VForm-xSteels: 虚拟材料数据库

A. ANDRADE-CAMPOS
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引用次数: 0

摘要

摘要如今,大多数产品设计都依赖于仿真软件的帮助,尤其是有限元分析(FEA)程序。然而,精确的模拟需要适当的虚拟/数值材料行为再现,即通过构成模型及其参数进行精确的材料表征。要对材料(尤其是金属)进行数值表征,需要(i) 实验测试、(ii) 模型选择和(iii) 逆过程。所有这三项工作都可能既昂贵又耗时。因此,产品开发工程师会求助于材料数据库来获取虚拟材料,即适合所需材料的构成模型及其参数。然而,材料数据库提供的信息不包括实验数据,也不提供测试程序信息。因此,用户无法验证材料数据库中的信息及其准确性。此外,准确模拟所需的材料构成模型相关数据似乎也不存在[1]。这项工作介绍了一个新材料数据库的开发情况,对之前的问题进行了修正。该数据库的重点是虚拟材料及其在产品模拟和设计中的重要性。所介绍的 VForm-xSteels 材料数据库包括:(a) 机械模型及其在有限元分析软件中的实现;(b) 实验数据;(c) 为每种材料确定的参数;(d) 与每种模型/参数集相关的材料行为再现质量指标。该数据库可通过所有用户的贡献加以扩大,并为工程界带来以下好处:(i) 通过提供准确的输入数据,提高数值有限元分析模拟的精度和可靠性,从而填补有限元分析市场的空白,并满足有限元分析用户的要求;(ii) 缩短金属零件的开发周期,开发质量得到极大改善的稳健技术解决方案,从而降低整个开发过程的成本和时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
VForm-xSteels: virtual materials database
Abstract. Nowadays, most of the product designs rely on the aid of simulation software, particularly Finite Element Analysis (FEA) programs. However, an accurate simulation requires a proper virtual/numerical material behavior reproduction, meaning a precise material characterization through constitutive models and their parameters. To numerically characterize a material, particularly a metal, (i) experimental tests, (ii) model selection and (iii) inverse procedures are required. All these three tasks can be expensive and time-consuming. Therefore, product development engineers resort to materials databases to obtain the virtual materials, i.e. the constitutive models and their parameters adequate for the desired material. However, the information provided by the materials databases does not include experimental data nor provide information on the testing procedures. Due to this absence, users cannot verify the information nor its accuracy on the material database. Moreover, data related to material constitutive models, required for accurate simulations seems to be absent [1]. This work presents the development of a new material database that revises the previous problem. This database has the focus on virtual materials and their importance in product simulation and design. The presented VForm-xSteels material database includes (a) mechanical models and their implementation in FEA software, (b) experimental data and (c) the parameters identified for each material, and (d) indications concerning the quality of the material behavior reproduction associated with each model/parameters set. This database can be enlarged by the contributions of all users and present the following benefits for the engineering community: (i) increasing the precision and reliability of numerical FEA simulations by providing accurate input data, filling then a gap of the FEA market and answering to the request of the FEA users; (ii) reducing the development lead-time of metallic parts and the development of robust technological solutions with highly improved quality, consequently decreasing cost and time in the overall development process.
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