Modelling of Moving Coil Actuators in Fast Switching Valves Suitable for Digital Hydraulic Machines

Christian Nørgård, Daniel Beck Roemer, Michael Møller Bech

Publikation: Bidrag til bog/antologi/rapport/konference proceedingKonferenceartikel i proceedingForskningpeer review

5 Citationer (Scopus)

Abstract

The efficiency of digital hydraulic machines is strongly dependent on the valve switching time. Recently, fast switching have been achieved by using a direct electromagnetic moving coil actuator as the force producing element in fast switching hydraulic valves suitable for digital hydraulic machines. Mathematical models of the valve switching, targeted for design optimisation of the moving coil actuator, are developed. A detailed analytical model is derived and presented and its accuracy is evaluated against transient electromagnetic finite element simulations. The model includes an estimation of the eddy currents generated in the actuator yoke upon current rise, as they may have significant influence on the coil current response. The analytical model facilitates fast simulation of the transient actuator response opposed to the transient electro-magnetic finite element model which is computationally expensive. Fast simulation of
the problem is crucial for optimising the switching valves, especially when using several design variables in an optimisation algorithm.
OriginalsprogEngelsk
TitelProceedings of the 2015 ASME Fluid Power and Motion Control, FPMC’15
Antal sider10
ForlagAmerican Society of Mechanical Engineers
Publikationsdatookt. 2015
Sider1-10
ISBN (Elektronisk)978-0-7918-5723-6
DOI
StatusUdgivet - okt. 2015
Begivenhed2015 ASME Fluid Power and Motion Control, FPMC’15 - Chicago, Illinois, USA
Varighed: 12 okt. 201514 okt. 2015

Konference

Konference2015 ASME Fluid Power and Motion Control, FPMC’15
Land/OmrådeUSA
ByChicago, Illinois
Periode12/10/201514/10/2015

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