Comparison of contact and non-contact asphere surface metrology devices

被引:6
|
作者
DeFisher, Scott [1 ]
Fess, Edward M. [1 ]
机构
[1] OptiPro Syst, Ontario, NY 14519 USA
来源
OPTIFAB 2013 | 2013年 / 8884卷
关键词
D O I
10.1117/12.2029349
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Metrology of asphere surfaces is critical in the precision optics industry. Surface metrology serves as feedback into deterministic grinding and polishing platforms. Many different techniques and devices are used to qualify an asphere surface during fabrication. A contact profilometer is one of the most common measurement technologies used in asphere manufacturing. A profilometer uses a fine stylus to drag a diamond or ruby tip over the surface, resulting in a high resolution curved profile. Coordinate measuring machines (CMM) apply a similar concept by touching the optic with a ruby or silicon carbine sphere. A CMM is able to move in three dimensions while collecting data points along the asphere surface. Optical interferometers use a helium-neon laser with transmission spheres to compare a reflected wavefront from an asphere surface to a reference spherical wavefront. Large departure aspheres can be measured when a computer generated hologram (CGH) is introduced between the interferometer and the optic. OptiPro Systems has developed a non-contact CMM called UltraSurf. It utilizes a single point non-contact sensor, and high accuracy air bearings. Several different commercial non-contact sensors have been integrated, allowing for the flexibility to measure a variety of surfaces and materials. Metrology of a sphere and an asphere using a profilometer, CMM, Interferometer with a CGH, and the UltraSurf will be presented. Cross-correlation of the measured surface error magnitude and shape will be demonstrated. Comparisons between the techniques and devices will be also presented with attention to accuracy, repeatability, and overall measurement time.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] A novel contact/non-contact hybrid measurement system for surface topography characterization
    Lu, SF
    Gao, YS
    Xie, TB
    Xie, F
    Jiang, XQ
    Li, Z
    Wang, FM
    INTERNATIONAL JOURNAL OF MACHINE TOOLS & MANUFACTURE, 2001, 41 (13-14): : 2001 - 2009
  • [42] Comparison Of Injury For Non-contact Sports (track) Versus Contact Sports (rugby)
    Li, Yanjin
    Kenny, Ian
    MEDICINE & SCIENCE IN SPORTS & EXERCISE, 2022, 54 (09) : 462 - 462
  • [43] Comparison of endothelial cell density estimated by contact and non-contact specular microscopy
    Isager, P
    Hjortdal, JO
    Guo, SP
    Ehlers, N
    ACTA OPHTHALMOLOGICA SCANDINAVICA, 2000, 78 (01): : 42 - 44
  • [44] Measurement of Automotive Parts' Surface Texture Using Contact and Non-contact Methods
    Harcarik, Matej
    Jankovych, Robert
    PROCEEDINGS OF THE 2016 17TH INTERNATIONAL CONFERENCE ON MECHATRONICS - MECHATRONIKA (ME) 2016, 2016, : 374 - 380
  • [45] Ocular Surface Displacement with and without Contact Lenses during Non-Contact Tonometry
    Rimayanti, Ulfah
    Kiuchi, Yoshiaki
    Uemura, Shohei
    Takenaka, Joji
    Mochizuki, Hideki
    Kaneko, Makoto
    PLOS ONE, 2014, 9 (04):
  • [46] Non-contact mapping
    Schneider, MAE
    Schmitt, C
    ZEITSCHRIFT FUR KARDIOLOGIE, 2000, 89 : 177 - 185
  • [47] Non-contact NDE
    Palmer, SB
    INSIGHT, 1995, 37 (05) : 366 - 367
  • [48] Non-contact tester
    Murray, Jerry
    Printed Circuit Fabrication, 1999, 22 (02):
  • [49] NON-CONTACT TONOMETER
    不详
    MEDICAL LETTER ON DRUGS AND THERAPEUTICS, 1977, 19 (22): : 91 - 92
  • [50] Non-contact thermometers
    不详
    GAS ENGINEERING & MANAGEMENT, 1997, 37 (07): : 38 - 38