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首页> 外文期刊>Transactions of the ASABE >INVESTIGATING THE EFFECTS OF INTERACTION OF SINGLE-TINE AND ROTATING-TINE MECHANISMS WITH SOIL ON WEEDING PERFORMANCE USING SIMULATED WEEDS
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INVESTIGATING THE EFFECTS OF INTERACTION OF SINGLE-TINE AND ROTATING-TINE MECHANISMS WITH SOIL ON WEEDING PERFORMANCE USING SIMULATED WEEDS

机译:用模拟杂草研究单齿和旋转机制相互作用对土壤的影响利用杂草性能

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Mechanical weeding augmented with automation technology should result in highly effective weeding systems. However, the interaction between weeding mechanisms and soil is not well understood. Moreover, soil is highly variable, which makes studying this interaction challenging. The main objective of this research was to develop a method to investigate the effects of mechanical tool-soil interaction on weeding performance for different operating conditions in a controlled environment. Experiments were conducted in an indoor soil bin with loam soil, and the weeding performance was studied using small wooden cylinders as simulated weed plants. The investigations featured a single cylindrical tine and a rotating tine mechanism, vertically oriented and inserted into the soil. The total width of soil disturbance and potential weeding rate were evaluated for the single cylindrical tine at different levels of three operating parameters: tine diameter (6.35, 7.94, and 9.53 mm), working soil depth (25.4, 50.8, and 76.2 mm), and tine speed (0.23 and 0.45 m s(-1)). Potential weeding rate was examined for the rotating tine mechanism with two operating parameters: working soil depth (25.4 and 76.2 mm) and rotational speed (25, 50, and 100 rpm). Statistical analysis was performed using ANOVA at p 0.05. A simulation of the rotating tine mechanism was developed that estimated the disturbed area. For the single tine, soil disturbance width was independent of tine speed; however, tine diameter and depth had significant effects, as the width increased with increased levels of these two parameters. All three parameters had significant effects on the potential weeding rate of the single tine, and the rates were observed to increase with higher levels of the parameters. For the rotating tine mechanism, both depth and rotational speed were significant. The potential weeding rate for the rotating tine mechanism was found to increase with higher levels of these parameters. The results showed that although the width of soil disturbance due to a cylindrical tine was affected by the tine diameter and working soil depth, operating parameters such as increased longitudinal and rotational speeds also affected plant disturbance. The percentage of disturbed soil area in the simulation followed similar patterns as the percentage of disturbed plants observed in the experiments.
机译:使用自动化技术增强的机械杂草应导致高效的除草系统。然而,杂草机制与土壤之间的相互作用并不熟知。此外,土壤具有高度变化,这使得研究这种互动挑战。本研究的主要目的是开发一种方法来研究机械工具 - 土壤相互作用对受控环境中不同操作条件的杂草性能的影响。实验在带有壤土土壤的室内土坑中进行,使用小型木缸作为模拟杂草植物进行了杂草性能。该研究采用单个圆柱形尖柱和旋转的齿机构,垂直定向并插入土壤中。在不同水平的三个操作参数下对单圆柱齿进行评估土壤干扰的总宽度和潜在的除草率:齿直径(6.35,7.94和9.53毫米),工作土壤深度(25.4,50.8和76.2毫米),和速度(0.23和0.45ms(-1))。检查旋转齿速仪的潜在抽头率,具有两个操作参数:工作土壤深度(25.4和76.2毫米)和转速(25,50和100 rpm)。使用P&的ANOVA进行统计分析; 0.05。开发了旋转齿机构的模拟,估计了受干扰的区域。对于单齿,土壤扰动宽度与速度无关;然而,直径和深度具有显着的影响,随着这两个参数的增加,宽度增加。所有三个参数对单齿的潜在除草率有显着影响,并且观察到速率随着较高水平的参数而增加。对于旋转的柱机构,深度和转速都很显着。发现旋转齿机构的潜在抽头率随着这些参数的更高水平而增加。结果表明,虽然圆柱形叉由于圆柱形齿引起的土壤紊乱宽度受到尖直径和工作土壤深度的影响,但是纵向和转速增加的操作参数也影响了植物干扰。模拟中受干扰土区域的百分比遵循类似模式,作为实验中观察到的受干扰植物的百分比。

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