争技术与超精密夹具和精确的计量系统相结合,高精度表面加工,缩小为1纳米,甚至小于1纳米。包括医疗,牙科,防御,航空航天,计算机科学和电子元件的不同工程应用需求加工表面的极端光滑度和光学质量。然而,使用该技术存在SPDT过程和表面生成存在局限性和缺点。不同的因素可能会显着影响转弯条件,影响表面产生,并限制过程的结果。本文试图提供超精密SPDT的综述:技术和特性,制造工艺,应用,可加工材料和表面生成。随后,引入和全面讨论了表面生成的影响因素。研究表面生成的影响因素可以使得能够设定优化的加工因子集,并提供用于产生高质量光学表面的最佳加工条件。此外,讨论了标准结构SPDT过程的限制和缺点。虽然许多公布的研究通过调查了对表面产生的影响和现有局限性的影响,但需要进行更多的调查,以发现所有破坏性效应,起源和影响的更多调查为了进一步扩展材料的可加工性,减少副作用,提高SPDT的结果。

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