ChenYLShenHZSmithKRGuanDBChenYCShenGFLiuJFChengHFZengEYTaoS. Estimating household air pollution exposures and health impacts from space heating in rural China. Environt Int2018; 119: 117–124. DOI: 10.1016/j.envint.2018.04.054
2.
LiCHBaiLHeZJLiuXRXuXL. The effect of air purifiers on the reduction in indoor PM2.5 concentrations and population health improvement. Sustain Cities Soc2021; 75: 103298. DOI: 10.1016/j.scs.2021.103298
3.
LiCHBaiLHeZJWangY. Health risk assessment of heavy metals and poly-aromatic hydrocarbons in particulate matter adsorbed by indoor air purifiers. Indoor Built Environ2022; 31(6): 1594–1612. DOI: 10.1177/1420326x211052239
4.
MartinsNRCarrilho da GraçaG. Impact of PM2.5 in indoor urban environments: a review. Sustain Cities Soc2018; 42: 259–275. DOI: 10.1016/j.scs.2018.07.011
5.
KumarPHamaSAbbassRANogueiraTBrandVSWuH-WAbuludeFOAdelodumAAAndradeMDFArayaAAzizKHCaoS-JEl-GendyAInduGKehbilaAGMustafaFMuulaASNahianSNardocciECNelsonWNgowiAVOlayaYOmerKOsanoPSalamANagendraS. CO2 exposure, ventilation, thermal comfort and health risks in low-income home kitchens of twelve global cities. J Build Eng2022; 61: 105254. DOI: 10.1016/j.jobe.2022.105254
6.
BaiLHeZJLiCHChenZ. Investigation of yearly indoor/outdoor PM2.5 levels in the perspectives of health impacts and air pollution control: case study in Changchun, in the northeast of China. Sustain Cities Soc2020; 53: 101871. DOI: 10.1016/j.scs.2019.101871
7.
XieYYZhaoB. Chemical composition of outdoor and indoor PM2.5 collected during haze events: transformations and modified source contributions resulting from outdoor-to-indoor transport. Indoor Air2018; 28(6): 828–839. DOI: 10.1111/ina.12503
8.
BaiLHeZJChenWYWangY. Distribution characteristics and source analysis of metal elements in indoor PM2.5 in high-rise buildings during heating season in Northeast China. Indoor Built Environ2019; 29(8): 1087–1100. DOI: 10.1177/1420326X19875495
9.
QiMDuWZhuXLuCXChenYCShenGFChengHFZengEYTaoS. Fluctuation in time-resolved PM2.5 from rural households with solid fuel-associated internal emission sources. Environ Pollut2019; 244: 304–313. DOI: 10.1016/j.envpol.2018.10.041
10.
ZhuXYunXMengWJXuHRDuWShenGFChengHFMaJMTaoS. Stacked use and transition trends of rural household energy in Mainland China. Environ Sci Technol2019; 53(1): 521–529. DOI: 10.1021/acs.est.8b04280
11.
GiftySMFrancisKAbeekuB-H. Energy access indicators and trends in Ghana. Renew Sust Energ Rev2014; 30: 317–323. DOI: 10.1016/j.rser.2013.10.032
12.
GuoMNXingRShimadaYKurataG. Individual exposure to particulate matter in urban and rural Chinese households: estimation of exposure concentrations in indoor and outdoor environments. Nat Hazards2019; 99(3): 1397–1414. DOI: 10.1007/s11069-019-03625-0
13.
ZhangXJinYNDaiHCXieYZhangSQ. Health and economic benefits of cleaner residential heating in the Beijing–Tianjin–Hebei region in China. Energ Policy2019; 127: 165–178. DOI: 10.1016/j.enpol.2018.12.008
14.
SidhuMKRavindraKMorSJohnS. Household air pollution from various types of rural kitchens and its exposure assessment. Sci Total Environ2017; 586: 419–429. DOI: 10.1016/j.scitotenv.2017.01.051
15.
XiangR-BSongJ-BZhuYGuangW. Indoor air quality in kitchens in rural China. Environ Eng Sci2016; 33(9): 699–704. DOI: 10.1089/ees.2015.0210
16.
DuWLiXChenYShenG. Household air pollution and personal exposure to air pollutants in rural China – a review. Environ Pollut2018; 237: 625–638. DOI: 10.1016/j.envpol.2018.02.054
17.
BaiLLiCH. Investigation of indoor polycyclic aromatic hydrocarbons (PAHs) in rural Northeast China: pollution characteristics, source analysis, and health assessment. Buildings2022; 12(2): 153. DOI: 10.3390/buildings12020153
18.
PiccardoMTCipollaMStellaACeppiMBruzzoneMIzzottiAValerioF. Indoor pollution and burning practices in wood stove management. J Air Waste Manag Assoc2014; 64(11): 1309–1316. DOI: 10.1080/10962247.2014.943353
19.
AnceletTDavyPKTrompetterWJMarkwitzAWeatherburnDC. Carbonaceous aerosols in a wood burning community in rural New Zealand. Atmos Pollut Res2013; 4(3): 245–249. DOI: 10.5094/APR.2013.026
20.
CaoXTangHZhengCKangYZhangLWangXChenZYangYZhouHChenLHuangGWangZ. Association of heating fuel types with mortality and cardiovascular events among non-smokers in China. Environ Pollut2021; 291: 118207. DOI: 10.1016/j.envpol.2021.118207
21.
ShuklaDDuttaV. Indoor air quality monitoring of urban and rural households of a North Indian city during cooking hours. Aerosol Sci Eng2022; 6(1): 86–98. DOI: 10.1007/s41810-021-00126-1
22.
AroraPJainSSachdevaK. Laboratory based assessment of cookstove performance using energy and emission parameters for North Indian cooking cycle. Biomass Bioenerg2014; 69: 211–221. DOI: 10.1016/j.biombioe.2014.07.012
23.
ZhuangZLiYChenB. Smoke flow in Chinese Kangs. Indoor Built Environ2009; 18(3): 219–233. DOI: 10.1177/1420326X09105454
24.
LuoXLeiSYuCWGuZ. Thermal performance of a novel heating bed system integrated with a stack effect tunnel. Indoor Built Environ2020; 29(9): 1316–1328. DOI: 10.1177/1420326X20926804
25.
SuJLiJLuoXYuCWGuZ. Experimental evaluation of a capillary heating bed driven by an air source heat pump and solar energy. Indoor Built Environ2020; 29(10): 1399–1411. DOI: 10.1177/1420326X19878576
26.
LiAGGaoXPYangLH. Field measurements, assessments and improvement of Kang: case study in rural northwest China. Energ Build2016; 111: 497–506. DOI: 10.1016/j.enbuild.2015.11.049
27.
MunyezaCFOsanoAMMaghangaJKForbesPBC. Polycyclic aromatic hydrocarbon gaseous emissions from household cooking devices: a Kenyan case study. Environ Toxicol Chem2020; 39(3): 538–547. DOI: 10.1002/etc.4648
28.
WagJHuangKLFengGHSongJS. Analysis of winter formaldehyde and volatile organic compound pollution characteristics of residential kitchens in severe cold regions of northeast China. Indoor Built Environ2020; 30(8): 1226–1243. DOI: 10.1177/1420326X16673215