首页> 外文会议>OCEANS 2009, MTS/IEEE Biloxi - Marine Technology for Our Future: Global and Local Challenges >Real-time measurement of sea ice thickness, keel sizes and distributions and ice velocities using upward looking sonar instruments
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Real-time measurement of sea ice thickness, keel sizes and distributions and ice velocities using upward looking sonar instruments

机译:使用向上看的声纳仪器实时测量海冰厚度,龙骨尺寸和分布以及冰速

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There is an increasing requirement for real-time underwater measurements of sea ice keel properties, including thickness and sizes of individual keels and of ice velocities. Such information is needed in real-time to support tactical applications for safe routing of ships in heavy sea ice concentrations and, more recently, a need for tactical support of offshore oil and gas activities in ice infested waters of the Arctic Ocean and in marginal ice areas such as the Sea of Okhotsk, the Caspian Sea, Baffin Bay, the Labrador Sea and East Greenland waters. Reliable upward looking sonar (ULS) instruments, including the ASL Ice Profiler for ice keel measurements and the Acoustic Doppler Current Profiler for Ice Velocity measurements have been widely used in these areas for many years. These instruments, which record data internally, are operated from subsurface moorings that are deployed and recovered by ship during times of minimal sea ice coverage. Providing real-time measurements from the upward looking sonar measurements operating under heavy ice cover pose new technological challenges. The use of surface buoys to relay data from subsurface instruments to shore facilities or satellites is not possible due to the ice cover itself. A more feasible approach is to transmit the data from each instrument using underwater cables on the sea floor and which link the instruments on the subsurface moorings to a bottom mounted or floating structure. For a floating structure, the use of high performance acoustic modems may be required. Previous experience with real-time ULS ice measurement systems is presented based on operational projects undertaken from 2002 to the present. The projects are based on experience in the St. Lawrence Seaway (since 2002), and more recent work at the Confederation Bridge in Canada (2005-2008), and the Caspian Sea (2008). The approaches taken to addressing the real-time measurement of the subsea ice keels are summarized for each application. More challe-nging requirements for real-time ULS ice measurement systems are being addressed in much deeper and more remote areas of the Arctic Ocean. In these areas of more prolonged and severe ice conditions, the deployment of the system is limited to late summer periods when ice coverage is reduced. The requirements for timely and accurate ice information demand high reliability in support of ship navigation and offshore oil and gas drilling applications. The real-time ULS ice measurement system must be capable of operating for two to three years without servicing. Multiple ULS measurement arrays will be needed over operational areas spanning distances of many kilometers. For these Arctic Ocean applications, cabled ocean observatory technology and advanced underwater acoustic modems become key enabling technologies.
机译:海冰龙骨属性的实时水下测量越来越大,包括单个龙骨和冰速度的厚度和尺寸。这些信息是实时的,以支持战术应用,以便安全路由船舶冰浓度的安全路由,更近最近,需要在北冰洋的冰侵染水域和边缘冰的冰侵染水中的海上石油和天然气活动的战术支持如Okhotsk,Caspian海,葡萄干湾,拉布拉多海和东格陵兰水域等地区。可靠向上看声纳(ULS)仪器,包括用于冰龙芯测量的ASL冰探查器,并且对于冰速度测量的声学多普勒电流分析器已经广泛应用于这些区域多年。这些仪器在内部记录数据,由在最小海冰覆盖率的船舶部署和恢复的地下停泊处运营。提供从重型冰盖上运行的向上看声卡测量的实时测量,这是新的技术挑战。由于冰盖本身,不可能使用表面浮标从地下仪器到岸设施或卫星的数据。一种更可行的方法是在海底上使用水下电缆从每个仪器中传输数据,并将地下停泊器上的仪器连接到底部安装或浮动结构。对于浮动结构,可能需要使用高性能声学调制解调器。以前的实时ULS冰测量系统的经验是根据从2002年到现在的运营项目提供的。该项目基于St. Lawrence Seaway(自2002年以来)的经验,以及在加拿大联邦桥(2005-2008)和Caspian Sea(2008年)的更新工作。为每个应用程序总结了用于解决海底拍摄的实时测量的方法。更多challe- 在北冰洋的更深层次和更多的偏远地区,正在解决实时ULS冰测量系统的Nging要求。在这些领域更长时间和严重的冰条件,系统的部署限于冰盖减少时的夏季期间。对船舶导航和海上石油和燃气钻井应用的支持及时和准确的冰信息需求的要求。实时ULS冰测量系统必须能够在不维修的情况下运行两到三年。在跨越数公里的距离的操作区域需要多个ULS测量阵列。对于这些北极海洋应用,有线海洋观测站技术和先进的水下声学调制解调器成为关键的启用技术。

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