3D-Master-Leitungssatz – Virtuelle Produkt-entwicklung von Automobilleitungssätzen/3D-Master Wiring Harness – Virtual Product Design of Automotive Wiring Harness as Combination of Installation Space- and Product Orientation

Konstruktion ◽  
2018 ◽  
Vol 70 (05) ◽  
pp. 71-75
Author(s):  
Jonas Neckenich ◽  
Rajeeth Tharma ◽  
Roland Winter ◽  
Michael Vielhaber

Inhalt: Die Fokussierung auf eine 3D-orientierte Produktentwicklung wird immer wichtiger. Im Entwicklungsprozess des Leitungssatzes treffen dabei bauraumorientierte 3D-Entwicklung und produktorientierte 2D-Entwicklung aufeinander. Mit dem Konzept des 3D-Master-Leitungs-satzes werden alle notwendigen Informationen des Kabelbaums direkt im 3D-Modell verfügbar. Neben einem Kurzabriss über die Digitale Entwicklung und die Besonderheiten des Leitungssatzes wird das Konzept des 3D- Master-Leitungssatzes erläutert und sein Nutzen für die Folgeprozesse aufgezeigt.

2017 ◽  
Vol 32 (1) ◽  
pp. 28-42 ◽  
Author(s):  
Petros Chamakiotis ◽  
Niki Panteli

2008 ◽  
pp. 449-473
Author(s):  
Xuan F. Zha

In this Chapter, a novel integrated intelligent framework is first proposed for virtual engineering design and development based on the soft computing and hybrid intelligent techniques. Then, an evolutionary neuro-fuzzy (EFNN) model is developed and used for supporting modeling, analysis and evaluation, and optimization tasks in the design process, which combines fuzzy logic with neural networks and genetic algorithms. The developed system HIDS-EFNN provides a unified integrated intelligent environment for virtual engineering design and simulation. The focus of this Chapter is to present a hybrid intelligent approach with evolutionary neuro-fuzzy modeling and its applications in virtual product design, customization and simulation (product performance prediction). Case studies are provided to illustrate and verify the proposed model and approach.


Author(s):  
Sandro Wartzack ◽  
Tina Schröppel ◽  
Alexander Wolf ◽  
Jörg Miehling

AbstractTo successfully facilitate user-centred design, a multitude of different aspects has to be considered, from purely physiological to psychological-emotional factors. The overall aim is to increase the customer satisfaction by enhancing the fit between products and their users in the respective context of use. Further virtualisation of user-centred design processes holds the potential to convey the concepts of frontloading and predictive engineering from classical product engineering. Our vision is to facilitate a comprehensive consideration of user-product interactions in virtual product engineering operationalised by the mission to develop methods and tools to assess and design user-product interactions according to physiological and psychological aspects. A variety of work has already been done to model musculoskeletal user groups, to configure, predict, simulate and optimise physical user-product interactions, to integrate such models into CAD or to map individual subjective values to product design. Nevertheless, there are still research areas to be addressed to enable a comprehensive implementation of the mentioned approach. These are discussed in the present contribution.


Author(s):  
C. E. Catalano ◽  
B. Falcidieno ◽  
M. Attene ◽  
F. Robbiano ◽  
M. Spagnuolo

This paper explores a promising framework, the ShapeAnnotator, for the semantic annotation of 3D objects in the context of Product Design. The ShapeAnnotator provides the functionalities that allow the user to load a suitable formalization of relevant concepts and to annotate, or tag, a virtual product model, or its parts, with these concepts (markup). Moreover, the ShapeAnnotator provides tools that support the users in the identification and selection of the relevant parts in the virtual product model (segmentation toolbox). An ad hoc form feature ontology has been developed and a specific application scenario has been set up for the validation of the approach in the reverse engineering scenario. Through the ShapeAnnotator, objects can be described by semantic annotations and also its meaningful features can be explicitly described independently and further characterized by specific attributes and relations with other parts and/or features. The contextualization of the ShapeAnnotator for Product Design is the first step towards the integration of knowledge formalization and geometric reasoning techniques, which will support the interoperability in the Product Development Process.


Author(s):  
Lucia Mosch ◽  
Andre´ Sprenger ◽  
Reiner Anderl

In design, manufacturing and usage of technical products uncertainty arises according to process properties and results in influence of products properties. In current CAD-systems, where products and product properties are presented, uncertainty is not considered yet. In this paper, we propose a new enhanced concept for the visualization of information about uncertainty in CAD-systems. The presentation of uncertainty is realized on basis of three-dimensional parametric models in a CAD-system and an implemented uncertainty-browser. The uncertainty-browser acts as a graphical user interface to categorize information about uncertainty, the processes and product properties. Beyond that, information about uncertainty will be visualized as annotations referring to chosen properties. Being aware of information about uncertainty during product design, the engineer is able to improve his product. The representation of uncertainty is based on an ontology based information system for supporting the collection and categorization of information about processes, products and uncertainty.


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