Further designs of opto-mechanical scanners for use in passive mm-wave imaging

被引:2
作者
Lettington, AH [1 ]
Dunn, D [1 ]
Attia, M [1 ]
Blankson, IM [1 ]
机构
[1] Univ Reading, Reading RG6 6AF, Berks, England
来源
PASSIVE MILLIMETER-WAVE IMAGING TECHNOLOGY VI AND RADAR SENSOR TECHNOLOGY VII | 2003年 / 5077卷
关键词
passive millimeter wave imaging; PMMW; scanning;
D O I
10.1117/12.497570
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Mm-wave imaging has high potential for all weather performance but requires large apertures to achieve acceptable spatial resolution. These large apertures need to collect radiation from a range of angles in the field of view and form a two dimensional image. The ideal method for achieving such an image would be to have an aperture completely filled with receivers and to electronically beam-form. Unfortunately this technology is not sufficiently developed at present to make this a practical proposition. Receivers are far too expensive to form a completely filled aperture and the technology of beam forming is still under development. The alternative and most cost effective solution at present is to have a comparatively small number of receivers and scan them across the scene using an opto-mechnaical scanner. In scanned thermal imaging systems it is usual to employ high speed rotating polygons to perform the line scan and a flapping mirror for the framing motion. The pupil size is typically 10mm in thermal imaging and the polygons are 40mm in diameter. If such an arrangement were used at mm-wavelengths where the pupil size is of the order of 1m, the rotating polygon would be 4m in diameter. The paper describes new compact opto-mechanical systems based on rotary discs, prisms and using frequency and polarization selective surfaces.
引用
收藏
页码:22 / 32
页数:11
相关论文
共 7 条
[1]   Antenna-coupled microbolometer millimeter wave focal plane array technology [J].
Eden, DD .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :370-381
[2]   Concealed weapons detection using an uncooled millimeter-wave microbolometer system [J].
Grossman, EN ;
Bhupathiraju, AK ;
Miller, AJ ;
Reintsema, CD .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :364-369
[3]   Close range millimetre wave imaging [J].
Macfarlanea, DG ;
Lesurf, JCG ;
Robertson, DA .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :350-358
[4]   Real-time wide field of view passive millimeter-wave imaging [J].
Martin, C ;
Clark, S ;
Lovberg, J ;
Galliano, J .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :341-349
[5]   Commercialization aspects of a MMW camera [J].
Pergande, A ;
Mirth, L ;
Anderson, L ;
Benson, P .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :359-363
[6]   Radio thermal images of natural objects in 8-mm and 3-mm ranges [J].
Pirogov, YA ;
Gladun, VV ;
Chzhen, SP ;
Tischenko, DA ;
Timanovskiy, AL .
INFRARED AND PASSIVE MILLIMETER-WAVE IMAGING SYSTEMS: DESIGN, ANALYSIS, MODELING, AND TESTING, 2002, 4719 :318-326
[7]  
PRICE S, 1998, INT C INFR MILL WAV