Demonstration of spiral wave front sonar for active localization

被引:7
|
作者
Dzikowicz, Benjamin R. [1 ]
Tressler, James F. [1 ]
Brown, David A. [2 ]
机构
[1] Naval Res Lab, Phys Acoust Branch, Code 7136,4555 Overlook Ave Southwest, Washington, DC 20375 USA
[2] Univ Massachusetts, 151 Martine St, Fall River, MA 02723 USA
来源
关键词
OBSTACLE AVOIDANCE; NAVIGATION; BEACON; TRANSDUCER;
D O I
10.1121/1.5138132
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Spiral wave front sonar is a non-imaging, active sonar technique for remote target localization. It operates by transmitting a reference signal and a spiral signal whose phase varies by 2 pi over the transducer's azimuthal plane. Range is given by time-of-flight, and azimuthal aspect by computing the phase difference between reference and spiral echoes across a range of frequencies on a single receive channel. In addition, the spectral response of the target is available for classification algorithms. Two prototype spiral sonar systems (spiral transducer array, hydrophone receiver, amplifiers, and data acquisition) are tested in a series of laboratory experiments where fixed targets are tracked as the systems are rotated through 360 degrees. The first prototype system uses an array designed for navigation and communications applications. This system demonstrates aspect errors less than 20 degrees where shadowing of the receive hydrophone is not present. Experiments with a second system, utilizing transducers designed for higher frequency, active sonar applications, are performed in a bistatic scattering configuration. These experiments yielded errors less than 10 degrees after calibration.
引用
收藏
页码:4821 / 4830
页数:10
相关论文
共 50 条
  • [41] Location Adaptive Least Square Algorithm for Target Localization in Multi-Static Active Sonar
    Jang, Eun Jeong
    Han, Dong Seog
    IEICE TRANSACTIONS ON COMMUNICATIONS, 2014, E97B (01) : 204 - 209
  • [42] Clinical demonstration of functional wave front of the intramyocardial ischemic region in patients with coronary stenosis
    Ong, BH
    Koiwa, Y
    Sutoh, M
    Iwabuchi, K
    Kagaya, Y
    Watanabe, J
    Hasegawa, H
    Kanai, H
    Shirato, K
    2003 IEEE ULTRASONICS SYMPOSIUM PROCEEDINGS, VOLS 1 AND 2, 2003, : 1843 - 1846
  • [43] Unleashing the Power of Active Sonar
    Nandakumar, Rajalakshmi
    Gollakota, Shyamnath
    IEEE PERVASIVE COMPUTING, 2017, 16 (01) : 11 - 15
  • [44] Diversity in multistatic active sonar
    Mozzone, L
    Bongi, S
    Filocca, F
    OCEANS '99 MTS/IEEE : RIDING THE CREST INTO THE 21ST CENTURY, VOLS 1-3, 1999, : 1058 - 1063
  • [45] Active sonar and the marine environment
    Sevaldsen, EM
    Kvadsheim, PH
    HIGH FREQUENCY OCEAN ACOUSTICS, 2004, 728 : 272 - 279
  • [46] A PMHT algorithm for active sonar
    Hempel, CG
    Doran, SL
    ACQUISITION, TRACKING, AND POINTING XVIII, 2004, 5430 : 132 - 142
  • [47] LPI waveforms for active sonar?
    Willett, P
    Reinert, J
    Lynch, R
    2004 IEEE AEROSPACE CONFERENCE PROCEEDINGS, VOLS 1-6, 2004, : 2236 - 2248
  • [48] Application of DORT to active sonar
    Gaumond, CF
    Fromm, DM
    Lingevitch, J
    Menis, R
    Edelmann, G
    Calvo, D
    Kim, E
    OCEANS '04 MTS/IEEE TECHNO-OCEAN '04, VOLS 1- 2, CONFERENCE PROCEEDINGS, VOLS. 1-4, 2004, : 2230 - 2235
  • [49] PLACENTAL LOCALIZATION BY SONAR - SAFE PROCEDURE
    DONALD, I
    BRITISH JOURNAL OF RADIOLOGY, 1974, 47 (553): : 72 - 72
  • [50] WAVE-FRONT SENSING FOR SPACE ACTIVE OPTICS: RASCASSE PROJECT
    Liotard, Arnaud
    Bernot, Marc
    Carlavan, Mikael
    Falzon, Frederic
    Fusco, Thierry
    Michau, Vincent
    Montmerle-Bonnefois, Aurelie
    Mugnier, Laurent
    Engel, Celine
    Escolle, Clement
    Ferrari, Marc
    Hugot, Emmanuel
    Bret-Dibat, Thierry
    Laubier, David
    INTERNATIONAL CONFERENCE ON SPACE OPTICS-ICSO 2014, 2014, 10563