Work roll hot grinding for non-oriented silicon steel hot rolling
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摘要: 為了解決正常生產結構條件下,無取向硅鋼熱連軋工作輥磨削輥形受熱輥形影響難以獲得工藝制度期望的初始輥形問題,結合無取向硅鋼熱軋生產過程,采用二維有限差分法建立了工作輥軋制過程中的工作輥溫度場計算數學模型,使用有限元軟件ANSYS建立了工作輥下機后空冷和噴淋冷卻混和工藝條件下溫度場模型,開展了無取向硅鋼熱軋工作輥一個完整使用周期內的溫度場和熱輥形仿真研究,提出了無取向硅鋼工作輥熱磨輥數學模型和熱磨輥工藝制度,并投入生產應用.相同生產工藝條件下,1700熱連軋機無取向硅鋼軋制應用熱磨模型和熱磨工藝制度后,產品的凸度和楔形雙達標率由67.39%提高到74.57%的明顯生產實績.Abstract: The work roll grinding contour of non-oriented silicon steel hot rolling is dependent on the work roll thermal contour heavily which will lead to an unexpected initial work roll contour under normal roiling condition. To resolve this problem, considering the condition of non-oriented silicon steel rolling, a work roll temperature field model during rolling was constructed by using the 2-D finite difference method and a work roll temperature field model after rolling under air and spray mixed cooling condition was developed by using the finite element software ANSYS. Based on these models, the work roll temperature field and thermal contour through the whole non-oriented silicon steel rolling process were researched numerically, and a hot grinding mathematical model and its schedule were proposed and applied in industrial production. Under the same condition, after applying the new work roll hot grinding mathematical model and its schedule to non-oriented silicon steel strip rolling of 1700 mm hot strip mills, the qualification ratio of crown and wedge increased from 67.39% to 74.57%.
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Key words:
- hot rolling /
- temperature field /
- thermal contour /
- finite difference method /
- finite element method
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