84 resultados para root-lesion nematode

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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虫(nematodes)是世界农业生产的一大障碍,每年给世界农业生产造成约1000亿美元的巨额损失,是世界各国一直关注的重点病害之一。线虫可以危害各种大田作物和各种温室植物,几乎所有的栽培植物都有线虫危害发生。随着人们环保意识的增强以及健康意识的觉醒,传统防治根结线虫的药物如溴甲烷等因对环境的破坏作用,或者由于高毒、使用不便、抗药性等原因而迅速退出历史舞台,研究环保高效防治线虫成为世界各国竞相发展的技术之一。本研究尝试通过物理方式防治蔬菜根结线虫,并调查了对土壤质量的影响,主要内容包括: 1. 设计制造了功率20 Kw,频率为915 MHz的大功率土壤微波处理机,并通过了田间试验; 2. 设计制造了每小时120 g臭氧产量的便携式臭氧土壤处理机,并通过了田间试验; 3. 采用4因素3水平正交法L9(34)在山东寿光蔬菜大棚进行了蔬菜根结线虫的防治试验,综合考察微波、臭氧、微波吸收剂、EM菌等不同处理水平对根结线虫和对土壤质量的影响,结果表明: 1) 大棚土壤经微波60 s照射能够显著降低甜瓜根结线虫数和根结指数(p < 0.05),盆栽试验只需处理10 s即可显著防治甜瓜根结线虫(p < 0.01);以120 g/h臭氧浓度处理5 s也能显著降低甜瓜根结线虫的数量(p < 0.05);田间施入5 g/m2的EM菌,能够显著降低甜瓜根结线虫的数量(p < 0.05);盆栽试验中微波吸收剂具有降低根结线虫数量的趋势,但是不同处理水平之间差异不显著,田间试验则具有增加根结线虫的趋势,不同处理水平之间也没有显著差异。 2) 微波不同处理水平之间对甜瓜单瓜重的影响没有显著差异;以120 g/h臭氧浓度处理甜瓜能够显著增加甜瓜单瓜重(p < 0.05);200 g/m2微波吸收剂能够显著提高甜瓜单瓜重(p < 0.05);以5 g/m2EM菌处理土壤则显著降低甜瓜单瓜重(p < 0.05)。 3) 微波、臭氧、微波吸收剂不同处理水平对甜瓜糖度的影响没有显著差异;以3 g/m2的EM菌处理甜瓜能够显著降低甜瓜的糖度。 4) 不同因素对甜瓜硬度的影响没有显著差异。 5) 微波处理60 s能够显著提高甜瓜的果型指数(p < 0.1),臭氧、微波吸收剂、EM菌等因素不同处理水平之间对果型指数影响差异不显著。 6) EM菌5 g/m2处理浓度能够显著降低甜瓜株高(p < 0.1),微波、臭氧、微波吸收剂不同处理水平之间对株高的影响没有显著差异。 7) EM菌5 g/m2处理浓度能够显著降低甜瓜根径(p < 0.1),微波、臭氧、微波吸收剂不同处理水平之间对根径的影响没有显著差异。 8) 微波处理60 s能够显著降低表层土壤(0-5 cm)的有机质含量(p < 0.01);以120 g/h的臭氧浓度处理,则可以显著提高10-15 cm土壤的有机质含量(p < 0.05),其它处理因素的不同水平对有机质的影响差异不显著。 9) 微波不同处理水平对土壤全氮的影响没有显著差异(p < 0.05);120 g/h臭氧处理浓度能够显著降低表层土壤(0-5 cm)的土壤全氮量(p < 0.1);100 g/m2微波吸收剂处理水平能够显著提高10-15 cm土壤全氮量(p < 0.05);EM菌3 g/m2的处理水平则显著降低5-10 cm土壤全氮量(p < 0.05)。 10) 微波、微波吸收剂、EM菌不同处理水平之间对土壤全磷没有显著影响;240 g/h臭氧浓度处理5 s能够显著降低10-15 cm土层的土壤全磷含量(p < 0.05)。 11) 微波、微波吸收剂对土壤全磷没有显著影响;臭氧处理具有降低土壤有效磷的趋势,EM菌处理则有提高土壤有效磷的趋势,但是 不同处理水平之间差异不显著(p > 0.05)。 12) 微波处理对土壤EC值没有显著影响;臭氧、微波吸收剂、EM菌处理具有降低土壤EC值的趋势,但是不同处理水平之间差异不显著(p > 0.05)。 13) 微波处理30 s能够显著降低表层土壤的pH值(p < 0.05),臭氧、微波吸收剂、EM菌处理具有提高土壤pH值的趋势,但是不同处理水平之间差异不显著。

