2006 AIChE Annual Meeting
(302k) Multidimensional Modeling of Reactive Drying of Polymeric Films: an Integrated Process and Product Approach
Authors
In this work, we investigate the modeling of sophisticated reactive drying of geometrically distributed polymeric thin films. In this system, the product (i.e., thin films covering a geometrically complicated substrate) is developed through undergoing solvent transfer within the film and evaporation at the surface, film topology change, and polymeric reaction, while the process (i.e., a multi-stage oven) is operated for providing radiation and convection heat and air flow mechanics to the product. An additional layer of complexity is the ever-changing boundary condition that the system experiences. It corresponds to the nature that the product needs to go through the multi-stage operations continuously in most applications. Since product quality is addressed for every location on the substrate, and process efficiency is the energy efficiency in each operational stage, a hybrid modeling methodology is introduced which utilizes fundamental knowledge, computational fluid dynamics (CFD), and system dynamics techniques. The resulting model can characterize the spatial and temporal behavior of process and product and their interactions. Model-based simulation reveals opportunities for improving product quality as well as processing efficiency.
This methodology significantly extends scope of reactive drying process modeling, and makes an in-depth understanding of the mechanism behind. Model-based applications reveal various usually inconceivable opportunities for systematic improvements of both product quality and process efficiencies. This modeling methodology is, in general, applicable to a variety of industrial reactive drying problems, where product and process performance can be simultaneously considered.