Corrosion Inhibition and Adsorption Potential of Rice Husk and Chitosan Extract on Mild Steel in Acidic Media

Clinton Oluwasegun Balogun, B. K. Adeoye, Johnson Adeola Adegboyega
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Abstract

One of the consequences of industrial food production activities is the generation of a huge volume of waste, whose disposal can lead to environmental and human health problems, yet often they can be turned into high-value and useful products. On the other hand, the use of mild steel has gained more attention in food industrial applications because of its mechanical properties, ease of fabrication, low purchasing cost, and one of the ways to manage food waste. However, mild steel is susceptible to corrosion in an acidic medium. This study is aimed at investigating the inhibition and adsorption potential of the value-added product Rice husk and Chitosan on mild steel. Inhibition potential and adsorption characteristics of Rice Husk/Chitosan were done. A weight-loss experiment followed phytochemical analysis of rice husk to check the inhibition efficiency. Fourier Transform Infrared Spectroscopy (FTIR) and other chemical analyses were done to gauge the adsorbent's performance. The analyses of the result showed that the inhibition efficiency increases with increased concentration of the inhibitor and increases with temperature. The data obtained ascertain the adsorption of the extract on the surface of the metal with an inhibition efficiency of 89.98%. The mechanism of adsorption of the extract is chemisorption.
稻壳和壳聚糖提取物在酸性介质中对低碳钢的缓蚀和吸附电位研究
工业化食品生产活动的后果之一是产生大量废物,其处置可能导致环境和人类健康问题,但它们往往可以转化为高价值和有用的产品。另一方面,低碳钢因其机械性能好、制造方便、采购成本低,而且是处理食物垃圾的一种方法,在食品工业应用中得到了越来越多的关注。然而,低碳钢在酸性介质中易受腐蚀。本研究旨在探讨增值产品稻壳和壳聚糖对低碳钢的抑制作用和吸附潜力。考察了稻壳/壳聚糖的抑制潜力和吸附特性。通过对稻壳进行植物化学分析,验证了稻壳的抑菌效果。傅里叶变换红外光谱(FTIR)和其他化学分析来衡量吸附剂的性能。结果表明,缓蚀剂的缓蚀效率随缓蚀剂浓度的增加而增加,随温度的升高而增加。结果表明,萃取液在金属表面的吸附率为89.98%。萃取物的吸附机理为化学吸附。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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