Development of a displacement controlled boom service for an excavator with a digital displacement pump motor
dc.contributor.advisor
Rampen, W.
dc.contributor.advisor
Abrahams, Daniel
dc.contributor.advisor
Peterson, Brian
dc.contributor.author
Hutcheson, John
dc.date.accessioned
2025-01-07T15:45:23Z
dc.date.available
2025-01-07T15:45:23Z
dc.date.issued
2025-01-07
dc.description.abstract
This thesis documents the development of a displacement controlled boom system for an excavator using a Digital Displacement Pump Motor. A review of the literature indicated that displacement controlled open circuit hydraulic systems showed promise for reducing fuel consumption in mobile machines. By applying a Digital Displacement Pump Motor to an excavator boom, this thesis expands on this research and fills a gap in the literature.
The round trip efficiency of a Digital Displacement Pump Motor when controlling the motion of a loaded cylinder was measured. A detailed efficiency analysis of the pump was conducted under varying system pressures, displacements, and shaft speeds. The range of efficiencies measured was between 63% and 87%. The study provides valuable insights into the system efficiency of a Digital Displacement Pump Motor controlling a hydraulic cylinder in open circuit displacement control.
A valve arrangement and control software was developed for controlling an excavator boom in open circuit displacement control with a Digital Displacement Pump Motor. A key component of this work involved characterising various valve types and developing a custom valve block, known as an H-Bridge. This approach allowed the incorporation of multiple control modes into a single system, enabling more flexibility in terms of control options. Two innovative control strategies—discrete throttling and differential lowering—were introduced and investigated. Both strategies leveraged the pump's ability to rapidly change its flow output, demonstrating that these mode switches would be possible with simple switching valves instead of proportional valves.
The system was tested on a JS160 excavator to assess single function performance and the impact on fuel savings during standardised testing. The lack of pump/motor on the excavator meant that motoring could not be directly tested however the tests quantified the recoverable energy during various drive cycles through use of a motoring simulator device. A simulation study gave insights into how the system efficiency could be further improved by increasing hose sizes and fitting less restrictive hose burst valves. Energy recovery efficiency from the boom was measured to be 31% during the JCMAS testing however the simulation showed that this could be increased to as much as 64% if these changes were made.
Ultimately the research presents several contributions to the field of hydraulic excavator systems and the application of Digital Displacement Pump Motors, opening avenues for future research and refinement. The findings highlight the potential of Digital Displacement technology and open circuit displacement controlled systems to improve the efficiency and performance of hydraulic excavators, leading to reduced CO₂ emissions and a more sustainable future for construction machinery.
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dc.identifier.uri
https://hdl.handle.net/1842/42970
dc.identifier.uri
http://dx.doi.org/10.7488/era/5521
dc.language.iso
en
en
dc.publisher
The University of Edinburgh
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dc.relation.hasversion
W. Rampen, D. Dumnov, J. Taylor, H. Dodson, J. Hutcheson, and N. Caldwell, “A Digital Displacement Hydrostatic Wind-turbine Transmission,” International Journal of Fluid Power, pp. 87–112, May 2021. [Online]. Available: http://journals.riverpublishers. com/index.php/IJFP/
en
dc.relation.hasversion
J. Hutcheson, D. Abrahams, J. Macpherson, N. Caldwell, and W. Rampen, “Demonstration of Efficient Energy Recovery Systems Using Digital Displacement® Hydraulics,” in BATH/ASME 2020 Symposium on Fluid Power and Motion Control. Virtual, Online: American Society of Mechanical Engineers, Sep. 2020, p. V001T01A033. [Online]. Available: https://asmedigitalcollection.asme.org/FPST/ proceedings/FPMC2020/83754/Virtual,%20Online/1088968
en
dc.relation.hasversion
J. Hutcheson, D. Abrahams, M. Green, and W. Rampen, “Motion Control of a Hydraulic Cylinder with a Digital Displacement Pump- Motor,” in Fluid Power: Digital, Reliable, Sustainable, Aachen, Germany, Jun. 2022. [Online]. Available: https://www.hp-aachen.de/pdf/13th_IFK_Proceedings_Open-Access.pd
en
dc.relation.hasversion
J. Hutcheson, M. Pellegri, W. Rampen, and N. Caldwell, “Design of a Displacement-Controlled Boom Service for an Excavator Using a Digital Displacement Pump,” in Proceedings of 11th Workship on Digital Fluid Power, Edinburgh, Scotland, 2022
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dc.subject
efficiency
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dc.subject
hydraulic system for excavators
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dc.subject
Digital Displacement Pump Motor
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dc.subject
energy recovery efficiency
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dc.subject
H-Bridge
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dc.subject
discrete throttling
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dc.subject
differential lowering
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dc.subject
performance
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dc.subject
fuel savings
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dc.title
Development of a displacement controlled boom service for an excavator with a digital displacement pump motor
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dc.type
Thesis or Dissertation
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dc.type.qualificationlevel
Doctoral
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dc.type.qualificationname
PhD Doctor of Philosophy
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