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An automated salt-tracing gauge for flow-velocity measurement

机译:用于流速测量的自动盐追踪仪

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This article introduces the SVG (salt-velocity gauge), a novel automated technique for measuring flow velocity by means of salt tracing. SVG allows a high measuring rate (up to one every 2 seconds), short control section length (down to 10 cm), high accuracy (+/-1.5 cm s(-1)), and unbiased calculation of the mean velocity in experimental conditions with turbulent, supercritical How.A few cubic centimetres or saturated salt solution (NaCl) are injected into the flow at regular time intervals using a programmable solenoid valve. The tracer successively passes two conductivity probes placed a short distance downstream. The transformation of the signal between the two probes is modelled as a one-dimensional diffusion wave equation. Model calibration gives an estimation of the mean velocity and the diffusion for each salt plume.Two implementations of the SVG technique are described. The first was an outdoors simulated rainfall experiment in Senegal (conductivity probes at 40 cm apart, 8 Hz measurement rate, salt injections at 10 second intervals). Mean velocity was estimated to range between 0.1 and 0.3 m s(-1). The second was a laboratory-based flume experiment (conductivity probes at 10 cm apart, 32 Hz, salt injections at 2 second intervals). Another SVG with probes at 34 cm apart was used for comparison. An acoustic Doppler velocimeter (ADV) was also used to give an independent assessment of velocity. Using the 10 cm salt gauge, estimated mean velocity ranged from 0.6 to 0.9 m s(-1) with a standard deviation of 1.5 cm s(-1). Comparisons between ADV, 10 cm SVG and 34 cm SVG were consistent and demonstrated that the salt-tracing results were unbiased and independent of distance between probes. Most peaks were modelled with (2) > 90 per cent.The SVG technology offers an alternative to the dye-tracing technique, which has been severely criticized in the literature because of the wide interval of recommended values for the correction factor alpha to be applied to the timings. This article demonstrates that a fixed value of alpha is inappropriate, since the correction factor varies with velocity, diffusion and the length of the control section. Copyright (C) 2005 John Wiley & Sons, Ltd.
机译:本文介绍了SVG(盐速度计),这是一种通过盐追踪测量流速的新颖自动化技术。 SVG允许高测量速率(每2秒最多1个),较短的控制部分长度(低至10 cm),高精度(+/- 1.5 cm s(-1))以及实验中平均速度的无偏计算在湍流,超临界流体的条件下,使用可编程电磁阀以规则的时间间隔将几立方厘米或饱和盐溶液(NaCl)注入流中。示踪剂连续通过两个短距离下游的电导率探针。两个探头之间的信号转换被建模为一维扩散波方程。模型校准给出了每个盐羽的平均速度和扩散的估算值。描述了SVG技术的两种实现方式。第一个是在塞内加尔进行的户外模拟降雨实验(电导率探头相隔40厘米,测量速率为8 Hz,以10秒的间隔注入盐分)。平均速度估计在0.1到0.3 m s(-1)之间。第二个是基于实验室的水槽实验(电导探针相隔10厘米,频率32 Hz,以2秒的间隔注入盐分)。另一个SVG的探头间隔为34 cm,用于比较。声学多普勒测速仪(ADV)也用于独立评估速度。使用10 cm盐度计,估计平均速度范围为0.6到0.9 m s(-1),标准偏差为1.5 cm s(-1)。 ADV,10 cm SVG和34 cm SVG之间的比较是一致的,并表明盐分追踪结果是无偏见的,并且与探针之间的距离无关。多数峰的建模方式为(2)> 90%.SVG技术提供了一种染料示踪技术的替代方法,该技术已在文献中受到严重批评,因为要应用的校正因子α的推荐值间隔很宽的时间。本文证明了固定的alpha值是不合适的,因为校正因子会随速度,扩散和控制部分的长度而变化。版权所有(C)2005 John Wiley&Sons,Ltd.

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