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Wave Measurements From Radar Tide Gauges

机译:雷达潮汐计的波测量

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Currently the NOAA Center for Operational Oceanographic Products and Services (CO-OPS) is transitioning the primary water level sensor at most NWLON stations from an acoustic ranging system to microwave radars. With no stilling well and higher resolution of the open sea surface, microwave radars have the potential to provide real-time wave measurements at NWLON sites. Radar sensors at tide stations may offer a low cost, convenient way to increase nearshore wave observational coverage throughout the U.S. to support navigational safety and ocean research applications. Here we present the results of a field study comparing wave height measurements from four radar water level sensors with two different signal types (pulse and continuous wave swept frequency modulation-CWFM). A nearby bottom acoustic wave and current sensor is used as a reference. An overview of field setup and sensors will be presented, along with an analysis of performance capabilities of each radar sensor. The study includes results from two successive field tests. In the first, we examine the performance from a pulse microwave radar (WaterLOG H-3611) and two CWFM (Miros SM-94 and Miros SM-140). While both types of radars tracked significant wave height well over the test period, the pulse radar had less success resolving high frequency wind wave energy and showed a high level of noise towards the low frequency end of the spectrum. The pulse WaterLOG radar limitations were most apparent during times of high winds and locally developing seas. The CWFM radars demonstrated greater capability to resolve those higher frequency energies while avoiding low frequency noise. The initial field test results motivated a second field test, focused on the comparison of wave height measurements from two pulse radar water level sensors, the WaterLOG H3611 and the Endress and Hauser Micropilot FMR240. Significant wave height measurements from both radar water level sensors compared well to reference AWAC measurements over the test period, but once again the WaterLOG radar did not adequately resolve wind wave energy in high frequency bands and showed noise towards the low frequency end of the spectrum. The E+H radar demonstrated greater capability to measure waves.
机译:目前,NOAA操作海洋产品和服务中心(CO-OPS)正在将大多数NWLON站点的主要水位传感器从声学测距系统过渡到微波雷达。微波雷达在无法保持静止状态和更高分辨率的情况下,有潜力在NWLON站点提供实时波测量。潮汐站的雷达传感器可能会提供一种低成本,便捷的方法来增加整个美国的近岸波观测范围,以支持航行安全和海洋研究应用。在这里,我们介绍了一项现场研究的结果,该结果将来自四个雷达水位传感器的波高测量结果与两种不同的信号类型(脉冲和连续波扫频调制-CWFM)进行了比较。附近的底部声波和电流传感器用作参考。将概述现场设置和传感器,并对每个雷达传感器的性能进行分析。该研究包括两个连续的现场测试的结果。首先,我们检查了脉冲微波雷达(WaterLOG H-3611)和两个CWFM(Miros SM-94和Miros SM-140)的性能。尽管这两种类型的雷达在测试期间均能很好地跟踪高波,但是脉冲雷达在解决高频风波能量方面的成功率较低,并且在频谱的低频端显示出高水平的噪声。在大风和局部海洋发展时期,WaterLOG脉冲雷达的局限性最为明显。 CWFM雷达表现出更大的能力来解决这些高频能量,同时避免了低频噪声。最初的现场测试结果推动了第二次现场测试,重点是比较两个脉冲雷达水位传感器WaterLOG H3611和Endress and Hauser Micropilot FMR240的波高测量结果。在测试期间,两个雷达水位传感器的重要波高测量值均与参考AWAC测量值进行了很好的比较,但WaterLOG雷达再次未能充分解析高频段的风波能量,并向频谱的低频端显示了噪声。 E + H雷达表现出更大的测量波的能力。

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