Sustainable ammonia synthesis via thermochemical reaction cycle
Doctor of Philosophy === Department of Chemical Engineering === Peter H. Pfromm === Since its inception, the Haber-Bosch (HB) process for ammonia (NH3) synthesis has allowed for a significant increase in global food production as well as a simultaneous decrease in global hunger and malnutrition. Th...
Main Author: | |
---|---|
Language: | en_US |
Published: |
2018
|
Subjects: | |
Online Access: | http://hdl.handle.net/2097/38948 |
id |
ndltd-KSU-oai-krex.k-state.edu-2097-38948 |
---|---|
record_format |
oai_dc |
spelling |
ndltd-KSU-oai-krex.k-state.edu-2097-389482018-05-13T03:40:32Z Sustainable ammonia synthesis via thermochemical reaction cycle Heidlage, Michael Gregory Ammonia nitridation reduction thermochemical cycle Doctor of Philosophy Department of Chemical Engineering Peter H. Pfromm Since its inception, the Haber-Bosch (HB) process for ammonia (NH3) synthesis has allowed for a significant increase in global food production as well as a simultaneous decrease in global hunger and malnutrition. The HB process is estimated to be responsible for the subsistence of 40% of the world population as approximately 85% of the over 182 metric tons of NH3 produced in 2017 was used as fertilizer for crop production. The natural gas consumed (mostly to generate H2) represents approximately 2% of the global energy budget, while the CO2 produced is about 2.5% of all global fossil CO2 emissions. Approximately 40% of food consumed is essentially natural gas transformed by the HB process into agricultural products. However global food production will need to double due to expected increase in world population to 9.6 billion by 2050 and rising demand for protein among developing nations. A novel thermochemical reaction cycle for sustainable NH3 synthesis at atmospheric pressure is explored herein. Both thermochemical and kinetic rationales are discussed regarding choice of Mn as the cycled reactant. The energetic driving force for these reactions is conceptually derived from concentrated solar energy. Mn was reacted with N2 forming Mn-nitride, corrosion of Mn-nitride with steam at 500 °C formed MnO and NH3, and lastly MnO was reduced at 1150 °C in a 4 vol % CH4 – 96 vol % N2 stream to Mn-nitride closing the cycle. Optimum nitridation at 800 °C and 120 min produced a Mn6N2.58-rich Mn-nitride mixture containing 8.7 ± 0.9 wt. % nitrogen. NH3 yield was limited to 0.04 after 120 min during nitride corrosion but addition of a NaOH promotor improved NH3 yield to 0.54. Mn6N2.58 yield was 0.381 ± 0.083 after MnO reduction for 30 min with CO and H2 but no CO2 detected in the product. Mn-nitridation kinetics were investigated at temperatures between 600 and 900 °C for 10 and 44 μm reactant powder particle sizes. That equilibrium conversion decreased with increasing temperature was confirmed. Jander’s rate law, which assumes gaseous reactant diffusion through a solid product layer, described the experimental data reasonably well. The rate constants and initial rates were as much as an order of magnitude greater for the 10 μm Mn reactant particle size. Additionally the activation energy was found to be 44.1 kJ mol-1 less for the 10 μm reactant particle size. Reducing the particle size had a small but positive effect on Mn-nitridation kinetics. Further reducing particle size will likely have a greater impact. A review of relevant classical thermodynamics is discussed with special attention paid to open systems. Confidence issues regarding over-reliance on x-ray diffraction are considered with options suggested for mitigation. Opportunities for future work are assessed. 2018-05-07T21:42:34Z 2018-05-07T21:42:34Z 2018 August Dissertation http://hdl.handle.net/2097/38948 en_US |
collection |
NDLTD |
language |
en_US |
sources |
NDLTD |
topic |
Ammonia nitridation reduction thermochemical cycle |
spellingShingle |
Ammonia nitridation reduction thermochemical cycle Heidlage, Michael Gregory Sustainable ammonia synthesis via thermochemical reaction cycle |
description |
Doctor of Philosophy === Department of Chemical Engineering === Peter H. Pfromm === Since its inception, the Haber-Bosch (HB) process for ammonia (NH3) synthesis has allowed for a significant increase in global food production as well as a simultaneous decrease in global hunger and malnutrition. The HB process is estimated to be responsible for the subsistence of 40% of the world population as approximately 85% of the over 182 metric tons of NH3 produced in 2017 was used as fertilizer for crop production. The natural gas consumed (mostly to generate H2) represents approximately 2% of the global energy budget, while the CO2 produced is about 2.5% of all global fossil CO2 emissions. Approximately 40% of food consumed is essentially natural gas transformed by the HB process into agricultural products. However global food production will need to double due to expected increase in world population to 9.6 billion by 2050 and rising demand for protein among developing nations.
A novel thermochemical reaction cycle for sustainable NH3 synthesis at atmospheric pressure is explored herein. Both thermochemical and kinetic rationales are discussed regarding choice of Mn as the cycled reactant. The energetic driving force for these reactions is conceptually derived from concentrated solar energy.
Mn was reacted with N2 forming Mn-nitride, corrosion of Mn-nitride with steam at 500 °C formed MnO and NH3, and lastly MnO was reduced at 1150 °C in a 4 vol % CH4 – 96 vol % N2 stream to Mn-nitride closing the cycle. Optimum nitridation at 800 °C and 120 min produced a Mn6N2.58-rich Mn-nitride mixture containing 8.7 ± 0.9 wt. % nitrogen. NH3 yield was limited to 0.04 after 120 min during nitride corrosion but addition of a NaOH promotor improved NH3 yield to 0.54. Mn6N2.58 yield was 0.381 ± 0.083 after MnO reduction for 30 min with CO and H2 but no CO2 detected in the product.
Mn-nitridation kinetics were investigated at temperatures between 600 and 900 °C for 10 and 44 μm reactant powder particle sizes. That equilibrium conversion decreased with increasing temperature was confirmed. Jander’s rate law, which assumes gaseous reactant diffusion through a solid product layer, described the experimental data reasonably well. The rate constants and initial rates were as much as an order of magnitude greater for the 10 μm Mn reactant particle size. Additionally the activation energy was found to be 44.1 kJ mol-1 less for the 10 μm reactant particle size. Reducing the particle size had a small but positive effect on Mn-nitridation kinetics. Further reducing particle size will likely have a greater impact.
A review of relevant classical thermodynamics is discussed with special attention paid to open systems. Confidence issues regarding over-reliance on x-ray diffraction are considered with options suggested for mitigation. Opportunities for future work are assessed. |
author |
Heidlage, Michael Gregory |
author_facet |
Heidlage, Michael Gregory |
author_sort |
Heidlage, Michael Gregory |
title |
Sustainable ammonia synthesis via thermochemical reaction cycle |
title_short |
Sustainable ammonia synthesis via thermochemical reaction cycle |
title_full |
Sustainable ammonia synthesis via thermochemical reaction cycle |
title_fullStr |
Sustainable ammonia synthesis via thermochemical reaction cycle |
title_full_unstemmed |
Sustainable ammonia synthesis via thermochemical reaction cycle |
title_sort |
sustainable ammonia synthesis via thermochemical reaction cycle |
publishDate |
2018 |
url |
http://hdl.handle.net/2097/38948 |
work_keys_str_mv |
AT heidlagemichaelgregory sustainableammoniasynthesisviathermochemicalreactioncycle |
_version_ |
1718637606096338944 |