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Software Optimisation for Mechanised Sugarcane Planting Scenarios to Aid in Decision-Making

机译:机械化甘蔗种植场景的软件优化,以协助决策

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摘要

With advancements in the mechanisation of sugarcane farming, studies have been fundamental to improving the process-from soil preparation to harvest. Faced with increasing challenges of economic scenarios, alternatives should be sought aimed at optimising resources, reducing costs, improving operational efficiency, logistics, among others. Planting is one of the main agricultural operations, any deviation in this phase harms the crop during the crop cycle, so planning in advance the area to be planted is essential for better results. Analysis of better planting scenarios prior to harvest combined with the use of autopilot requires knowledge of the systematisation areas and skilled labour to guarantee the quality of the process and reduce losses and damages. The objective of this study is to both evaluate and optimise sugarcane planting scenarios based on travel and manoeuvre time, travel distance, number of manoeuvres, and fuel consumption. The study was conducted in the municipality of Tanabi, SP, during the 2013 planting season. The results showed fewer manoeuvres and longer planting lines in the optimised area, increased the availability of the machine and generated possible cost reduction.
机译:随着甘蔗种植机械化的进步,研究已经基础是改善过程 - 从土壤制剂收获。面临着越来越多的经济场景挑战,应寻求替代方案,旨在优化资源,降低成本,提高运营效率,物流等。种植是主要农业运营之一,这种阶段的任何偏差都损害了作物周期的作物,因此计划提前种植的区域对于更好的结果至关重要。在收获前更好地种植场景的分析与自动驾驶仪的使用相结合,需要了解系统化区域和技术劳动力,以保证流程的质量,减少损失和损害。本研究的目的是基于旅行和机动时间,旅行距离,机动数量和燃料消耗来评估和优化甘蔗种植场景。该研究在2013年种植季节在SP的Tanabi市中进行。结果表明,优化区域中的运动和种植线较长,增加了机器的可用性并产生了可能的成本降低。

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