首页> 外文会议>IMECE2008;ASME international mechanical engineering congress and exposition >Aerodynamic Investigation of Air Knife System to Find out the Mechanism of the Check Mark in a Continuous Hot-Dip Galvanizing Process
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Aerodynamic Investigation of Air Knife System to Find out the Mechanism of the Check Mark in a Continuous Hot-Dip Galvanizing Process

机译:气刀系统的空气动力学研究,以找出连续热浸镀锌过程中复选标记的机理

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When galvanized steel strip is produced through a continuous hot-dip galvanizing process, the thickness of the adhered zinc film is controlled by a gas wiping process. In the gas wiping process there is a technically serious problem which is called a "check mark problem". The check mark is caused by non-uniform coating on the steel strip surface. Such a non-uniform zinc coating lowers the quality, productivity and profit of the end products. In the present study, to find out the causes of the check mark and technical methods to resolve the check mark problem, the flow field of the high speed rectangular nitrogen gas jet which is impinging on the moving steel strip in the continuous hot-dip galvanizing system has been investigated numerically by using a commercial 3-D flow analysis code, FLUENT. LES (Large Eddy Simulation) is used to obtain instantaneous flow field in the region under consideration. Numerical studies were conducted for two ratios of the plate distance (d) to the nozzle width (x) d/x= 6.7, 10.5 under the same jet Reynolds number of Re=20000. It was found that the check mark is caused by the alternating vortices which are generated on the jet impinging line (stagnation line). The center of the alternating vortex has a relatively low pressure compared with the periphery of the vortex. The high impinging pressure removes the adhered molten zinc more than the low pressure. Hence the non-uniformity of the zinc coating appears on the strip surface. Such the alternating vortices move periodically to the right and to the left sides on the impinging line due to the jet flow instability and the pressure force balance. In addition since the strip moves upward at a constant speed, the non-uniform coating results in a variety of patterns like "W", "V" and "X". This pattern is collectively called as "check mark" in the production field. The angle of the check mark was calculated by using both the moving speeds of the steel strip and the vortices. It was favorably compared with the experimental measurement.
机译:当通过连续的热浸镀锌工艺生产镀锌钢带时,通过气体擦拭工艺来控制粘附的锌膜的厚度。在气体擦拭过程中,存在技术上严重的问题,称为“检查标记问题”。复选标记是由钢带表面的不均匀涂层引起的。这种不均匀的锌涂层降低了最终产品的质量,生产率和利润。在本研究中,找出连续热镀锌过程中撞击在移动钢带上的高速矩形氮气流的流场,以找出产生复选标记的原因和解决复选标记问题的技术方法。系统已经使用商用3-D流量分析代码FLUENT进行了数值研究。 LES(大涡模拟)用于获得所考虑区域的瞬时流场。在相同的Re = 20000射流雷诺数下,对板距(d)与喷嘴宽度(x)d / x的比值进行了数值研究,d / x = 6.7、10.5。已经发现,复选标记是由在射流撞击线(停滞线)上产生的交替涡旋引起的。与涡旋的外围相比,交替涡旋的中心具有相对较低的压力。高冲击压力比低压更能除去附着的熔融锌。因此,锌涂层的不均匀性出现在带材表面上。由于喷射流的不稳定性和压力的平衡,这种交替的涡流在冲击线上周期性地在右侧和左侧移动。另外,由于带材以恒定的速度向上移动,因此不均匀的涂层导致各种图案,例如“ W”,“ V”和“ X”。该图案在生产领域中统称为“检查标记”。通过使用钢带和涡流的移动速度来计算检查标记的角度。与实验测量相比,它是有利的。

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