Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer

Controlling crystal size distribution (CSD) is important to downstream processing and to product quality. It is well-recognized that selective removal functions can be used to influence CSD, for example by manufacturing a product with a larger dominant size or narrower distribution. Early work on th...

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Main Author: Barthe, Stephanie Cecile
Format: Others
Language:en_US
Published: Georgia Institute of Technology 2006
Subjects:
Online Access:http://hdl.handle.net/1853/10552
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-105522013-01-07T20:14:00ZUtilization of FBRM in the Control of CSD in a Batch Cooled CrystallizerBarthe, Stephanie CecileChord lengthBatch cooled crystallizationFBRMControlling crystal size distribution (CSD) is important to downstream processing and to product quality. It is well-recognized that selective removal functions can be used to influence CSD, for example by manufacturing a product with a larger dominant size or narrower distribution. Early work on the use of feedback control to manipulate the residence time distribution functions of fines in a continuous crystallizer demonstrated the utility of such an approach in handling process upsets and cycling that resulted from system instability. These efforts were extended to batch crystallization, although there remained significant difficulty associated with on-line analysis of the size distribution. The development of new technologies, such as Focused Beam Reflectance Measurement (FBRM), provides a methodology for on-line monitoring of a representation of the crystal population in either batch or continuous crystallization systems. The FBRM technology is based on laser light scattering; properly installed, it allows on-line determination of the chord length distribution (CLD), which is statistically related to the CSD and depends on the geometry of the crystal. The purpose of the present study is to use the FBRM to monitor the evolution of CSD characteristics and to implement a feedback control scheme that provides the flexibility to move the CSD in a preferred direction. Cooling batch crystallizations of paracetamol has been chosen to investigate implementation of the control scheme. The work will show how fines removal and varying cooling rates provide reliable and practical control of crystal size distribution.Georgia Institute of Technology2006-06-09T18:22:28Z2006-06-09T18:22:28Z2006-04-12Thesis1183036 bytesapplication/pdfhttp://hdl.handle.net/1853/10552en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Chord length
Batch cooled crystallization
FBRM
spellingShingle Chord length
Batch cooled crystallization
FBRM
Barthe, Stephanie Cecile
Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
description Controlling crystal size distribution (CSD) is important to downstream processing and to product quality. It is well-recognized that selective removal functions can be used to influence CSD, for example by manufacturing a product with a larger dominant size or narrower distribution. Early work on the use of feedback control to manipulate the residence time distribution functions of fines in a continuous crystallizer demonstrated the utility of such an approach in handling process upsets and cycling that resulted from system instability. These efforts were extended to batch crystallization, although there remained significant difficulty associated with on-line analysis of the size distribution. The development of new technologies, such as Focused Beam Reflectance Measurement (FBRM), provides a methodology for on-line monitoring of a representation of the crystal population in either batch or continuous crystallization systems. The FBRM technology is based on laser light scattering; properly installed, it allows on-line determination of the chord length distribution (CLD), which is statistically related to the CSD and depends on the geometry of the crystal. The purpose of the present study is to use the FBRM to monitor the evolution of CSD characteristics and to implement a feedback control scheme that provides the flexibility to move the CSD in a preferred direction. Cooling batch crystallizations of paracetamol has been chosen to investigate implementation of the control scheme. The work will show how fines removal and varying cooling rates provide reliable and practical control of crystal size distribution.
author Barthe, Stephanie Cecile
author_facet Barthe, Stephanie Cecile
author_sort Barthe, Stephanie Cecile
title Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
title_short Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
title_full Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
title_fullStr Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
title_full_unstemmed Utilization of FBRM in the Control of CSD in a Batch Cooled Crystallizer
title_sort utilization of fbrm in the control of csd in a batch cooled crystallizer
publisher Georgia Institute of Technology
publishDate 2006
url http://hdl.handle.net/1853/10552
work_keys_str_mv AT barthestephaniececile utilizationoffbrminthecontrolofcsdinabatchcooledcrystallizer
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