The traction system of heavy equipment is a key part of the heavy engineering machinery and the traction ability of the heavy engineering machinery have high requirements for the overload capacity, reliability, maintainability, cost, and other aspects of the walking part. With the development of electrohydraulic technology, the traction technology of heavy equipment has also been continuously improved and the driving mode of the traction part has also developed from hydraulic driving to AC variable frequency driving. Engineering machinery is early generally driven by a fuel engine through a transmission shaft, gearbox, drive axle, and wheel reducer to complete the equipment. Heavy truck, bulldozer, tunneling machines, anchor excavators and shuttle trucks are commonly used heavy equipment in mechanized mining and rapid excavation of mines. Their traction performance plays a crucial role in improving the efficiency of working face excavation. This paper introduces the traction system of heavy equipment and compares the hydraulic drive system and electric traction drive system for them. The design scheme of the electric control system and the traction converter system is analyzed and a optimization scheme of the traction converter system is proposed. The optimized frequency converter adopts a modular assembly structure, which is convenient for installation, debugging, and after-sales service. Field application shows that the optimized frequency conversion system improves production efficiency and reduces failure rate.
Published in | Journal of Energy and Natural Resources (Volume 12, Issue 1) |
DOI | 10.11648/j.jenr.20231201.12 |
Page(s) | 7-11 |
Creative Commons |
This is an Open Access article, distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution and reproduction in any medium or format, provided the original work is properly cited. |
Copyright |
Copyright © The Author(s), 2023. Published by Science Publishing Group |
Heavy Engineering Machinery, Tracking Drive Unit, Converter, Development Optimization
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APA Style
Tian Kejun. (2023). Development and Optimization of Traction System for Heavy Engineering Machinery. Journal of Energy and Natural Resources, 12(1), 7-11. https://doi.org/10.11648/j.jenr.20231201.12
ACS Style
Tian Kejun. Development and Optimization of Traction System for Heavy Engineering Machinery. J. Energy Nat. Resour. 2023, 12(1), 7-11. doi: 10.11648/j.jenr.20231201.12
AMA Style
Tian Kejun. Development and Optimization of Traction System for Heavy Engineering Machinery. J Energy Nat Resour. 2023;12(1):7-11. doi: 10.11648/j.jenr.20231201.12
@article{10.11648/j.jenr.20231201.12, author = {Tian Kejun}, title = {Development and Optimization of Traction System for Heavy Engineering Machinery}, journal = {Journal of Energy and Natural Resources}, volume = {12}, number = {1}, pages = {7-11}, doi = {10.11648/j.jenr.20231201.12}, url = {https://doi.org/10.11648/j.jenr.20231201.12}, eprint = {https://article.sciencepublishinggroup.com/pdf/10.11648.j.jenr.20231201.12}, abstract = {The traction system of heavy equipment is a key part of the heavy engineering machinery and the traction ability of the heavy engineering machinery have high requirements for the overload capacity, reliability, maintainability, cost, and other aspects of the walking part. With the development of electrohydraulic technology, the traction technology of heavy equipment has also been continuously improved and the driving mode of the traction part has also developed from hydraulic driving to AC variable frequency driving. Engineering machinery is early generally driven by a fuel engine through a transmission shaft, gearbox, drive axle, and wheel reducer to complete the equipment. Heavy truck, bulldozer, tunneling machines, anchor excavators and shuttle trucks are commonly used heavy equipment in mechanized mining and rapid excavation of mines. Their traction performance plays a crucial role in improving the efficiency of working face excavation. This paper introduces the traction system of heavy equipment and compares the hydraulic drive system and electric traction drive system for them. The design scheme of the electric control system and the traction converter system is analyzed and a optimization scheme of the traction converter system is proposed. The optimized frequency converter adopts a modular assembly structure, which is convenient for installation, debugging, and after-sales service. Field application shows that the optimized frequency conversion system improves production efficiency and reduces failure rate.}, year = {2023} }
TY - JOUR T1 - Development and Optimization of Traction System for Heavy Engineering Machinery AU - Tian Kejun Y1 - 2023/05/18 PY - 2023 N1 - https://doi.org/10.11648/j.jenr.20231201.12 DO - 10.11648/j.jenr.20231201.12 T2 - Journal of Energy and Natural Resources JF - Journal of Energy and Natural Resources JO - Journal of Energy and Natural Resources SP - 7 EP - 11 PB - Science Publishing Group SN - 2330-7404 UR - https://doi.org/10.11648/j.jenr.20231201.12 AB - The traction system of heavy equipment is a key part of the heavy engineering machinery and the traction ability of the heavy engineering machinery have high requirements for the overload capacity, reliability, maintainability, cost, and other aspects of the walking part. With the development of electrohydraulic technology, the traction technology of heavy equipment has also been continuously improved and the driving mode of the traction part has also developed from hydraulic driving to AC variable frequency driving. Engineering machinery is early generally driven by a fuel engine through a transmission shaft, gearbox, drive axle, and wheel reducer to complete the equipment. Heavy truck, bulldozer, tunneling machines, anchor excavators and shuttle trucks are commonly used heavy equipment in mechanized mining and rapid excavation of mines. Their traction performance plays a crucial role in improving the efficiency of working face excavation. This paper introduces the traction system of heavy equipment and compares the hydraulic drive system and electric traction drive system for them. The design scheme of the electric control system and the traction converter system is analyzed and a optimization scheme of the traction converter system is proposed. The optimized frequency converter adopts a modular assembly structure, which is convenient for installation, debugging, and after-sales service. Field application shows that the optimized frequency conversion system improves production efficiency and reduces failure rate. VL - 12 IS - 1 ER -