THE MICRO- AND NANOSECOND DISCHARGES IN GAS BUBBLES FOR WATER DISINFECTION AND PURIFICATION

IF 1.6 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
N. Boyko, A. Makogon
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引用次数: 2

Abstract

Purpose. Comparison of electrical circuits of experimental plants for obtaining micro- and nanosecond discharges in gas bubbles in water and comparing the experimental results obtained for disinfecting water using such discharges . Methodology. To obtain high-voltage pulses on the load in the form of a gas bubbles and a layer of water with a frequency of more than 2000 pulses per second, a method of generating micro- and nanosecond pulses using high-voltage pulse generators based on a pulse transformer (PT) according to Tesla, with a transistor opening switch IGBT in the low-voltage part of the circui . A current-limiting resistor with a resistance R cl = 24 kW is used to protect the transistor switch at microsecond discharges. At nanosecond discharges, a multi-gap spark gap is used to sharpen the front of high-voltage pulses. We used a capacitive voltage divider with a division factor of K d = 7653 to measure voltage pulses, a shunt with a resistance of R s = 2.5 W for measuring current pulses. RIGOL DS1102E digital oscilloscope with a 100 MHz bandwidth was used as a recording device . Results. The effect of micro- and nanosecond discharges in gas bubbles on microorganisms was experimentally investigated. It was possible to reduce the biochemical oxygen consumption of water during microsecond discharges, reduce the turbidity of water, and improve its organoleptic qualities. The energy released in a single pulse with microsecond discharges W µ ≈ 17 mJ, with nanosecond discharges W n ≈ 7.95 mJ. At nanosecond discharges, complete inactivation of E.coli bacteria was achieved. The disinfecting and purifying action of nanosecond pulses is better compared to microsecond pulses due to an increase in the amplitude of the pulsed voltage up to 30 kV, and a pulsed current of up to 35 A. Originality . The possibility of effective microbiological disinfection of water using nanosecond discharges in gas bubbles at low specific energy consumption has been experimentally shown. Practical value. The obtained experimental results on water disinfection using micro- and nanosecond discharges offer the prospect of industrial application of installations using such discharges for disinfecting and purification wastewater, swimming pools, and post-treatment of tap water.
用于水消毒和净化的气泡中的微纳放电
目的。在水中气泡中获取微秒级和纳秒级排放物的实验装置电路的比较,以及利用这些排放物对水进行消毒的实验结果的比较。方法。为了在负载上获得频率超过每秒2000个脉冲的气泡和水层形式的高压脉冲,根据特斯拉的理论,使用基于脉冲变压器(PT)的高压脉冲发生器产生微秒和纳秒脉冲的方法,在电路的低压部分使用晶体管开断开关IGBT。一个电阻R cl = 24 kW的限流电阻用于保护晶体管开关在微秒放电时的保护。在纳秒放电时,多间隙火花隙被用来锐化高压脉冲的前端。我们使用一个分频系数K d = 7653的电容分压器来测量电压脉冲,一个电阻R s = 2.5 W的分流器来测量电流脉冲。采用RIGOL DS1102E数字示波器作为记录设备,其带宽为100mhz。结果。实验研究了微、纳秒级气泡放电对微生物的影响。在微秒排放过程中,可以降低水的生化耗氧量,降低水的浑浊度,提高水的感官品质。微秒放电的单脉冲能量Wµ≈17 mJ,纳秒放电的单脉冲能量W n≈7.95 mJ。在纳秒放电时,大肠杆菌完全失活。与微秒脉冲相比,纳秒脉冲的消毒和净化作用更好,因为脉冲电压的振幅增加到30 kV,脉冲电流高达35 a。创意。实验表明,在低比能耗的情况下,利用纳秒级气泡放电对水进行有效微生物消毒的可能性。实用价值。所获得的微纳秒排放水消毒实验结果为利用微纳秒排放对废水、游泳池和自来水后处理进行消毒和净化的装置提供了工业应用前景。
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来源期刊
Electrical Engineering & Electromechanics
Electrical Engineering & Electromechanics ENGINEERING, ELECTRICAL & ELECTRONIC-
CiteScore
2.40
自引率
50.00%
发文量
53
审稿时长
10 weeks
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