Browse > Article
http://dx.doi.org/10.3807/JOSK.2012.16.1.063

Dual Band Optical Window (DBW) for Use on an EO/IR Airborne Camera  

Park, Kwang-Woo (Agency for Defense Development)
Park, Sang-Yeong (ISR Research Institute, Samsung Thales Co., Ltd.)
Kim, Young-Soo (ISR Research Institute, Samsung Thales Co., Ltd.)
Kim, Ki-Ho (Korea Electro-Optics Co., Ltd.)
Choi, Young-Soo (Agency for Defense Development)
Publication Information
Journal of the Optical Society of Korea / v.16, no.1, 2012 , pp. 63-69 More about this Journal
Abstract
This paper presents a method to derive the theoretical requirements for the development of a 400 mm optical window that transmits dual-band wavelengths and had a stable structure. We also present design and fabrication results. Among the required specifications, the surface figure error was defined by the transmitted wavefront deformation (TWD), ${\lambda}$/15 rms at 632.8 nm. This value was derived by estimating the predicted performances with respect to five independent items that could cause system performance degradation and then calculating the required wavefront error (WFE) to satisfy the performance goals. We measured the image resolution at each performance level to trace and verify the requirements. The article also describes a design optimization process that could minimize the weight and volume of the optical window attached to the payload securing the FOV of the camera. In addition, we accurately measured the deformation that occurred in the series of fabrication steps including processing, coating, assembly, bonding and bolting, and investigated the effects by comparing them to the results of a simulation performed in advance to derive the predicted performance.
Keywords
Optical window; Airborne camera; WFE budget; ZnS;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
Times Cited By Web Of Science : 0  (Related Records In Web of Science)
연도 인용수 순위
1 C. H. Hargraves Jr. and J. M. Martin, "IR sensor and window system issues," Proc. SPIE 1760, 329-337 (1992).
2 http://www.dom.com/assets/attachments/business/gt/infrared_ materials/cleartran/tds/cleartran.pdf
3 J. H. Lee, Y.-S. Jung, S.-Y. Ryoo, Y.-J. Kim, B.-U. Park, H.-J. Kim, S.-K. Youn, K.-W. Park, and H. B. Lee, "Imaging performance analysis of an EO/IR dual band airborne camera," J. Opt. Soc. Korea 15, 174-181 (2011).   과학기술학회마을   DOI   ScienceOn
4 J.-Y. Han, S. Marchuk, H. Kim, C.-W. Kim, and K.-W. Park, "Imaging EO/IR optical system for long range oblique photography" Proc. SPIE 8020, 802009 (2011).
5 C. J. Pruszyski, W. M. Ford, J. E. Rudisill, W. R. Stark Jr., and G. R. Anderson II, "Design, fabrication and testing of large airborne ZnSe windows," Proc. SPIE 2536, 366-375 (1995).
6 R. Shannon, The Art and Science of Optical Design (Cambridge University Press, Cambridge, UK, 1997), Chapter 4.
7 C. Olson, "Lens performance budgeting using the Hopkins ratio," (http://www.osa-opn.org/Content/ViewFile.aspx?id=10945).
8 Optical Research Associates, Code-V Reference Manuals ver, 9.3 (2003).
9 W. J. Smith, Modern Lens Design (McGraw-Hill, USA, 2005), Chapter 23.
10 D. Deshmaty-Manesh and G. Y. Haig, "Lens tolerancing by desk-top computer," Appl. Opt. 25, 1268-1270 (1986).   DOI
11 L. Gilles, L. Wang, and B. Ellerbroek, "Wavefront error budget development for the thirty meter telescope laser guide star adaptive optics system," Proc SPIE 7015, 701520 (2008).
12 A. G. Lareau, "Electro-optical imaging array with motion compensation," Proc. SPIE 2023, 65-79 (1993).
13 J. McCloy, "International development of chemical vapor deposited zinc sulfide" Proc. SPIE 6545, 654503 (2007).