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Application and practical validation of topology optimization technology for the frame of biaxial tensile testing machine

机译:双轴拉伸试验机框架拓扑优化技术的应用与实践验证

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摘要

Biaxial tensile testing machines are used to improve accuracy of yield loci and constitutive model for sheet materials. The frame of these machines is the main load-bearing structure significantly affecting the machine accuracy. However, the available loading frames are too heavy to be practical for popularization and application. To reduce both the total weight of the frame and install consumption, this study develops a design method of stepwise multi-stage topology optimization based on the solid isotropic microstructures with penalization (SIMP) method. First, the validity of the finite element model during the optimization is verified by experiments. Next, the design method of stepwise multi-stage topology optimization is proposed based on the results of conventional topology optimization and the influence law of key parameters. This method is then applied to the topological optimization design of frames for a biaxial tensile testing machine. Finally, the optimized frame is manufactured, and biaxial tensile tests are conducted on the designed machine. The measurement of frame deformations shows that the frame weight is decreased by 19.5% compared with that of the initial design and that the frame stiffness meets design requirements. These results prove the effectiveness of the proposed method.
机译:双轴拉伸试验机用于提高生产基因座和薄板型号的精度。这些机器的框架是主要承载结构,显着影响机器精度。然而,可用的装载框架太重,无法用于普及和应用。为减少框架的总重量和安装消耗,这项研究基于惩罚(SIMP)方法基于纯度各向同性微观结构的逐步多级拓扑优化的设计方法。首先,通过实验验证了在优化期间有限元模型的有效性。接下来,提出了逐步多级拓扑优化的设计方法,基于传统拓扑优化的结果和关键参数的影响法。然后将该方法应用于双轴拉伸试验机的帧的拓扑优化设计。最后,制造优化的框架,并且在设计的机器上进行双轴拉伸试验。框架变形的测量表明,与初始设计相比,框架重量减小了19.5%,框架刚度满足设计要求。这些结果证明了所提出的方法的有效性。

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