Experimental Investigation of the Dynamics of a Slider-Crank Mechanism With Local Linear Force Input

Author:

Beckers Jarl12,Verrelst Bjorn3,Contino Francesco4,Van Mierlo Joeri56

Affiliation:

1. Thermo and Fluid Dynamics (FLOW) Faculty of Engineering, Vrije Universiteit Brussel (VUB), Pleinlaan 2, 1050 Brussels, Belgium;

2. Mobility Logistic and Automotive Technology Research Group (MOBI), Department of Electrical Engineering and Energy Technology (ETEC), Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium

3. Robotics & Multibody Mechanics, Research Group (R & MM), Faculty of Mechanical Engineering, Vrije Universiteit Brussel, Brussels 1050, Belgium

4. Institute of Mechanics, Materials and Civil Engineering (iMMC), Université Catholique de Louvain (UCLouvain), Place du Levant 2, 1348 Louvain-la-Neuve, Belgium

5. Mobility Logistic and Automotive Technology Research Group (MOBI), Department of Electrical Engineering and Energy Technology (ETEC), Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium;

6. Flanders Make, 3001 Heverlee, Belgium

Abstract

Abstract Conventional implementation of slider-crank mechanisms result in high loads transmitted through the mechanical structure, inhibiting the design of compact and oil-free machines. Therefore, this research proposes to step away from the conventional, i.e., rotative, actuation and to investigate local linear actuation on the slider-component directly, while maintaining the kinematic link of the slider-crank configuration. In this work, the local linear actuating principle is evaluated experimentally where the goal is to obtain a continuous movement of the slider mechanism where Top Dead Center & Bottom Dead Center are reached and to minimize the loads transmitted through the mechanical structure. The non-isochronous transient behavior of a slider-crank mechanism loaded with a spring-damper element is detailed as well as the optimal working conditions at steady-state to achieve a reduced loading of the kinematic structure. By matching the operating frequency and resonance frequency of the system, a reduction of the loads transmitted through the system by 63% of the nominal spring load can be achieved. Further experimental (and multibody mechanical) investigation on the influence of flywheel exposes a clear trade-off between the sensitivity of the system and the transmission of the actuation force through the kinematic link.

Funder

Vlaamse Overheid

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference23 articles.

1. Comparison Between a Crank-Drive Reciprocating Compressor and a Novel Oil-Free Linear Compressor;Liang;Int. J. Refrig.,2014

2. An Oil-Free Linear Compressor for Use With Compact Heat Exchangers;Bailey,2009

3. Optimal Dynamic Design of a Planar Slider-Crank Mechanism With a Joint Clearance;Varedi;Mech. Mach. Theory.,2015

4. A New Numerical Method for Planar Multibody System With Mixed Lubricated Revolute Joint;Zhao;Int. J. Mech. Sci.,2016

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