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ROBUST DESIGN METHODOLOGY FOR THE DEVELOPMENT OF COMMERCIAL VEHICLE BRAKING SYSTEMS

机译:用于商用车辆制动系统的鲁棒设计方法

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Today's product requirements demand an ever increasing functionality for the same space and usually the same number of components. Thereby, the quality, reliability and robustness of these products should be preserved or even be increased. This target conflict cannot be solved without compromises. The research community between the Institute of Machine Components (IMA), University of Stuttgart, and the Knorr-Bremse Systeme fur Nutzfahrzeuge GmbH is seeking for new solutions for these challenges. The new approaches for designing robust and reliable products are being implemented directly in a current development project of an innovative Air Disc Brake (ADB). With "Systematic Method for Axiomatic Robustness-Testing" (SMART), reliability methods and the basic concept of Robust Design methodology are related to the Taguchi Method. SMART is based on three phases: System, Parameter and Tolerance Design; accordingly, the sample phases of VDA (Association of German Automotives) are used as milestones. In the System Design, SMART focuses on the decreasing complexity according to the functional dependences of the DPs, thus precluding early random failures. In the Parameter Design phase, SMART gives the developer an approach for modeling an adaptive simulation model (SIM-SMART). This model also enables the simulation of random and possible fatigue failures in addition to the nominally robust DPs. In the early stage of product development, reliability predictions are possible. In the iterative Tolerance Design phase, the final tolerance limits for robust and reliable products are defined with consideration of compromises in terms of costs, quality and technical feasibility. With the application of SMART, a design concept of a new generation of an ADB with less complexity is created. The extensive functions for flexible function studies are modeled with the objective of SIM-SMART. Accordingly to this model, parameter studies for determination of the nominal adjustment levels can be performed and their random and fatigue failures modeled. In conclusion, more accurate reliability test strategies are recommended using the definition of tolerance limits. The cost aspect and technical feasibility are also taken into account. So far, SMART has not been added to the iterative Tolerance Design phase. With this paper, the method is not only extended to this phase, but also sufficiently validated. In addition, SMART can predict and analyze random failures. With its three coherent and iterative phases, it is an as yet unpublished and unimplemented approach for designing even more robust and reliable products. Robust Design Methodology and reliability methods are fundamental building blocks for products with high quality requirements. SMART presents an approach to support the designing of robust, reliable, highly functional and innovative ADB.
机译:今天的产品要求需要同一空间的常态功能,通常是相同数量的组件。因此,应保存或甚至增加这些产品的质量,可靠性和鲁棒性。没有妥协,无法解决该目标冲突。斯图加特大学机械组件(IMA)研究所与Knorr-Bremse Systeme Fur Nutzfahrzeuge GmbH正在寻求为这些挑战寻求新的解决方案。设计强大可靠产品的新方法是直接在创新的空气盘式制动器(ADB)的当前开发项目中实施。以“用于公理稳健性测试的系统方法”(智能),可靠性方法和鲁棒设计方法的基本概念与TAGUCHI方法有关。智能基于三个阶段:系统,参数和公差设计;因此,VDA(德国汽车协会)的样本阶段用作里程碑。在系统设计中,根据DPS的功能依赖性,Smart侧重于降低复杂性,从而排除了早期的随机故障。在参数设计阶段,Smart为开发人员提供了一种用于建模自适应仿真模型的方法(SIM-SMART)。除名义上强大的DPS之外,该模型还可以模拟随机和可能的疲劳故障。在产品开发的早期阶段,可靠性预测是可能的。在迭代公差设计阶段,通过考虑到成本,质量和技术可行性方面的妥协定义了坚固和可靠产品的最终公差限制。随着SMART的应用,创建了新一代具有较差复杂性的新一代ADB的设计概念。灵活函数研究的广泛功能是以SIM-SMART的目标建模的。因此,对于该模型,可以执行用于确定标称调节水平的参数研究,并且它们建模的随机和疲劳失败。总之,使用公差限制的定义建议使用更准确的可靠性测试策略。成本方面和技术可行性也被考虑在内。到目前为止,智能尚未添加到迭代公差设计阶段。通过本文,该方法不仅延伸到该阶段,而且还足够验证。此外,SMART可以预测和分析随机故障。凭借其三个连贯和迭代的阶段,它是一个尚未发布的和未经置换的方法,用于设计更强大和可靠的产品。鲁棒设计方法和可靠性方法是具有高质量要求的产品的基础构建块。 SMART提供一种支持设计稳健,可靠,高度功能和创新adb的方法。

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