U. of Salford
Structure-borne sound transmission within electric power steering systems
Abstract
dc:description.abstractTransfer path analysis (TPA) is an established and valuable tool in the automotive industry, todetermine the contributions of structure-borne sound sources to receiver responses at target positions.The classical TPA approach is based on contact forces at the interface between sourceand receiver to characterise the dynamic loads induced by the source and frequency responsefunctions (FRFs) to quantify the transfer paths of the sound from the interface locations to thetarget positions. With knowledge of the determined contributions it is then possible to decidewhether source loads or FRFs must be improved to optimise the target quantities. Recently a timesaving improvement to classical TPA has been proposed, where the loads arecharacterised using the in-situ blocked force method, so that dismantling of source and receiveris not necessary. This method is therefore called in-situ TPA. However, if the contributions ofinternal structure-borne sound sources to the overall vibro-acoustic behaviour of a product aredesired it is of benefit if the target quantities are blocked forces. Thus it would be possible tovirtually couple the product with the properties of an overall receiver. Therefore this thesis presentsa TPA approach called “blocked force transmissibility transfer path analysis” (bfTPA). Inthis context, the proposed internal-source-path-receiver-model (ISPRM) poses the theoreticalbasis of bfTPA. The aim of the presented novel TPA is to determine the contribution of internalstructure-borne sound sources to an overall target quantity of a product. The presented approachuses the vector of in-situ blocked forces measured externally at the contact interface of theoverall product and a corresponding set of “blocked force transmissibility” (BFT) functionsrelating the external coupling degrees of freedom (DOFs) to the internal source DOFs in order to propagate the external in-situ blocked forces back to multiple internal in-situ blocked forces.To prove the methodology of the presented approach three case studies, which increase in complexity,were carried out experimentally. The case studies concern a beam and an electric powersteering system with paraxial servo unit (EPSapa), respectively. EPSapa systems consist of multiple embedded vibrational components which are defined as“internal sources”. The electric motor, the ball nut assembly and the toothed belt are identifiedas the main internal sources of an EPSapa system. Hence they are characterised by means ofexperimentally determined blocked forces. For the determination, micro electro mechanicalsystems (MEMS) accelerometers are embedded at the so called “internal interfaces”. This posesa novel application of the in-situ method in combination with the dealing of continuous andrevolving internal interfaces. Concluding a further application of the bfTPA methodology is presented. It allows the externalin-situ blocked forces of EPS systems or other products to be predicted based on internal insitublocked forces and the BFT functions within internal receivers such as housings, for instance.Hence, the proposed approach is called “virtual component assembly”. It offers the advantageto synthesize a virtual EPS system based on the in-situ blocked forces of its componentswhich are determined on test benches.
Degree
thesis:*- Level dc:type.qualificationlevel
- Doctoral (Level 8)
- Year dc:date.issued
- 2026
Author and committee
dc:creator, dc:contributor.*- Author dc:creator
-
- Zabel, DF
Rights
- Language dc:language
- en
Identifiers
dc:identifier.*- Identifier
- oai:salford-repository.worktribe.com:1378766
- OAI identifier oai:identifier
- oai:salford-repository.worktribe.com:1378766