首页> 外文期刊>Plant Pathology >Dual protection of hydroponic tomatoes from rhizosphere pathogens Ralstonia solanacearum and Fusarium oxysporum f.sp. radicis-lycopersici and airborne conidia of Oidium neolycopersici with an ozone-generative electrostatic spore precipitator
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Dual protection of hydroponic tomatoes from rhizosphere pathogens Ralstonia solanacearum and Fusarium oxysporum f.sp. radicis-lycopersici and airborne conidia of Oidium neolycopersici with an ozone-generative electrostatic spore precipitator

机译:水培番茄免受根际病原体番茄青枯病和尖孢镰刀菌双重保护。带有臭氧产生静电孢子沉淀器的新菌藻O的萝卜-菌藻和空气传播的分生孢子

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An ozone-generative electrostatic spore precipitator was developed to protect nursery-stage seedlings of tomato from both airborne conidia of powdery mildew (Oidium neolycopersici) and root-infecting pathogen propagules of bacterial wilt (Ralstonia solanacearum) and fusarium crown and root rot (Fusarium oxysporum f.sp. radicis-lycopersici). The device was a cylindrical electrostatic spore precipitator (S2 cylinder) in which a positively charged straight conductor wire insulated with a transparent acrylic cylinder originated from a spore-precipitation cylinder (S1 cylinder) designed to physically control airborne conidia of tomato powdery mildew in greenhouses. The S2 cylinder consisted of two sites for conidial attraction and ozone production. The site for ozone production was located at the end of the cylinder, where an earthed copper conductor ring (as a cathode) was attached to the edge of the cylinder, responding to the anodal tip of a positively charged central conductor wire. Distinct types of discharge (corona, corona-streamer, streamer and arc discharge) occurred between the two electrodes and were dependant on the voltages applied to the wire and the distances between the electrodes. The highest ozone production was observed through streamer discharge. The remaining portion of the S2 cylinder, which was dielectrically polarized by a positively charged wire, created a non-uniform electric field outside the cylinder to attract conidia that came into the generated field. Hydroponic culture troughs to raise tomato seedlings in a nursery greenhouse were paralleled with S2 cylinders. The aim was to control rhizosphere pathogens R. solanacearum and F. oxysporum f.sp. radicis-lycopersici and to prevent them entering the hydroponic system during cultivation, while at the same time trapping O. neolycopersici conidia in the spaces between the cylinders. The results indicated that susceptible tomato plants in culture troughs attached to the S2 cylinders remained uninfected by both rhizosphere and aerial pathogens throughout the experimental period (2 and 3 weeks, respectively). This suggests that the present system will enable the dual control of both these pathogens in hydroponic systems in greenhouses.
机译:开发了一种可产生臭氧的静电孢子沉淀器,以保护苗圃期的番茄幼苗免受白粉病(Oidium neolycopersici)的空气传播分生孢子和细菌性枯萎(Ralstonia solanacearum)以及根腐病(Fusarium oxysporum)的根部感染病原体的繁殖f.sp. radicis-lycopersici)。该设备是圆柱形静电孢子沉淀器(S2圆筒),其中带正电荷的直导体与透明丙烯酸酯圆筒绝缘,该透明导体起源于孢子沉淀圆筒(S1圆筒),该孢子沉淀圆筒用于物理控制温室番茄白粉病的传播分生孢子。 S2气瓶由两个分生孢子吸引点和臭氧产生点组成。产生臭氧的位置位于圆柱体的末端,在圆柱体的边缘附有接地的铜导体环(作为阴极),以响应带正电的中心导线的阳极尖端。在两个电极之间发生了不同的放电类型(电晕放电,电晕放电放电,电弧放电和电弧放电),这取决于施加到导线上的电压和电极之间的距离。通过流光放电观察到最高的臭氧产量。 S2圆柱体的其余部分被带正电的导线电极化,在圆柱体外部产生了不均匀的电场,以吸引分生孢子进入所产生的电场。在育苗温室中培育番茄幼苗的水培培养槽与S2圆柱体平行。目的是控制根际病原体青枯菌和毛孢镰刀菌。并防止它们在培养过程中进入水培系统,同时将O. neolycopersici分生孢子捕获在圆柱体之间的空间中。结果表明,在整个实验期间(分别为2周和3周),附着在S2圆柱体上的培养槽中的易感番茄植株均不受根际和空中病原体的感染。这表明本系统将能够双重控制温室中水培系统中的这两种病原体。

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