Microwave heating of a coating on a temperature-sensitive substrate
Microwave heating has been considered for the heating of a coating in contact with a temperature-sensitive substrate. A methodology was developed to conduct a microwave heating feasibility study for a candidate system. The study consisted of dielectric property determination, development of heat...
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ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-416022021-11-17T05:37:44Z Microwave heating of a coating on a temperature-sensitive substrate Skinner, Daniel B. Mechanical Engineering Stern, Curtis H. Scott, Elaine P. Vick, Brian L. LD5655.V855 1995.S555 Microwave heating has been considered for the heating of a coating in contact with a temperature-sensitive substrate. A methodology was developed to conduct a microwave heating feasibility study for a candidate system. The study consisted of dielectric property determination, development of heat transfer models to determine the heat generation rates necessary to achieve a desired temperature distribution, calculation of the required electric field strength given the dielectric properties and heat generation rates, and examination of whether the microwave heating could be performed with available equipment. Sol-gel processing of a 1Microwave heating has been considered for the heating of a coating in contact with a temperature-sensitive substrate. A methodology was developed to conduct a microwave heating feasibility study for a candidate system. The study consisted of dielectric property determination, development of heat transfer models to determine the heat generation rates necessary to achieve a desired temperature distribution, calculation of the required electric field strength given the dielectric properties and heat generation rates, and examination of whether the microwave heating could be performed with available equipment. Sol-gel processing of a 1µm-thick boehmite coating on a non-woven polypropylene substrate was chosen as the candidate system. It was desired to selectively heat the boehmite to 2500 C without damaging the polypropylene, which degrades at 1500 C. Dielectric measurements indicated that the boehmite could be heated to 2500 C using microwave energy. Microwave heating of the system was then modeled using three techniques: an approximate analytical solution based on Composite Green's Functions, a finite difference solution, and an approximate lumped capacitance solution. It was determined that the heat generation rates necessary to produce the desired temperature distribution would require field strengths beyond practical limitations for the specific boehmite-polypropylene system considered. -thick boehmite coating on a non-woven polypropylene substrate was chosen as the candidate system. It was desired to selectively heat the boehmite to 2500 C without damaging the polypropylene, which degrades at 1500 C. Dielectric measurements indicated that the boehmite could be heated to 2500 C using microwave energy. Microwave heating of the system was then modeled using three techniques: an approximate analytical solution based on Composite Green's Functions, a finite difference solution, and an approximate lumped capacitance solution. It was determined that the heat generation rates necessary to produce the desired temperature distribution would require field strengths beyond practical limitations for the specific boehmite-polypropylene system considered. Master of Science 2014-03-14T21:31:40Z 2014-03-14T21:31:40Z 1995 2009-03-14 2009-03-14 2009-03-14 Thesis Text etd-03142009-040544 http://hdl.handle.net/10919/41602 http://scholar.lib.vt.edu/theses/available/etd-03142009-040544/ en OCLC# 34598799 LD5655.V855_1995.S555.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ x, 139 leaves BTD application/pdf application/pdf Virginia Tech |
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LD5655.V855 1995.S555 Skinner, Daniel B. Microwave heating of a coating on a temperature-sensitive substrate |
description |
Microwave heating has been considered for the heating of a coating in
contact with a temperature-sensitive substrate. A methodology was
developed to conduct a microwave heating feasibility study for a candidate
system. The study consisted of dielectric property determination,
development of heat transfer models to determine the heat generation rates
necessary to achieve a desired temperature distribution, calculation of the
required electric field strength given the dielectric properties and heat
generation rates, and examination of whether the microwave heating could
be performed with available equipment. Sol-gel processing of a 1Microwave heating has been considered for the heating of a coating in
contact with a temperature-sensitive substrate. A methodology was
developed to conduct a microwave heating feasibility study for a candidate
system. The study consisted of dielectric property determination,
development of heat transfer models to determine the heat generation rates
necessary to achieve a desired temperature distribution, calculation of the
required electric field strength given the dielectric properties and heat
generation rates, and examination of whether the microwave heating could
be performed with available equipment. Sol-gel processing of a 1µm-thick
boehmite coating on a non-woven polypropylene substrate was chosen as the
candidate system. It was desired to selectively heat the boehmite to 2500 C
without damaging the polypropylene, which degrades at 1500 C. Dielectric
measurements indicated that the boehmite could be heated to 2500 C using
microwave energy. Microwave heating of the system was then modeled
using three techniques: an approximate analytical solution based on
Composite Green's Functions, a finite difference solution, and an
approximate lumped capacitance solution. It was determined that the heat
generation rates necessary to produce the desired temperature distribution
would require field strengths beyond practical limitations for the specific
boehmite-polypropylene system considered. -thick
boehmite coating on a non-woven polypropylene substrate was chosen as the
candidate system. It was desired to selectively heat the boehmite to 2500 C
without damaging the polypropylene, which degrades at 1500 C. Dielectric
measurements indicated that the boehmite could be heated to 2500 C using
microwave energy. Microwave heating of the system was then modeled
using three techniques: an approximate analytical solution based on
Composite Green's Functions, a finite difference solution, and an
approximate lumped capacitance solution. It was determined that the heat
generation rates necessary to produce the desired temperature distribution
would require field strengths beyond practical limitations for the specific
boehmite-polypropylene system considered. === Master of Science |
author2 |
Mechanical Engineering |
author_facet |
Mechanical Engineering Skinner, Daniel B. |
author |
Skinner, Daniel B. |
author_sort |
Skinner, Daniel B. |
title |
Microwave heating of a coating on a temperature-sensitive substrate |
title_short |
Microwave heating of a coating on a temperature-sensitive substrate |
title_full |
Microwave heating of a coating on a temperature-sensitive substrate |
title_fullStr |
Microwave heating of a coating on a temperature-sensitive substrate |
title_full_unstemmed |
Microwave heating of a coating on a temperature-sensitive substrate |
title_sort |
microwave heating of a coating on a temperature-sensitive substrate |
publisher |
Virginia Tech |
publishDate |
2014 |
url |
http://hdl.handle.net/10919/41602 http://scholar.lib.vt.edu/theses/available/etd-03142009-040544/ |
work_keys_str_mv |
AT skinnerdanielb microwaveheatingofacoatingonatemperaturesensitivesubstrate |
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