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Energy, 35, 2175, 10.1016\u002Fj.renene.2010.02.025\nRivera, 2003, Single stage and double absorption heat transformers used to recover energy in a distillation column of butane and pentane, Int. J. Energy Res., 27, 1279, 10.1002\u002Fer.943\nMa, 2003, Application of absorption heat transformer to recover waste heat from a synthetic rubber plant, Appl. Therm. Eng., 23, 797, 10.1016\u002FS1359-4311(03)00011-5\nMeza, 2014, Experimental study of an absorption heat transformer with heat recycling to the generator, Exp. Therm. Fluid Sci., 53, 171, 10.1016\u002Fj.expthermflusci.2013.12.002\nHuicochea, 2004, Portable water purification system integrated to a heat transformer, Desalination, 165, 385, 10.1016\u002FS0011-9164(04)00246-2\nHuicochea, 2013, Analysis of the behavior of an experimental absorption heat transformer for water purification for different mass flux rates in the generator, Appl. Therm. Eng., 52, 38, 10.1016\u002Fj.applthermaleng.2012.11.003\nParham, 2013, Alternative absorption heat transformer configurations integrated with water desalination system, Desalination, 328, 74, 10.1016\u002Fj.desal.2013.08.013\nGomri, 2010, Thermal seawater desalination possibilities of using single effect and double effect absorption heat transformer systems, Desalination, 253, 112, 10.1016\u002Fj.desal.2009.11.023\nSekar, 2011, Experimental studies on absorption heat transformer coupled distillation system, Desalination, 274, 292, 10.1016\u002Fj.desal.2011.01.064\nHuicochea, 2013, A novel cogeneration system: a proton exchange membrane fuel cell coupled to a heat transformer, Appl. Therm. Eng., 50, 1530, 10.1016\u002Fj.applthermaleng.2011.10.064\nYari, 2012, A novel cogeneration cycle based on a recompression supercritical carbon dioxide cycle for waste heat recovery in nuclear power plants, Int. J. Exergy, 10, 346, 10.1504\u002FIJEX.2012.046815\nZare, 2012, Proposal and analysis of a new combined cogeneration system based on the GT-MHR cycle, Desalination, 286, 417, 10.1016\u002Fj.desal.2011.12.001\nYari, 2013, Parametric study and optimization of an ejector-expansion TRCC cycle integrated with a water purification system, Proc. Inst. Mech. Eng. A: J. Power Energy, 227, 383, 10.1177\u002F0957650912468528\nParham, 2014, Absorption heat transformers – a comprehensive review, Renew. Sustain. Energy Rev., 34, 430, 10.1016\u002Fj.rser.2014.03.036\nReay, 2002, Compact heat exchangers, enhancement and heat pumps, Int. J. Refrig., 25, 460, 10.1016\u002FS0140-7007(00)00005-0\nHayes, 2011, Study of carbon dioxide condensation in chevron plate exchangers; heat transfer analysis, Int. J. Heat Mass Transfer, 54, 1121, 10.1016\u002Fj.ijheatmasstransfer.2010.11.010\nZhang, 2013, Particulate fouling and composite fouling assessment in corrugated plate heat exchangers, Int. J. Heat Mass Transfer, 60, 263, 10.1016\u002Fj.ijheatmasstransfer.2013.01.040\nRomero, 2011\nCerezo, 2009, Experimental study of an ammonia–water bubble absorber using a plate heat exchanger for absorption refrigeration machines, Appl. Therm. Eng., 29, 1005, 10.1016\u002Fj.applthermaleng.2008.05.012\nLee, 2013, Thermal and hydraulic performance of sinusoidal corrugated plate heat exchanger for low temperature lift heat pump, Int. J. Refrig., 36, 689, 10.1016\u002Fj.ijrefrig.2012.11.008\nZacarías, 2010, Boiling heat transfer and pressure drop of ammonia–lithium nitrate solution in a plate generator, Int. J. Heat Mass Transfer, 53, 4768, 10.1016\u002Fj.ijheatmasstransfer.2010.06.015\nMarcos, 2009, Experimental boiling heat transfer coefficients in the high temperature generator of a double effect absorption machine for the lithium bromide\u002Fwater mixture, Int. J. Refrig., 32, 627, 10.1016\u002Fj.ijrefrig.2009.02.003\nKang, 1998, Ammonia–water bubble absorber with a plate heat exchanger, ASHRAE Trans., 