通过气泡放电对水进行消毒的运行设备有效模式的计算机模拟

M. I. Boiko, K. S. Tatkova
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引用次数: 0

摘要

目的通过计算机模拟确定利用气泡放电对水进行消毒的设备的最有效运行模式,在这些(模式)中,处理装置和处理水层上的电压脉冲振幅不小于切换放电装置后立即产生的电压振幅。方法为了实现这一目标,我们使用 Micro-Cap 10 进行了计算机模拟。我们使用了两种不同的电路来模拟实验装置在两种不同模式下的运行:在放电节点上两个相邻电压脉冲之间气体气泡放电间隙的电强度恢复模式和不恢复这种介电强度的模式。在计算机模拟中,我们改变了以下因素:最大模拟步长、电感、电容、有源电阻、长线波阻抗,以及模拟气泡放电间隙的火花间隙运行的延迟时间。结果。计算机模型显示,为了提高处理装置和处理水层上的电压幅值,必须将负载电容--处理装置中水层的电容降低到 10 pF 或更低,将水层的有源电阻提高到 500 W 或更高。提高放电装置中的电压和电场强度,进而提高处理水消毒效率的一个重要因素是气泡中的放电延迟时间。在我们考虑的条件下,避雷器(即水中气泡的间隙)运行的最合理延迟时间为 4-5 毫微秒。在其他条件不变的情况下,正是在这一延迟时间内,消毒水处理节点和处理水层上的电压脉冲幅值达到最大。此外,在这样的延迟时间内,电压脉冲的幅值大大超过了直接位于主高压放电管之后的电压幅值,通过一条充满水的长线将能量从高压电容储能器转换到处理装置。独创性通过计算机模拟,我们证明了在不增加电源电压的情况下,将实验装置放电单元的电压提高 35% 的可能性。这样,通过纳秒气泡放电对水进行微生物消毒的效率更高,能耗更低。实用价值。计算机模拟的结果证实了利用纳秒放电装置对废水、游泳池和自来水后处理进行消毒和净化的工业应用前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computer simulation of operation plant effective modes for water disinfection by electrical discharges in gas bubbles
Purpose. Determination by means of computer simulation of the most efficient modes of operation of the installation for water disinfection using discharges in gas bubbles, in which (modes) the amplitude of voltage pulses at the processing unit and on the layer of treated water is not less than the voltage amplitude immediately after the switching discharger. Methodology. To achieve this goal, we used computer simulation using Micro-Cap 10. We used two different electrical circuits that simulate the operation of the experimental setup in two different modes: in a mode with a restoring electrical strength of the discharge gap in the gas bubble between two adjacent voltage pulses on the discharge node and in the mode without restoring this dielectric strength. In computer simulation, we varied the following factors: the maximum simulation step, inductances, capacitances, active resistances, wave resistance of a long line, and the delay time for the operation of a spark gap simulating a discharge gap in a gas bubble. Results. Computer modeling has shown that in order to increase the voltage amplitude at the treatment unit and on the layer of treated water, it is necessary to reduce the load capacitance – the capacitance of the water layer in the treatment unit to 10 pF or less, to increase the active resistance of the water layer to 500 W or more. An important factor for increasing the voltage and electric field strength in the discharge unit and, consequently, for increasing the efficiency of treated water disinfection is the discharge delay time in gas bubbles. The most rational delay time for the operation of the arrester, which is the gap in the gas bubble inside the water, under the conditions considered by us is 4–5 ns. It is with this delay time that the amplitude of voltage pulses at the node of disinfecting water treatment and on the layer of treated water is maximum, all other things being equal. Furthermore, with such a delay time this amplitude of voltage pulses significantly exceeds the voltage amplitude directly after the main high-voltage discharger, switching energy from the high-voltage capacitive storage to the processing unit through a long line filled with water. Originality. Using computer simulation, we have shown the possibility of increasing the voltage at the discharge unit of the experimental setup by 35 % without increasing the voltage of the power source. This provides a higher efficiency of microbiological disinfection of water by nanosecond discharges in gas bubbles and lower specific energy consumption. Practical value. The obtained results of computer simulation confirm the prospect of industrial application of installations using nanosecond discharges for disinfection and purification of wastewater, swimming pools and post-treatment of tap water.
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