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A material based approach to creating wear resistant surfaces for hot forging.

机译:基于材料的方法来创建用于热锻的耐磨表面。

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Tools and dies used in metal forming are characterized by extremely high temperatures at the interface, high local pressures and large metal to metal sliding. These harsh conditions result in accelerated wear of tooling. Lubrication of tools, done to improve metal flow drastically quenches the surface layers of the tools and compounds the tool failure problem. This phenomenon becomes a serious issue when parts forged at complex and are expected to meet tight tolerances. Unpredictable and hence uncontrolled wear and degradation of tooling result in poor part quality and premature tool failure that result in high scrap, shop downtime, poor efficiency and high cost.; The objective of this dissertation is to develop a computer-based methodology for analyzing the requirements hot forging tooling to resist wear and plastic deformation and wear and predicting life cycle of forge tooling. Development of such is a system is complicated by the fact that wear and degradation of tooling is influenced by not only the die material used but also numerous process controls like lubricant, dilution ratio, forging temperature, equipment used, tool geometries among others. Phenomenological models available u1 the literature give us a good thumb rule to selecting materials but do not provide a way to evaluate pits performance in field. Once a material is chosen, there are no proven approaches to create surfaces out of these materials. Coating approaches like PVD and CVD cannot generate thick coatings necessary to withstand the conditions under hot forging. Welding cannot generate complex surfaces without several secondary operations like heat treating and machining. If careful procedures are not followed, welds crack and seldom survive forging loads. There is a strong need for an approach to selectively, reliably and precisely deposit material of choice reliably on an existing surface which exhibit not only good tribological properties but also good adhesion to the substrate.; Dissertation outlines development of a new cyclic contact test design to recreate intermittent tempering seen in hot forging. This test has been used to validate the use of tempering parameters in modeling of in-service softening of tool steel surfaces. The dissertation also outlines an industrial case study, conducted at a forging company, to validate the wear model. This dissertation also outlines efforts at Ohio State University, to deposit Nickel Aluminide on AISI H13 substrate, using Laser Engineered Net Shaping (LENS). Dissertation reports results from an array of experiments conducted using LENS 750 machine, at various power levels, table speeds and hatch spacing. Results pertaining to bond quality, surface finish, compositional gradients and hardness are provided. Also, a thermal-based finite element numerical model that was used to simulate the LENS process is presented, along with some demonstrated results.
机译:用于金属成型的工具和模具的特征在于界面处的极高温度,高局部压力和大的金属与金属之间的滑动。这些恶劣条件会导致工具加速磨损。为提高金属流动性而进行的工具润滑会彻底淬火工具的表面层,并使工具故障问题更为严重。当零件锻造复杂且需要满足严格的公差时,此现象将成为一个严重的问题。不可预测的,因此不受控制的磨损和工具的退化会导致零件质量差和工具过早失效,从而导致大量废品,车间停机时间,效率差和成本高。本文的目的是开发一种基于计算机的方法来分析热锻工具的要求,以抵抗磨损和塑性变形以及磨损,并预测锻工具的使用寿命。这种系统的开发由于以下事实而变得复杂,即模具的磨损和退化不仅受到所用模具材料的影响,而且还受到众多过程控制的影响,例如润滑剂,稀释比,锻造温度,所用设备,工具几何形状等。文献中可用的现象学模型为我们提供了选择材料的良好经验法则,但没有提供评估现场矿坑性能的方法。一旦选择了一种材料,就没有行之有效的方法来用这些材料创建表面。 PVD和CVD之类的涂层方法无法生成承受热锻条件下所需的厚涂层。如果不进行热处理和机械加工等数个次级操作,焊接就不会产生复杂的表面。如果不遵循仔细的程序,焊缝会破裂,并且很少能承受锻造载荷。迫切需要一种将选择的材料可靠,选择性地,可靠地沉积在现有表面上的方法,该方法不仅具有良好的摩擦学性能,而且还具有与基材的良好粘合性。论文概述了一种新的循环接触试验设计的开发,以重现热锻中的间歇回火。该测试已用于验证在对工具钢表面进行服务中的软化建模中回火参数的使用。论文还概述了在锻造公司进行的工业案例研究,以验证磨损模型。本文还概述了俄亥俄州立大学使用激光工程网整形(LENS)在AISI H13衬底上沉积铝化镍的努力。论文报告是使用LENS 750机器在各种功率水平,工作台速度和舱口间距下进行的一系列实验得出的结果。提供了有关粘结质量,表面光洁度,组成梯度和硬度的结果。此外,还提供了用于模拟LENS过程的基于热的有限元数值模型,以及一些已证明的结果。

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