104, 1\nOronel, 2013, Heat and mass transfer in a bubble plate absorber with NH3\u002FLiNO3 and NH3\u002F(LiNO3–H2O) mixtures, Int. J. Therm. Sci., 63, 105, 10.1016\u002Fj.ijthermalsci.2012.07.007\nGenssle, 2000, Analysis of the process characteristics of an absorption heat transformer with compact heat exchangers and the mixture TFE-E181, Int. J. Therm. Sci., 39, 30, 10.1016\u002FS1290-0729(00)00197-5\nIbarra-Bahena, 2013, Evaluation of the thermodynamic effectiveness of a plate heat exchanger integrated into an experimental single stage heat transformer operating with water\u002FCarrol mixture, Exp. Therm. Fluid Sci., 51, 257, 10.1016\u002Fj.expthermflusci.2013.08.006\nIbarra-Bahena, 2014, Experimental thermodynamic evaluation for a single stage heat transformer prototype build with commercial PHEs, Appl. Therm. 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Therm. Eng., 31, 3526, 10.1016\u002Fj.applthermaleng.2011.07.006\nIyoki, 1989, Performance characteristics of the water–lithium bromide–zinc chloride–calcium bromide absorption refrigerating machine, absorption heat pump and absorption heat transformer, Int. J. Refrig., 13, 191, 10.1016\u002F0140-7007(90)90075-8\nBasurto-Pensado, 2011, Analysis and characterization of an optical fiber for Carrol–water liquid pair, Energy, 36, 3952, 10.1016\u002Fj.energy.2011.05.009\nIrvine, 1984\nRivera, 2002, Theoretical and experimental comparison of the performance of a single-stage heat transformer operating with water\u002Flithium bromide and water\u002FCarrol™, Int. J. 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Tong, Forced convection heat transfer to water at near-critical temperatures and supercritical pressures, Report WCAP-2056, Part IV, November, Westinghouse Electric Corp., Pittsburgh, USA, 1964.\nJ.D. Jackson, Consideration of the heat transfer properties of supercritical pressure water in connection with the cooling of advanced nuclear reactors, in: Proceedings of the 13th Pacific Basin Nuclear Conference, Shenzhen City, China, October 21–25, 2002.\nMokry, 2011, Development of supercritical water heat-transfer correlation for vertical bare tubes, Nucl. Eng. Des., 241, 1126, 10.1016\u002Fj.nucengdes.2010.06.012\nDomin, 1963, Wärmeübergang in Kritischen Und Berkritischen Bereichen Von Wasser in Rohren, Brennst-Wäirme-Kraft, 15, 527\nP.L. Kirillov, Yu.S. Yur’ev, V.P. 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Heibel, Regeneration strategies for an enhanced thermal management of oxide diesel particulate filters, SAE Paper No. 2008-01-0328, 2008.\nBurtscher, 2005, Physical characterization of particulate emissions from diesel engines: a review, Aerosol Science, 36, 896, 10.1016\u002Fj.jaerosci.2004.12.001\nB. Campbell, M. Peckham, J. Symonds, J. Parkinson, A. Finch, Transient Gaseous and Particulate Emissions Measurements on a Diesel Passenger Car Including DPF regeneration, SAE Technical Paper 2006-01-01079, 2006.\nB. Giechaskiel, R. Munoz-Bueno, L. Rubino, U. Manfredi, P. Dilara, G. De Santi, J. Andersson, Particle Measurement Programme (PMP): Particle Size and Number Emissions Before, During and After Regeneration Events of a Euro 4 DPF Equipped Light Duty Diesel Vehicle, SAE Technical Paper 2007-01-1944, 2007.\nCauda, 2007, Secondary nanoparticle emissions during diesel particulate trap regeneration, Topics in Catalysis, 42-43, 253, 10.1007\u002Fs11244-007-0186-y\nCauda, 2006, PM0.1 emissions during diesel trap regeneration, Environmental Science and Technology, 40, 5532, 10.1021\u002Fes0606982\nCharron, 2003, Primary particle formation from vehicle emissions during exhaust dilution in the roadside atmosphere, Atmospheric Environment, 37, 4109, 10.1016\u002FS1352-2310(03)00510-7\nDwyer, 2010, Emissions from a diesel car during regeneration of an active diesel particulate filter, Aerosol Science, 41, 541, 10.1016\u002Fj.jaerosci.2010.04.001\nEU FP6 Project, Innovative particle trap system for future diesel engines – IPSY, FP6 Project Reference. 