Research Status and Development Trend of Household Gas Stoves
DOI:
https://doi.org/10.54097/g0v23264Keywords:
Cooking energy; Household gas stoves; Control system; Thermal performance; Emission performance; Intelligence.Abstract
With the increasing global demand for pollution-free cooking energy, the development of efficient and clean domestic gas stoves has been promoted. This article first provides a comprehensive overview of the thermal performance and pollutant emissions of household gas stoves through stove protocols, and organizes relevant design and development literature to gain a deeper understanding of their current development status; Secondly, the impact of natural gas, thermal performance, emission performance, and control systems on energy conservation and emission reduction of household gas stoves was analyzed one by one; Finally, the trend of intelligent development of domestic gas stoves in China was discussed. In summary, this study can provide useful references for the design and theoretical research of domestic gas stoves in China.
Downloads
References
Information on: www.weforum.org/agenda/2021/10/polluting-cooking-fuels-deaths-women-climate/ .
Clark M L,Peel J L,Burch J B,Nelson, et al. Impact of Improved Cookstoves on Indoor Air Pollution and Adverse Health Effects Among Honduran Women[J]. Epidemiology.Vol. 19 (2008) No.S190.
Clark M L, Reynolds S J, Burch J B, et al. Indoor air pollution, cookstove quality, and housing characteristics in two Honduran communities[J]. Environmental Research.Vol. 110 (2010) No. 1, p. 12-18.
Information on: www.who.int/news-room/feature-stories/detail/launch-of-who-s-household-energy-policy-repository.
Mehetre S A, Panwar N.L, Sharma D, et al. Improved biomass cookstoves for sustainable development: a review[J]. Renewable & Sustainable Energy Reviews. Vol. 73(2007) , p. 672-687.
Information on: www.who.int/news/item/07-10-2022-building-climate-resilient-health-services-with-sustainable- energy.
International Renewable Energy Agency. World Health Organization. Tracking SDG7: The Energy Progress Report 2020[R].[7]//United Nations Statistics Division,2020.
Caleb W, Roger S, Shashi B. The global challenge of clean cooking systems[J].Food Security.Vol. 12 (2020) No. 6, p. 1219-1240.
Shu Wu.The Health Impact of Household Cooking Fuel Choice on Women: Evidence from China [J].Sustainability.Vol. 13 (2021) , p. 1208.
Bruce T, Beth H, Erin R, et al Income, housing and health: Poverty in the United States through the prism of residential energy efficiency programs[J].Energy Research & Social Science.Vol. 73 (2021) , p. 101945.
Zou C N, Zhao Q, Chen J J, et al. Natural gas in China: Development trend and strategic forecast [J]. Natural Gas Industry. Vol. 38 (2018) No. 4, p. 1-11.
He D B, Jia C Y, Wei Y S, et al. Current situation and development trend of world natural gas industry [J]. Natural Gas Industry. Vol. 42 (2022) No. 11, p. 1-12.
Popkova E G, Sergi B S. Energ y efficiency in leading emerging and developed countries. Energy . Vol. 221(2021) , p. 119730.
Ko Y C, Lin T H. Emissions and efficiency of a domestic gas stove burning natural gases with various compositions[J]. Energy Conversion and Management. Vol. 44(2003) No. 1, p. 3001-3014.
Fang Z C, Zhang S H, Huang X M,et al.Performance of three typical domestic gas stoves operated with methane- hydrogen mixture[J].Case Studies in Thermal Engineering.Vol. 41(2023), p. 1026316.
Li H B, Wong T T, Leung CW, et al. Thermal performa- nces and CO emissions of gas-fired cooker-top burners. Appl Energy.Vol. 83 (2006) No. 12, p. 1326e38.
Gao W, Zhao L F, Xiao H F et al. Design of Intelligent Gas Stove System [J]. Automation & Instrumentation.Vol. 35 (2020) No. 12, p. 86-89e93.
Pantelic J,Young J S,Brant S, et al. emission control with IoT sensors and connected air quality interventions for smart and healthy homes: Evaluation of effectiveness and energy consumption[J].Energy and Buildings.Vol. 286 (2023) No. 112932, p. 0378-7788.
C L'Orange, M DeFoort, B. Willson. Influence of testing parameters on biomass stove performance and development of an improved testing protocol[J].Energy for Sustainable Development.Vol. 16(2012) No. 1, p. 3-12.
Shen HZ, Luo ZH, Xiong R, et al. A critical review of pollutant emission factors from fuel combustion in home stoves[J].Environment International.Vol. 157 (2021) No. 106841, p. 0160-4120.
Edwards R, Johnson M , Frenk C A, et al. In-field greenhouse gas emissions from cookstoves in rural Mexican households[J]. Atmospheric Environment.Vol. 42 (2008) No. 6, p. 1206-1222.
