[1] D.C.Y. Foo, Process Integration for Resource Conservation, CRC Press, 2012. [2] M.M. El-Halwagi, Sustainable Design Through Process Integration: Fundamentals and Applications to Industrial Pollution Prevention, Resource Conservation, and Profitability Enhancement, Butterworth-Heinemann/Elsevier, London, 2012. [3] M.B. Noureldin, Pinch Technology and Beyond: New Vistas on Energy Efficiency Optimization, Nova Science Publishers, 2011. [4] D.C.Y. Foo, M.M. El-Halwagi, R.R. Tan, Recent advances in sustainable process design and optimization, Series on Advances in Process Systems Engineering, World Scientific Publishing Company, 2011. [5] B.K. Srinivas, M.M. El-Halwagi, Synthesis of combined heat and reactive mass exchange networks, Chem. Eng. Sci. 49 (13) (1994) 2059-2074. [6] A.J. Isafiade, D.M. Fraser, Optimization of combined heat and mass exchanger networks using pinch technology, Asia Pac. J. Chem. Eng. 2 (6) (2007) 554-565. [7] A.J. Isafiade, D.M. Fraser, Interval based MINLP superstructure synthesis of combined heat andmass exchanger networks, Chem. Eng. Res. Des. 87 (11) (2009) 1536-1542. [8] J. Du, X.F. Li, L. Chen, P.J. Yao, Simultaneous synthesis of combinedmass and heat exchanger networks, 5th International Symposium on Design, Operation and Control of Chemical Processes (PSE Asia 2010), Singapore, 2010. [9] L.L. Liu, J. Du, M.M. El-Halwagi, J.M. Ponce-Ortega, P.J. Yao, A systematic approach for synthesizing combined mass and heat exchange networks, Comput. Chem. Eng. 53 (2013) 1-13. [10] L. Savulescu, J.K. Kim, R. Smith, Studies on simultaneous energy and water minimisation—part I: systems with no water re-use, Chem. Eng. Sci. 60 (12) (2005) 3279-3290. [11] L. Savulescu, J.K. Kim, R. Smith, Studies on simultaneous energy and water minimisation—part II: systems with maximum re-use of water, Chem. Eng. Sci. 60 (12) (2005) 3291-3308. [12] X. Feng, Y. Li, X. Yu, Improving energy performance of water allocation networks through appropriate stream merging, Chin. J. Chem. Eng. 16 (3) (2008) 480-484. [13] X. Feng, Y. Li, R. Shen, A new approach to design energy efficient water allocation networks, Appl. Therm. Eng. 29 (11-12) (2009) 2302-2307. [14] J. Kim, J. Kim, J. Kim, C. Yoo, I. Moon, A simultaneous optimization approach for the design of wastewater and heat exchange networks based on cost estimation, J. Clean. Prod. 17 (2) (2009) 162-171. [15] B. Marianne, P. Luc, M. Ludovic, A.P. Catherine, D. Serge, Minimizing water and energy consumptions in water and heat exchange networks, Appl. Therm. Eng. 36 (2012) 442-455. [16] Z. Liao, G. Rong, J. Wang, Y. Yang, Systematic optimization of heat-integrated water allocation networks, Ind. Eng. Chem. Res. 50 (11) (2011) 6713-6727. [17] Y. Luo, T. Mao, S. Luo, X. Yuan, Studies on the effect of non-isothermal mixing on water-using network's energy performance, Comput. Chem. Eng. 36 (2012) 140-148. [18] H. Kheireddine, Y. Dadmohammadi, C. Deng, X. Feng,M.M. El-Halwagi, Optimization of direct recycle networks with the simultaneous consideration of property, mass, and thermal effects, Ind. Eng. Chem. Res. 50 (7) (2011) 3754-3762. [19] Y. Wang, K.H. Chu, Z. Wang, Two-step methodology for retrofit design of cooling water networks, Ind. Eng. Chem. Res. 53 (2014) 274-286. [20] L.L. Liu, J. Du, M.M. El-Halwagi, J.M. Ponce-Ortega, P.J. Yao, Synthesis of multicomponent mass-exchange networks, Chin. J. Chem. Eng. 21 (4) (2013) 376-381. [21] T.F. Yee, I.E. Grossmann, Simultaneous optimization models for heat integration. I. Area and energy targeting and modeling of multi-stream exchangers, Comput. Chem. Eng. 14 (1990) 1151-1164. [22] T.F. Yee, I.E. Grossmann, Simultaneous optimization models for heat integration. II. Heat exchanger network synthesis, Comput. Chem. Eng. 14 (1990) 1165-1184. [23] H.M. Yu, H.P. Fang, P.J. Yao, Y. Yuan, A combined genetic algorithm/simulated annealing algorithm for large scale system energy integration, Comput. Chem. Eng. 24 (8) (2000) 2023-2035. |