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首页> 外文期刊>Journal of Cleaner Production >Laser-induced fragmentation of carbonyl iron as a clean method to enhance magnetorheological effect
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Laser-induced fragmentation of carbonyl iron as a clean method to enhance magnetorheological effect

机译:激光诱导的羰基铁碎片作为一种加强磁流变效应的清洁方法

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摘要

Magnetic nanoparticles (NPs) are widely used as additives in magnetorheological (MR) suspensions to enhance their magnetic performance and kinetic stability. The synthesis of NPs is often resolved via chemical routes or complex manufacturing procedures, which require hazardous chemicals and generate waste products. In this study, a clean, laser-mediated strategy known as laser fragmentation in liquids (LFL) is proposed that enables the synthesis of NP-based additives directly from the given MR suspension, with the added advantage of limiting the production of waste during the fabrication process. The carbonyl iron (CI) microparticles dispersed in ethylene glycol were used as both the MR suspension and precursor agent in the production of the nanoscale additive. The size and crystalline structure of the NPs were investigated via TEM and XRD, respectively. The mixture of the MR suspension and laser-synthesized additive notably facilitated the magnetisation of the CI particles, incrementing the MR characteristics and dynamic yield stress values by up to 31% in a low-to-moderate field region, which are important aspects in various field-controlled robotic, damping and torque systems. The concept presented appears to be an effective and clean alternative for fabricating bidispersed MR suspensions through the nanoscale additive approach. (C) 2020 Elsevier Ltd. All rights reserved.
机译:磁性纳米颗粒(NPS)广泛用作磁流变(MR)悬浮液中的添加剂,以增强它们的磁性性能和动力学稳定性。 NPS的合成通常通过化学途径或复杂的制造程序来解决,这些程序需要危险化学品并产生废物。在本研究中,提出了一种清洁的激光介导的策略,称为液体(LFL)中的激光碎片(LFL),使得能够直接从给定的MR悬浮液合成NP类添加剂,其中限制了废物期间的垃圾生产的附加优点制造过程。分散在乙二醇中的羰基铁(CI)微粒作为MR悬浮液和前体剂在生产纳米级添加剂中。通过TEM和XRD研究NPS的尺寸和结晶结构。 MR悬浮液和激光合成添加剂的混合物显着促进了CI颗粒的磁化,将MR特性和动态屈服应力值递增高达31%,在低于适度的场地区域,这是各种各样的重要方面现场控制的机器人,阻尼和扭矩系统。呈现的概念似乎是通过纳米级附加方法制造有效的MR悬浮液的有效和清洁的替代方案。 (c)2020 elestvier有限公司保留所有权利。

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