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Microwave-acoustic water level sensor comparisons: Sensor response to change in oceanographie and meteorological parameters

机译:微波 - 声学水位传感器比较:传感器响应欧海图和气象参数的变化

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The Center for Operational Oceanographic Products and Services (CO-OPS) of the National Ocean Service, National Oceanic and Atmospheric Administration, U.S. Department of Commerce, conducts thorough evaluations of new environmental measurement sensors through its Ocean Systems Test & Evaluation Program. New water level sensors that employ microwave (MW) radar technology are now being evaluated and compared with other devices including the Aquatrak acoustic (AC) sensor that presently serves as the operational standard for the National Water Level Observation Network (NWLON). While no part of a MW radar gage has contact with the water and radar transmission in the GHz range is insensitive to temperature and humidity change, the beam measuring distance to the water surface is allowed to transmit in open air with no confining hardware such as a wave guide or stilling well. Further study is therefore needed to fully understand the effect of a dynamic air-water interface on MW radar measurements. Four MW radar sensors (Sutron RLR-0002, Miros SM-094, Design Analysis H3611 and Ohmart/Vega Vegapuls 62) were mounted on the U.S. Army Corps of Engineers Field Research Facility (FRF) pier at Duck, NC where oceanographic and meteorological data were used to evaluate MW radar sensor performance under open ocean conditions. Water level 6-minute series from each MW sensor were compared with 6-minute series recorded by the NWLON AC sensor at Duck during September-October, 2008. MW-AC zero-mean difference series contained power (variance) at certain frequencies and cross-power (covariance) at these same frequencies with parameters such as wave height, wave steepness, longshore current speed, and air/water temperature ratio. MW-AC differences for all MW sensors showed noticeable change when Hmo wave heights exceeded 2 meters and marked change when Hmo wave heights exceeded 3 meters during storm events. Wave steepness increased abruptly at the onset of these events followed by a pr- olonged roll-off toward lower values. MW-AC differences for the Sutron and Mros sensors responded first negatively then positively to steepness episodes while the Design Analysis and Vegapuls sensors responded positively but with a noticeable lag during larger events. Coherence analyses for MW-AC difference versus wave height and wave steepness underscore similarities between the Sutron and Miros sensors in one group and between the Design Analysis and Vegapuls sensors in another group, each characterized by a set of distinctive frequencies. The same analyses involving longshore current speed and air/water temperature ratio hint at weaker associations at lunar diurnal and semidiurnal periods for the former and solar diurnal and semidiurnal periods for the latter.
机译:美国商务部国家海洋服务,国家海洋和大气管理部门的运营海洋和服务(共同运营)的中心通过其海洋系统测试和评估计划对新的环境测量传感器进行全面评估。现在正在评估采用微波(MW)雷达技术的新水位传感器,并与包括Aquatrak声学(AC)传感器的其他设备相比,目前用于国家水位观察网络(NWLON)的操作标准。虽然MW雷达量具的任何一部分与水和GHz范围内的雷达透射的接触不敏感到温度和湿度变化不敏感,但允许与水面的光束测量距离在露天中传输,没有限制硬件,如a波导或静止。因此需要进一步研究来充分了解动态空气界面对MW雷达测量的影响。四个MW雷达传感器(Sutron RLR-0002,Mirs SM-094,Design Analysion H3611和Ohmart / Vega Vegapuls 62)安装在美国陆军的工程兵团领域研究设施(FRF)码头,NC在海洋和气象数据用于评估开放海洋状况下的MW雷达传感器性能。将来自每种MW传感器的水位6分钟系列与2008年9月至10月的NWlon AC传感器记录的6分钟系列。MW-AC零平均差异系列包含某些频率和交叉的电源(方差) - 使用波形高度,波陡,龙头电流速度和空气/水温比等参数在这些相同频率下的功率(协方差)。所有MW传感器的MW-AC差异显示出明显的变化时,当HMO波浪高度超过2米并在风暴事件期间HMO波高度超过3米时明显变化。波陡度在这些事件的开始时突然增加,然后朝向较低值的PROOLOWED滚动。 MW-AC对糖龙和MROS传感器的差异首先对陡峭的发作产生响应,而设计分析和VEMAPULS传感器对较大但在较大事件期间具有明显的滞后。 MW-AC差异的相干性分析与波浪高度和波陡度在一个组中的索丁龙和MIROS传感器之间的相似性,并且在另一组的设计分析和Vegapuls传感器之间,每个都是一组独特的频率。相同的分析涉及龙底电流和空气/水温比在较弱的较弱协会下的较弱协会和后者的太阳昼夜和太阳昼夜和半衰期的半峰期。

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