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1

Zemp, R. J. Thermodynamic analysis of separation systems. UMIST, 1994.

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2

International Symposium on Flocculation in Biotechnology and Separation Systems (1986 San Francisco). Flocculation in biotechnology and separation systems. Elsevier, 1987.

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3

Gottschlich, Douglas E. Energy minimization of separation processes using conventional/membrane hybrid systems: Final report. Office of Scientific and Technical Information, 1990.

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4

Field, Gary G. Color scanning and imaging systems. Graphic Arts Technical Foundation, 1990.

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5

Mirnezami, Mitra. Ag gregation studies on sphalerite systems. Dept. of Mining and Metallurgical Engineering, McGill University, 2002.

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6

Aguilar, José Ramon Hernandez. An imaging technique for sizing bubbles in flotation systems. McGill University, Dept. of Mining, Metals and Materials Engineering, 2004.

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7

Vargas, Jorge Agustin Torrealba. Design of novel gas velocity sensors for flotation systems. McGill University, Dept. of Mining, Metals and Materials Engineering, 2004.

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8

UEF, Conference on Solid-Liquid Separation Systems (1999 Oahu Hawaii). UEF Conference on Solid-Liquid Separation Systems: Special issue. Elsevier, 1999.

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9

Nordic Symposium on Reactive Separation Systems (2nd 1996 Otaniemi, Finland). Proceedings of the Second Nordic Symposium on Reactive Separation Systems. Helsinki University of Technology, Laboratory of chemical Engineering and Plant Design, 1996.

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10

Boerlage, Siobhán Francesca E. Scaling and particulate fouling in membrane filtration systems. Swets & Zeitlinger, 2001.

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11

International, Symposium on Flocculation in Biotechnology and Separation Systems (1986 San Francisco Calif ). Flocculation in biotechnology and separation systems: Proceedings of the International Symposium on Flocculation in Biotechnology and Separation Systems, San Francisco, California, U.S.A. July 28-August 1, 1986. Elsevier, 1987.

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12

International Conference on Phase Partitioning on Advances in Separations Using Aqueous Phase Systems in Cell Biology and Biotechnology (5th 1987 Keble College). Separations using aqueous phase systems: Applications in cell biology and biotechnology. Plenum Press, 1989.

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13

Chenkun, Qi, and SpringerLink (Online service), eds. Spatio-Temporal Modeling of Nonlinear Distributed Parameter Systems: A Time/Space Separation Based Approach. Springer Netherlands, 2011.

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14

Morovic, Jan. Color gamut mapping. John Wiley & Sons, 2008.

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15

Sharpe, A. G. Outline of a method for the determination of separation standards for future air traffic systems. Civil Aviation Authority, 1991.

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16

Vieth, W. R. Membrane systems: Analysis and design : applications in biotechnology, biomedicine, and polymer science. J. Wiley, 1994.

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17

Vieth, W. R. Membrane systems: Analysis and design : applications in biotechnology, biomedicine, and polymer science. Hanser Publishers, 1988.

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18

Reinhard, Erik, Erum Arif Khan, Ahmet Oguz Akyüz, and Garrett M. Johnson. Color imaging: Fundamentals and applications. A. K. Peters, 2008.

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19

Day, Jerry B. Color scanning handbook: Your guide to Hewlett-Packard ScanJet color scanners. Prentice Hall PTR, 1997.

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20

Partition of cell particles and macromolecules: Separation and purification of biomolecules, cell organelles, membranes, and cells in aqueous polymer two-phase systems and their use in biochemical analysis and biotechnology. 3rd ed. Wiley, 1986.

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21

Louch, Jeff. Semipermeable membrane devices (SPMDs) for determining absolute or relative water column concentrations of non-polar chemicals in aqueous systems / by Jeff Louch. National Council for Air and Stream Improvement, 2002.

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22

Ontario. Ministry of Environment and Energy. A guide to source separation of recyclable materials and leaf and yard waste systems for municipalities, as required under Ontario Regulation 101/94. Ontario Ministry of Environment and Energy, 1995.

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23

Ontario. Ministry of Environment and Energy. A guide to source separation of recyclable materials and leaf and yard waste systems for municipalities, as required under Ontario Regulation 101/94. Ontario Ministry of Environment and Energy, 1995.

