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Modeling and optimal control of a wheel loader in the lift-transport section of the short loading cycle

机译:短装载循环升力段轮式装载机的建模与最优控制

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Optimal control of a wheel loader operating in the short loading cycle is studied in order to investigate the potentials for fuel consumption reduction while maintaining acceptable production rates. The wheel loader is modeled as a system with five states and three control inputs including torque converter nonlinearities. The torque converter is modeled with no lockup enabling power transmission in both directions. The geometry of the wheel loader boom and the demanded force in the lift cylinders during lifting are used to ensure that the in-cylinder pressure remains below component's limits. The lift-transport section of the short loading cycle is divided into four phases due to discontinuities in the gearbox ratios and fuel consumption is calculated in each phase. Time optimal and fuel optimal transients of the system and the power consumption in each and every component is presented showing the dominance of the torque converter losses compared to the other components especially in the time optimal solutions. It is shown that introducing path constraints on the maximum lifting speed of the bucket due to limitations in hydraulic pumping speed moves the diesel engine operation towards higher speeds in order to maintain the lifting speed. Trade-off between fuel optimal and time optimal transients is calculated which is found to be in agreement with the results of experimental studies.
机译:研究了在短装载周期中操作的轮式装载机的最佳控制,以研究燃料消耗降低的电位,同时保持可接受的生产率。轮式装载机被建模为具有五种状态的系统和三个控制输入,包括变矩器非线性。转矩转换器采用无锁定在两个方向上启用电力传输。在提升期间,车轮装载机臂的几何形状和提升缸内要求的力量用于确保缸内压力仍然低于组件的限制。由于齿轮箱比中的不连续性,短装载循环的升降输送部分被分成四个阶段,并且在每个阶段计算燃料消耗。系统的最佳和燃料最佳瞬态和每个部件的功耗和每个部件的功耗显示,显示与其他组件相比的变矩器损耗的优势,特别是在最佳解决方案中。结果表明,由于液压泵速度的限制导致铲斗的最大提升速度的路径约束使柴油发动机操作朝向更高的速度移动以保持提升速度。计算燃料之间的折衷和时间最佳的瞬变,发现与实验研究结果一致。

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