Full metadata
Title
Method for generation of pendant drops through localized condensation for contact angle measurements in conditions deviating from standard environment
Description
Contact angle goniometer is one of the most common tools in surfaces science. Since the introduction of this instrument by Fox and Zisman1 in 1950, dispensing the liquid using a syringe has generated pendant drops. However, using such approach at conditions significantly deviating from standard pressure and temperature would require an elaborate and costly fluidic system. To this end, this thesis work introduces alternative design of a goniometer capable of contact angle measurement at wide pressure and temperature range. In this design, pendant droplets are not dispensed through a pipette but are generated through localized condensation on a tip of a preferentially cooled small metal wire encapsulated within a thick thermal insulator layer. This thesis work covers experimental study of the relation between the geometry of the condensation-based pendant drop generator geometry and subcooling, and growth rate of drops of representative high (water) and low (pentane) surface tension liquids. Several routes that the generated pendant drops can be used to measure static and dynamic contact angles of the two liquids on common substrates well as nanoengineered superhydrophobic and omniphobic surfaces are demonstrated.
Date Created
2015
Contributors
- Mohan, Ajay Roopesh (Author)
- Rykaczewski, Konrad (Thesis advisor)
- Herrmann, Marcus (Committee member)
- Wang, Robert (Committee member)
- Arizona State University (Publisher)
Topical Subject
Resource Type
Extent
ix, 32 pages : illustrations (some color)
Language
eng
Copyright Statement
In Copyright
Primary Member of
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.36476
Statement of Responsibility
by Ajay Roopesh Mohan
Description Source
Viewed on March 8, 2016
Level of coding
full
Note
thesis
Partial requirement for: M.S., Arizona State University, 2015
bibliography
Includes bibliographical references (pages 30-32)
Field of study: Mechanical engineering
System Created
- 2016-02-01 07:06:47
System Modified
- 2021-08-30 01:25:32
- 3 years 2 months ago
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