River & Estuary Observation Network: Refinement of Stage Height Sensor Subsystem for Low Cost and High Reliability

W. D. Kirkey, C. B. Fuller, P. O’Brien, P. J. Kirkey, A. Mahmoud, A. N. Ernest, J. Guerrero
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Abstract

. A system comprised of software and on-site measurements is presented for accurately obtaining water stage data from vented or non-vented submersible pressure sensors installed at autonomous stream gauging stations. The system accounts for pressure sensor offset errors, water density, and local gravitational acceleration to produce a stage height reading which is accurate to either ±0.01 ft (±3 mm) or to the accuracy limit of the sensor, whichever is greater. A 2 nd order polynomial expression for determination of water density from temperature and salinity is developed and found to be sufficiently accurate for this purpose. Simulated stage measurements performed in the laboratory with a commercially produced sensor showed errors of up to ±0.04 ft in reported stage when the sensor’s default conversion from pressure to depth was used; the maximum error limit was reduced to ±0.02 ft when the sensor output was instead processed using the new system. A custom-designed, low-cost, versatile submersible pressure sensor is introduced and tested under the same conditions and found to exhibit a maximum error of ±0.04 ft without any sensor calibration. These new developments, integrated into previously developed inexpensive base stations, enable accurate monitoring of stage height at remote locations with low installation and operating costs.
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河口观测网:面向低成本、高可靠性的阶段高度传感器子系统改进
。提出了一个由软件和现场测量组成的系统,用于从安装在自动流量测量站的通风或非通风潜水压力传感器中准确获取水位数据。该系统考虑了压力传感器偏移误差、水密度和局部重力加速度,从而产生一个精确到±0.01英尺(±3毫米)或传感器精度极限的级高读数,以较大者为准。提出了用温度和盐度测定水密度的二阶多项式表达式,并发现该表达式足够准确。在实验室中使用商业生产的传感器进行的模拟级测量显示,当使用传感器默认的从压力到深度的转换时,报告级误差高达±0.04英尺;当使用新系统处理传感器输出时,最大误差限制降低到±0.02英尺。介绍了一种定制设计的低成本多功能潜水压力传感器,并在相同条件下进行了测试,发现在没有任何传感器校准的情况下,其最大误差为±0.04英尺。这些新技术与以前开发的廉价基站相结合,能够以较低的安装和运营成本在偏远地区精确监测舞台高度。
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