论文标题
在水生环境中风诱导的不规则形状漂移的多螺旋体辅助测量值
Multirotor-assisted measurements of wind-induced drift of irregularly shaped objects in aquatic environments
论文作者
论文摘要
随着社会各个部门的海事活动的增加,海洋危险溢出和搜查事件变得更加普遍。但是,由于缺乏信息来准确预测小物体的位置,因此紧急响应时间仍然是一个因素。现有的漂流表征技术仅限于其漂移属性不受车载风和表面电流传感器影响的对象。为了应对这一挑战,我们研究了多轨道无人机(UAS)和嵌入式导航技术的应用,以进行按需风速和表面流量测量,以表征小物体的漂移特性。使用现成的四型四型四型四型速度在漂流物体附近的表面水平以上10 m处测量风速度。我们还利用了UAS级态度和标题参考系统和GPS天线来构建防水跟踪模块,以记录在水中漂流的物体的位置和方向以及转化和旋转速度。在湖泊和海洋环境中进行的现场实验中,部署了四型和防水跟踪模块,以表征模拟水中某人的Manikins的余地参数。在使用常规风和表面电流观察结果得出的先前估计中,余地参数被发现是一个数量级。我们还确定,多电动UAS和防水跟踪模块可以提供准确,高分辨率的环境信息,这对于了解方向的变化如何影响流动在水中的小物体的下风流离失所和臂法特征至关重要。这些发现支持了多局部UAS技术的进一步开发和应用,以进行余地表征,并了解对象的下风相对方向对其漂移特性的影响。
Ocean hazardous spills and search and rescue incidents are more prevalent as maritime activities increase across all sectors of society. However, emergency response time remains a factor due to a lack of information to accurately forecast the location of small objects. Existing drifting characterization techniques are limited to objects whose drifting properties are not affected by on-board wind and surface current sensors. To address this challenge, we study the application of multirotor unmanned aerial systems (UAS), and embedded navigation technology, for on-demand wind velocity and surface flow measurements to characterize drifting properties of small objects. An off-the-shelf quadrotor was used to measure wind velocity at 10 m above surface level near a drifting object. We also leveraged UAS-grade attitude and heading reference systems and GPS antennas to build water-proof tracking modules that record the position and orientation, as well of translational and rotational velocities, of objects drifting in water. The quadrotor and water-proof tracking modules were deployed during field experiments conducted in lake and ocean environments to characterize the leeway parameters of manikins simulating a person in water. Leeway parameters were found to be an order of magnitude within previous estimates derived using conventional wind and surface current observations. We also determined that multirotor UAS and water-proof tracking modules can provide accurate and high-resolution ambient information that is critical to understand how changes in orientation affect the downwind displacement and jibing characteristics of small objects floating in water. These findings support further development and application of multirotor UAS technology for leeway characterization and understanding the effect of an object's downwind-relative orientation on its drifting characteristics.