Zhang X, Wargocki P, Lian Z and Thyregod C. Effects of exposure to carbon dioxide and bioeffluents on perceived air quality, self-assessed acute health symptoms, and cognitive performance. Indoor Air. Epub ahead of print Jan 2016. DOI: 10.1111/ina.12284..
2.
YuCWFKimJT. Building pathology, investigation of sick buildings – VOC emissions. Indoor Built Environ2010; 19: 30–39.
3.
SinghJYuCWFKimJT. Building pathology, investigation of sick buildings – toxic moulds. Indoor Built Environ2010; 19: 40–47.
4.
YuCWFKimJT. Long-term impact of formaldehyde and VOC emissions from wood-based products on indoor environments; and issues with recycled products. Indoor Built Environ2012; 21: 137–149.
5.
BornehagCGSundellJBoniniSCustovicAMalmbergPSkerfvingSSigsgaardTVerhoeffA. Dampness in buildings as a risk factor for health effects, EUROEXPO: a multidisciplinary review of the literature (1998–2000) on dampness and mite exposure in buildings and health effects. Indoor Air2004; 14: 243–257.
6.
CatelinoisORogelALaurierDBillonSHemonDVergerPTirmarcheM. Lung cancer attributable to indoor radon exposure in France: impact of the risk models and uncertainty analysis. Environ Health Perspect2006; 114: 1361–1366.
7.
WangLZhaoBLiuCLinHYangXZhangY. Indoor SVOC pollution in China: a review. Chinese Sci Bull2010; 55: 1469–1478.
8.
FiskWJ. Health benefits of particle filtration. Indoor Air2013; 23: 357–368.
9.
GilLDAdonisMI. Polycyclic aromatic hydrocarbon levels and mutagenic activities of organic extracts from airborne particles in Santiago de Chile. Indoor Built Environ1996; 5: 155–164.
10.
SundellJLevinHNazaroffWWCainWSFiskWJGrimsrudDTGyntelbergFLiYPersilyAKPickeringACSametJMSpenglerJDTaylorSTWeschlerCJ. Ventilation rates and health: multidisciplinary review of the scientific literature. Indoor Air2011; 21: 191–204.
11.
SundellJ. On the history of indoor air quality and health. Indoor Air2004; 14: 51–58.
12.
PersilyA. Challenges in developing ventilation and indoor air quality standards: the story of ASHRAE Standard 62. Build Environ2015; 91: 61–69.
13.
OlesenBW. Revision of EN 15251: indoor environmental criteria. REHVA J2012; 49: 6–12.
14.
YuCWFKimJT. Building environmental assessment schemes for rating of IAQ in sustainable buildings. Indoor Built Environ2011; 20: 5–15.
15.
ANSI/ASHRAE Standard 62.1-2016. Ventilation for acceptable indoor air quality. Atlanta, GA, USA: ASHRAE, 2016.
16.
BS EN 15251:2007. Indoor environmental input parameters for design and assessment of energy performance of buildings addressing indoor air quality, thermal environment, lighting and acoustics. London: British Standards Institution, 2007.
17.
GB 50736-2012. Code for design of heating ventilation and air conditioning. Beijing, China: Standardization Administration of China (SAC); China Architecture & Building Press, 2012.
18.
ZhangYXiongJMoJGongMCaoJ. Understanding and controlling airborne organic compounds in the indoor environment: mass transfer analysis and applications. Indoor Air2016; 26: 39–60.
19.
CarslawNLangerSWolkoffP. New directions: where is the link between reactive indoor air chemistry and health effects?Atmos Environ2009; 43: 3808–3809.
20.
FiedlerNLaumbachRKelly-McNeilKLioyPFanZHZhangJFOttenwellerJOhman-StricklandPKipenH. Health effects of a mixture of indoor air volatile organics, their ozone oxidation products, and stress. Environ Health Perspect2005; 113: 1542–1548.
21.
WeschlerCJ. Changes in indoor pollutants since the 1950s. Atmos Environ2009; 43: 153–169.
22.
