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040 _aOCoLC-P
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020 _a135101921X
020 _a9781351019217
_q(electronic bk.)
020 _a9781351019224
_q(electronic bk.)
020 _a1351019228
_q(electronic bk.)
020 _a9781351019194
_q(electronic bk. : Mobipocket)
020 _a1351019198
_q(electronic bk. : Mobipocket)
020 _a9781351019200
_q(electronic bk. : EPUB)
020 _a1351019201
_q(electronic bk. : EPUB)
020 _z1138497266
020 _z9781138497269
035 _a(OCoLC)1109815284
_z(OCoLC)1109792103
035 _a(OCoLC-P)1109815284
050 4 _aTP363
_b.H387 2020eb
072 7 _aSCI
_x013060
_2bisacsh
072 7 _aSCI
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072 7 _aTEC
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072 7 _aTDCB
_2bicssc
082 0 4 _a621.402/2
_223
245 0 0 _aHeat and mass transfer in drying of porous media /
_ceditors, Peng Xu, Agus P. Sasmito, and Arun S. Mujumdar.
264 1 _aBoca Raton, FL :
_bCRC Press, Taylor & Francis,
_c[2020]
300 _a1 online resource.
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
490 1 _aAdvances in drying science and technology
505 0 _aCover; Half Title; Series Page; Title Page; Copyright Page; Dedication; Contents; Preface; Contributors; Editors; Chapter 1: Heat and Mass Transfer Phenomena in Porous Media -- Application to Drying; CONTENTS; 1.1. Introduction; 1.2. Drying Models; 1.2.1. Liquid Diffusion Model; 1.2.2. Variations of the Diffusion Model; 1.3. Porous Media Model; 1.3.1. Single-Phase Flow through Porous Media; 1.3.2. Multiphase Flow through Porous Media; 1.3.2.1. Single-Fluid Model; 1.3.2.2. Multi-Fluid Model; 1.3.3. Conjugate Models; 1.3.3.1. Convective Drying; 1.3.3.2. Microwave Drying
505 8 _a1.3.3.3. Electrohydrodynamic Drying1.4. Concluding Remarks; References; Chapter 2: Diffusivity in Drying of Porous Media; CONTENTS; 2.1. Introduction to Drying Technology and Porous Media; 2.1.1. Drying Technology; 2.1.1.1. Natural Sun Drying and Solar Drying; 2.1.1.2. Hot-Air Drying; 2.1.1.3. Osmotic Dehydration; 2.1.1.4. Freeze Drying; 2.1.1.5. Hybrid Drying/Combined Drying; 2.1.2. Drying of Porous Media; 2.1.2.1. Drying Porous Media (Fruits); 2.1.2.2. Drying of Porous Media (Coal); 2.1.2.3. Drying of Porous Media (Foods and Vegetables); 2.1.2.4. Drying of Porous Media (Woods)
505 8 _a2.1.2.5. Drying of Porous Media (Ceramic)2.2. Diffusion during Drying of Porous Media; 2.2.1. Fick's First and Second Law; 2.2.2. Moisture and Thermal Diffusion; 2.3. Diffusion Models in Drying of Porous Media; 2.4. Conclusions; References; Chapter 3: Multiscale Modeling of Porous Media; CONTENTS; 3.1. Introduction; 3.2. Fractal Models for Heat and Mass Transfer; 3.2.1. Heat Transfer; 3.2.2. Gas Diffusion; 3.2.3. Fluid Flow; 3.3. Fractal in Drying Porous Media; 3.3.1. Microstructure of Porous Media; 3.3.2. Macroscopic Morphology; 3.3.3. Fractal Model for Drying; 3.4. Concluding Remarks
505 8 _aAcknowledgementsReferences; Chapter 4: Heat and Mass Transfer Simulation of Intensification Drying Technologies: Current Status and Future Trends; CONTENTS; 4.1. Introduction: Background and Driving Forces; 4.2. Numerical Simulation is a Powerful Tool; 4.3. Development and Application of Numerical Simulation in Intensification Drying Technologies; 4.3.1. Air-impingement Drying; 4.3.1.1. Numerical Simulation Methods in Impinging Jets; 4.3.1.2. The Numerical Simulation of Impingement Configuration to Intensify Drying; 4.3.1.3. The Numerical Simulation of the Airflow Pattern to Intensify Drying
505 8 _a4.3.2. Freeze Drying4.3.2.1. The Development of a Numerical Simulation of Freeze Drying; 4.3.2.2. The Numerical Simulation of Technological Parameters to Intensify Drying; 4.3.3. Radio Frequency Drying; 4.3.3.1. Numerical Simulation Development of Radio Frequency Heating; 4.3.3.2. Application of Numerical Simulation to Enhance Uniformity Radio Frequency Heating; 4.3.3.3. Numerical Simulation of the Combination of Radio Frequency and Conventional Drying; 4.3.3.4. Numerical Simulation of Radio Frequency/Vacuum Drying; 4.3.4. Spray Drying
500 _a4.3.4.1. The Numerical Simulation of Equipment Design for Improving Droplets Movement
520 _aHeat and Mass Transfer in Drying of Porous Media offers a comprehensive review of heat and mass transfer phenomena and mechanisms in drying of porous materials. It covers pore-scale and macro-scale models, includes various drying technologies, and discusses the drying dynamics of fibrous porous material, colloidal porous media and size-distributed particle system. Providing guidelines for mathematical modeling and design as well as optimization of drying of porous material, this reference offers useful information for researchers and students as well as engineers in drying technology, food processes, applied energy, mechanical, and chemical engineering.
588 _aOCLC-licensed vendor bibliographic record.
650 0 _aDrying.
650 0 _aMass transfer.
650 0 _aHeat
_xTransmission.
650 7 _aSCIENCE / Chemistry / Industrial & Technical
_2bisacsh
650 7 _aSCIENCE / Mechanics / Dynamics / Thermodynamics
_2bisacsh
650 7 _aTECHNOLOGY / Engineering / Chemical & Biochemical
_2bisacsh
700 1 _aXu, Peng,
_d1973-
_eeditor.
700 1 _aSasmito, Agus P.,
_eeditor.
700 1 _aMujumdar, Arun S.,
_eeditor.
856 4 0 _3Read Online
_uhttps://www.taylorfrancis.com/books/9781351019224
856 4 2 _3OCLC metadata license agreement
_uhttp://www.oclc.org/content/dam/oclc/forms/terms/vbrl-201703.pdf
942 _2lcc
_cEBK
999 _c18185
_d18185