基于SPH-FEA耦合方法的磨料水射流切割仿真

M. Thiyahuddin, Nian Wei Tan, M. Dindi, M. I. M. Ros, M. Z. Sulaiman, M. R. A. Rahman
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引用次数: 3

摘要

研究了一种耦合SPH-FEA建模技术,以确定该技术对磨料水射流(AWJ)海上切割操作的适用性。为了验证模型,将结果与磨料水射流加工的文献分析进行了比较。利用磨料射流切割具有一定厚度和性能的韧性金属样品的模型和仿真研究了冲击响应和影响参数,包括冲击速度。为克服流固耦合和大变形问题,提出了基于SPH耦合的磨料水射流切削仿真有限元建模方法,采用SPH粒子模拟磨料水射流,采用有限元模拟靶材。通过将模型与文献中可用的数值结果进行比较来实现验证。将SPH-FEA耦合模型与先前发表的结果进行了比较和验证。然后,研究了磨料类型的变化和不同流量对侵蚀速率的影响。提取侵彻深度和侵蚀速率进行分析。由此可见,所生成的SPH-FEA方法能够模拟海洋钢结构材料在250mpa的磨料水射流切割工况。采用全耦合SPH/FEA方法模拟了磨料射流切割过程中流固耦合作用,其中钢靶材料的侵蚀切削是高度非线性的。研究表明,通过适当管理SPH/FEA资源,该方法可以扩展到全尺寸awj钢结构的切割模拟。有了一个经过验证的模型,研究人员将能够操纵AWJ中的变量来研究海上退役作业中切割优化的效果。本文的新颖之处在于将SPH-FEA耦合模拟磨料水射流技术应用于海洋结构物的切割模拟。这种经过验证的耦合SPH-FEA建模技术将使工程师能够设计出新的切削工具,从而提高下一代海上切削工具的效率和功效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Abrasive Waterjet Cutting Simulation Using Coupled SPH-FEA Method
A couple SPH-FEA modelling technique is investigated to determine the suitability of the mentioned technique to model offshore cutting operation of Abrasive Water-jet (AWJ) cutting. For model validation, results are compared to analysis available in literature on abrasive water-jet machining. An AWJ cutting a ductile metal sample with certain thickness and property is modeled and simulated to investigate the impact response and parameters that influence, including impact speeds. To overcome the difficulties of fluid—solid interaction and extra-large deformation problem using finite element method (FEM), the SPH-coupled FEA modeling for abrasive waterjet cutting simulation is presented, in which the abrasive waterjet is modeled by SPH particles and the target material is modeled by Finite Element. Validation is achieved by comparing the model against numerical result available in literature. The coupled SPH-FEA model is compared against previously published results and validated. Then, studies is conducted to determine the erosion rate effect due to change in abrasive types and different flow rates. The depth of penetrations and erosion rate is extracted for analysis. It can be seen that the generated SPH-FEA method is able to simulate the condition of AWJ cutting of offshore steel structure material up to 250 MPa. The fluid-structure interaction in AWJ cutting where the erosion-cutting of steel target material is highly non-linear was modelled by full coupled SPH/FEA. This research demonstrates that the approach can be extended to full-scale AWJ-steel structure cutting simulation through appropriate management of SPH/FEA resources. With a validated model, researchers will be able to manipulate the variables in AWJ to study the efficacy of cutting optimization in offshore decommissioning operations. The novelty in this paper is that the coupled SPH-FEA technique to model Abrasive Water Jetting is used to model cutting of offshore structures. This validated coupled SPH-FEA modelling technique will enable engineers to design new cutting tools that can improve efficiency and efficacy of next generation offshore cutting tools.
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