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Endothermic Gas Generation: Energy Production from Waste Heat

M. L. Burungale

Abstract


This paper looks at the common sense and plausibility of age of power utilizing thermoelectric generators, from the overabundance heat present during the creation of endothermic gas. The creation of endothermic gas addresses one of the biggest, yet vital misuses of nuclear power on the planet. Saddling energy utilizing thermoelectric generators during this interaction gives a triple advantage. Right off the bat, the nuclear power is changed over into a striking measure of electric energy. Second, converting this energy expedites the gas's cooling, which is necessary for producing the required gas. As a result, less coolant will be used. Both of these advantages contribute to significant strain reduction on our environment's resources. Lastly, employing this strategy contributes to a sizable investment return. This paper provides additional explanations for the concept, implementation, calculations, and benefits.


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References


Yan, J., Liao, X., Yan, D., & Chen, Y. (2018). Review of micro thermoelectric generator. Journal of Microelectromechanical Systems, 27(1), 1-18.

Zhang, X., & Zhao, L. D. (2015). Thermoelectric materials: Energy conversion between heat and electricity. Journal of Materiomics, 1(2), 92-105.

Uchida, K. I., Takahashi, S., Harii, K., Ieda, J., Koshibae, W., Ando, K., ... & Saitoh, E. (2008). Observation of the spin Seebeck effect. nature, 455(7214), 778-781.

Rocha, R. P., Carmo, J. P., Goncalves, L. M., & Correia, J. H. (2009, November). An energy scavenging microsystem based on thermoelectricity for battery life extension in laptops. In 2009 35th Annual Conference of IEEE Industrial Electronics (pp. 1813-1816). IEEE.

Paradiso, J. A., & Starner, T. (2005). Energy scavenging for mobile and wireless electronics. IEEE Pervasive computing, 4(1), 18-27.

Lv, S., He, W., Jiang, Q., Hu, Z., Liu, X., Chen, H., & Liu, M. (2018). Study of different heat exchange technologies influence on the performance of thermoelectric generators. Energy Conversion and Management, 156, 167-177.

Chen, J., Li, K., Liu, C., Li, M., Lv, Y., Jia, L., & Jiang, S. (2017). Enhanced efficiency of thermoelectric generator by optimizing mechanical and electrical structures. Energies, 10(9), 1329.

He, W., Wang, S., Lu, C., Zhang, X., & Li, Y. (2016). Influence of different cooling methods on thermoelectric performance of an engine exhaust gas waste heat recovery system. Applied energy, 162, 1251-1258.


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