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海洋之眼:利用工业遥控潜水器(ROV)揭开海洋的奥秘。

Eyes in the sea: Unlocking the mysteries of the ocean using industrial, remotely operated vehicles (ROVs).

机构信息

School of Life and Environmental Sciences, Centre for Integrative Ecology, Deakin University, Victoria 3216, Australia.

Oceans Institute, The University of Western Australia, 35 Stirling Hwy Crawley, Western Australia 6009, Australia; School of Biological Sciences, The University of Western Australia, 35 Stirling Highway, Crawley, Western Australia 6009, Australia.

出版信息

Sci Total Environ. 2018 Sep 1;634:1077-1091. doi: 10.1016/j.scitotenv.2018.04.049. Epub 2018 Apr 11.

DOI:10.1016/j.scitotenv.2018.04.049
PMID:29660864
Abstract

For thousands of years humankind has sought to explore our oceans. Evidence of this early intrigue dates back to 130,000BCE, but the advent of remotely operated vehicles (ROVs) in the 1950s introduced technology that has had significant impact on ocean exploration. Today, ROVs play a critical role in both military (e.g. retrieving torpedoes and mines) and salvage operations (e.g. locating historic shipwrecks such as the RMS Titanic), and are crucial for oil and gas (O&G) exploration and operations. Industrial ROVs collect millions of observations of our oceans each year, fueling scientific discoveries. Herein, we assembled a group of international ROV experts from both academia and industry to reflect on these discoveries and, more importantly, to identify key questions relating to our oceans that can be supported using industry ROVs. From a long list, we narrowed down to the 10 most important questions in ocean science that we feel can be supported (whole or in part) by increasing access to industry ROVs, and collaborations with the companies that use them. The questions covered opportunity (e.g. what is the resource value of the oceans?) to the impacts of global change (e.g. which marine ecosystems are most sensitive to anthropogenic impact?). Looking ahead, we provide recommendations for how data collected by ROVs can be maximised by higher levels of collaboration between academia and industry, resulting in win-win outcomes. What is clear from this work is that the potential of industrial ROV technology in unravelling the mysteries of our oceans is only just beginning to be realised. This is particularly important as the oceans are subject to increasing impacts from global change and industrial exploitation. The coming decades will represent an important time for scientists to partner with industry that use ROVs in order to make the most of these 'eyes in the sea'.

摘要

几千年来,人类一直试图探索海洋。早在公元前 130000 年,就有证据表明人类对海洋的早期探索充满了好奇。然而,上世纪 50 年代远程操作机器人(ROV)的出现带来了具有重大影响的技术革新,改变了海洋探索的面貌。如今,ROV 在军事领域(如回收鱼雷和水雷)和打捞作业(如定位 RMS 泰坦尼克号等历史沉船)中发挥着至关重要的作用,同时也是石油和天然气(O&G)勘探和运营的关键。工业 ROV 每年可采集数百万次海洋观测数据,为科学发现提供动力。在此,我们汇集了来自学术界和工业界的一组国际 ROV 专家,共同探讨这些发现,更重要的是,确定了一些与海洋相关的关键问题,这些问题可以通过使用工业 ROV 来加以解决。从一长串问题中,我们筛选出了 10 个最重要的海洋科学问题,这些问题我们认为可以通过增加对工业 ROV 的使用,以及与使用 ROV 的公司开展合作,来加以解决。这些问题涵盖了海洋资源的价值(例如海洋资源的价值是多少?)到全球变化的影响(例如,哪些海洋生态系统对人为影响最敏感?)。展望未来,我们提出了建议,即如何通过学术界和工业界之间更高水平的合作,最大限度地利用 ROV 采集的数据,实现双赢。从这项工作中可以清楚地看出,工业 ROV 技术在揭开海洋奥秘方面的潜力才刚刚开始显现。这一点尤为重要,因为海洋正受到全球变化和工业开发的日益影响。未来几十年将是科学家与使用 ROV 的工业界合作的重要时期,以便充分利用这些“海洋之眼”。

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