Author:
Millitzer Jonathan,Hansmann Jan,Lapiccirella Giovanni,Tamm Christoph,Herold Sven
Abstract
AbstractNumerical simulations offer a wide range of benefits, therefore they are widely used in research and development. One of the biggest benefits is the possibility of automated parameter variation. This allow testing different scenarios in a very short period of time. Nevertheless, physical experiments in the laboratory or on a test rig are still necessary and will still be necessary in the future. The physical experiments offer benefits e.g. for very complex and/or nonlinear systems and are needed for the validation of numerical models.Fraunhofer LBF has developed hardware solutions to bring the benefit of rapid and automated parameter variation to experimental environments. These solutions allow the tuning and emulation of the mechanical properties, like stiffness, damping and eigenfrequencies of structures.The work presents two approaches: First a stiffness tunable mount, which has been used in laboratory tests in the field of semi-active load path redistribution. It allowed the researcher to test the semi-active system under different mechanical boundary conditions in a short period of time. Second, a mechanical Hardware-in-the-loop (mHIL) approach for the NVH development of vehicles components is presented. Here a mHIL-system is used to emulate the mechanical characteristics of a vehicle’s body in white in a wide frequency range. This allows the experimental NVH optimization of vehicle components under realistic boundary conditions, without actually needing a (prototype) body in white.
Publisher
Springer International Publishing
Reference23 articles.
1. Oberkampf, W.L., Deland, S.M., Rutherford, B.M., Diegert, K.V., Alvin, K.F.: Error and uncertainty in modeling and simulation. Reliab. Eng. Syst. Saf. 75(3), 333–357 (2002)
2. Smith, R.C.: Uncertainty Quantification: Theory, Implementation, and Applications. Bd. 12. SIAM (2013)
3. Platz, R., Ondoua, S., Enss, G.C., Melz, T.: Approach to evaluate uncertainty in passive and active vibration reduction. In: Model Validation and Uncertainty Quantification, Volume 3: Proceedings of the 32nd IMAC, A Conference and Exposition on Structural Dynamics, pp 345–352. Springer International Publishing (2014)
4. Matthias, M., Friedmann, A., Koch, T., Drögemüller, T.: Active mounts for marine application; the BMBF research project “active aggregate mounts to reduce structure vibrations and structure-borne sound transmission. In: Proceedings of SPIE (2006)
5. Kraus, R.: Auslegung und Umsetzung eines Labordemonstrators zur aktiven Lagerung im Fahrwerksbereich eines Kraftfahrzeugs. Diplomarbeit, Fachhochschule Gießen-Friedberg (2010)
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献