Wheel–Ground Interaction Test for Sugarcane Cargo Transshipments

IF 1.8 3区 农林科学 Q2 AGRONOMY
Aldir Carpes Marques Filho, Murilo Battistuzzi Martins, Simone Daniela Sartório de Medeiros, Lucas Santos Santana, Arthur Gabriel Caldas Lopes, Kléber Pereira Lanças
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Abstract

Sugarcane cultivation involves several operations with vehicle traffic. Tires for cargo vehicles are responsible for soil compaction, which is the main impact caused by machines in agriculture. Thus, the present research aimed to evaluate load wheelsets interaction on deformable and rigid running surfaces. We use three tire models used on transshipment vehicles to sugarcane crops, one road and two agricultures, described as p1, double road radial wheelset; p2, agricultural radial tire; and p3, bias ply tire. We adopted a completely randomized design with three replications, for the total contact area and punctual area claws. In the deformable surface, the resistance to soil penetration was verified. Road tires had the largest punctual contact area to the total area, the total area/punctual area ratio was 66.9% in double road radial tire (p1), 34.8% in agricultural radial tire (p2) and 54.8% in bias ply tire (p3). Road tires may be applicable in situations where traffic is controlled in the field; however, for areas where traffic control measures are not applied, the radial tire has better performance. In a deformable surface, the contact areas increase in relation to the rigid surface, this occurs due to the soil particles rearrangement, and this causes the compaction process. Higher soil penetration resistance was obtained by bias ply and road tires (p1 and p3), and their application must be careful in sugarcane crops, mainly under conditions of high soil moisture.

Abstract Image

甘蔗货物转运的轮地相互作用测试
甘蔗种植涉及多项与车辆交通有关的作业。货运车辆的轮胎会造成土壤板结,这是农业机械造成的主要影响。因此,本研究旨在评估负载轮组在可变形和刚性运行表面上的相互作用。我们使用了甘蔗作物转运车辆上使用的三种轮胎模型,一种公路轮胎和两种农用轮胎,分别描述为 p1,双路子午线轮组;p2,农用子午线轮胎;p3,斜交轮胎。我们采用了完全随机的设计,对总接触面积和点面积爪进行了三次重复。在可变形表面上,对土壤渗透阻力进行了验证。公路轮胎的点接触面积占总面积的比例最大,双层子午线轮胎(p1)的总面积/点接触面积比为 66.9%,农用子午线轮胎(p2)为 34.8%,斜交轮胎(p3)为 54.8%。公路轮胎可能适用于实地交通管制的情况;但对于未采取交通管制措施的地区,子午线轮胎的性能更好。在可变形的表面上,与刚性表面相比,接触面积会增大,这是由于土壤颗粒重新排列,从而导致压实过程。斜交轮胎和公路轮胎(p1 和 p3)具有更高的土壤渗透阻力,在甘蔗作物上应用时必须小心,主要是在土壤湿度较高的条件下。
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来源期刊
Sugar Tech
Sugar Tech AGRONOMY-
CiteScore
3.90
自引率
21.10%
发文量
145
期刊介绍: The journal Sugar Tech is planned with every aim and objectives to provide a high-profile and updated research publications, comments and reviews on the most innovative, original and rigorous development in agriculture technologies for better crop improvement and production of sugar crops (sugarcane, sugar beet, sweet sorghum, Stevia, palm sugar, etc), sugar processing, bioethanol production, bioenergy, value addition and by-products. Inter-disciplinary studies of fundamental problems on the subjects are also given high priority. Thus, in addition to its full length and short papers on original research, the journal also covers regular feature articles, reviews, comments, scientific correspondence, etc.
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