Singh, Kuljeet, et al. “Response Surface Based Experimental Analysis and Thermal Resistance Model of a Thermoelectric Power Generation System”. Applied Thermal Engineering, vol. 159, 2019, p. 113935, https://doi.org/10.1016/j.applthermaleng.2019.113935.

Genre

  • Journal Article
Contributors
Author: Singh, Kuljeet
Author: Kumar, Abhishek
Author: Das, Ranjan
Date Issued
2019
Abstract

In this work, a response surface analysis is carried out on an experimental setup of a combined two-phase flow thermosyphon and thermoelectric generator (TEG) system. Three-level Box-Behnken response surface method is adopted for the design of experiments, and analysis of variance is carried out to gauge the contribution of operating parameters on various performance parameters. Effects of operating parameters such as working pressure, filling ratio, evaporator length, and evaporator temperature are studied. The performance of the system itself is gauged concerning the maximum power obtained, open circuit voltage and short circuit current. With an increase in vacuum pressure and evaporator temperature, performance parameters are found to increase. However, performance parameters under the influence of filling ratio and evaporator length first decrease and then increase due to uneven variation in evaporation rate of working fluid. Experiments also reveal that the performance of the thermosyphon-assisted (TEG) system is mainly governed by pressure and evaporator temperature, whereas filling ratio and evaporator length have relatively lesser influence.

Language

  • English
Funding Note
Design and Development of a Solar Pond and Biomass Driven Thermoelectric Unit for Domestic Power Generation using Inverse Method from Science & Engineering Research Board
Page range
113935
Host Title
Applied Thermal Engineering
Host Abbreviated Title
Applied Thermal Engineering
Volume
159
Part Date
2019-08
ISSN
1359-4311