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Challenges for Digital Product and Process Design Systems at BMW

机译:宝马数字产品和工艺设计系统的挑战

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The methods of model based product development are today well understood by industry across branches as in automotive and aerospace including their supply chain. Actual challenges of these industries however let question the capacity of the concept. Such major changes in Automotive are light weight design, electro-mobility as well as modern mobility concepts, all increasing the product complexity. Increasingly an overall approach is requested that is able to consistently integrate Requirements, Functions, Logic and Physics (RFLP approach). Not only with regards to mechanical aspects, but also considering demands of electric/electronic as well as software development. The Systems Engineering approach is addressing the consistent availability and linkage of product information. Well established in aerospace and defence since decades the concept arrives in Automotives just right now, driven for example by the introduction of integrated product development environments. However the Systems Engineering introduction to an automotive OEM still might be a challenge. Typical obstacles are different structured and detailed design requirements (customer requirements versus vehicle requirements and component characteristics) as well as missing consideration of configuration, effectivity and maturity. Additionally the two dimensions of automotive consistency (Vehicle to component - vertical integration - versus integration of early concept stages via development, verification, approval until the final start of production - horizontal integration) contribute to the challenge. Finally also an improvement of interdisciplinary interaction is needed (mechanics including simulation, electric/electronics and software). The introduction of Systems Engineering is not only challenging the coordination of process IT infrastructure (Authoring systems, TDM and PDM) but also needs to consider organizational aspects (process and appropriate organizational units, integration of design partners and suppliers). Frequent acquisitions among IT system vendors - especially in the CAD/PLM/CAE market - as well as the need to select a system considering functional as well as economic aspects drive the demand for open interfaces. The presentation highlights the success and payoff of the application of Systems Engineering for Automotive processes. Implications for the process IT infrastructure coordination will be introduced. Necessary process IT adaptations will be addressed using target templates for processes, design system infrastructure, integration and mapping. Finally BMW's concept to enforce openness from all OEM, Supplier and System Vendor based on the Codex of PLM Openness (CPO) will be discussed. Success stories as well as lessons learned will be shared.
机译:基于模型的产品开发方法今天,在包括其供应链中的汽车和航空航天的工业,行业都很好地理解。然而,这些行业的实际挑战使概念的能力提出了质疑。汽车的这种主要变化是轻量级设计,电动迁移率以及现代移动概念,所有这些都会增加产品复杂性。要求越来越多的方法,可以一致地整合要求,功能,逻辑和物理(RFLP方法)。不仅对机械方面而言,还考虑了电气/电子和软件开发的需求。系统工程方法正在解决产品信息的一致可用性和链接。自十年以来,在航空航天和国防部成立的概念现在恰到好处地达到汽车,例如通过引入集成产品开发环境。然而,系统工程对汽车OEM的介绍仍然可能是一个挑战。典型的障碍是不同的结构化和详细的设计要求(客户要求与车辆要求和组件特性)以及缺少配置,有效性和成熟度的考虑。另外,汽车一致性的两个维度(车辆到组件 - 垂直集成 - 与早期概念阶段的集成通过开发,验证,批准,直到生产 - 水平集成的最终开始)有助于挑战。最后还需要改善跨学科相互作用(机械,包括模拟,电/电子和软件)。系统工程的引入不仅挑战了过程IT基础设施(创作系统,TDM和PDM)的协调,还需要考虑组织方面(过程和适当的组织单位,设计合作伙伴和供应商的整合)。 IT系统供应商的频繁收购 - 特别是在CAD / PLM / CAE市场中 - 以及需要选择考虑功能的系统以及经济方面的系统推动对开放接口的需求。演示文稿突出了系统工程应用汽车流程的应用成功和支付。将介绍对该过程的影响IT基础架构协调。必要的过程将使用目标模板进行处理,设计系统基础架构,集成和映射来解决。最后,BMW基于所有OEM,供应商和系统供应商基于PLM开放性(CPO)的所有OEM,供应商和系统供应商的概念将进行讨论。成功的故事以及学习的经验教训将被共享。

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