DESIGN AND TESTING OF A VARIABLE FERTILIZATION SYSTEM BASED ON SOIL NUTRIENT DETECTION

Jie LIU, Fanxia Kong, Zhao Jie, Lili Yi, Yubin Lan, Xin Han, Minhui Zhang, Lei Liu, Pengcheng Lv
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Abstract

In order to solve the problems of low correlation between variable fertilizer application system and soil nutrient content detection and insufficient real-time performance, a variable fertilizer application system based on real-time soil nutrient content detection was developed. This paper describes the structure, working principle and design of key components of the soil information acquisition and fertilizer application system. It includes the simulation and analysis of fertilizer application using the discrete element method and the selection of curved blade fertilizer application discs. The system uses STM32F429IGT6 microcontroller and ROS higher-level computer for decision making. The device detects soil nutrients in real time, adjusts the fertilizer motor speed accordingly, and runs autonomously along the planned path. The decision coefficient R^2 between the fertilizer application rate and the speed of the fertilizer application wheel is not less than 0.97, and the relative error between the actual fertilizer application rate and the theoretical fertilizer application rate is up to 5.91%, with the maximum value of the coefficient of variation (CV) of 10.18%. The indoor bench test shows that the relative error between the actual fertilizer application rate and the target fertilizer application rate within a single operating grid is up to 6.2%, with the maximum value of CV being 6.64%. The field test in the orchard showed that the maximum relative error between the actual fertilizer application and the target fertilizer application in a single operation grid was 6.3%, and the maximum value of CV was 12.34%, and the fertilizer application was completed in the operation grid, which demonstrated that the device was able to realize real-time and accurate variable fertilizer application according to the soil nutrient information.
基于土壤养分检测的变量施肥系统的设计与测试
为解决变量施肥系统与土壤养分含量检测相关性低、实时性不足等问题,开发了基于土壤养分含量实时检测的变量施肥系统。本文介绍了土壤信息采集与施肥系统的结构、工作原理和关键部件的设计。其中包括利用离散元法对施肥进行仿真和分析,以及弧形叶片施肥盘的选择。系统采用 STM32F429IGT6 微控制器和 ROS 高级计算机进行决策。设备实时检测土壤养分,相应调整施肥电机转速,并沿着规划路径自主运行。施肥量与施肥轮转速之间的决策系数 R^2 不小于 0.97,实际施肥量与理论施肥量之间的相对误差最大为 5.91%,变异系数(CV)最大值为 10.18%。室内台架试验表明,在单个操作网格内,实际施肥量与目标施肥量之间的相对误差最大为 6.2%,变异系数的最大值为 6.64%。果园实地测试表明,单个操作网格内实际施肥量与目标施肥量之间的最大相对误差为 6.3%,CV 最大值为 12.34%,且施肥均在操作网格内完成,表明该装置能够根据土壤养分信息实现实时、准确的变量施肥。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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