Day 2 | |||||
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Time | Paper ID | Title / Authors | Keywords | Topic code | Ack. number |
Chemical Industry Technology Forum <Creation and Principle of Nanofluid Science> | |||||
(9:00–10:20) (Chair: Adschiri M.) | |||||
V201 | Preparation of Copper Fine Particles for Low Temperature Sintering and Sintering Proecss | 銅微粒子 ナノフルイド 低温焼結 | F-1 | 66 | |
V202 | Preparation of Ag nanoparticles based on polyol process and application | Ag nanoparticles preparation polyol process | F-1 | 606 | |
V203 | Liquid Phase SYnthesis of Transparent Conductive Oxide Nanoparticles with Low Resistivity and their Application to Nano-fluids | Transparent Conductive Oxide Nanoparticle Liquid Phase Synthesis | F-1 | 582 | |
V204 | Supercritical hydrothermal synthesis of organic modified nanoparticles by flow reactors | supercritical water flow reactor nanoparticles | F-1 | 690 | |
(10:20–12:00) (Chair: Muramatsu A.) | |||||
V205 | Development of Nanofluids with Ionic Liquids | nanoparticle ionic liquid interface | F-1 | 93 | |
V206 | Surface modification toward fabrication of dense suspensions with various combinations of particle species and solvents | Nanoparticle Surface modification Suspension stability | F-1 | 625 | |
V207 | Numerical modeling of self-propelled particles:Pseudo-phonon like behavior of collective motion | Squirmer Model dynamic structure factor collective motion | F-1 | 611 | |
V208 | Numerical investigation of the relationship between thermal fluctuation and flow field by using Landau-Lifshitz Navier Stokes equation | Thermal fluctuation Landau-Lifshitz Navier Stokes equation Fluid dynamics | F-1 | 388 | |
V209 | Development of a continuous process for floccurated nanoparticle re-dispersion under high shear stress | Nanoparticle re-dispersion High shear stress Floccurated nanoparticle | F-1 | 276 | |
(13:00–14:20) (Chair: Takami S.) | |||||
V213 | Acid-base interaction between particles and polymers and dipsersion behavior in organic solvents | F-1 | 910 | ||
V214 | Effect of Solvent on Classification Property of ZnS Nanoparticles by Size-Selective Precipitation Method | Size-selective precipitation Zinc Sulfide nanoparticles Particle size distribution | F-1 | 497 | |
V215 | Size-selective separation of particles in suspensions with ultrasonic atomization | ultrasonic atomization suspension particle separation | F-1 | 703 | |
V216 | Order Formation of Colloidal Particles by Convective Self-Assembly | Convective Self-Assembly Meniscus Patterned Structures | F-1 | 516 | |
(14:20–16:00) (Chair: Kanie K.) | |||||
V217 | Study of Influential Factors in Formation of Silver Nanowire Percolation Network Fablicated by Coating Processes. | Silver Nanowire Transparent Conductive Film Coating Process | F-1 | 898 | |
V218 | Stress oscillation mode in particle-polymer suspensions | suspension shear stress oscillation | F-1 | 393 | |
V219 | Properties and application of nanofluid comprising surface-modified metal oxide nanoparticles | surface modification metal oxide nanoparticles viscosity | F-1 | 542 | |
V220 | Formation of organic nano particle in liquid-droplet flow by supercritical anti-solvent method | Supercritical SEDS Nanoparticle | F-1 | 637 | |
V221 | Development of high-strength resin material by the use of talc with mechanochemical surface treatment | Surface modification high strength resin mechanochemical | F-1 | 706 | |
(16:00–17:00) (Chair: Adschiri M., Muramatsu A.) | |||||
V222 | Expectations of nano-fluid in the coating process by supercritical carbon dioxide | nano-fluid supercritical carbon dioxide the coating process | F-1 | 696 | |
V223 | Technical issue and expectations of nano-fluid in the paint application | hard coating market | F-1 | 822 | |
General discussion | |||||
Day 3 | |||||
Time | Paper ID | Title / Authors | Keywords | Topic code | Ack. number |
Supercritical fluid | |||||
(9:20–10:20) (Chair: Shimanouchi T.) | |||||
V302 | Photocatalytic reduction of CO2 in supercritical water/CO2 binary mixture | photocatalysis CO2 reduction supercritical fluid | 8-d | 267 | |
V303 | High-pressure hydrogen production from formic acid in aqueous solution | Hydrogen Formic acid Catalyst | 8-d | 494 | |
V304 | Hydrolysis of N-substituted amides in hot compressed water using solid catalyst | Hot compressed water Solid catalyst N-substituted amide | 8-d | 415 | |
Break | |||||
(10:40–12:00) (Chair: Iguchi M.) | |||||
V306 | Behavior of supercritical water oxidation and effect of nozzle in a large reactor | Supercritical water oxidation Nozzle pilot plant | 8-f | 867 | |
V307 | Diverse reactivity of 5-hydroxymethylfurfural (HMF) using Pd catalyst in supercritical carbon dioxide | supercritical CO2 Pd catalyst HMF | 8-f | 189 | |
V308 | Reaction behavior of various organic compounds under hydrothermal conditions | 水熱反応場 有機化合物 分子変換 | 8-f | 820 | |
V309 | Hydrothermal Liquefaction of Malaysian Oil Palm Biomass | hydrothermal liquefaction palm biomass bio-oil | 8-f | 776 | |
(13:20–15:00) (Chair: Suzuki S., Kihara S.) | |||||
V314 | Measurement of adsorption isotherms for metal precursors on mesoporous silica for preparation of supported catalysts by supercritical impregnation method | Supercritical CO2 Mesoporous Silica Adsorption Measurement | 8-b | 280 | |
V315 | Supercritical Fluid Deposition of Conformal Bi4Ti3O12 for Ferroelectric Memories | supercritical fluid deposition conformal Bi4Ti3O12 | 8-e | 190 | |
V316 | Supercritical hydrothermal synthesis of Ba1-xSrxZrO3 (0≤x≤1) | Supercritical water Hydrothermal synthesis Perovskite structure | 8-e | 385 | |
V317 | Synthsis of GaN photocatalyst by ammonothermal method | GaN photocatalyst ammonothermal | 8-e | 650 | |
V318 | Supercritical carbon dioxide-assisted metal nanoparticle loading to metal-organic frameworks | Supercritical CO2 metal organic framework Metal nanoparticle | 8-e | 343 | |
Break | |||||
(15:20–16:40) (Chair: Kong Chang_Yi) | |||||
V320 | Extraction of essential oil from citrus residue without drying and cell-disruption by liquefied dimethyl ether | liquefied dimethyl ether citrus residue dewatering | 8-c | 316 | |
V321 | Development of CNT/Polymer Nanocomposite Using Supercritical Fluids and Shear Fields | Polymer nanocomposite High pressure mixing carbon nanotube | 8-e | 401 | |
V322 | Effect of the chemical structures of dispersants on the shapes of PMMA particles synthesized in supercritical carbon dioxide | PMMA dispersion polymerization supercritical carbon dioxide | 8-e | 382 | |
V323 | Production of thin films for organic devices by rapid expansion of supercritical solutions (RESS) using carbon dioxide and their performance evaluation | Supercritical carbon dioxide Thin films RESS | 8-e | 895 |