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Optimization of hydrostatic pressure at varied sonication conditions – power density, intensity, very low frequency – for isothermal ultrasonic sludge treatment

机译:在各种超声条件下优化静水压力-功率密度,强度,极低频率-用于等温超声波污泥处理

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摘要

This work aims at investigating for the first time the key sonication (US) parameters: power density (DUS), intensity (IUS), and frequency (FS) - down to audible range, under varied hydrostatic pressure (Ph) and low temperature isothermal conditions (to avoid any thermal effect). The selected application was activated sludge disintegration, a major industrial US process. For a rational approach all comparisons were made at same specific energy input (ES, US energy per solid weight) which is also the relevant economic criterion. udThe decoupling of power density and intensity was obtained by either changing the sludge volume or most often by changing probe diameter, all other characteristics being unchanged. Comprehensive results were obtained by varying the hydrostatic pressure at given power density and intensity. In all cases marked maxima of sludge disintegration appeared at optimum pressures, which values increased at increasing power intensity and density. Such optimum was expected due to opposite effects of increasing hydrostatic pressure: higher cavitation threshold then smaller and fewer bubbles, but higher temperature and pressure at the end of collapse. In addition the first attempt to lower US frequency down to audible range was very successful: at any operation condition (DUS, IUS, Ph, sludge concentration and type) higher sludge disintegration was obtained at 12 kHz than at 20 kHz. The same values of optimum pressure were observed at 12 and 20 kHz. At same energy consumption the best conditions - obtained at 12 kHz, maximum power density 720 W/L and 3.25 bar - provided about 100% improvement with respect to usual conditions (1 bar, 20 kHz). Important energy savings and equipment size reduction may then be expected.
机译:这项工作旨在首次研究关键的超声(US)参数:功率密度(DUS),强度(IUS)和频率(FS)-在可变静水压(Ph)和低温等温条件下降至可听范围条件(避免任何热效应)。选择的应用是美国主要工业流程-活性污泥分解。对于一种合理的方法,所有比较都是在相同的比能量输入(ES,每固体重美国能量)下进行的,这也是相关的经济标准。 ud通过改变污泥量或最常见的是通过改变探头直径获得功率密度和强度的去耦,而所有其他特性不变。通过在给定的功率密度和强度下改变静水压力可获得综合结果。在所有情况下,在最佳压力下都会出现明显的污泥分解最大值,该值会随着功率强度和密度的增加而增加。由于增加静水压力会产生相反的效果,因此可以预期达到这样的最佳效果:较高的空化阈值,然后气泡较小且较少,但在崩溃结束时温度和压力较高。此外,将US频率降低到可听范围的首次尝试非常成功:在任何运行条件下(DUS,IUS,Ph,污泥浓度和类型),在12 kHz时比在20 kHz时可获得更高的污泥分解度。在12 kHz和20 kHz处观察到相同的最佳压力值。在相同的能耗下,最佳条件-在12 kHz下获得,最大功率密度为720 W / L和3.25 bar-相对于通常条件(1 bar,20 kHz)提供了大约100%的改善。可以预期会节省大量能源并减少设备尺寸。

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