Improving efficiency of ID thermopower wave devices and studying 2D reaction waves

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 124-127). === With growing energy consumption, current research in the field is focused on improving and developin...

Full description

Bibliographic Details
Main Author: Mahajan, Sayalee G. (Sayalee Girish)
Other Authors: Michael S. Strano.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2016
Subjects:
Online Access:http://hdl.handle.net/1721.1/101509
id ndltd-MIT-oai-dspace.mit.edu-1721.1-101509
record_format oai_dc
spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-1015092019-05-02T16:12:54Z Improving efficiency of ID thermopower wave devices and studying 2D reaction waves Mahajan, Sayalee G. (Sayalee Girish) Michael S. Strano. Massachusetts Institute of Technology. Department of Chemical Engineering. Massachusetts Institute of Technology. Department of Chemical Engineering. Chemical Engineering. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015. Cataloged from PDF version of thesis. Includes bibliographical references (pages 124-127). With growing energy consumption, current research in the field is focused on improving and developing alternatives for energy storage and conversion. Factors such as efficiency of energy conversion, usability of this converted form of energy, power density, energy density etc. help us in determining the right energy source or conversion technology for any specific application. The main aim of this thesis was to study self-propagating reaction waves as a means of converting chemical energy into electrical energy. We carried out numerical simulations to study these self-propagating reaction wave systems and their heat transfer properties. Our analysis shows that for certain specific system heat transfer properties, self-propagating reaction waves can sometimes lead to superadiabatic temperatures, which are temperatures higher than the predicted adiabatic reaction temperature. Having energy available at higher temperature has advantages in heat harvesting applications such as thermoelectricity and thermophotovoltaics. We calculated the improvement in efficiency of a modified thermophotovoltaics setup, when the input is a reaction wave, operating under superadiabatic conditions. Experimentally, we studied these self-propagating reaction waves by launching I D thermopower waves. We demonstrated improved chemical-to-electrical conversion efficiency of these devices (from about 10-⁴ % to 10-² %) by operating with newer fuels such as sodium azide and sucrose with potassium nitrate on single-walled carbon nanotube-based thermal conduits. The net efficiency of operation of the device was also improved to up to 1% by using external thermoelectric harvesters to capture the heat energy lost via convection and radiation. We proposed a model combining the ID reaction heat and mass balance equations with the theory of excess thermopower to predict the output voltage profiles of thermopower wave devices and extract useful data from the voltage plots obtained experimentally. This model allows us to quantify the impact of the device-to-device variation of the fuel and thermal conduit properties, and can guide us to a better choice of fuel-thermal conduit pairs to improve the efficiency of operation. Finally, we experimentally studied 2D reaction waves. These waves were launched with a nitrocellulose fuel layer atop an aluminum foil thermal conduit. A wave front characteristic, the shape of these wave fronts, was studied as a function of heat loss. Energy released by these reactions was again harvested using external thermoelectrics to convert heat energy into electricity. We demonstrated that such a setup of 2D reaction waves can be used to illuminate a light-emitting diode (LED). by Sayalee G. Mahajan. Ph. D. 2016-03-03T21:05:43Z 2016-03-03T21:05:43Z 2015 2015 Thesis http://hdl.handle.net/1721.1/101509 939678777 eng M.I.T. theses are protected by copyright. They may be viewed from this source for any purpose, but reproduction or distribution in any format is prohibited without written permission. See provided URL for inquiries about permission. http://dspace.mit.edu/handle/1721.1/7582 127 pages application/pdf Massachusetts Institute of Technology
collection NDLTD
language English
format Others
sources NDLTD
topic Chemical Engineering.
spellingShingle Chemical Engineering.
Mahajan, Sayalee G. (Sayalee Girish)
Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Chemical Engineering, 2015. === Cataloged from PDF version of thesis. === Includes bibliographical references (pages 124-127). === With growing energy consumption, current research in the field is focused on improving and developing alternatives for energy storage and conversion. Factors such as efficiency of energy conversion, usability of this converted form of energy, power density, energy density etc. help us in determining the right energy source or conversion technology for any specific application. The main aim of this thesis was to study self-propagating reaction waves as a means of converting chemical energy into electrical energy. We carried out numerical simulations to study these self-propagating reaction wave systems and their heat transfer properties. Our analysis shows that for certain specific system heat transfer properties, self-propagating reaction waves can sometimes lead to superadiabatic temperatures, which are temperatures higher than the predicted adiabatic reaction temperature. Having energy available at higher temperature has advantages in heat harvesting applications such as thermoelectricity and thermophotovoltaics. We calculated the improvement in efficiency of a modified thermophotovoltaics setup, when the input is a reaction wave, operating under superadiabatic conditions. Experimentally, we studied these self-propagating reaction waves by launching I D thermopower waves. We demonstrated improved chemical-to-electrical conversion efficiency of these devices (from about 10-⁴ % to 10-² %) by operating with newer fuels such as sodium azide and sucrose with potassium nitrate on single-walled carbon nanotube-based thermal conduits. The net efficiency of operation of the device was also improved to up to 1% by using external thermoelectric harvesters to capture the heat energy lost via convection and radiation. We proposed a model combining the ID reaction heat and mass balance equations with the theory of excess thermopower to predict the output voltage profiles of thermopower wave devices and extract useful data from the voltage plots obtained experimentally. This model allows us to quantify the impact of the device-to-device variation of the fuel and thermal conduit properties, and can guide us to a better choice of fuel-thermal conduit pairs to improve the efficiency of operation. Finally, we experimentally studied 2D reaction waves. These waves were launched with a nitrocellulose fuel layer atop an aluminum foil thermal conduit. A wave front characteristic, the shape of these wave fronts, was studied as a function of heat loss. Energy released by these reactions was again harvested using external thermoelectrics to convert heat energy into electricity. We demonstrated that such a setup of 2D reaction waves can be used to illuminate a light-emitting diode (LED). === by Sayalee G. Mahajan. === Ph. D.
author2 Michael S. Strano.
author_facet Michael S. Strano.
Mahajan, Sayalee G. (Sayalee Girish)
author Mahajan, Sayalee G. (Sayalee Girish)
author_sort Mahajan, Sayalee G. (Sayalee Girish)
title Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
title_short Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
title_full Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
title_fullStr Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
title_full_unstemmed Improving efficiency of ID thermopower wave devices and studying 2D reaction waves
title_sort improving efficiency of id thermopower wave devices and studying 2d reaction waves
publisher Massachusetts Institute of Technology
publishDate 2016
url http://hdl.handle.net/1721.1/101509
work_keys_str_mv AT mahajansayaleegsayaleegirish improvingefficiencyofidthermopowerwavedevicesandstudying2dreactionwaves
_version_ 1719036148722958336