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EMISSIONS OF VOLATILE ORGANIC COMPOUNDS FROM 4D PRINTING AND ASSOCIATED CONTROL STRATEGIES TOWARDS WORKPLACE SAFETY

机译:4D印刷的挥发性有机化合物的排放和相关控制策略对工作场所安全

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The integration of additive manufacturing technologies with stimuli-responsive shape memory materials allows the dynamic self-adaptation of fabricated parts upon exposure to external stimulations. The additional dimension of time inspires the concept of four-dimensional printing technology. However, the emerging feedstock materials and the employment of external stimuli in 4D printing are also associated with new workplace hazards and occupational health concerns. Current evaluation studies on additive manufacturing are mainly focused on the safety and health effects that originated from the part production phase and cannot be directly applied in 4D printing processes. In this study, the emissions of volatile organic compounds from stereolithography-based 4D printing process with thermo-responsive materials are targeted as the potential safety concern. Real-time total volatile organic compound monitoring is conducted during various production phases to align the emission sources with critical operating activities, including both operator interventions and machine operations. Comparative experiments are performed to evaluate the effectiveness of proposed emission control strategies. In particular, alterations in operation procedures such as stirring speed in material mixing and post-printing stimulation method can contribute positively to air emission control during manual operations. In addition, the installation of activated carbon fiber filters inside the machine build chamber can lead to a significant reduction of air emissions during part fabrication with an overall total volatile organic compound concentration reduction of 58.91%.
机译:添加剂制造技术与刺激形状记忆材料的整合允许在暴露于外部刺激时动态自适应制造的部件。时间的额外尺寸激发了四维印刷技术的概念。然而,新兴原料材料和4D印刷中的外部刺激的就业也与新的工作场所危害和职业健康问题有关。关于添加剂制造的当前评估研究主要集中在源自部件生产阶段的安全性和健康效果,不能直接应用于4D印刷过程中。在该研究中,具有热响应材料的基于立体光刻的4D印刷方法的挥发性有机化合物的排放靶向潜在的安全问题。在各种生产阶段进行实时总挥发性有机化合物监测,以使排放来源与关键的操作活动对齐,包括操作员干预和机器操作。进行比较实验以评估所提出的排放控制策略的有效性。特别地,在材料混合和印刷后刺激方法中的搅拌速度如搅拌速度的改变可以在手动操作期间对空气排放控制产生积极贡献。此外,在机器构建室内的活性炭纤维过滤器的安装可以在部分制造过程中显着降低空气排放,总体挥发性有机化合物浓度降低58.91%。

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