31410.\nHarris, 2002, The role of fragmentation in defining the signature size distribution of diesel soot, Aerosol Science, 33, 935, 10.1016\u002FS0021-8502(02)00045-9\nC. Hinterberger, R. Kaiser, M. Olesen, 3D-Simulation of Soot Loading and Regeneration of Diesel Particulate Filters, MTZ Motortechnische Zeitschrift 67 Heft, vol. 4, 2006.\nKamimoto, 2009, Light scattering technique for estimating soot mass loading in diesel particulate filters, International Journal of Energy Research, 10\nKittelson, 2006, On-road and laboratory evaluation of combustion aerosols. Part1: Summary of diesel engine results, Aerosol Science, 37, 913, 10.1016\u002Fj.jaerosci.2005.08.005\nA. Konstandopoulos, M. Kostoglou, E. Skaperdas, E. Papaioannou, D. Zarvalis, E. Kladopoulou, Fundamental Studies of Diesel Particulate Filters: Transient Loading, Regeneration and Aging, SAE 2000-01-1016, 2000.\nM. Kostoglou, A.G. Konstandopoulos, Oxidative Fragmentation and Coagulation of Diesel Soot Aggregates. Presented at the 3rd Meeting of the Greek Section of the Combustion Institute, Patras, 7–8 November, 2003.\nMillet, 2003, Modelling of diesel particulate filter regeneration, with the effect of fuel-borne catalyst on pressure losses and soot oxidation kinetics, Oil & Gas Science and Technology – Rev IFP, 58, 151, 10.2516\u002Fogst:2003010\nF. Millo, D. Vezza, T. Vlachos, D. Fino, N. Russo, A. De Filippo, Particle Number and Size Distribution from a Small Displacement Automotive Diesel Engine during DPF Regeneration, SAE Paper 2010-01-1552, 2010.\nNtziachristos, 2005, Effects of a catalysed and an additized particle filter on the emissions of a diesel passenger car operating on low sulphur fuels, Atmospheric Environment, 39, 4925, 10.1016\u002Fj.atmosenv.2005.04.040\nOberdörster, 2002, Ultrafine particles in the urban air: to the respiratory track and beyond, Environmental Health Perspectives, 110, A440, 10.1289\u002Fehp.110-a440\nPark, 2008, Development and performance test of a thermo-denuder for separation of volatile matter from submicron aerosol particles, Aerosol Science, 39, 1099, 10.1016\u002Fj.jaerosci.2008.07.002\nPope, 2006, Health effects of fine particulate air pollution: lines that connect, Journal of the Air and Waste Management Association, 56, 709, 10.1080\u002F10473289.2006.10464485\nA. Suresh, A. Yezerets, N. Currier, J. 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Thermophys., 71, 424\nDobrego, 1998, Influence of carcass transparency on cylindrical axis-symmetric filtration combustion burner, J. Engrg. Phys. Thermophys., 71, 62\nS.I. Foutko, S.A. Zhdanok, S.I. Shabunia, L.A. Kennedy, Superadiabatic combustion wave in a diluted methane–air mixture under filtration in a packed bed, in: Proceedings of the 26th Symposium on Combustion, vol. 2, Naply 1996, pp. 1556–1565\nZhdanok, 1993, Obtaining of superadiabatic temperatures with gas combustion in a system of two porous layers at reverse gas flow, J. Engrg. Phys. Thermophys., 64, 569\nL.A. Kennedy, J.P. Binque, M.K. Drayton, A.V. Saveliev, S.I. Foutko, Chemical structures of methane–air filtration combustion waves for fuel-lean and fuel-rich conditions, in: Proceedings of the 27th Symposium on Combustion WIP Posters, University of Colorado at Boulder, August 1998, p. 403\nO.S. Rabinovich, I.G. Gurevich, A.V. Fefelov, Quasi one-dimentional model of filtration combustion in coarse particle bed, in: Proceedings of the Third Minsk International Forum Heat and Mass Transfer, Heat and Mass Transfer Institute, Minsk, vol. 7, 1996, pp. 121–129\nKaviany, 1991\nZel’dovich, 1985\nLewis, 1961\nM.E. Aerov, O.M. Todes, D.A. Narinskii, Apparati so stacionarnym zerrnistim sloem, Chemia, Moscow, 1979 (in Russian)\nWestbrook, 1981, Investigation of