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APPLICATIONS FOR A NEW PRODUCTION TECHNOLOGY: ANALYSIS OF LINEAR FLOW-SPLIT LINEAR GUIDES

机译:一项新生产技术的应用:线性流分裂线性导轨的分析

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Within the collaborative research centre 666 "Integral Sheet Metal Design with Higher Order Bifurcations" the innovative manufacturing technologies linear flow-splitting and linear bend-splitting are researched that allow the continuous production of multi-chambered steel profiles in integral style. The massive forming processes create an ultra-fine grained microstructure in the forming area that is characterized by an increased hardness and lower surface roughness compared to as received material. These properties predestine the technology to be used in the production of linear guides. Additionally, the multi-chambered structure of the linear flow-split and -bend components can be used for function integration. To design and evaluate linear guides that use the whole technological potential, the research is focused on a macroscopic and a microscopic point of view. The macroscopic approach is targeting the development of linear flow-split linear guides with integrated functions to provide additional performance values to the established machine parts. Continuously produced guidance systems with innovative functionality can be introduced to a new market with the technology push approach. Preliminary designs of linear flow-split guidance systems and integrated functions are promising. Therefore, an approach to develop new functions for linear flow-split linear guides basing on calculation models and property networks is shown [1]. With this approach, optimized solutions can be created and possible design modifications can be derived. In this contribution, the development and integration of a clamping function for decelerating the slide is presented. Calculation models for analyzing the functionality are presented and validated by finite element models and experiments. The microscopic examination of the profiles aims to investigate the material behavior, particularly of the formed areas. Beside the conventional mechanical and fatigue properties of linear flow-split material ZStE500 [2], the present work focuses on the rolling contact fatigue. This is necessary to evaluate linear flow-split components regarding their eligibility with regard to the rolling contact fatigue behaviour. The Hertz theory for rolling contact fatigue is only valid for homogeneous materials [3]. The flow-split material ZStE500 shows a non-homogeneous behaviour and has to be analyzed with the Finite Element Method in order to determine stresses and strains. In comparison to simulation results with unformed and therefore homogeneous material, the effect of linear flow-split surfaces on the rolling contact behavior is demonstrated. Based on these results, it is possible to start experimental investigations on rolling contact fatigue of linear flow-split components to validate the FE model and determine the performance of linear flow-split flanges for rolling contact fatigue.
机译:在协作研究中心666“具有更高分叉的整体钣金设计”中,研究了创新的制造技术,即线性流分裂和线性弯曲分裂,可连续生产多室型钢型材。大量的成型过程会在成型区域中形成超细晶粒的微观结构,与接受的材料相比,其特征在于硬度增加且表面粗糙度降低。这些特性决定了直线导轨生产中使用的技术。此外,线性分流和弯曲组件的多腔结构可用于功能集成。为了设计和评估利用整个技术潜力的直线导轨,本研究着眼于宏观和微观的观点。宏观方法的目标是开发具有集成功能的线性分流式直线导轨,从而为既定的机器零件提供额外的性能值。可以使用技术推动方法将持续生产的具有创新功能的制导系统引入新市场。线性分流导引系统和集成功能的初步设计是有前途的。因此,显示了一种基于计算模型和属性网络为线性分流式直线导轨开发新功能的方法[1]。使用这种方法,可以创建优化的解决方案,并可以进行可能的设计修改。在此贡献中,提出了用于使滑块减速的夹紧功能的开发和集成。提出了用于分析功能的计算模型,并通过有限元模型和实验对其进行了验证。轮廓的微观检查旨在研究材料的性能,特别是成形区域的材料性能。除了传统的线性分流材料ZStE500的机械和疲劳性能外,目前的工作重点是滚动接触疲劳。评估线性分流组件在滚动接触疲劳性能方面的合格性是必要的。滚动接触疲劳的赫兹理论仅对均质材料有效[3]。流动分裂材料ZStE500具有非均质行为,必须使用有限元方法进行分析才能确定应力和应变。与未成形的均质材料的仿真结果相比,线性流动分裂表面对滚动接触行为的影响得到了证明。基于这些结果,可以开始对线性流分离部件的滚动接触疲劳进行实验研究,以验证有限元模型并确定线性流分离法兰的滚动接触疲劳性能。

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