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首页> 外文期刊>Transactions of the ASABE >SENSING MISCANTHUS STEM BENDING FORCE FOR MAXIMIZING THROUGHPUT RATE IN A DISK MOWER-CONDITIONER
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SENSING MISCANTHUS STEM BENDING FORCE FOR MAXIMIZING THROUGHPUT RATE IN A DISK MOWER-CONDITIONER

机译:最大化盘式空调器中的吞咽速率的感应猕猴弯曲力

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摘要

One of the reasons for relatively high biomass harvesting cost is challenges in adjusting the ground speed of harvesting machines with respect to the yield level within a field A real-time biomass yield sensor that can predict the yield in front of a machine could be a useful tool to control ground speed. It was hypothesized that the force required to bend Miscanthus stems is a reliable predictor of biomass yield. Based on this novel concept, a stem bending force-sensing system was developed and field tested with a disk mower-conditioner A bale-specific method, segmenting the field area from which a bale was formed, was developed to correlate sensed bending force and Miscanthus yield The measured bending force showed a logarithmic relationship (R-2 = 0.80) with Miscanthus yield The average error in predicting bale-specific yield was 10.3% for training data and 12.9% for validation data. The average error in predicting plot yield was 3.4% for training plots and 10.0% for validation plots. Using the developed logarithmic correlation model, yield maps were also generated For the specific case analyzed, a proper control strategy to maximize throughput rate (mass per unit time) would be to either operate the mower-conditioner at the maximum feasible ground speed (9 km h(-1)) or at the maximum achievable throughput rate (60 Mg h(-1)). The yield-sensor controlled machine would result in 44.2% higher field capacity, 41.3% higher throughput rate, and 31.2% lower mowing-conditioning cost for the specific case analyzed compared to the operator-controlled machine. Studies are needed to extend the stem bending force-sensing concept to other thick-stemmed crop harvesting machines, such as sugarcane harvesters and coppice harvesters.
机译:相对较高的生物质收割成本的原因之一是相对于田间的产量水平调整收割机的地面速度方面的挑战。可以预测机器前的产量的实时生物质产量传感器可能是有用的。控制地面速度的工具。假设弯曲芒草茎所需的力是生物量产量的可靠预测指标。基于这一新概念,开发了茎弯曲力感测系统,并使用盘式割草机调节器进行了现场测试。针对草捆的特定方法,将形成草捆的田间区域进行了分割,从而将感测到的弯曲力与芒草相关联。屈服测得的弯曲力与芒草的屈服呈对数关系(R-2 = 0.80)。训练数据预测大包特定屈服的平均误差为10.3%,而验证数据为12.9%。训练地块的预测地块产量的平均误差为3.4%,而验证地块的平均误差为10.0%。使用开发的对数相关模型,还生成了产量图。对于所分析的特定情况,使生产率(最大单位时间质量)最大化的正确控制策略是使割草机调节器以最大可行地面速度(9 km)运行。 h(-1))或以最大可达到的吞吐率(60 Mg h(-1))。与操作员控制的机器相比,产量传感器控制的机器将使所分析的特定情况下的田间生产能力提高44.2%,生产率提高41.3%,割草调节成本降低31.2%。需要进行研究以将茎弯曲力感测概念扩展到其他厚茎作物收割机,例如甘蔗收割机和小灌木林收割机。

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