Hydraulic and Pneumatic Systems Open access Peer reviewed

Energy Consumption Optimization of Single-Action Operation in Distributed Independent Pump-Controlled Excavator Based on Pump Speed Distribution and GOA-SQP Closed-Loop Algorithm

Shoulei Ma, Maoqiang Jiang, Chenbo Yin, Chao Yang and 1 more

Machines | Jul 14, 2026

Abstract

Abstract

Distributed independent pump-controlled systems enhance excavator energy efficiency by reducing throttling losses, but sustained high-load and high-speed operation often forces a single pump into low-efficiency regions. To overcome this limitation, this study proposes a dual-pump load-sharing architecture that enables load sharing and dynamic cooperative operation of two pumps within the high-efficiency region. An adaptive closed-loop GOA-SQP optimization strategy is also developed for real-time pump speed distribution. The proposed strategy combines the global exploration capability of the Grasshopper Optimization Algorithm (GOA) with the rapid local convergence characteristics of Sequential Quadratic Programming (SQP). Unlike conventional serial hybrid optimization methods, a bidirectional efficiency-feedback mechanism is introduced to dynamically coordinate global exploration and local refinement processes in real time. Furthermore, a local perturbation and re-explosion mechanism is incorporated to suppress premature convergence, enhance population diversity, and reduce redundant iterations. Experimental validation on an excavator test platform under four-quadrant conditions shows that the proposed system improves mechanical, volumetric, and overall pump efficiencies by 14.22, 4.57, and 18.79 percentage points, respectively, and reduces total energy consumption by 8.83%. Compared with GOA, SQP, GA-SQP, and PSO-SQP, the proposed GOA-SQP algorithm reduces solution time by 39.15% and improves optimization accuracy by 0.5%. The proposed architecture and optimization strategy offer a novel and effective solution for further improving the energy efficiency of distributed independent pump-controlled excavator systems.

Direct answer

What can I do from this paper page?

Use this page to scan "Energy Consumption Optimization of Single-Action Operation in Distributed Independent Pump-Controlled Excavator Based on Pump Speed Distribution and GOA-SQP Closed-Loop Algorithm" quickly: start with the summary and abstract, then check the authors, source, topics, and related papers. From here, open Scollr to follow Hydraulic and Pneumatic Systems research, save the paper, or map adjacent work.

Authors

Researchers on this paper

Shoulei Ma

first | Nanjing Tech University

Maoqiang Jiang

middle | Nanjing Tech University

Chenbo Yin

middle | Nanjing Tech University

Chao Yang

middle | Nanjing Tech University

Donghui Cao

last | Sany (China)

Research areas

Follow related topics

Citation

BibTeX

@article{Ma2026Energy,
  title = {Energy Consumption Optimization of Single-Action Operation in Distributed Independent Pump-Controlled Excavator Based on Pump Speed Distribution and GOA-SQP Closed-Loop Algorithm},
  author = {Shoulei Ma and Maoqiang Jiang and Chenbo Yin and Chao Yang and Donghui Cao},
  journal = {Machines},
  year = {2026},
  doi = {10.3390/machines14070798},
  url = {https://doi.org/10.3390/machines14070798}
}

FAQ

Using this paper in a discovery workflow

How do I find related work for this paper?

Use the related papers and topic links on this page as starting points. In Scollr, you can also open the paper and build a literature map around its references, citing papers, and related work.

How can I keep up with new Hydraulic and Pneumatic Systems research papers?

Follow Hydraulic and Pneumatic Systems research in Scollr. New papers from the topic flow into a personalized feed, and you can save useful studies to revisit later.

Can I cite this paper from this page?

This page includes a static BibTeX block for Energy Consumption Optimization of Single-Action Operation in Distributed Independent Pump-Controlled Excavator Based on Pump Speed Distribution and GOA-SQP Closed-Loop Algorithm. Always verify the DOI, source, and publication details against the publisher record before submitting a manuscript.

Follow this research in Scollr

Follow the topics and authors behind this paper, save useful studies, and build a literature map when you are ready to go deeper.

Get the app