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Integrated robust optimal design (IROD) of header height control system for combine harvester

机译:联合收割机割台高度控制系统的集成鲁棒优化设计(IROD)

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摘要

This paper presents an integrated control-structure design methodology that is robust to parametric variations and its application to the design of combine header height control. Traditional design process of controlled multibody systems is sequential wherein the structural design is accomplished first followed by the control design. Such sequential process can only provide suboptimal overall design and yield a suboptimal performance. In this paper, a sensitivity based integrated robust optimal design (IROD) methodology is used to determine optimal structural parameters concurrently with a controller with an objective of improving header height control performance for a combine harvester. The problem is to control the height of the heavy header assembly at a constant distance above the rough terrain to maximize the yield and efficiency during harvesting. The design methodology is demonstrated by choosing the pivot location of the hydraulic actuator on the header as a structural design parameter concurrently with controller parameters. The design obtained with this methodology was compared with the sequential design for tracking performance and robustness. It is shown that the integrated design obtained from IROD yields better performance, lower control power, and improved robustness than the sequential method. It also allows for higher vehicle speed and lower operational cost.
机译:本文提出了一种对参数变化具有鲁棒性的集成控制结构设计方法,并将其应用于联合收割机高度控制的设计中。受控多体系统的传统设计过程是顺序的,其中首先完成结构设计,然后是控制设计。这样的顺序过程只能提供次优的总体设计,并产生次优的性能。在本文中,基于灵敏度的集成鲁棒优化设计(IROD)方法用于与控制器同时确定最佳结构参数,目的是提高联合收割机的割台高度控制性能。问题在于将重型集管组件的高度控制在崎terrain地形之上的恒定距离处,以在收获期间最大程度地提高产量和效率。通过选择液压执行器在集管上的枢轴位置作为结构设计参数,同时选择控制器参数来演示该设计方法。用这种方法获得的设计与顺序设计进行了比较,以跟踪性能和鲁棒性。结果表明,与顺序方法相比,从IROD获得的集成设计具有更好的性能,更低的控制功率和更高的鲁棒性。它还允许更高的车速和更低的运营成本。

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