用于深水高分辨率底栖生物成像的船舶拖曳平台

M. Sherlock, A. Marouchos, Alan Williams, A. Tyndall
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引用次数: 9

摘要

拖曳式水下成像系统越来越多地用于深海的各种科学应用。这些系统增加了通过疏浚和拖网等物理采样收集的数据,但也提供了一种重要的采样替代方法,在不需要或不适合提取方法的情况下-例如在敏感的栖息地或在海洋保护区进行重复采样。基于图像的采样的具体应用是以公里为比例尺的地面真实栖息地地图和定量绘制底栖生物多样性地图,即沿着具有强大统计特性的样条(以恒定速度和高度离开底部的直线)。2015年,随着澳大利亚新定制的研究船“RV调查员”的到来,科学家们研究深海的机会增加了。深水成像被确定为新船的关键能力,并结合英联邦科学与工业研究组织(CSIRO)的工程师和科学家过去的经验,设计和开发了一个适合各种用户群体和应用的系统,特别是提供一个能够重复,快速部署到海底深度4000米的系统。由于额定深度部件设计的工程考虑以及平台与船舶的距离(通常为几公里),船舶拖曳装置的深海研究尤其具有挑战性。该系统由一条机电光缆牵引。这使得成像系统和传感器套件可以在部署的所有阶段从船上的科学操作室实时监控和控制。该平台配备了多个成像系统,并可在未来进行扩展。一个高分辨率的数码单反相机配上一个高清摄像机提供了海底科学数据。这两个摄像头聚焦在底部,提供一个倾斜的视角,由四个LED灯提供照明。单反相机和照明系统的设置都可以实时调整。一对已知分离的激光器用于缩放视频和数字静止系统的视场。为了帮助导航和避障,使用了前视摄像头。除了成像外,该系统还配备了CTD和高度计,并具有容纳额外传感器的能力。USBL信标允许精确瞄准特定的海底特征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A vessel towed platform for deepwater high resolution benthic imaging
Towed underwater imaging systems are increasingly used for a wide variety of science applications in the deep ocean. These systems augment data collected by physical sampling such as dredging and trawling, but also provide an important sampling alternative where extractive methods are unnecessary or unsuitable - such as in sensitive habitats or for repeated sampling in marine reserves. Specific applications of image-based sampling are to ground-truth habitat maps at scales of kilometers and quantitatively map benthic biodiversity, i.e. along transects with robust statistical properties (straight with constant speed and height off bottom). The opportunities for scientists to study the deep ocean was boosted in 2015 with the arrival of Australia's new custom built research vessel, RV Investigator. Deep water imaging was identified as a critical capability for the new vessel, and the past experience of engineers and scientists at the Commonwealth Scientific and Industrial Research Organization (CSIRO) have been combined to design and develop a system suited to a variety of user groups and applications - specifically to provide a system capable of repeated, rapid deployments to the seabed to depths of 4000 m. The study of the deep ocean is particularly challenging with vessel-towed gear because of the engineering considerations in design of depth rated components and remoteness of the platform from the vessel (typically kilometers). The system is towed by an electro-mechanical fiber optic cable. This allows the imaging system and sensor suite to be monitored and controlled in real time from the ship's science operations room during all phases of a deployment. The platform is equipped with several imaging systems, with options for future expansion. A high resolution DSLR camera paired with a high definition video camera provide the benthic science data. These two cameras are focused on the bottom to give an oblique perspective, with illumination provided by four LED lights. The settings of both the DSLR camera and lighting system can be adjusted in real time. A pair of lasers with known separation is used to scale the field of view of both the video and the digital stills system. To aid in navigation and obstacle avoidance, a forward looking camera is used. In addition to imaging, the system is equipped with a CTD and altimeter, and has the capability to accommodate additional sensors. A USBL beacon permits accurate targeting of particular seabed features.
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