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Development and field testing of an integrated sensor for on-the-go measurement of soil mechanical resistance

机译:用于持续测量土壤机械阻力的集成传感器的开发和现场测试

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Within-field variability of soil physical and chemical properties is generally regarded as the main causes contributing to variability in crop yield. High soil strength due to soil compaction has been recognized as an important negative factor in crop growth and yield. Measurement of soil strength is a common indirect measure of soil compaction. In this research, an integrated sensor - consisted of vertical and horizontal sensors - was developed and evaluated. The vertical sensor was a 60-cm diameter instrumented disk coulter with an ultrasonic distance sensor for measuring the penetrating depth of the coulter into the topsoil layer in a depth range of 0-20 cm. For measuring the soil mechanical resistance at two discrete depths (20 and 30 cm), a horizontal penetrometer with two 30 prismatic tips was integrated with the disk coulter. The integrated sensor was tested in a field with silty clay loam soil and at two gravimetric water contents (WCs) of 6 (low) and 13.5% (medium) in three replications. At the time of testing, standard soil cone penetrometer measurements along the same transects were also taken and the cone index (CI) was calculated. The results showed that the penetrating depth of the disk coulter was sensitive to changes in surface soil strength. At low WC, the measured horizontal soil resistance index (HRI) at each depth with/without vertical sensor was the same and therefore its value was independent of soil failure induced by the disk coulter ahead of the prismatic tips. However, at medium WC, due to deep penetration of the disk coulter and thus, probably reduction of geostatic pressure, the measured HRI at the depth of 20 cm with vertical sensor was decreased. To minimize the interaction of the coulter-induced failure zone with the upper tip, it is suggested that to install the disk coulter in offset position relative to the shank of the horizontal penetrometer. A significant negative linear relation between the operating depth of the disk coulter and the CI was found. Also, the relationships between the HRI and CI at both depths were significantly linear. Therefore, with offset positioning the sensors on the frame, the developed integrated sensor could be used to map the mechanical resistance of a soil profile to a depth of 30 cm.
机译:土壤理化性质的田间变异通常被认为是造成作物产量变异的主要原因。由于土壤压实而导致的高土壤强度已被认为是作物生长和产量的重要不利因素。测量土壤强度是土壤压实的常见间接测量方法。在这项研究中,开发并评估了由垂直和水平传感器组成的集成传感器。垂直传感器是直径为60厘米的仪表盘式犁刀,带有超声波距离传感器,用于测量犁刀在0-20厘米深度范围内进入表土层的穿透深度。为了测量两个离散深度(20和30 cm)的土壤机械阻力,将带有两个30个棱形尖端的卧式针入度计与圆盘犁刀集成在一起。集成传感器在粉质粘土壤土和两个重量水含量(WCs)为6(低)和13.5%(中)的田间进行了三次重复测试。在测试时,还对沿同一样条进行的标准土壤锥入渗度计进行了测量,并计算了锥度指数(CI)。结果表明,圆盘犁刀的穿透深度对表土强度的变化敏感。在低WC下,使用/不使用垂直传感器在每个深度处测得的水平土壤阻力指数(HRI)相同,因此其值与由棱形尖端前面的圆盘犁刀引起的土壤破坏无关。但是,在中等WC时,由于圆盘犁刀的深度穿透,因此可能降低了地静压力,因此使用垂直传感器在20 cm深度处测得的HRI降低了。为了使库尔特犁刀引起的失效区域与上端的相互作用最小化,建议将圆盘犁刀安装在相对于水平针入度计的柄的偏移位置。发现圆盘犁刀的操作深度与CI之间存在显着的负线性关系。而且,两个深度处的HRI和CI之间的关系均呈线性关系。因此,通过将传感器偏移定位在框架上,可以使用开发的集成传感器将土壤剖面的机械阻力映射到30 cm的深度。

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