Modeling and Simulation of Sono-processes provides an overview of the mathematical modeling and numerical simulation as applied to sono-process-related phenomena, from the microscopic to the macroscopic scale, collecting information on this topic into one dedicated resource for the first time. It covers both fundamental and semi-empirical approaches and includes both physical and chemical effects.Single acoustic cavitation bubble and bubble population-related aspects are modeled mathematically, and numerical simulation procedures and examples are presented. In addition, the procedure involving semi-empirical modeling of sonochemical activity and sonochemical reactors is demonstrated and ultrasound assisted processes (hybrid processes) are demonstrated including several case studies.Modeling and Simulation of Sono-processes is written primarily for advanced graduates or early career researchers in physics, physical chemistry or mathematics who want to use mathematical modeling and numerical simulation of aspects related to acoustic cavitation bubble, bubble population, sonochemistry, sonochemical reactors and ultrasound-assisted processes.
- Uses an evolutive approach to build understanding of scale (microscopic to macroscopic) of models
- Clear hypotheses will be advanced with justifications and guidelines to select the appropriate assumptions according to the studied case and the objective of the modeling procedure
- Resolution methods and simulation conditions are presented in each chapter to offer a reference for reproducible results
- Special attention is given to semi-empirical approaches to handle complex phenomenon accordingly in ultrasound-assisted processes, offering a reliable method to approach mathematically apparent effects of sonication
- Metrics are presented for the assessment of the efficiency of sonication (alone or in hybrid processes) according to the studied case and the intended effect
Sprache
Verlagsort
Dateigröße
ISBN-13
978-0-443-23652-5 (9780443236525)
Schweitzer Klassifikation
Part I: Introduction to mathematical modeling and simulation of sono-processes1. Fundamentals of acoustic cavitation, ultrasound-assisted processes, and sonochemistry2. Basics and principles of fundamental and semiempirical modeling and simulation of sono-processesPart II: Fundamental modeling of sono-processing: from the single bubble to bubble population3. Acoustic wave propagation in liquid medium and damping mechanisms: modeling and simulation4. Acoustic streaming: modeling and simulation5. Nucleation of single acoustic cavitation bubble: modeling and simulation6. Oscillation of single acoustic cavitation bubble: modeling and simulation7. Cavitation bubble collapse dynamics near various boundaries based on Kelvin impulse theory8. Thermodynamics of single acoustic cavitation bubble: modeling and simulation9. Microstreaming from acoustic cavitation bubble: modeling and simulation10. Shockwave from acoustic cavitation bubble: modeling and simulation11. Microjet from acoustic cavitation bubble: modeling and simulation12. Sonochemistry from acoustic cavitation bubble: modeling and simulation13. Sonoluminescence from acoustic cavitation bubble: modeling and simulation14. Acoustic bubble population: modeling and simulation of the number density15. Acoustic bubble cluster: modeling and simulation of dynamics, interaction, and coalescencePart III: Semi-empirical modeling of sono-processing: from experiments to mathematical models16. Semiempirical modeling of acoustic bubble population17. Acoustic bubble population: modeling and simulation of size distribution18. Semiempirical modeling of sonochemical reactors19. Semiempirical modeling of ultrasound-assisted separation20. Semiempirical modeling of ultrasound-assisted synthesis21. Sono-processes: quantitative metrics for efficiency evaluation