Jiang Anqi, Huan Meng, Choi Dong-Oun, Kang YunJeong
College of Precious Metals and Gemstone Design, Wonkwang University, Iksan, 54538, Korea.
School of Economics and Management, Hengshui University, Hengshui, 053000, Hebei, China.
Sci Rep. 2025 Feb 22;15(1):6441. doi: 10.1038/s41598-024-84477-y.
Achieving sustainable practices in the jewelry industry necessitates the adoption of optimized eco-design approaches. The optimization of eco-friendly jewelry design was investigated in this study through an integrated analysis of materials, digital manufacturing, and predictive modeling. Sustainable techniques were identified, and an artificial neural network (ANN) model was developed to predict environmental impacts based on material properties and design attributes. The applicability of the model was validated, and insights were generated to drive eco-innovation and facilitate the transition towards sustainable practices in the jewelry industry. Key findings demonstrated the superior sustainability of renewable biomaterials, specifically Biomaterials 2-5 derived from lingo-cellulosic sources, compared to conventional materials. Consistently, simpler design configurations outperformed intricate designs. The relationships were effectively captured by the ANN model, providing a reliable evidence-based approach. Quantitative linkages between design attributes and sustainability metrics were established by the study, offering valuable guidance for optimization strategies. Significant results demonstrate that Biomaterials 2-5 exhibit average carbon footprints of 1.1-1.2 kg and water usage of 9-16.5 L, compared to 2.1 kg and 24.5 L for precious metals. Simplified designs exhibit carbon footprints of 0.8 kg and water usage of 11.5 L, whereas intricate designs show footprints of 3.1 kg and water usage of 33 L. These predictions establish renewable biomaterials and streamlined configurations as preferable paradigms for sustainable jewelry. Based on the findings, recommendations include prioritizing the use of Biomaterials 2-5 and streamlined configurations through the implementation of incentives. Transitioning operations towards biomaterial-focused infrastructure and emerging technologies is suggested to further enhance sustainability. Additionally, international cooperation and the development of standards are proposed to address sustainability challenges holistically. The empirical and computational findings of this study establish optimization methodologies that can inspire transformative sustainability practices in the jewelry industry.
在珠宝行业实现可持续发展实践需要采用优化的生态设计方法。本研究通过对材料、数字制造和预测建模的综合分析,对环保珠宝设计的优化进行了调查。确定了可持续技术,并开发了一个人工神经网络(ANN)模型,以根据材料特性和设计属性预测环境影响。验证了该模型的适用性,并得出了相关见解,以推动生态创新并促进珠宝行业向可持续发展实践的转变。主要研究结果表明,与传统材料相比,可再生生物材料具有更高的可持续性,特别是源自木质纤维素来源的生物材料2-5。同样,简单的设计配置优于复杂的设计。人工神经网络模型有效地捕捉了这些关系,提供了一种可靠的基于证据的方法。该研究建立了设计属性与可持续性指标之间的定量联系,为优化策略提供了有价值的指导。重要结果表明,生物材料2-5的平均碳足迹为1.1-1.2千克,用水量为9-16.5升,而贵金属的碳足迹为2.1千克,用水量为24.5升。简化设计的碳足迹为0.8千克,用水量为11.5升,而复杂设计的碳足迹为3.1千克,用水量为33升。这些预测将可再生生物材料和简化配置确立为可持续珠宝的首选范例。基于这些发现,建议包括通过实施激励措施优先使用生物材料2-5和简化配置。建议将运营转向以生物材料为重点的基础设施和新兴技术,以进一步提高可持续性。此外,还建议开展国际合作并制定标准,以全面应对可持续发展挑战。本研究的实证和计算结果建立了优化方法,可激发珠宝行业变革性的可持续发展实践。