Enhancing Quality Control of Packaging Product: A Six Sigma and Data Mining Approach

Resty Ayu Ramadhani, Rina Fitriana, Anik Nur Habyba, Yun-Chia Liang
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Abstract

This study explores the application of Six Sigma and data mining methodologies to address the high defect rate in the packaging of Wardah Lightening Powder Foundation. Faced with quality control challenges, the research aims to systematically identify the root causes of packaging defects and develop strategic measures to enhance product quality. Employing a comprehensive Six Sigma approach, the study incorporates various analytical tools, including SIPOC diagrams, Critical-to-Quality (CTQ) characteristics, control charts, Pareto diagrams, and Failure Modes and Effects Analysis (FMEA). These tools facilitate a detailed investigation of the packaging process, highlighting significant failure types and inefficiencies. The research methodology involves an extensive data collection and analysis phase, utilizing data mining techniques to delve into historical defect data. This analysis uncovers underlying patterns and correlations that contribute to packaging failures. Based on these findings, the study proposes targeted interventions to mitigate defect levels. These interventions include the implementation of alarm systems and buzzers on production lines to promptly address issues, and the redesign of ink storage labels for clearer communication and error reduction. The outcomes of this study demonstrate a substantial improvement in packaging quality, evidenced by a marked reduction in defect rates. This enhancement not only contributes to operational efficiency but also plays a crucial role in elevating customer satisfaction levels. The research underscores the effectiveness of integrating Six Sigma with data mining in identifying, analyzing, and resolving quality issues in manufacturing processes. It provides valuable insights for organizations in the packaging industry seeking to optimize their quality control mechanisms and achieve higher standards of product excellence.
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加强包装产品质量控制:六西格玛和数据挖掘方法
本研究探讨了如何应用六西格玛和数据挖掘方法来解决华达轻盈粉饼包装中的高缺陷率问题。面对质量控制方面的挑战,研究旨在系统地找出包装缺陷的根本原因,并制定提高产品质量的战略措施。这项研究采用了全面的六西格玛方法,结合了各种分析工具,包括 SIPOC 图、质量关键点 (CTQ) 特征、控制图、帕累托图和故障模式及影响分析 (FMEA)。这些工具有助于对包装流程进行详细调查,突出重要的故障类型和低效率。研究方法包括广泛的数据收集和分析阶段,利用数据挖掘技术深入研究历史缺陷数据。这一分析揭示了导致包装故障的潜在模式和相关性。根据这些发现,研究提出了有针对性的干预措施,以降低缺陷水平。这些干预措施包括在生产线上安装报警系统和蜂鸣器,以便及时处理问题;重新设计油墨储存标签,以便更清晰地沟通和减少错误。这项研究的结果表明,包装质量大幅提高,缺陷率明显降低。这一改进不仅有助于提高运营效率,而且在提升客户满意度方面也发挥了至关重要的作用。这项研究强调了六西格玛与数据挖掘相结合在识别、分析和解决生产过程中的质量问题方面的有效性。它为包装行业的企业提供了宝贵的见解,帮助他们优化质量控制机制,实现更高标准的卓越产品。
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