首页> 外文会议>Conference on Global Oceans : Singapore – U.S. Gulf Coast >Optimal antenna-height design for improved capacity on over-water radio links affected by tides
【24h】

Optimal antenna-height design for improved capacity on over-water radio links affected by tides

机译:最佳天线高度设计,用于改善受潮汐影响的过水无线电链路

获取原文

摘要

Modern observation systems can be composed by heterogeneous entities (e.g., buoys, USVs, UAVs, on-shore sensors, etc.) that rely on dependable communications for coordination and data collection, often provided by over-water radio-frequency (RF) links. In tide-affected water bodies, RF links at a fixed height from the shore can experience the so-called tidal fading, a cyclic time-varying tide-induced interference. To mitigate it, the classical space-diversity reception technique (i.e., the use of two or more receiver antennas positioned at different heights) is often applied, commonly combined with the consideration of having one of the antennas at the largest possible height. Yet, this approach does not always ensure the best performance. In this work, we focus on static over-water links of short-to-medium-range distances that use antennas installed at a few meters above surface. We leverage the geometrical basis of the two-ray propagation model to investigate the optimal single-antenna height design that minimizes overall average path losses over a given tidal range. We then extend this analysis to incorporate a second receiver antenna and identify its optimal antenna height. Analytical results show that our method considerably outperforms the more classical approach, thus enabling superior (average) link capacities.
机译:现代观测系统可以通过依赖于协调和数据收集可靠通信异构实体(例如,浮标,USVs,无人机,在岸传感器等)组成,经常通过在水的射频(RF)链路提供。在潮影响的水体,在离岸边固定高度RF链路可以体验所谓的潮汐衰减,循环时间变潮引起的干扰。为了减轻它,经典的空间分集接收技术(即,使用定位在不同高度处的两个或更多接收天线的)经常被应用,通常与考虑具有最大可能的高度的天线中的一个的组合。然而,这种方法并不总是确保最佳的性能。在这项工作中,我们专注于短至中程距离,在上述表面几米安装使用天线的静态水上链接。我们利用两个射线传播模型的几何基础来研究最佳的单天线高度的设计,在一给定潮差最小化整体的平均路径损失。然后,我们扩展这个分析掺入第二接收机天线和确定其最佳的天线高度。分析结果表明,该方法明显优于比较经典的方法,从而实现卓越的(平均)链路容量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号