Roden C A, Bond T C, Conway S, et al. Laboratory and field investigations of particulate and carbon monoxide emissions from traditional and improved cookstoves[J] Atmospheric Environment.Vol. 43 (2009) No. 6, p. 1170-1181.
Bailis R, Berrueta V,Chengappa. Performance testing for monitoring improved biomass stove interventions: Experiences of the Household Energy and Health Project[J]. Energy Sustainable Development .Vol. 11 (2007) No. 2, p. 57-70.
Berrueta V M, Edwards R D, Masera O R. Energy performance of wood-burning cookstoves in Michoacan, Mexico[J].Renewable Energy.Vol. 33 (2008) No. 5, p. 859-870.
Maninder K S, Khaiwal R, Suman M, et al. Emission factors and global warming potential of various solid biomass fuel-cook stove combinations[J].Atmospheric Pollution Research.Vol. 11 (2020) No. 2, p. 252-260.
Johnson M, Edwards, R, Masera, O. Improved stove programs need robust methods to estimate carbon offsets. [J]. Climatic Change.Vol. 102 (2010) No. 3-4, p. 641-649 0165-0009.
Carrie M. L, Chelsea C, Michael L, et al. Assessing the Climate Impacts of Cookstove Projects: Issues in Emissions Accounting[J].Challenges in Sustainability.Vol. 1 (2013) No. 2, p. 53-71.
Chen Z G,Zhang Y J,Qin C K,et al.Combustion perform- ance of domestic gas cookers with swirling strip-port and normal round-port on various natural gas compositions [J].CASE STUDIES IN THERMALENGINEERING.2019, 13: 100366Vol. 13 (2019) ,p100366.2214-157x.
Namkhat A,Jugjai S.Primary air entrainment characterist -ics for a self-aspirating burner: Model and experiments [J].Energy.Vol. 35 (2010) No. 4, p. 1701-1708.
Yang X,Long X ,Yao X.Numerical investigation on the mixing process in a steam ejector with different nozzle structures[J].International Journal of Thermal Sciences.Vol. 14 (2021) No. 21, p6900. 1996-1073.
Tuttle S G, Webb B W, McQuay M Q.Convective heat transfer from a partially premixed impinging flame jet. Part II: Time-resolved results[J].International Journal of Heat and Mass Transfer.Vol. 48 (2005) No. 7, p. 1252-1266.
Tamir A, Elperin I, Yotzer S.Performance characteristics of a gas burner with a swirling central flame [J].ENERGY.Vol. 14(1989) No. 7, p. 373-382.
Makmool U, Jugjai S, Tia S, et al.Laser-based investiga- tions of flow fields and OH distributions in impinging flames of domestic cooker-top burners(Article)[J].Fuel. Vol. 90 (2011) No. 3, p. 1024-1035.
Das M, Ganguly R, Datta A,et al.Performance Improvement of a Domestic Liquefied Petroleum Gas Cook Stove Using an Extended Spill-Tray and an Annular Metal Insert[J]. Journal of Thermal Science and Engineering Applications .Vol. 13 (2021) No. 2, p021016. 1948-5085.
Hossein S, |Mohammad Z T & Mehdi M. Experimental investigation and heat transfer analysis of a natural gas fueled porous burner in domestic application[J].Journal of Thermal Analysis and Calorimetry.Vol. 148 (2023) No. 15, p7951. 1388-6150.
Dwivedi G, Gohil P P, Arun Kumar Behura. Numerical investigation of thermodynamic parameters for performance evaluation of cooking gas stove burner by appending of flame shield[J]. Materials Today: Proceedings.Vol. (2020), p. 2214-7853.
Junus R, Stubington J F, Sergeant G D. The effects of design factors on emissions from natural gas cooktop burners.[J]. International Journal of Environmental Studies.Vol. 45 (1994) No. 2, p101. 0020-7233.
Hou S S,Lee C Y,Lin, T. H.Efficiency and emissions of a new domestic gas burner with a swirling flame.[J]. Energy Conversion and Management.Vol. 48 (2008) No. 5, p. 1401-1410.
Xie Y Q, Chao K, Duan P F, et al. Prediction of CO emission from partially-premixed gas cooker[J].Case Studies in Thermal Engineering.Vol. 31 (2022) , p101833. 2214-157x.
Gu J M, Han D, Zheng M R, et al.Design and experiments of a thermoelectric generator coupled to a gas cooker with energy storage module and thermosyphon cooling system[J]. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects.Vol. (2020) , p. 1556-7036.
Hugeng Hugeng, Steven Sulaiman, K N Nurwijayanti. Implementation of an automatic secured gas stove using internet-of-things technology[J].IOP Conference Series: Materials Science and Engineering.Vol. 1007(2020) , p012195. 1757-8981.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 Academic Journal of Science and Technology

This work is licensed under a Creative Commons Attribution 4.0 International License.








