Enhancement of productivity in the automated anodizing industry using machine learning and evolutionary algorithms
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Abstract
Aluminium is one of the most important materials in human
newlineinventions due to its vast applications. Aluminium is silvery in appearance and
newlinehas impressive mechanical properties such as strength and durability.
newlineAluminium has a high strength-to-weight ratio compared to other earth
newlinematerials such as Stainless steel and cast iron due to its low density. Due to
newlinethis fact, Aluminium and aluminium alloys are used in a wide range of
newlineaerospace, space, and outer space applications. However, one of the very
newlinedemerits of Aluminium is that it will undergo corrosion and pitting when it is
newlineexposed to acidic environments easily. Aluminium is reactive to water as well
newlineas the moisture content present in the air. Due to this fact, raw aluminium is
newlinenot recommended for engineering applications that require a high degree of
newlineprecision and durability. This causes the Raw aluminium to undergo special
newlinecoating processes, such as Anodizing, so that the Aluminium becomes non
newlinereactive to the environment. Since aluminium requires Anodizing before
newlineapplication, the demand for Quality anodizing processes has also exponentially
newlineincreased due to the demand for Anodized aluminium components. This led to
newlinethe building of many anodizing industries in different regions around the
newlineworld. However, many studies show the still-required quality of anodized
newlinecomponents has not been obtained since these industries are not modernized
newlineand are still working with outdated mechanisms and processes. To address
newlinethese issues, a number of experiments have been planned, including
newlineautomation, optimizing the anodizing bath, optimizing all baths, and proposing
newlineinternet of things systems in the anodizing environment.
newline