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  4. Optimization of complex thermal-fluid processes
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Optimization of complex thermal-fluid processes

Full metadata

Description

First, in a large-scale structure, a 3-D CFD model was built to simulate flow and temperature distributions. The flow patterns and temperature distributions are characterized and validated through spot measurements. The detailed understanding of them then allows for optimization of the HVAC configuration because identification of the problematic flow patterns and temperature mis-distributions leads to some corrective measures. Second, an appropriate form of the viscous dissipation term in the integral form of the conservation equation was considered, and the effects of momentum terms on the computed drop size in pressure-atomized sprays were examined. The Sauter mean diameter (SMD) calculated in this manner agrees well with experimental data of the drop velocities and sizes. Using the suggested equation with the revised treatment of liquid momentum setup, injection parameters can be directly input to the system of equations. Thus, this approach is capable of incorporating the effects of injection parameters for further considerations of the drop and velocity distributions under a wide range of spray geometry and injection conditions. Lastly, groundwater level estimation was investigated using compressed sensing (CS). To satisfy a general property of CS, a random measurement matrix was used, the groundwater network was constructed, and finally the l-1 optimization was run. Through several validation tests, correct estimation of groundwater level by CS was shown. Using this setup, decreasing trends in groundwater level in the southwestern US was shown. The suggested method is effective in that the total measurements of registered wells can be reduced down by approximately 42 %, sparse data can be visualized and a possible approach for groundwater management during extreme weather changes, e.g. in California, was demonstrated.

Date Created
2015
Contributors
  • Lee, Joon Young (Author)
  • Lee, Taewoo (Thesis advisor)
  • Huang, Huei-Ping (Committee member)
  • Lopez, Juan (Committee member)
  • Phelan, Patrick (Committee member)
  • Chen, Kangping (Committee member)
  • Arizona State University (Publisher)
Topical Subject
  • engineering
  • Mechanical Engineering
  • Industrial Engineering
  • Building Energy
  • Compressed Sensing
  • Computational Fluid Dynamics
  • Groundwater Estimation
  • Optimization of thermal-fluid processes
  • Spray atomization
  • Buildings--Energy consumption.
  • Buildings
  • Heat--Transmission.
  • Groundwater--Management.
Resource Type
Text
Genre
Doctoral Dissertation
Academic theses
Extent
xi, 176 pages : illustrations (some color), color maps
Language
eng
Copyright Statement
In Copyright
Reuse Permissions
All Rights Reserved
Primary Member of
ASU Electronic Theses and Dissertations
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.34775
Statement of Responsibility
by Joon Young Lee
Description Source
Viewed on August 25, 2015
Level of coding
full
Note
Partial requirement for: Ph. D., Arizona State University, 2015
Note type
thesis
Includes bibliographical references (pages 158-165)
Note type
bibliography
Field of study: Mechanical engineering
System Created
  • 2015-08-17 11:50:04
System Modified
  • 2021-08-30 01:27:53
  •     
  • 1 year 7 months ago
Additional Formats
  • OAI Dublin Core
  • MODS XML

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