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      KCI등재 SCIE SCOPUS

      Infrared Dual-field-of-view Optical System Design with Electro-Optic/Laser Common-aperture Optics

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      https://www.riss.kr/link?id=A106640867

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      다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

      We report a midinfrared dual-field-of-view (FOV) optical system design for an airborne electro-optical targeting system. To achieve miniaturization and weight reduction of the system, it has a common aperture and fore-optics for three different spectral wavelength bands: an electro-optic (EO) band (0.6~0.9 µm), a midinfrared (IR) band (3.6~4.9 µm), and a designation laser wavelength (1.064 µm). It is free to steer the line of sight by rotating the pitch and roll axes. Our design co-aligns the roll axis, and the line of sight therefore has a fixed entrance pupil position for all optical paths, unlike previously reported dual-FOV designs, which dispenses with image coregistration that is otherwise required. The fore-optics is essentially an achromatized, collimated beam reducer for all bands. Following the fore-optics, the bands are split into the dual-FOV IR path and the EO/laser path by a beam splitter. The subsequent dual-FOV IR path design consists of a zoom lens group and a relay lens group. The IR path with the fore-optics provides two stepwise FOVs (1.50° × 1.20° to 5.40° × 4.32°), due to the insertion of two Si lenses into the zoom lens group.
      The IR optical system is designed in such a way that the location and f-number (f/5.3) of the cold stop internally provided by the IR detector are maintained when changing the zoom. The design also satisfies several important performance requirements, including an on-axis modulation transfer function (MTF) that exceeds 10% at the Nyquist frequency of the IR detector pitch, with distortion of less than 2%.
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      We report a midinfrared dual-field-of-view (FOV) optical system design for an airborne electro-optical targeting system. To achieve miniaturization and weight reduction of the system, it has a common aperture and fore-optics for three different spectr...

      We report a midinfrared dual-field-of-view (FOV) optical system design for an airborne electro-optical targeting system. To achieve miniaturization and weight reduction of the system, it has a common aperture and fore-optics for three different spectral wavelength bands: an electro-optic (EO) band (0.6~0.9 µm), a midinfrared (IR) band (3.6~4.9 µm), and a designation laser wavelength (1.064 µm). It is free to steer the line of sight by rotating the pitch and roll axes. Our design co-aligns the roll axis, and the line of sight therefore has a fixed entrance pupil position for all optical paths, unlike previously reported dual-FOV designs, which dispenses with image coregistration that is otherwise required. The fore-optics is essentially an achromatized, collimated beam reducer for all bands. Following the fore-optics, the bands are split into the dual-FOV IR path and the EO/laser path by a beam splitter. The subsequent dual-FOV IR path design consists of a zoom lens group and a relay lens group. The IR path with the fore-optics provides two stepwise FOVs (1.50° × 1.20° to 5.40° × 4.32°), due to the insertion of two Si lenses into the zoom lens group.
      The IR optical system is designed in such a way that the location and f-number (f/5.3) of the cold stop internally provided by the IR detector are maintained when changing the zoom. The design also satisfies several important performance requirements, including an on-axis modulation transfer function (MTF) that exceeds 10% at the Nyquist frequency of the IR detector pitch, with distortion of less than 2%.

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      참고문헌 (Reference)

      1 N. Gat, "Variable cold stop for matching IR cameras to multiple f-number optics" 6542 : 65420Y-, 2007

      2 K.-L. Huang, "Synthesis of first order designs of optically compensated catadioptric zoom optical systems" 3129 : 108-118, 1997

      3 S. Pal, "Structure design of mechanically compensated zoom lenses by evolutionary programming" 51 : 063001-, 2012

      4 Y. Yoon, "Robust scanning scheme over large area for airborne EO/IR camera" 8185 : 2011

      5 G. E. Wiese, "Refractive multispectral objective lens system and methods of selecting optical materials therefor, US Patent No. 6,950,243 B2"

      6 A. Miks, "Paraxial analysis of three-component zoom lens with fixed distance between object and image points and fixed position of image-space focal point" 22 : 15571-15576, 2014

      7 A. Mahmoud, "Optical design of high resolution and shared aperture electro-optical/infrared sensor for UAV remote sensing applications" 2921-2924, 2016

      8 M. Gerken, "Military reconnaissance platform for the spectral range from the visible to the MWIR" 10177 : 2017

      9 S. Seong, "Imaging and radiometric performance simulation for a new high performance dual band airborne reconnaissance camera" 7307 : 730705-, 2009

      10 이준호, "Imaging Performance Analysis of an EO/IR Dual Band Airborne Camera" 한국광학회 15 (15): 174-181, 2011

      1 N. Gat, "Variable cold stop for matching IR cameras to multiple f-number optics" 6542 : 65420Y-, 2007

      2 K.-L. Huang, "Synthesis of first order designs of optically compensated catadioptric zoom optical systems" 3129 : 108-118, 1997

      3 S. Pal, "Structure design of mechanically compensated zoom lenses by evolutionary programming" 51 : 063001-, 2012

      4 Y. Yoon, "Robust scanning scheme over large area for airborne EO/IR camera" 8185 : 2011

      5 G. E. Wiese, "Refractive multispectral objective lens system and methods of selecting optical materials therefor, US Patent No. 6,950,243 B2"

      6 A. Miks, "Paraxial analysis of three-component zoom lens with fixed distance between object and image points and fixed position of image-space focal point" 22 : 15571-15576, 2014

      7 A. Mahmoud, "Optical design of high resolution and shared aperture electro-optical/infrared sensor for UAV remote sensing applications" 2921-2924, 2016

      8 M. Gerken, "Military reconnaissance platform for the spectral range from the visible to the MWIR" 10177 : 2017

      9 S. Seong, "Imaging and radiometric performance simulation for a new high performance dual band airborne reconnaissance camera" 7307 : 730705-, 2009

      10 이준호, "Imaging Performance Analysis of an EO/IR Dual Band Airborne Camera" 한국광학회 15 (15): 174-181, 2011

      11 P. Klocek, "Handbook of Infrared Optical Materials" Marcel Dekker Inc. 1991

      12 I. Clark, "Exploitation of EO Technologies from the EMRS DTC" 6739 : 67390K-, 2007

      13 R. G. Sementelli, "EO/IR dual-band reconnaissance system DB-110" 2555 : 222-231, 1995

      14 Y. Nevo, "Dual-band optics" 52 : 053002-, 2013

      15 H. Vogel, "Dual-band infrared camera" 5964 : 2005

      16 W.-J. Chang, "Dual FOV infrared lens design with the laser common aperture optics" 9449 : 94492B-, 2015

      17 L. Zhang, "Design of visible/long-wave infrared dual-band imaging optical system" 10154 : 2016

      18 B. J. Housand, "Combined laser/FLIR optics system, US Patent No. 6,359,681 B1"

      19 D. Ren, "Apochromatic lenses for near-infrared astronomical instruments" 38 : 537-542, 1999

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2017-02-03 학술지명변경 한글명 : Journal of the Optical Society of Korea -> Current Optics and Photonics
      외국어명 : Journal of the Optical Society of Korea -> Current Optics and Photonics
      KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2009-01-02 학술지명변경 한글명 : Journal of Optical Society of Korea -> Journal of the Optical Society of Korea
      외국어명 : Journal of Optical Society of Korea -> Journal of the Optical Society of Korea
      KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2005-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2003-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.67 0.24 0.55
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.48 0.43 0.383 0.02
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