Low Frequency Range Tracking Transducer

被引:5
|
作者
Robinson, H. [1 ]
Janus, R. [1 ]
O'Neal, J. [1 ]
Mathews, C. [1 ]
Chace, J. [1 ]
Moore, J. [1 ]
机构
[1] Naval Undersea Warfare Ctr Div Newport, Newport, RI 02841 USA
关键词
single crystal; transducer; transmitter; projector; tracking; bandwidth;
D O I
10.1109/OCEANS.2016.7761211
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
NUWC Division Newport has been developing a Low Frequency Range Tracking Transducer (LF RTT) utilizing 2nd generation single crystals operating in the 32-mode to provide tracking pinger transmit capabilities to small-diameter vehicles for which current PZT-based pinger transducers are too large. These transducers reduce the volume and weight by 90% compared to legacy devices while maintaining the capability to transmit in the K-, B-and D-bands at the required source levels, beam patterns and bandwidths. A total of thirteen LF RTT prototypes have been built and characterized by NUWDIVNPT. Six of these transducers were characterized at NUWC's Dodge Pond facility in March, August and September of 2014. In this paper, it will be shown that the electrical and acoustic properties of these seven prototypes are virtually identical. These LF RTT prototypes demonstrated the capability to meet beam pattern as well as source level requirements in the B-and D-bands within the power and voltage ranges available from existing MK84 pinger electronics. The transducers displayed receive sensitivities 5 to 25 dB greater than required in all bands. The transducers also demonstrated the capability to transmit operationally required pulse lengths and duty cycles for 30 minutes with minimal heating both in air and in water. It was also determined that the projectors were capable of meeting or exceeded threshold acoustic power requirements.
引用
收藏
页数:5
相关论文
共 50 条
  • [21] TRANSDUCER LINE-ARRAYS IN HIGH-FREQUENCY RANGE
    PAPPALARDO, M
    ULTRASONICS, 1973, 11 (02) : 77 - 82
  • [22] Low frequency properties of a double layer electret transducer
    Kacprzyk, R
    Dobrucki, AB
    Kin, MJ
    ACUSTICA, 1996, 82 : S176 - S176
  • [23] Low-frequency ultrasonic piezoceramic sandwich transducer
    Wevers, M
    Lafaut, JP
    Baert, L
    Chilibon, I
    SENSORS AND ACTUATORS A-PHYSICAL, 2005, 122 (02) : 284 - 289
  • [24] A Low Frequency Current Transducer Using Amorphous Materials
    Fosalau, Cristian
    Silion, Stefan
    Zet, Cristian
    2014 INTERNATIONAL CONFERENCE AND EXPOSITION ON ELECTRICAL AND POWER ENGINEERING (EPE), 2014, : 801 - 804
  • [25] A Low Frequency Broadband Flextensional Ultrasonic Transducer Array
    Savoia, Alessandro Stuart
    Mauti, Barbara
    Caliano, Giosue
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2016, 63 (01) : 128 - 138
  • [26] A PVDF transducer for low-frequency acceleration measurements
    Daku, BLF
    Mohamed, EMA
    Prugger, AF
    ISA TRANSACTIONS, 2004, 43 (03) : 319 - 328
  • [27] Design and fabrication of a low frequency giant magnetostrictive transducer
    Dhilsha, KR
    Markandeyulu, G
    Rao, BVPS
    Rao, KVSR
    JOURNAL OF ALLOYS AND COMPOUNDS, 1997, 258 (1-2) : 53 - 55
  • [28] A LOW-FREQUENCY DIRECTIONAL TRANSDUCER WITH ASYMMETRIC SHELL
    Zhang, Xiu-zhen
    Chai, Yong
    Mo, Xi-ping
    2022 16TH SYMPOSIUM ON PIEZOELECTRICITY, ACOUSTIC WAVES, AND DEVICE APPLICATIONS, SPAWDA, 2022, : 691 - 695
  • [29] ULTRA-LOW FREQUENCY PRESSURE TRANSDUCER CALIBRATION
    SEMENOV, AG
    JOURNAL DE PHYSIQUE IV, 1994, 4 (C5): : 251 - 254
  • [30] Frequency response investigation of magnetoresistive low frequency active power measuring transducer
    Vountesmeri V.S.
    Vytyaganets A.I.
    Radioelectronics and Communications Systems, 2007, 50 (12) : 680 - 682