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Geometric and operational optimization of 20-kHz probe-type sonoreactor for enhancing sonochemical activity

机译:20 kHz探针型超反应器的几何和操作优化,用于增强一个儿学活动

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The use of a 20-kHz probe-type sonicator irradiating downward in a 500 mL vessel was optimized for the enhancement of the sonochemical activity in terms of the geometric and operational factors. These factors included the probe immersion depth (the vertical position of the probe), input power, height of the liquid from the bottom, horizontal position of the probe, and thickness of bottom plate The sonochemical oxidation reactions were investigated both quantitatively and qualitatively using calorimetry, KI dosimetry, and luminol (Sonochemiluminescence, SCL) techniques. The sonochemical activity was very positively affected by the vertical boundaries. The highest sonochemical activity was obtained when the probe was placed close to the bottom of the vessel (immersion depth of 60 mm), with a high input power (input power of 75%), and optimal liquid height condition (liquid height of 70 mm). The SCL image analysis showed that the cavitational activity zone gradually expanded around the probe body and changed into a circular shape as the experimental conditions were optimized, and consequently the sonochemical activity increased. The formation of a large bright circular-shaped activity zone could be attributed to the strong reflections of the ultrasound firstly, at the vessel bottom and secondly, at the liquid surface. On the other hand, the cavitational activity zone and the sonochemical activity were negatively affected by the horizontal boundaries when the probe was placed close to the side wall of the vessel. In addition, it was found that the sonochemical activity was also significantly affected by the thickness of the support plate owing to the reflection and transmission of the ultrasound at the boundary between the liquid and the solid media.
机译:优化了在500mL血管中向下照射的20-KHz探针型超声器,以提高几何和运营因素的同步化学活动。这些因素包括探针浸没深度(探针的垂直位置),输入功率,液体高度从底部,探针的水平位置,以及底板的厚度,通过量热法测量分量和定性地研究了多底氧化反应。 ,Ki剂量测定和鲁米诺(SonoChemil发光,SCL)技术。经过垂直边界的儿童化学活动非常受到影响。当探针靠近容器的底部(浸入深度为60mm)时,获得最高的儿子化学活性,具有高输入功率(输入功率为75%),最佳液体高度条件(液体高度为70毫米) )。 SCL图像分析表明,空化活动区围绕探针体逐渐膨胀,随着实验条件的优化而变成圆形形状,因此多个化学活性增加。大明亮的圆形活性区的形成可以归因于超声波的强烈反射首先在液体表面处在容器底部并且其次。另一方面,当探针靠近容器的侧壁被放置时,空化活性区和儿童化学活性受到水平边界的负面影响。另外,发现,由于超声波在液体和固体介质之间的边界处的反射和传递,SOPOOPEMICAL活性也受到支撑板的厚度的显着影响。

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