首页> 外文会议>ASME international manufacturing science and engineering conference >EFFICIENT PREDICTION OF CONTACT BEHAVIOR IN A 6-HIGH ROLLING MILL WITH CONTINUOUSLY VARIABLE CROWN INTERMEDIATE ROLLS
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EFFICIENT PREDICTION OF CONTACT BEHAVIOR IN A 6-HIGH ROLLING MILL WITH CONTINUOUSLY VARIABLE CROWN INTERMEDIATE ROLLS

机译:具有连续变冠中间轧辊的6辊轧机中接触行为的有效预测

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Continuously Variable Crown (CVC) shifting mechanisms represent a control technology with wide range of capability to influence the thickness profile and flatness (shape) of metal strip and sheet in rolling-type manufacturing processes. Further, because of the efficiency and extensive control capability to operate on thin-gauge, high-strength ferrous alloys, the 6-high mill with CVC profiles machined onto the intermediate rolls (IR) represents a popular mill configuration. This is because of the large control range for the strip thickness profile and flatness, which results from lateral shifting of the CVC intermediate rolls. However, together with this efficiency and capability comes very complex contact behaviors between the rolls and strip, including highly non-linear contact force distribution, loss of contact, asymmetric roll wear, unwanted strip wedge profiles, and the need to apply corrective roll tilting. Therefore, for most effective industry use of 6-high mills with intermediate roll CVC shifting, a rapid and accurate mathematical rolling model is needed to predict and account for these complex contact behaviors. This paper introduces an efficient roll-stack computational model capable of simulating such rolling mills under steady-state conditions. The model formulation applies the simplified mixed finite element method (SM-FEM), which is adapted to simulate asymmetric 6-high CVC mill contact behaviors. Results for a specific case study compare favorably to those obtained from a large-scale commercial finite element simulation, yet require a small fraction of the associated computational time and effort.
机译:连续可变凸度(CVC)移位机构代表了一种控制技术,具有广泛的能力,可在滚动式制造过程中影响金属带材和薄板的厚度轮廓和平坦度(形状)。此外,由于在薄规格,高强度铁合金上运行的效率和广泛的控制能力,在中间辊(IR)上加工了CVC型材的6辊轧机代表了一种流行的轧机配置。这是因为,由于CVC中间辊的横向移动而导致的带材厚度分布和平直度的控制范围较大。但是,伴随着这种效率和能力,辊子和带材之间的接触行为非常复杂,包括高度非线性的接触力分布,接触损失,不对称的辊子磨损,不希望的带材楔形轮廓以及需要进行矫正的辊子倾斜。因此,为了在工业上最有效地使用具有中间辊CVC移位的6辊轧机,需要一种快速而准确的数学轧制模型来预测和解释这些复杂的接触行为。本文介绍了一种能够在稳态条件下模拟此类轧机的有效辊堆计算模型。该模型公式采用简化的混合有限元方法(SM-FEM),适用于模拟不对称的6高CVC轧机接触行为。特定案例研究的结果与大规模商业有限元模拟获得的结果相比是有利的,但只需要一小部分相关的计算时间和工作量。

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