分层无土耕作曲线工作单元的参数优化

G. G. Parhomenko
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引用次数: 0

摘要

为了在俄罗斯南部潮湿不足和不稳定的条件下有效地发挥作用,耕作机械是根据块模块结构原理开发的,具有各种可更换的工作元件。在用于逐层无土耕作的工作元件的设计中纳入了可更换元件组合的可能性。该工作体配有曲面、平面撕裂器或塑性元件。曲线撕裂器逐层无土耕作工体工艺过程的定性指标与其他工艺相比达到了较高的水平:97,4…50 mm以下馏分98.5%,表层侵蚀有害颗粒含量急剧下降至15.12…18日,13%。采用塑性单元的工作单元的工作能耗比采用弯曲撕裂器的工作单元低6%。研究的目的是在保持分层无土耕作工艺过程质量的同时,通过优化曲面撕裂器工作体参数,降低能源成本шы。采用三因素Box方案确定曲线撕裂器工体参数,进行了试验研究,保证了逐层无土耕作能耗的降低。评价标准是工作体的牵引阻力,其能量成本直接取决于逐层无土耕作工艺过程的性能。对牵引阻力增长的最大影响是由于barpoint的破碎角的增加。随着速度的增加,可以观察到牵引阻力的降低和强度的降低。这可以解释为,与应力波的传播速度相比,工作构件的运动速度对其牵引阻力的影响较小。随着土壤耕作深度的增加,牵引阻力增大。将工作元件的移动速度固定在2.5 m/s水平时,耕深的最佳值为28…29 cm,钻头的破碎角度为31…31日,5度。
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Parametric optimization of the curvilinear working element for layerwise soil-free tillage
For effective functioning in conditions of insufficient and unstable moistening of the south of Russia, tillage machines are developed on the basis of the block-modular construction principle with various working elements with replaceable elements. The possibility of a combination of replaceable elements is incorporated in the design of the working element for layer-by-layer soil-free tillage. This working body is equipped with curved, planar rippers or plastic elements. Qualitative indices of the technological process of layer-by-layer soil-free tillage of the working body with a curvilinear ripper, in comparison with others, reach a higher level: 97,4...98,5 % of fractions up to 50 mm, a sharp decrease in the content of erosion-hazardous particles in the surface layer to 15,12...18,13 %. The energy consumption for the functioning of the working element with plastic elements is 6 % less than with the curved ripper. The purpose of the research шы еру reduction of energy costs due to optimization of the parameters of the working body with a curved ripper while maintaining the quality of the technological process of layered soil-free tillage. Experimental studies on the three-factor Box plan for determining the parameters of the working body with a curvilinear ripper have been carried out, which ensures a reduction in energy costs for layer-by-layer soil-free tillage. The criterion for evaluation is the traction resistance of the working body, on which the energy costs directly depend on the performance of the technological process of layer-by-layer soil-free tillage. The greatest influence on the growth of traction resistance is due to an increase in the crumbling bit angle of the barpoint. With increasing speed, a reduction in traction resistance with a lower intensity is observed. This is explained by the less significant effect of the speed of movement of the working member on its traction resistance in comparison with the propagation velocity of the stress wave. With an increase in the depth of cultivation of the soil, the traction resistance increases. When fixing the speed of moving the working element at a level of 2,5 m/s, the optimal value of the depth of tillage is 28...29 cm, the angle of crumbling of the bit is 31...31,5 degrees.
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