Acoustic emission monitoring of blending in continuous direct compression
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Publicerad
Författare
Typ
Examensarbete för masterexamen
Master's Thesis
Master's Thesis
Modellbyggare
Tidskriftstitel
ISSN
Volymtitel
Utgivare
Sammanfattning
Continuous direct compression (CDC) is increasingly used in pharmaceutical manufacturing for the continuous production of oral solid dosage forms. Within a CDC
line, continuous blending is an important processing step because the amount of
material retained in the blender affects material transport and residence behaviour.
This thesis investigates whether acoustic measurements recorded during continuous
blending contain information that can be related to residence mass.
Acoustic signals covering different frequency ranges were recorded during six blender
experiments performed at different rotational speeds and throughputs. Time-frequency
analysis, singular value decomposition, and multivariate modelling were used to
characterise the signals and assess the influence of operating conditions. Partial least
squares discriminant analysis achieved 97.8% classification accuracy using frequency
band features and 100% using a higher-resolution spectral representation. Multioutput partial least squares regression further showed that both rotational speed
and throughput were strongly represented in the acoustic measurements.
Residence mass was modelled using gravimetric measurements from each experimental run and evaluated using leave-one-run-out validation. High-dimensional spectral
models produced strong training fits but poor prediction of omitted runs. Reducing
the acoustic feature set and one PLS latent substantially improved cross-run generalisation. The best acoustic-only model achieved a training R2 of 0.940, a LORO R2
of 0.854, and a LORO RMSE of 266 g. Engineered process variables showed strong
individual correlations with residence mass but did not improve LORO performance.
The modelling procedure was also applied to separately acquired recordings using
a different high-frequency measurement setup. Resampling reduced a systematic
prediction offset, while a reference gravimetric measurement was required for bias
correction. Overall, the results show that acoustic measurements contain information associated with both blender operating conditions and residence mass, while
also highlighting the importance of model complexity, run-level validation, block
selection, and measurement consistency when applying the approach to continuous
pharmaceutical blending.
Beskrivning
Ämne/nyckelord
Continuous direct compression, powder blending, residence mass, acoustic monitoring, partial least squares, LORO validation, pharmaceutical manufacturing
