一种使用前置扫描声纳技术与SHADOWS相结合的新型GapFiller系统

F. Mosca
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引用次数: 5

摘要

SHADOWS是一种高性能侧扫声纳成像系统。为了填补最低点的空白,IXSEA开发了一个空白填充器。GFS是一种使用前扫描声纳技术的间隙填充器。它的目的是填充45米宽的SHADOWS未融合区域,以确保两个系统之间的良好重叠,并允许两个不同图像的注册。这要归功于惯性导航系统PHINS。该系统区别于其他使用多波束声纳的GapFiller系统,确实获得的图像种类明显不同。这些图像不是观测深度和水深数据,而是声纳类型的图像。阵列的设计由IXSEA团队整体构思,使用d33技术和集成反射器架构。最后,在不进行除光束成形外的任何处理的情况下,整个间隙的理论分辨率在40 cm以下,总物理阻力在80 cm以下。如果系统的几何结构不允许传统的相干合成,则通过使用精确和高性能的惯性导航系统(PHINS)提供适当的处理,可以显着提高GFS的分辨率。实际上,这种原始处理形成了一个二维相控阵天线,而不是线性合成阵列。理论分辨率的解析确定取决于指向的方向已经执行。结果非常令人满意,并预示着分辨率的显著提高。事实上,现在的分辨率取决于指向方向,在10 -ping合成下,5米的分辨率约为25厘米,10米的分辨率低于15厘米,以这种方式实现阴影的名义分辨率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new GapFiller system using front-scan sonar technology coupled with SHADOWS
SHADOWS is a high-performance side-scan sonar imaging system. To fill the gap at nadir, a GapFiller is developed by IXSEA. The GFS is a GapFiller using the front-scan sonar technology. It aims to fill the unsonified area of SHADOWS, which is forty-five meters wide, to ensure a good overlap between the two systems and allow the registration of the two different images. This is made possible thanks to the inertial navigation system PHINS. This system is distinguished from other GapFiller systems using multibeam sonar, indeed the kind of images obtained is noticeably different. Instead of observing the depth and bathymetric data, the images are sonar type ones. The design of the arrays has been integrally conceived by the IXSEA team, using d33-technology and an integrated reflector architecture. Finally, without any treatment other than the beam forming, the theoretical resolution obtained on the entire gap is under 40 cm, with a total physical encumbrance under 80 cm. If a traditional coherent synthesis is not allowed by the geometry of the system, an appropriate treatment provided by using an accurate and highly performant inertial navigation system (PHINS) improve significantly the resolution of the GFS. In fact instead of a linear synthesised array, this original treatment formed a bidimensional phased-array antenna. An analytic determination of the theoretical resolution depending on the pointing direction has been performed. The results are very satisfactory and predict a significant improvement of the resolution. In fact the resolution now depends on the pointing direction and with a ten-ping synthesis the resolution at 5 meters is around 25 cm and under 15 cm at 10 meters achieving this way the nominal resolution of SHADOWS.
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