Abstract

This paper conducted a parametric modeling for air knife structure in a printing factory, used HYPERMESH software to divide the meshes of air model and combined with actual conditions to define various boundary conditions in the inner flow field of air knife. Meanwhile, this paper adopted fluid dynamics software Fluent to conduct numerical simulation for the internal airflow of air knife, obtained the distribution regulation of flow field, conducted a parametric modeling for air knife structure under many internal structural proposals through ANSYS design module based on the simulation computational result, conducted optimization design for the position of guide plates, the number of outlets and the size of return air tank in the detailed structure in the air knife in order to determine specific dimension parameters and optimal proposals. Based on the computational results of simulation, this paper found that the original air knife structure had a non-uniform flow field and low velocity at the inlet and outlets. With the increase of length of air knife, the velocity of the middle outlet reduced to zero and did not have obvious effects any more. Guide plates in the air knife had a great influence on the inner flow field of air knife. Through optimization design, the inner flow field of air knife became uniform when there was only one guide plate. When the guide plate was close to the front end of the air knife, the inner flow field of air knife was relatively uniform and velocity at the inlet and outlets was relatively high. This paper conducted a model design for air knives with different structural types and determined proposal 4 as the optimal design through repeated analysis. The design method in this paper could provide guidance for studying and designing air knife structures in the aspect of technological approach and theory.

Highlights

  • At present, air knives are an important equipment used for the deep and fine processing of products [1]

  • For solving the mentioned problems, this paper conducted a parametric modeling for air knife and air model in a printing factory, used HYPERMESH software to divide the meshes of air model and combined with actual conditions to define various boundary conditions in the inner flow field of air knife

  • This paper conducted a parametric modeling for air knife structure in a printing factory, used HYPERMESH software to divide the meshes of air model and combined with actual conditions to define various boundary conditions in the inner flow field of air knife

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Summary

Introduction

Air knives are an important equipment used for the deep and fine processing of products [1]. Ahn [12] studied the influence of internal guide plates on the flow field of air knife and conducted a simulation analysis on the two-dimensional flow field of air knife which was greatly different from the inner flow field distribution of actual three-dimensional air knife structure. Liu [7] used finite element software to conduct a numerical simulation studies and experiments on the inner flow field of air knife of glass washers and pointed out that maximum wind velocity decreased when the outlet width of air knife increased. He only computed two-dimensional flow fields and failed to conduct an analysis on three-dimensional models. Design for guide plates, return air tank and size in the air knife based on the computational result in order to effectively reduce the problem of non-uniform airflow at the outlet of air knife

Computation theory of flow field of air knife
Optimization design theory of air knife
Geometric model of air knife
Mesh division of air knife
Boundary conditions and computational parameters
Computational result and analysis of the original air knife model
Optimization design and analysis of air knife model
Optimization proposal 1 of air knife
Optimization proposal 2 of air knife
Optimization proposal 3 of air knife
Optimization scheme 4 of air knife
Conclusions
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