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Andrea's Research |
Monika's Research
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OverviewThis
section provides a brief summary of the main fluid power research
topics performed by Andrea Vacca’s group. Goals of the activities span
from the numerical analysis of innovative components and the
development of novel testing methodologies to the study of control
aspects related to hydraulic systems. Studies concerning a proper
modeling of fluid properties have been performed as well. Research Topics: |
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External Gear Pumps/MotorsVarious projects have been performed in the area of external gear units. Purposes of these projects are: the development of accurate simulation models; the proposal of new solutions characterized by better efficiency and lower noise emissions; the development of innovative testing techniques. More details about these project are reported here (Download PDF).
HYGESim
The main result of the research activities in external gear machines is
given by the simulation tool HYGESim. HYGESim (HYdraulic GEar machines
Simulator) is a numerical model for the simulation of external spur
gear pumps and motors. Conceived at University of Parma (Italy) with
the support of the company CASAPPA, HYGESim is currently developed at
MAHA Fluid Power Research Center. |
xxx - Additional ResourcesDownload the extended description of the research on Gerotor Units at Maha: GPRs_Research@Maha.pdf (8.5MB) or stream the video:
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Gear Ring (Gerotor) Units
With
the support of MAGNA Powertrain the developed models have been
successfully validated with experimental results for different pump
designs for both, steady state and transient pump operation. |
Gerotor Units - Additional ResourcesDownload the extended description of the research on Gerotor Units at Maha: GPRs_Research@Maha.pdf (8.5MB) or stream the video:
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Systems/Components ModelingVarious activities have been performed concerning
the modeling and testing of hydraulic systems and components (with
particular reference to hydraulic valves). Some exemplifying projects
are reported here (Download PDF). In few cases, advanced optimization criteria have been used to improve current designs or to formulate new solutions. All developed models were validated on the basis of experimental measurements. For systems, the considered cases are pertinent to hydrostatic transmissions and to other hydraulic systems for mobile applications. In these cases, lumped parameters models were developed with the aim of analyzing the margin of improvements of current solutions and to design innovative systems.
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Gerotor Units - Additional ResourcesDownload the extended description of the research on Gerotor Units at Maha: GPRs_Research@Maha.pdf (8.5MB) or stream the video:
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Multi Purpose Test Rig for Automatic Components TestingMPTR is a versatile test rig for the automatic characterization of hydraulic systems, including: hydraulic pumps, motors, valves, actuators, and compact systems. The protective enclosure safely groups the parts constituting MPTR. From the outside, MPTR presents a working area to support the systems under testing and a series of hydraulic ports used to supply them, as well as a speed/torque controlled driveline. Once the test system is set up, experiments can be safely performed by the adjacent measurement room, provided with large window on the MPTR room and emergency stop button. Main features of MPTR are: • The central real-time FPGA control hardware acquires all the signals and performs the automation of the entire MPTR making possible the total automation of the tests and safety features. • Two temperature controlled hydraulic power supplies: Maha Unit: 6 fixed displacement pumps which can provide 200+ l/min (350 bar). Local Unit: 2 variable displacement pumps (tandem arrangement): flow control 0..130 l/min; pressure cut-off control 20..350 bar. • Driveline : Servomotor and regenerative AC drive (motor/brake operation): 93 kW; max torque ±220 Nm; speed ±4000rpm (peak ±6000 rpm). • Torque flange: angular reference encoder and torque meter. The most relevant functionalities of MPTR are currently available, and its final completion is expected by the end of 2012. | ![]() |
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