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Archive | 2010

Aufbau und Belastung tribologischer Systeme

Jan Thomas Schumacher; Hubertus Murrenhoff

Die Tribologie ist laut DIN 50323 die Wissenschaft und Technik von aufeinander einwirkenden Oberflachen in Relativbewegung. Es werden die Teilgebiete Reibung, Verschleis und Schmierung von ihr behandelt.


International journal of fluid power | 2014

PhD theses completed in 2014

Rohit Hippalgaonkar; Stephan Scharf; Jan Thomas Schumacher; Olivier Reinertz; Jonathan J. Meyer; Muhammad Iftishah Ramdan; Ville Jouppila; Ying Chen; Christopher J. Westphal; Dhinesh Sangiah; Andrew R Plummer; Christopher R Bowen; Paul Guerrier; Davide Cristofori; Jiri Tuma; J. M. Bergada; Sushil Kumar

The objective of this work is to devise and evaluate various implementable power management schemes for a novel hydraulic hybrid architecture (called the displacement-controlled series-parallel (DC S-P) hybrid architecture) for mobile, multi-actuator machine systems, with reduced engine power. Specifically, the power management schemes proposed were applied to a proto-type mini-excavator on which the DC S-P hybrid architecture was implemented as part of this work. Previous work had demonstrated significant improvements in overall machine efficiency through transition from the current, standard load-sensing architecture to throttle-less, DC actuation. Measurements showed 40% fuel savings on a prototype, mini-excavator with DC actuation, over a standard mini-excavator in side-by-side testing. Hybridization (through use of hydraulic accumulators) enables storage and re-use of braking energy recovered from the swing drive (and in general, from the rotary actuators), and drastic engine downsizing. A feasibility study undertaken in simulation showed that with the use of a conservative power management scheme, the DC S-P hydraulic hybrid excavator with 50% reduced engine power, offered efficiency improvements over the prototype DC excavator. This work focuses primarily on implementable power management schemes for such hybrid hydraulic multiactuator machine systems with reduced engine power. A rule-based strategy was first studied that could exploit all available system degrees of freedom. This showed the potential to obtain higher fuel savings than the preliminary, conservative power management scheme wherein only one system degree of freedom was utilized, for both the parallel-hybrid DC architecture as well as the DC S-P hybrid architecture. Patterns in optimal state trajectories and control histories obtained from dynamic programming were also analyzed and identified for various cycles. The rule based approach lends itself well to replicate optimal results, while exploiting all system degrees of freedom. However, the rules employed for charging the accumulator through the primary unit vary with the duty cycle, and thus a practical solution entails offering the operator a set of rule-based supervisory controllers to choose from. An instantaneous optimization-based approach was also studied, wherein an equivalent fuel consumption objective is minimized at every instant. The strategy proposed, called the equivalent consumption minimization strategy (ECMS), is a promising cycle-independent approach for near-optimal, implementable power management, and approximating optimal behavior for parts of the duty cycle. Transition from the non-hybrid DC architecture on a prototype excavator toward the DC S-P hybrid hydraulic architecture was also achieved as part of this work. An appropriate motion control scheme for closed-loop speed control of the secondary-controlled swing drive was also designed and implemented on the prototype. Engine load-leveling or power limitation (by up to 50%) was demonstrated in measurement through the use of the single-point strategy in a digging cycle (albeit the engine was not actually downsized on the actual prototype). The minimum-speed strategy was also demonstrated on the prototype, where all system degrees of freedom were exploited (including engine speed variation) while maintaining engine power output near 50% engine power.


O + P : Fluidtechnik für den Maschinen- und Anlagenbau | 2015

Wear Characterization of Hydraulic Spool Valves by Means of Short Time Ageing Tests

Paul Weber; Hubertus Murrenhoff; Jan Thomas Schumacher


Archive | 2014

Alterungs- und Verschleißverhalten von Druckübertragungsmedien und hydraulischen Ventilen

Jan Thomas Schumacher; Hubertus Murrenhoff


O + P : Fluidtechnik für den Maschinen- und Anlagenbau | 2011

Hannover Messe 2011 im Rückblick. Trends und Highlights der Leitmesse Motion, Drive & Automation (MDA)

Claus Peter Enekes; Martin Inderelst; Jan Thomas Schumacher; Hubertus Murrenhoff; Stefan Gels; Olivier Reinertz; Heinrich Theissen; Nils Vatheuer; Johannes Schmitz; Dirk Schulze Schencking; Niko Robens


Tribology Online | 2010

Change of Coefficient of Friction due to Ageing of Biological Esters

Jan Thomas Schumacher; Oliver-Carlos Göhler; Hubertus Murrenhoff


Archive | 2010

Efficiency improvement of fluid power components focusing on tribological systems

Hubertus Murrenhoff; Oliver Pascal Heipl; Jan Thomas Schumacher; Stefan Gels; Alexander Wohlers; Claus Peter Enekes; Lars Leonhard


Archive | 2010

Gebrauchsbedingte Veränderung der Schmierstoffeigenschaften und Bewertung der Umweltverträglichkeit

Jan Thomas Schumacher; Jana Bressling; Wolfgang Dott; Sabrina Michael; Hubertus Murrenhoff


Archive | 2010

Development of an accelerated ageing test for hydraulic spool and poppet valves

Olivier Reinertz; Hubertus Murrenhoff; Jan Thomas Schumacher; Kristof Schlemmer


Archive | 2010

Simulation of oil ageing

Jan Thomas Schumacher; Christian Stammen; Oliver-Carlos Göhler; Hubertus Murrenhoff

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