Li Z Z, Wang J M, Peng X Q, Ho L T, Yin Z Q, Li S Y, Cheung C F
National University of Defense Technology, DeYa, Changsha, Hunan Province, China.
Appl Opt. 2011 Jun 1;50(16):2458-63. doi: 10.1364/AO.50.002458.
Single point diamond turning (SPDT) is highly controllable and versatile in producing axially symmetric forms, non-axially-symmetric forms, microstructured surfaces, and free forms. However, the fine SPDT marks left in the surface limit its performance, and they are difficult to reduce or eliminate. It is unpractical for traditional methods to remove the fine marks without destroying their forms, especially for the aspheres and free forms. This paper introduces abrasive jet polishing (AJP) for the posttreatment of diamond-turned surfaces to remove the periodic microstructures. Samples of diamond-turned electroless nickel plated plano mirror were used in the experiments. One sample with an original surface roughness of more than 400 nm decreased to 4 nm after two iterations abrasive jet polishing; the surface roughness of another sample went from 3.7 nm to 1.4 nm after polishing. The periodic signatures on both of the samples were removed entirely after polishing. Contrastive experimental research was carried out on electroless nickel mirror with magnetorheological finishing, computer controlled optical surfacing, and AJP. The experimental results indicate that AJP is more appropriate in removing the periodic SPDT marks. Also, a figure maintaining experiment was carried out with the AJP process; the uniform polishing process shows that the AJP process can remove the periodic turning marks without destroying the original form.
单点金刚石车削(SPDT)在加工轴对称形状、非轴对称形状、微结构表面和自由曲面时具有高度可控性和通用性。然而,表面留下的精细SPDT痕迹限制了其性能,并且难以减少或消除。传统方法在不破坏其形状的情况下去除这些精细痕迹是不切实际的,尤其是对于非球面和自由曲面。本文介绍了采用磨料喷射抛光(AJP)对金刚石车削表面进行后处理以去除周期性微结构。实验中使用了金刚石车削的化学镀镍平面镜样品。一个原始表面粗糙度超过400nm的样品在经过两次磨料喷射抛光迭代后降至4nm;另一个样品的表面粗糙度在抛光后从3.7nm降至1.4nm。两个样品上的周期性痕迹在抛光后完全被去除。对化学镀镍镜进行了磁流变抛光、计算机控制光学表面成形和AJP的对比实验研究。实验结果表明,AJP在去除周期性SPDT痕迹方面更合适。此外,对AJP工艺进行了保形实验;均匀的抛光过程表明,AJP工艺可以去除周期性车削痕迹而不破坏原始形状。