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24

Zhang, Zhaoning, Lili Wang, and Dongbin Li. Fei xing jian ge an quan ping gu yin lun. Ke xue chu ban she, 2009.

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25

Shieh, Martin Tantoh. Combined bioreaction and separation in a simulated counter-current chromatographic bioreactor-separator system. Aston University. Department of Chemical Engineering and Applied Chemistry, 1994.

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26

Fisher, Derek, and Ian A. Sutherland, eds. Separations Using Aqueous Phase Systems. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4684-5667-7.

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27

Mexico. Suprema Corte de Justicia. Horario de verano: Sólo el Congreso de la Unión puede legislar sobre la aplicación de los husos horarios. Suprema Corte de Justicia de la Nación, 2005.

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28

Girard-Audet, Catherine. Perdue. Editions Les Malins, 2012.

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29

Mirkin, Inessa. Separation system R&D in Soviet aerospace. Delphic Associates, 1988.

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30

Andrzej, Cichocki, Yeredor Arie, Zibulevsky Michael, and SpringerLink (Online service), eds. Latent Variable Analysis and Signal Separation: 10th International Conference, LVA/ICA 2012, Tel Aviv, Israel, March 12-15, 2012. Proceedings. Springer Berlin Heidelberg, 2012.

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31

De, Sirshendu. Electric field enhanced membrane separation system: Principles and typical applications. Nova Science Publishers, 2009.

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32

Hollis, D. L. Use of an arc plasma system to separate gases. U.S. Dept. of the Interior, Bureau of Mines, 1991.

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33

1955-, Chien I.-Lung, ed. Design and control of distillation systems for separating azeotropes. Wiley, 2010.

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34

Luyben, William L. Design and control of distillation systems for separating azeotropes. Wiley, 2010.

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35

Sinaiski, Emmanuil G., and Eugeniy J. Lapiga. Separation of Multiphase, Multicomponent Systems. Wiley & Sons, Incorporated, John, 2007.

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36

Separation of Multiphase, Multicomponent Systems. Wiley-VCH, 2007.

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37

Sinaiski, Emmanuil G., and Eugeniy J. Lapiga. Separation of Multiphase, Multicomponent Systems. Wiley & Sons, Limited, John, 2007.

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38

(Editor), Jorg P. Kutter, and Yolanda Fintschenko (Editor), eds. Separation Methods In Microanalytical Systems. CRC, 2005.

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39

W, Crull Anna, and Business Communications Co, eds. Separation systems for commercial biotechnology. Business Communications Co., 1988.

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40

Separation systems for commercial biotechnology. Business Communications Co., 1995.

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41

National Risk Management Research Laboratory (U.S.) and Superfund Innovative Technology Evaluation Program (U.S.), eds. Rochem Separation Systems, Inc., disc tube module technology. National Risk Management Research Laboratory, Office of Research and Development, U.S. Environmental Protection Agency, 1998.

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42

1941-, Baker Richard W., ed. Membrane separation systems: Recent developments and future directions. Noyes Data Corp., 1991.

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43

R. W. Baker et al. 'Membrane Separation Systems : Recent Developments and Future Directions. Noyes Publications, 1991.

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44

(Editor), Peter P. Radecki, John C. Crittenden (Editor), David R. Shonnard (Editor), and John L. Bulloch (Editor), eds. Emerging Separation and Separative Reaction Technologies for Process Waste Reduction: Adsorption and Membrane Systems. American Institute of Chemical Engineers, 1998.

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45

Co, Business Communications. Separations Systems for Commercial Biotechnology. Business Communications Company, 2003.

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46

Rajni, Hatti-Kaul, ed. Aqueous two-phase systems: Methods and protocols. Humana Press, 2000.

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47

Superfund Innovative Technology Evaluation Program (U.S.), ed. Disc Tube® Module technology: Rochem Separation Systems, Inc. U.S. Environmental Protection Agency, Superfund Innovative Technology Evaluation, 1997.

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48

Ray, R. J. The use of membranes in hybrid industrial separation systems. Electric Power Research Institute, 1987.

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49

W, Baker R., ed. Membrane separation systems: A research and development needs assessment. USDOE Office of Energy Research, 1990.

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50

(Editor), Shoji Makino, Te-Won Lee (Editor), and Hiroshi Sawada (Editor), eds. Blind Speech Separation (Signals and Communication Technology). Springer, 2007.

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