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钢瓶上磷酸锌均匀涂层流速的优化:使用扫描电子显微镜(SEM)对涂层均匀性和元素组成的研究

Optimization of Flow Rate for Uniform Zinc Phosphate Coating on Steel Cylinders: A Study on Coating Uniformity and Elemental Composition Using Scanning Electron Microscopy (SEM).

作者信息

Jeong Yu-Nah, Okwuosa Chibuzo Nwabufo, Hwang Jung-Woo, Hur Jang-Wook

机构信息

Department of Mechanical Engineering (Department of Aeronautics, Mechanical and Electronic Convergence Engineering), Kumoh National Institute of Technology, 61 Daehak-ro, Gumi-si 39177, Gyeonsangbuk-do, Republic of Korea.

出版信息

Materials (Basel). 2025 May 23;18(11):2442. doi: 10.3390/ma18112442.

Abstract

Uniformity in material coating is not only essential for ensuring durability and long-term reliability but also for reducing costs, optimizing resources, and maintaining high-quality standards in industrial applications. Zinc phosphate is notable for coating steel surfaces due to its excellent corrosion resistance and adhesion properties in various industries. This study investigates the optimal flow rate of a diaphragm pump for achieving the effective and uniform coating of a steel cylinder. The coating uniformity was assessed using Scanning Electron Microscopy (SEM), focusing on layer thickness and elemental composition. A range of flow rates was analyzed to determine their influence on coating quality and regularity, with Energy-Dispersive Spectroscopy (EDS) revealing the distribution and homogeneity of the applied layer. The results identified a flow rate of 30 L/min as optimal with a thickness of 3.6 µm of coating on both sample sides, as it minimized surface defects and ensured consistent thickness across the cylinder. This study provides valuable insights for optimizing industrial coating processes, contributing to improved efficiency and reduced resource waste.

摘要

材料涂层的均匀性不仅对于确保耐久性和长期可靠性至关重要,而且对于降低成本、优化资源以及在工业应用中维持高质量标准也很关键。磷酸锌因在各行业中具有出色的耐腐蚀性和附着力而在钢表面涂层方面表现突出。本研究调查隔膜泵的最佳流速,以实现钢瓶的有效且均匀涂层。使用扫描电子显微镜(SEM)评估涂层均匀性,重点关注层厚度和元素组成。分析了一系列流速以确定它们对涂层质量和规则性的影响,能量色散光谱(EDS)揭示了涂覆层的分布和均匀性。结果确定30升/分钟的流速为最佳,样品两侧的涂层厚度均为3.6微米,因为它使表面缺陷最小化,并确保整个钢瓶的厚度一致。本研究为优化工业涂层工艺提供了有价值的见解,有助于提高效率和减少资源浪费。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf29/12156916/76fe0b2d38cd/materials-18-02442-g002.jpg

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