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Titlebook: Additive Manufacturing for Chemical Sciences and Engineering; Suresh K. Bhargava,Seeram Ramakrishna,PR. Selvakan Book 2022 The Editor(s) (

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https://doi.org/10.1007/978-3-642-85496-5mpatibility with a broad range of materials and part geometries, and comparatively low operating costs. Due to their high versatility, MEX and VP have been widely used in a broad range of industries including applications in chemical sciences, biotechnology, aerospace, defense, and automotive engine
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Additional Methods of Treatment,-efficiency heat exchangers, and reactors with highly optimised geometry. To utilize this technology to its maximum potential, it is necessary to understand the practical technological benefits as well as the operational constraints associated with L-PBF materials, process characteristics, part desi
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https://doi.org/10.1007/978-3-642-85496-5ex morphologies. As a result, this technique has a unique advantage over other AM technologies, with the freedom to print complex 3D ceramics given that the ceramic formulation (i.e., the ink), is workable. Excitingly, this technique and its applicable scope can be modified to print multi-ceramic fu
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https://doi.org/10.1007/978-3-642-85496-5tionalities. Surface functionalization of 3D printed materials is quickly gaining significant traction as a sub-discipline, as this approach can address the technical challenges associated with optimizing the performance of AM end-user products. This chapter presents an overview of the novel post-ph
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https://doi.org/10.1007/978-3-642-85496-5industry in response to which the philosophies of industry 4.0 and smart manufacturing have seen global acceptance and recognition. However, this transcendence from the existing state of chemical manufacturing to smart manufacturing heavily relies on the availability and development of advanced manu
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