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首页> 外文期刊>Autex Research Journal >Measurement of the Uniformity of Thermally Bonded Points in Polypropylene Spunbonded Non-Wovens Using Image Processing and its Relationship With Their Tensile Properties
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Measurement of the Uniformity of Thermally Bonded Points in Polypropylene Spunbonded Non-Wovens Using Image Processing and its Relationship With Their Tensile Properties

机译:图像处理测量聚丙烯纺粘非织造布中热粘合点的均匀性及其与拉伸性能的关系

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This article aims at the image processing of surface uniformity and thermally bonded points uniformity in polypropylene spunbonded non-wovens. The investigated samples were at two different weights and three levels of non-uniformity. An image processing method based on the k-means clustering algorithm was applied to produce clustered images. The best clustering procedure was selected by using the lowest Davies-Bouldin index. The peak signal-to-noise ratio (PSNR) image quality evaluation method was used to choose the best binary image. Then, the non-woven surface uniformity was calculated using the quadrant method. The uniformity of thermally bonded points was calculated through an image processing method based on morphological operators. The relationships between the numerical outcomes and the empirical results of tensile tests were investigated. The results of image processing and tensile behavior showed that the surface uniformity and the uniformity of thermally bonded points have great impacts on tensile properties at the selected weights and non-uniformity levels. Thus, a sample with a higher level of uniformity and, consequently, more regular bonding points with further bonding percentage depicts the best tensile properties.
机译:本文旨在对聚丙烯纺粘无纺布的表面均匀性和热粘合点均匀性进行图像处理。所研究的样品具有两种不同的权重和三种不均匀度。将基于k均值聚类算法的图像处理方法应用于产生聚类图像。通过使用最低的Davies-Bouldin指数选择最佳的聚类程序。峰值信噪比(PSNR)图像质量评估方法用于选择最佳二进制图像。然后,使用象限法计算非织造表面的均匀性。通过基于形态学算子的图像处理方法来计算热结合点的均匀性。研究了数值结果与拉伸试验的经验结果之间的关系。图像处理和拉伸行为的结果表明,在选定的重量和不均匀程度下,表面均匀性和热粘合点的均匀性对拉伸性能有很大影响。因此,具有较高均匀度并因此具有更多粘合百分比的更规则粘合点的样品表现出最佳的拉伸性能。

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