首页> 外文期刊>International Journal of Agricultural and Biological Engineering >Information acquisition system of multipoint soil surface height variation for profiling mechanism of seeding unit of precision corn planter
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Information acquisition system of multipoint soil surface height variation for profiling mechanism of seeding unit of precision corn planter

机译:高精度玉米播种机播种机构多点地表高度变化信息采集系统。

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The emergence rate and vitality of maize are directly affected by the sowing depth, and the uniformity of this depth is an important performance indicator of a planter, while the effective soil surface height information acquisition is the prerequisite for ensuring the accuracy of sowing depth control. The soil surface height variation acquisition system of a precision corn planter often produces profiling errors when performing active profiling due to interference from ground debris. In this study, a multipoint soil surface height variation information acquisition system was investigated, which consists of a ranging sensor group and a microcontroller unit (MCU) using a data comparison and screening method. The structure and specifications of the ranging sensors were determined according to the soil surface height variation and debris size, and a nonessential profiling control program was developed. Performed tests on the information acquisition system indicated that the measurement accuracy of the system was 3 mm, and when advancing at a speed of 8 km/h, the accuracy of the profiling decision and the system stability were 97.1% and 94.1%, respectively, indicating that the system was capable of nonessential profile control. The designed ranging system could provide a reference for the design of a ground information acquisition system of precision planters with an active profiling mechanism.
机译:播种深度直接影响玉米的出苗率和活力,该深度的均匀性是播种机的重要性能指标,有效的土壤表层高度信息采集是保证播种深度控制精度的前提。精密玉米播种机的土壤表面高度变化采集系统在执行主动剖析时通常会由于地面碎屑的干扰而产生剖析错误。在这项研究中,研究了一种多点土壤表面高度变化信息采集系统,该系统由测距传感器组和使用数据比较和筛选方法的微控制器单元(MCU)组成。根据土壤表面高度变化和碎屑大小确定测距传感器的结构和规格,并开发了不必要的轮廓控制程序。在信息采集系统上进行的测试表明,该系统的测量精度为3 mm,以8 km / h的速度前进时,分析决策的精度和系统稳定性分别为97.1%和94.1%,表示该系统能够进行不必要的配置文件控制。所设计的测距系统可以为具有主动仿形机构的精密播种机地面信息采集系统的设计提供参考。

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