使用数字排量泵的泵控液压系统优化

IF 0.7 Q4 ENGINEERING, MECHANICAL International Journal of Fluid Power Pub Date : 2021-11-20 DOI:10.13052/ijfp1439-9776.2313
L. Larsson, Robert Lejonberg, Liselott Ericson
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引用次数: 1

摘要

在为工作机器通电时,节能操作是最大限度地利用有限容量车载电池的关键。先前的研究表明,通过组件和系统设计可以实现高节能。相比之下,本文侧重于如何通过设计和控制优化来最大限度地提高能源效率。基于仿真的优化和动态编程用于为配备泵控制的挖掘机找到最佳电机速度轨迹和部件尺寸,该泵由具有动态流量共享的数字排量泵实现。结果表明,实现低泵速的硬件配置和控制策略将寄生部件的阻力损失降至最低,部分原因是泵和电动机的相对较高且与操作点无关的效率。指出了5–10%的循环能量减少,其中获得的较高数字用于同时进行设计和控制优化。对于其他液压强度更大的应用,如挖掘机,预计会有更大的减少。
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Optimisation of a Pump-Controlled Hydraulic System using Digital Displacement Pumps
When electrifying working machines, energy-efficient operation is key to maximise the use of the limited capacity of on-board batteries. Previous research indicate high energy savings by means of component and system design. In contrast, this paper focuses on how to maximise energy efficiency by means of both design and control optimisation. Simulation-based optimisation and dynamic programming are used to find the optimal electric motor speed trajectory and component sizes for a scooptram machine equipped with pump control, enabled by digital displacement pumps with dynamic flow sharing. The results show that a hardware configuration and control strategy that enable low pump speed minimise drag losses from parasitic components, partly facilitated by the relatively high and operation point-independent efficiencies of the pumps and electric motor. 5–10% cycle energy reductions are indicated, where the higher figure was obtained for simultaneous design and control optimisation. For other, more hydraulic-intense applications, such as excavators, greater reductions could be expected.
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来源期刊
International Journal of Fluid Power
International Journal of Fluid Power ENGINEERING, MECHANICAL-
CiteScore
1.60
自引率
0.00%
发文量
16
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