000 02253nam a22003498i 4500
001 CR9781139236843
003 UkCbUP
005 20200124160246.0
006 m|||||o||d||||||||
007 cr||||||||||||
008 120206s2013||||enk o ||1 0|eng|d
020 _a9781139236843 (ebook)
020 _z9781107028746 (hardback)
020 _z9781107627468 (paperback)
040 _aUkCbUP
_beng
_erda
_cUkCbUP
050 0 0 _aTP248.25.M46
_bF65 2013
082 0 0 _a660/.284245
_223
100 1 _aFoley, Greg,
_d1963-
_eauthor.
245 1 0 _aMembrane filtration :
_ba problem solving approach with MATLAB /
_cGreg Foley, Dublin City University.
264 1 _aCambridge :
_bCambridge University Press,
_c2013.
300 _a1 online resource (xvii, 327 pages) :
_bdigital, PDF file(s).
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
500 _aTitle from publisher's bibliographic system (viewed on 05 Oct 2015).
520 _aFocusing on the application of membranes in an engineering context, this hands-on computational guide makes previously challenging problems routine. It formulates problems as systems of equations solved with MATLAB, encouraging active learning through worked examples and end-of-chapter problems. The detailed treatments of dead-end filtration include novel approaches to constant rate filtration and filtration with a centrifugal pump. The discussion of crossflow microfiltration includes the use of kinetic and force balance models. Comprehensive coverage of ultrafiltration and diafiltration processes employs both limiting flux and osmotic pressure models. The effect of fluid viscosity on the mass transfer coefficient is explored in detail, the effects of incomplete rejection on the design and analysis of ultrafiltration and diafiltration are analysed, and quantitative treatments of reverse osmosis and nanofiltration process analysis and design are explored. Includes a chapter dedicated to the modelling of membrane fouling.
650 0 _aMembrane separation.
650 0 _aUltrafiltration.
650 0 _aChemical engineering.
776 0 8 _iPrint version:
_z9781107028746
856 4 0 _uhttps://doi.org/10.1017/CBO9781139236843
999 _c519033
_d519031