Micro-particle indoor resuspension under periodic airflows : a numerical-analytical study and experimentations -

dc.contributor.authorKazzaz, Mohamad Bassel Adnan
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.facultyFaculty of Engineering and Architecture
dc.contributor.institutionAmerican University of Beirut
dc.date2016
dc.date.accessioned2017-08-30T14:28:48Z
dc.date.available2017-08-30T14:28:48Z
dc.date.issued2016
dc.date.submitted2016
dc.descriptionThesis. M.E. American University of Beirut. Department of Mechanical Engineering, 2016. ET:6391
dc.descriptionAdvisor : Prof. Kamel Abou Ghali, PhD, Professor, Mechanical Engineering ; Co-Advisor : Prof. Nesreen Ghaddar, PhD, Professor, Mechanical Engineering ; Member of Committee : Prof. Mohammad Ahmad, PhD, Professor, Chemical and Petroleum Engineering
dc.descriptionIncludes bibliographical references (leaves 39-42)
dc.description.abstractAs particles may pose a threat to people during breathing close to surfaces, understanding and identifying the mechanisms by which these particles detach help in taking preventive measures during cleaning and dusting processes of surfaces, and in the selection and operation of ventilation systems when particles are airborne. This work presents a numerical–analytical coupled model to examine resuspension under the effect of oscillatory flows, taking into account the probabilistic approach of resuspension occurrence due to turbulent bursts for different particle diameters and surface roughness. The results of the model were validated with experiments conducted for flows alternating between constant blowing and suction for different flow velocities and frequencies. A parametric study using the validated model was conducted to study the particle detachment phenomenon under sinusoidal flows similar to human breathing flows under a variety of respiration velocities and rates, particle diameters and surfaces. Results showed that micro-particles of relatively high diameters pose a considerable threat over surfaces in indoor environment. The occurrence of resuspension is highly influenced by surface type and roughness. Parquet flooring was found to cause the resuspension of approximately 98percent of 80 micrometer lead particles compared to 64.5percent of the same particles over marble flooring at certain locations under the effect of normal breathing. Therefore, besides dust removal methods, the choice of flooring material is an essential preventive measure to reduce indoor particle resuspension.
dc.format.extent1 online resource (xii, 42 leaves) : illustrations (some color)
dc.identifier.otherb19012391
dc.identifier.urihttp://hdl.handle.net/10938/11133
dc.language.isoen
dc.relation.ispartofTheses, Dissertations, and Projects
dc.subject.classificationET:006480
dc.subject.lcshParticles.
dc.subject.lcshAir flow.
dc.subject.lcshComputational fluid dynamics.
dc.subject.lcshRespiration.
dc.subject.lcshParticle methods (Numerical analysis)
dc.titleMicro-particle indoor resuspension under periodic airflows : a numerical-analytical study and experimentations -
dc.typeThesis

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