Développement d un système d imagerie spectrale pour contrôle de la qualité en-ligne des procédés d extrusions de composites plastiques
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1 Développement d un système d imagerie spectrale pour contrôle de la qualité en-ligne des procédés d extrusions de composites plastiques R. Gosselin, C. Duchesne, et D. Rodrigue Département de génie chimique Université Laval Colloque PAT/QbD Université de Sherbrooke 7 octobre 2010
2 Needs of Process Industry Several products are made of multi-component particulate mixtures, solidified composite melts, etc Polymer processing Pharmaceutical Mineral and metallurgical processes, etc. Quality depends upon: Overall composition Size and spatial distribution of the components within the product Physical state (i.e. level of crystallinity) Surface aesthetics, etc. Raw materials available from new suppliers, greater variability need more frequent measurements and closer monitoring & control
3 Standard tools for testing quality In the laboratory: analytical instruments (DSC, TGA, XRD, etc), devices for testing mechanical properties, etc. Cost/labor intensive, long time delays Destructive Small samples Often cover < 1% of incoming raw materials or production Rapid and non-destructive tools for testing quality Machine vision for estimating/monitoring product quality
4 Quality Control of Extruded Wood-Plastic Composites Quality control system Quality attributes: Dispersion of key components Mechanical properties Surface aesthetics HDPE resin Wood fibers Recipe (%wood fibers) Throughput Screw Speed Barrel temperature VIS-NIR ( nm) Line-scan spectral imaging system Twin-screw extruder
5 Spectral axis Multivariate VIS-NIR imaging Cross direction X y Cross direction x
6 Experimental DOE on machine variables and recipe ( ) 12 steady-states & transitions Spectral VIS-NIR images were collected every about 30 cm Samples were taken near imaged regions for mechanical testing (traction along MD) in 5 replicates 6 points along stress/strain curves + enthalpy of fusion ( crystallinity)
7 Images / samples Methodology Image acquisition (pixels CD scans MD ) = ( ) Pretreatment Wavelength Selection ( ) [Gosselin et al. (2010), Chemom Intell Lab Syst 100:12 21] Feature extraction Spectral signatures (2-D mean intensity at each waveband) Textural features (spatial organization GLCM ) Analysis / classification / regression =18 7 X F PLS Y Desired information N Spectral features Textural features Product properties
8 Spectral / Textural Features Quality space has 2 main variance directions Color/wood species Polyethylene crystallinity 6 relevant spectral bands were identified and selected Light intensities were averaged within each band (6 spectral features) 12 textural features: entropy and correlation of GLCM [32 GL, L= 2,5,10 pixels, cross and machine directions] on band nm
9 Latent Variable Model (PLS) Data collected during steady-state operation used for training the model (11 states 25 line scans) X = T P T + E Y = T Q T + F T = X W* Validation using data collected during transients (6750 line scans)
10 Thermomechanical energy WPC Quality in Steady-State Product apparence (color-texture) / wood content
11 WPC Quality in Transitions
12 WPC Quality in Transitions
13 WPC Quality in Transitions Failure of temperature control Agglomerates of wood fibers
14 Conclusions and future work Very promising results for a simple composite system (1 filler, 1 polymer specie) Grant from Quebec Research Consortium for Polymer Processing and Composites (CRPCQ) + 2 companies for extending the work to commercial products (5-10 components) Use of recycled polymers (post-industrial/consumer) instead of fresh resins Demonstrate closed loop quality control at pilot plant scale
15 Acknowledgments Ryan Gosselin now prof. at Université de Sherbrooke Prof. Denis Rodrigue (polymer processing) NSERC funding CFI (spectral imaging systems)
16 QUESTIONS?
17
18 Imagerie hyper-spectrale UV-VIS-NIR NIR: nm VIS: nm UV: nm sample
19 Spectral channels Multivariate Imaging Images containing several spectral channels Gray level images 1 channel (matrix) Color RGB images 3 channels (array or cube) Multi-, Hyper-spectral images channels Choice depends upon the complexity of the image features to be extracted Bar code vs map of chemical components on a surface X Horizonal Pixels x y V. Pixels Strong collinearity between the light intensities of adjacent channels (wavelengths) measured for each pixel of the image Multivariate Statistical Methods (PCA/PLS) are typically used for analyzing these images
20 Mechanical Testing Typical stress-strain curve for LDPE/PS film with the parameters studied: Young s modulus (1), the strength and associated strain (2 and 3), the stress and strain at rupture (4 and 5) as well as the sample toughness (6).
21 Mechanical Testing PCA Y
22 PLS Model Interpretation
23 DOE
24 Dynamics between process variations and PLS scores
25 Images / samples Nature of Data & Problem formulation PLS / PLS-DA K K+L A M X PCA T Y N Image features Process data (instrumentation) Latent variables (score vectors) Classes / key process variable PCA: X = T P T + E PLS: X = T P T + E Y = T Q T + F T = X W*
26 Images / samples =18 7 X F PLS Y N Spectral features Textural features Product properties PCA: X = T P T + E PLS: X = T P T + E Y = T Q T + F T = X W*
27 Multi-Resolution GLCM Texture Analysis Grey Level Co-occurrence Matrix (GLCM) Tabulation of how frequently different combinations of pixel brightness values (grey levels) occur in an image Computed for pairs of pixels at a distance L and angle for each other I M1 M2 M3 M4 L = 1, = 90 L = 1, = 0 L = 1, = 45 L = 2, = 0 Scalar texture descriptors: energy, entropy, correlation, etc. (Haralick s features) computed from GLCM
28 Spectral axis ( ) Multivariate Univariate Image Digital Images UV Visible IR 200nm 380nm 900nm 1700nm 8-15 m k X Spatial axis (x) k
29 Analyse de texture par ondelettes (WTA) (x) m/ 2 m m,n x 2 2 x n cm,n f x m,n x dx m,n x,f x DWT j/ 2 j j, k 2 h0 k 2 j/ 2 j j, k 2 h1 k 2 h 0 = Filtre passe bas h 1 = Filtre passe haut a j f k, j, k et dj f k, j, k
30 Analyse de texture par ondelettes (WTA) H ver 0 2 _ 1 a j H 0 = Filtre passe bas H 1 = Filtre passe haut H hor H ver 1 2 _ 1 d h j a j-1 I H ver 0 2 _ 1 d v j H hor H ver 1 2 _ 1 d d j Filtre ligne (horizontal) Décimation des colonnes Filtre colonnes (vertical) Décimation des lignes
31 Analyse de texture par ondelettes (WTA)
32 Multivariate Image Analysis X t 1 T p t 2 T p t 2 A t B PCA X = + + E feed t ( ) 1 ( ) Reorganization = T p 1 1 T p X E
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