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Optimization design of wide face water slots for medium-thick slab casting mold

机译:中厚板坯铸模宽面水槽的优化设计

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摘要

A three-dimensional finite-element model has been established to investigate the thermal behavior of the medium-thick slab copper casting mold with different cooling water slot designs. The mold wall temperatures measured using thermocouples buried in different positions of the mold with the original designed cooling system were analyzed to determine the corresponding heat flux profile. This profile was then used for simulation to predict the temperature distribution and the thermal stress distribution of the molds. The predicted temperatures during operation matched the plant measurements. The results showed that the maximum temperature, about 635 K in the wide hot surface, was found about 60 mm below the meniscus and 226 mm from the center of the mold. For the mold with the type I modified design, there was an insignificant decrease in temperature of about 5 K, and for the mold with the type II modified design, the maximum temperature was decreased by about 15 K and the temperature of the hot surface was distributed more uniformly along the length of the mold. The corresponding maximum thermal stress at the hot surface of the mold was reduced from 408 MPa to 386 MPa with the type II modified design. The results indicated that the modified design II is beneficial to the increase of mold life and the quality of casting slabs.
机译:建立了三维有限元模型,以研究具有不同冷却水槽设计的中厚板坯铜铸模的热行为。分析了使用埋在模具不同位置的热电偶和原始设计的冷却系统测得的模具壁温度,以确定相应的热通量曲线。然后将此轮廓用于仿真以预测模具的温度分布和热应力分布。运行过程中的预测温度与工厂测量值相匹配。结果表明,在宽热表面中的最高温度约为635 K,位于弯液面以下约60毫米,距模具中心约226毫米。对于I型修改设计的模具,温度降低约5 K,而温度降低不明显;对于II型修改设计的模具,最高温度降低了约15 K,热表面温度降低了15K。沿着模具的长度分布更均匀。使用II型修改设计,模具热表面上相应的最大热应力从408 MPa降低到386 MPa。结果表明,改进后的设计Ⅱ有利于提高铸型寿命和铸坯质量。

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