A Computer Aided Display-Control Selection Procedure for Process Control Jobs—UNISER

1984 ◽  
Vol 16 (4) ◽  
pp. 371-378 ◽  
Author(s):  
Babur Mustafa Pulat ◽  
Mahmoud A. Ayoub
1993 ◽  
Vol 1 (4) ◽  
pp. 307-319 ◽  
Author(s):  
S. Feyo de Azevedo ◽  
F. Oliveira ◽  
A. Capelo Cardoso

2009 ◽  
pp. 407-407-15 ◽  
Author(s):  
RW Dutton ◽  
P Fahey ◽  
K Doganis ◽  
L Mei ◽  
HG Lee

1978 ◽  
Vol 21 (7) ◽  
pp. 891-897
Author(s):  
M. A. Golovashkin ◽  
Yu. I. Semko

2018 ◽  
Vol 35 (2) ◽  
pp. 1085-1097 ◽  
Author(s):  
Sergey Shevtsov ◽  
Igor V. Zhilyaev ◽  
Ilya Tarasov ◽  
Jiing-Kae Wu ◽  
Natalia G. Snezhina

Purpose The purpose of this paper is to develop the multi-objective optimization approach and its numerical implementation to synthesise the model-base control for the part curing at autoclave processing, which supplies the stability and uniformity of the structure and mechanical properties of the material within the cured composite part. Design/methodology/approach The approach includes conversion of the cured part and mold geometry from their computer-aided design (CAD) to computer-aided engineering (CAE) representation, a finite element (FE) formulation of the coupled forward heat transfer/thermal kinetic problem with the parameters of prepreg, which should be determined by the thermal analysis, and, finally, a mapping of the area of 4D design space (thermal control parameters) to 2D objective space, whose coordinates are the maximum deviations of degree of cure and temperature within the cured part calculated at each call of the FE model. Findings The present modeling and optimization approach to the cure process control of the prepreg with thermosetting resin, as well as the means of visualizing optimization results, allow providing insight into complex curing phenomena, estimating the best achievable quality indicators of manufactured composite parts, finding satisfactory parameters of the control law and deciding considering all manufacturing constraints. Research limitations/implications The research can be effectively used to optimize the cure process control for a wide class of polymeric composite parts, even with a complex geometry, but it requires the exact conversion of the geometry of the modeled part from the CAD to CAE environment, which implies the need for excluding all topological imperfections of original CAD model to eliminate the possible formation of void elements and other reasons that do not allow the correct FE meshing. Because thermal, rheological and kinetics parameters, which include the governing equations of cure process, depend on the reinforcing fibers, and especially on the resin properties, the thermal testing for the new modeled prepreg needs to be performed. Practical implications Computer implementation of the proposed approach and numerical method for model-based optimal control synthesis for composite part cure process can be used in aircraft, rotorcraft, ship and automotive technologies at the design of manufacturing process of the large composite parts with complex shape. Social implications This will allow much better quality for large-scale composite parts, excluding very expensive, time-, energy- and material-consuming multiple cure process testing. Originality/value This is first time the problem of optimal control synthesis for curing the large-scale composite parts of complex shape was solved.


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