JanssenJE. The history of ventilation and temperature control – the first century of air conditioning. ASHRAE J1999; 41: 47–52.
23.
FangerPO. Introduction of the olf and the decipol units to quantify air pollution perceived by humans indoors and outdoors. Energy Build1988; 12: 1–6.
24.
ZhangXWargockiPLianZ. Human responses to carbon dioxide, a follow-up study at recommended exposure limits in non-industrial environments. Build Environ2016; 100: 162–171.
25.
WangSBurnettJChongH. Experimental validation of CO2-based occupancy detection for demand-controlled ventilation. Indoor Built Environ1999; 8: 377–391.
26.
YeWWonDZhangX. A preliminary ventilation rate determination methods study for residential buildings and offices based on VOC emission database. Build Environ2014; 79: 168–180.
27.
ChiCChenWGuoMWengMYanGShenX. Law and features of TVOC and formaldehyde pollution in urban indoor air. Atmos Environ2016; 132: 85–90.
28.
LiangWYangX. Indoor formaldehyde in real buildings: emission source identification, overall emission rate estimation, concentration increase and decay patterns. Build Environ2013; 69: 114–120.
29.
DuZMoJZhangYXuQ. Benzene, toluene and xylenes in newly renovated homes and associated health risk in Guangzhou, China. Build Environ2014; 72: 75–81.
30.
KimJ-JJungSKKimJT. Wireless monitoring of indoor air quality by a sensor network. Indoor Built Environ2010; 19: 145–150.
31.
CaronARedonNThevenetFHanouneBCoddevilleP. Performances and limitations of electronic gas sensors to investigate an indoor air quality event. Build Environ2016; 107: 19–28.
32.
YeWLittleJCWonDZhangX. Screening-level estimates of indoor exposure to volatile organic compounds emitted from building materials. Build Environ2014; 75: 58–66.
33.
MølhaveLClausenGBerglundBde CeaurrizJKettrupALindvallTMaroniMPickeringACRisseURothweilerHSeifertBYounesM. Total volatile organic compounds (TVOC) in indoor air quality investigations. Indoor Air1997; 7: 225–240.
34.
HeCMorawskaLHitchinsJGilbertD. Contribution from indoor sources to particle number and mass concentrations in residential houses. Atmos Environ2004; 38: 3405–3415.
35.
TianSPanYLiuZWenTWangY. Size-resolved aerosol chemical analysis of extreme haze pollution events during early 2013 in urban Beijing, China. J Hazardous Mater2014; 279: 452–460.
36.
ZhangQYanRFanJYuSYangWLiPWangSChenBLiuWZhangX. A heavy haze episode in Shanghai in December of 2013: characteristics, origins and implications. Aerosol Air Qual Res2015; 15: 1881–1893.
37.
LiuCZhangYBenningJLLittleJC. The effect of ventilation on indoor exposure to semivolatile organic compounds. Indoor Air2015; 25: 285–296.
38.
LiuCCaoJZhangY. Simplifying analysis of sorption of SVOCs to particles: lumped parameter method and application condition. International J Heat Mass Transf2016; 99: 402–408.
39.
SukieneVGereckeACParkY-MZenneggMBakkerMIDelmaarCJEHungerbühlerKvon GoetzN. Tracking SVOCs’ transfer from products to indoor air and settled dust with deuterium-labeled substances. Environ Sci Technol2016; 50: 4296–4303.
40.
WeschlerCJNazaroffWW. SVOC partitioning between the gas phase and settled dust indoors. Atmos Environ2010; 44: 3609–3620.
41.
LittleJCWeschlerCJNazaroffWWLiuZCohen HubalEA. Rapid methods to estimate potential exposure to semivolatile organic compounds in the indoor environment. Environ Sci Technol2012; 46: 11171–11178.
42.
CarrerPWargockiPFanettiABischofWDe Oliveira FernandesEHartmannTKephalopoulosSPalkonenSSeppänenO. What does the scientific literature tell us about the ventilation–health relationship in public and residential buildings?Build Environ2015; 94, Part 1: 273–286.