turbulent premixed flames, Combust. Sci. Technol., 2, 31, 10.1080\u002F00102208108946970\nO.L. Gulder, Turbulent premixed flame propagation models for different combustion regimes, in: Proceedings of the 23rd Symposium on Combustion, University of Orleans, July 1990, pp. 743–750\nR.G. Abdel-Gayed, D. Bradley, Dependence of turbulent burning velocity on turbulent reynolds number and ratio of laminar burning velocity to R.M.S. turbulent velocity, in: Proceedings of 16th Symposium on Combustion, The Massachusetts Institute of Technology, August 1976, pp. 1725–1731\nGolduin, 1987, An application of fractals to modeling premixed turbulent flames, Combust. 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Fluid Mech., 311, 73, 10.1017\u002FS0022112096002510\nHsiao, 1990, Near-field flow structures and sideband instabilities of an initially laminar plane jet, Exp. Fluids, 9, 2, 10.1007\u002FBF00575329\nHsiao, 1990, On the evolution of instabilities in the near field of a plane jet, Phys. Fluids A, 2, 400, 10.1063\u002F1.857735\nHuang, 1999, On the mode development in the developing region of a plane jet, Phys. Fluids, 11, 1847, 10.1063\u002F1.870047\nHo, 1998, Micro-electro-mechanical-systems (MEMS) and Fluid Flows, Ann. Rev. Fluid Mech., 30, 579, 10.1146\u002Fannurev.fluid.30.1.579\nPeacock, 2004, Forcing a planar jet flow using MEMS, Exp. Fluids, 37, 22, 10.1007\u002Fs00348-004-0780-8\nSuzuki, 2004, Active control of an axisymmetric jet with distributed electromagnetic flap actuators, Exp. Fluids, 36, 498, 10.1007\u002Fs00348-003-0756-0\nPothos, 2001, Asymmetric forcing of a turbulent rectangular jet with a piezoelectric actuator, Phys. Fluids, 13, 1480, 10.1063\u002F1.1357817\nF.B. Hsiao, K.S. Huang, Y.L. Yeh, C.H. Chiang, Experimental investigation of jet flapping by long-wave excitation, in: Fourth International Conference on Heat Transfer, Fluid Mechanics and Thermodynamics, Cairo, Egypt, 2005.\nGoldschmidt, 1983, Structures and flow reversal in turbulent plane jets, Phys. Fluids, 26, 428, 10.1063\u002F1.864155\nHo, 1981, Dynamics of an impinging jet. Part 1. The feedback phenomenon, J. 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1989, The Two Books on Water Supply of the City of Rome of Sextus Julius Frontinus, 205\nVenturi, 1797, Recherches experimentales sur le principle de communication lateral dans les fluides, Nicholson's Journal of Natural Philosophy, 3, 1802\nPatterson, 1938, Modern Diffuser Design, Aircraft Eng., 10, 267, 10.1108\u002Feb030365\nSprenger, 1959, Experimentelle untersuchungen an geraden und gekrummten Diffusoren, Meittilung aus dem Institüte fur Aerodynamik and der ETH, 27\nSprenger, 1962, Experimental Investigation of Straight and Curved Diffusers, Ministry of Aviation, Report TIL\u002FTS134\nCockrell, 1963, A Review of Incompressible Diffuser Flow, Aircraft Eng., 35, 286, 10.1108\u002Feb033790\nCocanower, 1965, A Unified Method for Predicting the Performance of Subsonic Diffusers of Several Geometries, Dept. Mech. Eng., Stanford Univ., Report PD-10\nCockrell, 1967, A Review of the Literature on Subsonic Fluid Flow through Diffusers, British Hydromechanics Research Assn., Report TN902\nSovran, 1967, Experimentally Determined Optimum Geometries for Rectilinear Diffusers with Rectangular, Conical or Annular Cross-Section, 270\nBradley, 1970, Boundary Layer Methods Applied to Internal Fluid Problems, 106\nKlein, 1981, Review: Effects of Inlet Conditions on Conical-Diffuser Performance, ASME J. Fluid Eng., 103, 250, 10.1115\u002F1.3241727\nGibson, 1910, On the Flow of Water through Pipes Having Converging or Diverging Boundaries, 83, 366\nGibson, 1911, On the Resistance to Flow of Water through Pipes or Passages Having Divergent Boundaries, Trans. Roy. Soc. A. Edinburgh, 48\nLyon, 1922, Flow in Conical Draft Tubes of Varying Angles, Mech. Eng., 44, 177\nRobertson, 