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Physical and hydrodynamic characteristics of a dairy shed waste stabilisation pond system

机译:奶牛场废物稳定池系统的物理和水动力特性

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Waste stabilization pond systems are widely used to treat animal wastes under highly variable hydraulic loading regimes. These systems have received limited research attention with regard to their hydrodynamic behaviour and the potential impact of shock hydraulic loading on their performance. In this study a two-stage dairy shed waste stabilisation pond system was topographically surveyed to determine the physical shape and the theoretical hydraulic retention time (HRT) of each pond, as well as the extent of sludge accumulation in the primary pond. The primary pond was then subjected to a series of drogue tracking runs whereby weighted floating survey targets with submerged ‘sails’ were tracked during their movement through the pond at times of peak flow in order to characterise the hydrodynamic behaviour of the pond. The full capacity volumes of the primary and secondary ponds were calculated to be 1285 m3 and 2391 m3, respectively. Sludge had been accumulating in the primary pond at a rate of 0.73 m3/d over a period of 2.4 years and this has reduced the active treatment volume of the pond to 657 m3. Based on mean outflow, the HRTs of the ponds were 40 d and 137 d, respectively. The drogue runs revealed a vortex-like mixing pattern within the pond with higher velocities around the perimeter of the pond between the inlet and outlet, and lower velocities in the centre of the pond. In-pond velocities seemed relatively high in comparison with those from other drogue studies of larger ponds and the surging inflow caused the formation of a flow ‘jet’ that potentially contributed to significant short-circuiting. The range of influence of this flow jet, however, was limited to within 15 m of the inlet, suggesting that short-circuiting would be likely to occur only under certain high inflow conditions.
机译:废物稳定化池塘系统被广泛用于在高度可变的水力负荷下处理动物废物。这些系统在其流体动力学特性以及冲击液压载荷对其性能的潜在影响方面受到的研究关注有限。在这项研究中,对地形为两阶段的奶牛场废物稳定化池塘系统进行了调查,以确定每个池塘的物理形状和理论水力停留时间(HRT)以及主要池塘中污泥的积累程度。然后,对主要池塘进行一系列的跟踪跟踪运行,从而在峰值流量时通过带“风帆”的加权浮动调查目标在穿过池塘时被追踪,以对其进行表征。计算出的一级和二级池塘的总容量分别为1285立方米和2391立方米。在2.4年的时间里,污泥以0.73 m3 / d的速度在初级池中积聚,这使池的有效处理量减少到657 m3。根据平均流出量,池塘的HRT分别为40 d和137 d。漏斗的运行揭示了池塘内的漩涡状混合模式,在入口和出口之间的池塘周长周围的速度较高,而在池塘中心的速度较低。与其他大型池塘的锥孔研究相比,池中速度似乎相对较高,涌入的水流导致形成“水流”,有可能造成严重的短路。然而,该射流的影响范围被限制在入口的15 m以内,这表明仅在某些高流量条件下才可能发生短路。

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