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The arc-root attachment on the anode surface of a dc non-transferred arc plasma torch has been successfully observed using a novel approach. A specially designed copper mirror with a boron nitride film coated on its surface central-region is employed to avoid the effect of intensive light emitted from the arc column upon the observation of weakly luminous arc root. It is found that the arc-root attachment is diffusive on the anode surface of the argon plasma torch, while constricted arc roots often occur when hydrogen or nitrogen is added into argon as the plasma-forming gas.

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Arc root motions in generating dc argon-hydrogen plasma at reduced pressure are optically observed using a high-speed video camera. The time resolved angular position of the arc root attachment point is measured and analysed. The arc root movement is characterized as a chaotic and jumping motion along the circular direction on the anode surface.

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Arc root motion on the anode surface of a dc non-transferred plasma torch was observed. Adding hydrogen changes the arc root attachment from a diffused type to a constricted type, and the arc root of Ar-H-2 plasma suddenly,jumps from one spot to another irregularly. Images of the arc root motions taken by a high-speed video camera are presented.

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Results observed experimentally are presented, about the DC arc plasma jets and their arc-root behaviour generated at reduced gas pressure without or with an applied magnetic field. Pure argon, argon-hydrogen or argon- nitrogen mixture was used as the plasma-forming gas. A specially designed copper mirror was used for a better observation of the arc-root behaviour on the anode surface of the DC non-transferred arc plasma torch. It was found that in the cases without an applied magnetic field, the laminar plasma jets were stable and approximately axisymmetrical. The arc-root attachment on the anode surface was completely diffusive when argon was used as the plasma-forming gas, while the arc-root attachment often became constrictive when hydrogen or nitrogen was added into the argon. As an external magnetic field was applied, the arc root tended to rotate along the anode surface of the non-transferred arc plasma torch.

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Experimentally observed, results are presented for the DCarcplasmajets and theirarc-rootbehaviors generated atreduced gas pressure and without or with an' applied magnetic field. Pure argon, argon -hydrogen or argon-nitrogen mixture is used as the plasma-forming gas. A specially designed copper mirror is constructed and used for better observing the arc-root behavior on the anode surface of the DC non-transferred arcplasma torch. It is shown that for the cases without applied magnetic field, the laminar plasmajets are stable and approximately axisymmetrical. The arc-root attachment on the anode surface is completely diffusive when argon is used as the plasma-forming gas, while the arc-root attachment often becomes constrictive when hydrogen or nitrogen is added into the argon. When an external magnetic field is applied, the arcroot tends to rotate along the anode surface of the non-transferred arcplasma torch.

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Arc root behavior affects the energy transfer and nozzle erosion in an arcjet thruster. To investigate the development of arc root attachment in 1 kW class N2 and H2-N2 arcjet thrusters from the time of ignition to the stably working condition, a kinetic series of end-on view images of the nozzle obtained by a high-speed video camera was analyzed. The addition of hydrogen leads to higher arc voltage levels and the determining factor for the mode of arc root attachment was found to be the nozzle temperature. At lower nozzle temperatures, constricted type attachment with unstable motions of the arc root was observed, while a fully diffused and stable arc root was observed at elevated nozzle temperatures.