1952, Effect of Entrance Conditions on Diffuser Flow, ASCE Trans., Paper No. 2570, 1068\nUram, 1954, The Growth of an Axisymmetric Turbulent Boundary Layer in an Adverse Pressure Gradient, 687\nRobertson, 1957, Effect of Adverse Pressure Gradients on Turbulent Boundary Layers in Axisymmetric Conduits, ASME J. Appl. Mech., 79, 191, 10.1115\u002F1.4011495\nRuetenik, 1955, Equilibrium Turbulent Flow in a Slightly Divergent Channel, 446\nRobertson, 1957, Turbulence in a Diffuser Boundary Layer\nRobertson, 1958, Turbulence in a Diffuser Boundary Layer, 1832.55\nFraser, 1958, The Turbulent Boundary Layer in a Conical Diffuser, 1684.1\nCockrell, 1964, Boundary Layer Effects in Diffusers\nLivesey, 1965, The Dependence of Diffuser Performance upon Inlet Flow Conditions, J. Roy Aero. Soc., 69, 794, 10.1017\u002FS0368393100081785\nMcDonald, 1966, An Experimental Investigation of Incompressible Flow in Conical Diffusers, Int. J. Mech. 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Fluids, 4, 319, 10.1007\u002FBF00266297\nSingh, 1995, Behaviour of Mean and Fluctuating Skin Friction in a Conical Diffuser with Instantaneous Flow Reversals, Exp. Therm. Fluid Sci., 11, 190, 10.1016\u002F0894-1777(95)00011-A\nSingh, 1995, Asymptotic Velocity Defect Profile in an Incipient-Separating Axisymmetric Flow, AIAA J., 33, 94, 10.2514\u002F3.12337\nAzad, 1979, Similarities of Turbulence Structure in a Conical Diffuser with Other Wall-Bounded Flows, AIAA J., 17, 884, 10.2514\u002F3.61241\nArora, 1980, Turbulent Kinetic Energy Balance in a Flow with Adverse Pressure Gradient, 1\nSingh, 1993, Measurement of Mean Velocity in a Complex Turbulent Flow, 629\nSingh, 1995, Measurement of Instantaneous Flow Reversals and Velocity Field in a Conical Diffuser, Exp. Therm. Fluid Sci., 10, 397, 10.1016\u002F0894-1777(94)00083-K\nAzad, 1991\nSimpson, 1981, The Structure of a Separating Turbulent Boundary Layer, Part 1: Mean Flow and Reynold Stresses, J. Fluid Mech., 113, 23, 10.1017\u002FS002211208100339X\nThompson, 1984, Flying Hot-Wire Anemometry, Exp. Fluids, 2, 47, 10.1007\u002FBF00266318\nRuderich, 1986, An Experimental Investigation of a Turbulent Shear Flow with Separation, Reverse Flow and Reattachment, J. Fluid Mech., 163, 283, 10.1017\u002FS0022112086002306\nNagano, 1993, Effects of Adverse Pressure Gradients on Mean Flows and Turbulence Statistics in a Boundary Layer, Vol. 8, 7\nSchofield, 1972, The Turbulent Boundary Layers as a Wall Confined Wake, Aeronautical Research Labs., Australian Dept. Defence, Mech. Eng. Report No. 134\nPerry, 1973, Mean Velocity and Shear Stress Distributions in Turbulent Boundary Layers, Phys. Fluids, 16, 2068, 10.1063\u002F1.1694267\nDengel, 1990, An Experimental Investigation of an Incompressible Turbulent Boundary Layer in the Vicinity of Separation, J. 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Fluid Mech., 157, 305, 10.1017\u002FS0022112085002397\nSingh, 1983, Turbulent Kinetic Energy Balance in a Conical Diffuser, 21\nAzad, 1989, New Method of Obtaining Dissipation, Exp. Fluids, 7, 81, 10.1007\u002FBF00207299\nVirk, 1992, Corroboration of the New Method of Obtaining Dissipation in Wake Flow, AIAA J., 30, 982, 10.2514\u002F3.11017\nTuran, 1993, Comparison of the Zero-Wire Length Dissipation Technique with Spectral Corrections and the Effect of High Turbulence Intensity, Exp. Therm. Fluid Sci., 6, 292, 10.1016\u002F0894-1777(93)90070-Y\nBradshaw, 1967, The Response of a Constant Pressure Turbulent Boundary Layer to the Sudden Application of an Adverse Pressure Gradient, British ARC R&M, No. 3575\nSimpson, 1991, The Structure of the Near-Wall Region of Two-Dimensional Turbulent Separated Flow, Phil. Trans. R. Soc. London A, 336, 5, 10.1098\u002Frsta.1991.0063\nKuzan, 1989, Turbulent Flows with Incipient Separation over Solid Waves, Exp. 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