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ACOUSTIC EFFECTS IN METERING STATIONS; IMPACTS ON PERFORMANCE OF FLOW METERING EQUIPMENT

机译:计量站的声学效应;对流量计量设备性能的影响

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Acoustics plays a central role in the current state-of-the-art gas metering equipment. In the last decade the benefits of ultrasonic techniques in fiscal metering of high gas volumes has become apparent. These metering technique expresses lots of advantageous features, like high accuracy, large rangability, low pressure drop and self-diagnostic capabilities. Recently in addition to flow metering applications the acoustic techniques have also been applied in energy flow or Wobbe metering devices. An example of this is the Ensonic, a fast energy meter, which uses a correlative technique based upon measurements of the velocity of sound (VOS) at two different pressures and the CO2 percentage. This technique yields a fast, low cost device, which is with respect to uncertainty (<0,3%) and reproducibility (<0,1%) fully comparable to the highly accurate field GC which are used for custody transfer purposes. Because of its very fast measuring cycle of <~5 seconds this technique is excellently suited for gas quality control purposes. Application of these techniques raises the question whether acoustic effects always present in piping systems can influence the reliability and accuracy of the measurements. Acoustic effects are present in any piping systems, either through sources like compressors or valves, but also through possible flow induced pulsations. All flow measurement devices in some way are affected by their presence. Orifice and venturi flow meters, based on measurement of differential pressure across a restriction experience a square-root error and/ or gauge line errors due to pulsations. Turbine meters experience so-called rotor-slip errors when operating in dynamic acoustical conditions. Moreover, practical experience at Gasunie shows that sometimes turbine meters are rotating under the influence of acoustic waves even when they are positioned in a standby metering run with closed valves! Some examples are shown in the paper. How about the devices based upon the current state-of-the-art ultrasonic measurement techniques? Theoretically some aliasing errors can occur when the acoustical periods are close to the sampling time interval. In practice we have noticed some other effects. A serious drawback of the ultrasonic measurement technique is its sensitivity to noise of pressure reducing elements. It is somewhat ironical, that especially low-noise valves have more disturbing ability than regular valves. This ability originates in the fact, that low-noise techniques focus on the audible noise region and this sometimes implies a shift of the noise levels to the more ultrasonic part of the spectrum, where they can influence the signal-to-noise ratio of the US metering equipment. Besides disturbing valves also certain flow straighteners can produce acoustic effects. These effects have been studied at Gasunie Research in bi-directional metering run tests at our flow facility in Westerbork. In such a setup always one of the two flow straighteners experiences an opposite flow direction. Such a flow straightener will produce whistling sounds at high flow velocities, which at a certain levels will affect the US metering performance. As long as metering devices remain sensitive for all types of acoustic influences it is strongly advised to have an acoustic eye already in the design stage of metering or calibration facilities. Acoustic control is crucial in obtaining state-of-the-art quality and low measurement inaccuracy.
机译:声学在当前的最先进的气体计量设备中起着核心作用。在过去的十年中,超声技术在高气体量的情况下的优势变得明显。这些计量技术表达了许多有利的特征,如高精度,大的无形性,低压下降和自诊断能力。最近除了流量计量应用之外,声学技术也已应用于能量流或WOOBE计量装置。这样的示例是Ensonic,一种快速能量表,其使用基于两个不同压力和CO2百分比的声音(VOS)速度的测量来使用相关技术。该技术产生快速,低成本的装置,其相对于不确定度(<0.3%)和再现性(<0.1%)完全可与用于托管传递目的的高精度场GC相当。由于其非常快的测量周期<〜5秒,这种技术非常适合气体质量控制目的。这些技术的应用提出了始终存在于管道系统中的声学效果可以影响测量的可靠性和准确性。声学效果存在于任何管道系统中,通过压缩机或阀等源,而且通过可能的流动感应脉动。所有方式的流动测量装置都受到它们的存在影响。孔口和文丘里的流量计,基于限制差的压力测量体验由于脉动引起的平方根误差和/或仪表线误差。在动态声学条件下运行时,涡轮仪在动态时的转子滑动误差体验。此外,即使当它们定位在带有封闭阀的待机计量运行中,有时汽轮机的实际经验也表明,有时涡轮米在声波的影响下旋转。纸张中示出了一些例子。基于当前最先进的超声测量技术的设备何处?当声学时段接近采样时间间隔时,可以发生一些锯齿误差。在实践中,我们注意到了一些其他效果。超声测量技术的严重缺点是其对减压元件噪声的敏感性。它有些讽刺的,特别是低噪音阀比常规阀门具有更多的令人不安的能力。这种能力起源于该事后,低噪声技术专注于可听噪声区域,这有时意味着噪声水平的偏移到频谱的更超声波部分,在那里它们可以影响噪声的信噪比美国计量设备。除了令人不安的阀门,还有一定的流动矫直器可以产生声学效果。在Westerbork的流动设施的双向计量运行试验中研究了这些效果。在这种设置中,两个流动矫直器中的一个经历相反的流动方向。这种流动矫直器将在高流速下产生吹哨声音,这在一定程度上会影响美国计量性能。只要计量装置对所有类型的声学影响仍然敏感,强烈建议在计量或校准设施的设计阶段具有声学眼。声学控制对于获得最先进的质量和低测量不准确性至关重要。

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