Abstract
AbstractBiomass as an energy source for three-stone cookfires is commonly used for cooking and heating rural and isolated households in developing countries; therefore, indoor air quality decreases. In this work, the effect of the air flows ratio (combustion air/gasification air, CA/GA: 2.8, 3.0, and 3.2), and the start type, cold (CS), and hot (HS), on the energy behavior and emissions from a forced-draft top-lit updraft (TLUD) cookstove, using wood pellets as fuel, is studied. Furthermore, the gasification process was thermodynamically characterized. The TLUD cookstove assessment was carried out following a modified water boiling test (WBT). The highest thermal efficiency of the cookstove was 26.74%. The lowest specific CO, NOx, and total suspended particle matter (TSPM) emissions were 1.8 g/MJd, 106 mg/MJd, and 78.32 mg/MJd, respectively; this was attributed to a proper mixture between the producer gas and the combustion air. The gasification process showed a better energy yield under the hot start due to the preheating induced in the cookstove reactor. The optimal values of the producer gas heating value (LHVpg), cold gas efficiency (CGE), and the biochar yield (Ychar) were 3.53 MJ/Nm3, 58.61%, and 12.49%, respectively. Here, an opposite effect was found for the air flows ratios assessed. The cookstove behavior improved as the mixture between CA and GA was suitable, achieving the maximum at CA/GA = 3.0. However, the NOx emissions increased with the increment of CA/GA ratios (from 2.8 to 3.2). Therefore, future works must address the NOx emission reduction without penalizing performance or permanent emissions from the TLUD cookstoves.
Funder
Sistema General de Regalías de Colombia
University of Antioquia
Publisher
Springer Science and Business Media LLC
Subject
Mechanical Engineering,General Engineering,Aerospace Engineering,Automotive Engineering,Industrial and Manufacturing Engineering,Applied Mathematics
Reference97 articles.
1. Pundle A, Sullivan B, Means P, Posner JD, Kramlich JC (2019) Predicting and analyzing the performance of biomass-burning natural draft rocket cookstoves using computational fluid dynamics. Biomass Bioenergy 131:105402. https://doi.org/10.1016/j.biombioe.2019.105402
2. Gupta A, Mulukutla ANV, Gautam S, TaneKhan W, Waghmare SS, Labhasetwar NK (2020) Development of a practical evaluation approach of a typical biomass cookstove. Environ Technol Innov 17:100613. https://doi.org/10.1016/j.eti.2020.100613
3. Rasoulkhani M, Ebrahimi-Nik M, Abbaspour-Fard MH, Rohani A (2018) Comparative evaluation of the performance of an improved biomass cook stove and the traditional stoves of Iran. Sustain Environ Res 28:438–443. https://doi.org/10.1016/j.serj.2018.08.001
4. WHO Global Air Quality Guidelines Working Group on Risk of Bias Assessment (2020) Risk of bias assessment instrument for systematic reviews informing who global air quality guidelines By: the WHO Global Air Quality Guidelines Working Group on Risk of Bias Assessment. http://apps.who.int/bookorders.
5. Bray CD, Battye WH, Aneja VP, Schlesinger WH (2021) Global emissions of NH3, NOx, and N2O from biomass burning and the impact of climate change. J Air Waste Manag Assoc 71:102–114. https://doi.org/10.1080/10962247.2020.1842822
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