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Cleaning of soft-solid soil layers on vertical and horizontal surfaces by stationary coherent impinging liquid jets

机译:固定相干撞击液体喷射器清洁垂直和水平表面上的软固体土壤层

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摘要

The cleaning action of stationary coherent liquid jets impinging (a) vertically downwards on horizontal plates, and (b) horizontally on vertical plates, was investigated using three soft-solid model soil layers: (i) PVA glue on glass and polymethylmethacrylate (Perspex) substrates; (ii) Xanthan gum on stainless steel; and (iii) petroleum jelly on glass. The liquid stream nozzle sizes, mass and volumetric flow rates and mean jet velocities investigated were: PVA, 2 mm, 17-50 g s~(-1) (0.06-0.139 m~3 h~(-1)), 5.3-15.9 m s~(-1); Xanthan gum, 0.39-3.3 mm, 2.1-148 g s~(-1) (0.008-0.53 m~3 h~(-1)); 4.5-31.7 m s~(-1); petroleum jelly, 2 mm, 7.8-50 g s~(-1) (0.06-0.139 m~3 h~(-1)); 2.5-15.9 m s~(-1). For all three soils, rapid initial removal of soil from the jet footprint was followed by the growth of a nearly circular, clean region centred at the point of jet impingement. The rate of removal of soil decreased sharply when the cleaning front reached the hydraulic or film jump. The data for the radial growth removal stage were compared with a mathematical model describing removal of the adhesive soil layer, where the force on the cleaning front was evaluated using the result reported by Wilson et al. (2012): their theory gave the momentum of the liquid film; this momentum was balanced against the soil strength, giving a simple relation between the cleaned radius and time. All three soils showed reasonable agreement with the model, across the range of flow rates and temperatures studied. The kinetic constant in the model was sensitive to soil layer thickness and the nature of the soil. Cleaning tests on the petroleum jelly soils at different temperatures, and separate rheological measurements, showed that the kinetic time constant for coating removal was proportional to the (critical shear stress)~(-1.8). There was good agreement between results obtained with vertical and horizontal plates for the PVA and Xanthan gum soil layers. The petroleum jelly results differed, which is partly attributed to differences in preparing the layers of this rheologically complex material.
机译:使用三个软固体模型土层,研究了固定相干液体射流对(a)垂直向下撞击在水平板上和(b)水平在垂直板上的清洁作用:(i)玻璃上的PVA胶和聚甲基丙烯酸甲酯(Perspex)基材(ii)黄原胶在不锈钢上; (iii)玻璃上的凡士林。研究的液流喷嘴尺寸,质量和体积流量以及平均射流速度为:PVA,2 mm,17-50 gs〜(-1)(0.06-0.139 m〜3 h〜(-1)),5.3-15.9 ms〜(-1);黄原胶,0.39-3.3 mm,2.1-148 g s〜(-1)(0.008-0.53 m〜3 h〜(-1)); 4.5-31.7 m s〜(-1);凡士林,2毫米,7.8-50 g s〜(-1)(0.06-0.139 m〜3 h〜(-1)); 2.5-15.9 m s〜(-1)。对于所有这三种土壤,从喷嘴足迹迅速开始去除土壤后,便会形成一个以喷嘴撞击点为中心的近乎圆形的清洁区域。当清洁前沿达到水力或薄膜跳动时,污垢清除率急剧下降。将径向生长去除阶段的数据与描述去除粘性污垢层的数学模型进行了比较,其中使用Wilson等人报告的结果评估了清洁前沿的力。 (2012):他们的理论给了液膜动力。这种动量与土壤强度保持了平衡,从而在清洁半径和时间之间建立了简单的关系。在研究的流速和温度范围内,所有三种土壤均与模型合理吻合。模型中的动力学常数对土壤层厚度和土壤性质敏感。在不同温度下对凡士林土壤的清洁测试以及单独的流变测量表明,去除涂层的动力学时间常数与(临界剪切应力)〜(-1.8)成正比。在垂直和水平平板上对PVA和黄原胶的土壤层获得的结果之间有很好的一致性。凡士林的结果有所不同,部分归因于在制备这种流变复杂材料的层时存在差异。

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