A Wireless Gas Sensor Network to Monitor Indoor Environmental Quality in Schools
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Jürgen Wöllenstein | Benedikt Bierer | Stefan Palzer | Alvaro Ortiz Pérez | Louisa Scholz | J. Wöllenstein | S. Palzer | Louisa Scholz | B. Bierer | A. O. Pérez
[1] Jürgen Wöllenstein,et al. Design of a LED-based sensor for monitoring the lower explosion limit of methane , 2017 .
[2] A. Mulac,et al. Retroreflecting multipass cell for Raman scattering. , 1977, Applied optics.
[3] Eric Jougla,et al. CHILDHOOD LEUKEMIA INCIDENCE AND EXPOSURE TO INDOOR RADON, TERRESTRIAL AND COSMIC GAMMA RADIATION , 2006, Health physics.
[4] Steve Turner,et al. Classroom carbon dioxide concentration, school attendance, and educational attainment. , 2014, The Journal of school health.
[5] William M. Harley,et al. Increased levels of bacterial markers and CO2 in occupied school rooms. , 2003, Journal of environmental monitoring : JEM.
[6] G. Goertzel. An Algorithm for the Evaluation of Finite Trigonometric Series , 1958 .
[7] Trieu-Vuong Dinh,et al. A review on non-dispersive infrared gas sensors: Improvement of sensor detection limit and interference correction , 2016 .
[8] Lennart Larsson,et al. Investigation of the Concentration of Bacteria and Their Cell Envelope Components in Indoor Air in Two Elementary Schools , 2000, Journal of the Air & Waste Management Association.
[9] Bert Brunekreef,et al. The assessment of personal exposure to nitrogen dioxide in epidemiological studies , 1990 .
[10] Jürgen Popp,et al. Fast and highly sensitive fiber-enhanced Raman spectroscopic monitoring of molecular H2 and CH4 for point-of-care diagnosis of malabsorption disorders in exhaled human breath. , 2015, Analytical chemistry.
[11] Stuart Batterman,et al. Review and Extension of CO2-Based Methods to Determine Ventilation Rates with Application to School Classrooms , 2017, International journal of environmental research and public health.
[12] A. Persily,et al. Carbon dioxide generation rates for building occupants , 2017, Indoor air.
[13] L. Morawska,et al. Children's well-being at schools: Impact of climatic conditions and air pollution. , 2016, Environment international.
[14] Brent A. Johnson,et al. Characterization of traffic-related air pollutant metrics at four schools in El Paso, Texas, USA: Implications for exposure assessment and siting schools in urban areas , 2013 .
[15] Jürgen Wöllenstein,et al. Gas sensors for climate research , 2018, Journal of Sensors and Sensor Systems.
[16] J. Kneer,et al. Apparatus to characterize gas sensor response under real-world conditions in the lab. , 2014, The Review of scientific instruments.
[17] C. Kielb,et al. Classroom conditions and CO2 concentrations and teacher health symptom reporting in 10 New York State Schools. , 2015, Indoor air.
[18] W. Bischof,et al. Daily time spent indoors in German homes--baseline data for the assessment of indoor exposure of German occupants. , 2005, International journal of hygiene and environmental health.
[19] Mohammed Arif,et al. Impact of indoor environmental quality on occupant well-being and comfort: A review of the literature , 2016 .
[20] Jürgen Wöllenstein,et al. Cavity-Enhanced Raman Spectroscopy for Food Chain Management , 2018, Sensors.
[21] Wei Yang,et al. Elementary school absenteeism and air pollution. , 2000, Inhalation toxicology.
[22] Kwong-Sak Leung,et al. A Survey of Wireless Sensor Network Based Air Pollution Monitoring Systems , 2015, Sensors.
[23] P. Fanger,et al. The effects of outdoor air supply rate in an office on perceived air quality, sick building syndrome (SBS) symptoms and productivity. , 2000, Indoor air.
[24] Michael Hippler,et al. Cavity-Enhanced Raman Spectroscopy of Natural Gas with Optical Feedback cw-Diode Lasers. , 2015, Analytical chemistry.
[25] Dejan Mumovic,et al. What do we know about indoor air quality in school classrooms? A critical review of the literature , 2012 .
[26] Standard Ashrae. Thermal Environmental Conditions for Human Occupancy , 1992 .
[27] Stefan Palzer,et al. Photoacoustic-based detector for infrared laser spectroscopy , 2016 .
[28] Philipp Kress,et al. Real-Time Gas Quality Data for On-Demand Production of Biogas , 2018 .
[29] Dieter Helm,et al. Air Change Measurements Using Tracer Gases: Methods and Results. Significance of air change for indoor air quality , 2011 .
[30] G P Papadopoulos,et al. Amplitude and phase study of the photoacoustic effect , 1992 .
[31] A. W. Mantz. A Review of the Applications of Tunable Diode Laser Spectroscopy at High Sensitivity , 1994 .
[32] Julian W. Gardner,et al. A low cost MEMS based NDIR system for the monitoring of carbon dioxide in breath analysis at ppm levels , 2016 .
[33] Jürgen Popp,et al. Fiber-enhanced Raman multigas spectroscopy: a versatile tool for environmental gas sensing and breath analysis. , 2014, Analytical chemistry.
[34] Azer P Yalin,et al. Cavity-enhanced rotational Raman scattering in gases using a 20 mW near-infrared fiber laser. , 2016, Optics letters.
[35] G. Heath,et al. Do indoor pollutants and thermal conditions in schools influence student performance? A critical review of the literature. , 2005, Indoor air.
[36] Marco Filippi,et al. Perception of the thermal environment in high school and university classrooms: Subjective preferences and thermal comfort , 2007 .
[37] Patrick James,et al. Naturally ventilated classrooms: An assessment of existing comfort models for predicting the thermal sensation and preference of primary school children , 2012 .
[38] Jürgen Wöllenstein,et al. Low-cost gas sensing system for the reliable and precise measurement of methane, carbon dioxide and hydrogen sulfide in natural gas and biomethane , 2016 .
[39] Pawel Wargocki,et al. Providing better thermal and air quality conditions in school classrooms would be cost-effective , 2013 .
[40] Huadan Zheng,et al. Beat frequency quartz-enhanced photoacoustic spectroscopy for fast and calibration-free continuous trace-gas monitoring , 2017, Nature Communications.
[41] D Faulkner,et al. Associations between classroom CO2 concentrations and student attendance in Washington and Idaho. , 2004, Indoor air.
[42] Jürgen Wöllenstein,et al. Miniature Low-Cost Carbon Dioxide Sensor for Mobile Devices , 2017, IEEE Sensors Journal.
[43] Ralph P. Tatam,et al. Non-dispersive infra-red (NDIR) measurement of carbon dioxide at 4.2μm in a compact and optically efficient sensor , 2013 .
[44] R. Burnett,et al. It's about time: A comparison of Canadian and American time–activity patterns† , 2002, Journal of Exposure Analysis and Environmental Epidemiology.
[45] Jürgen Wöllenstein,et al. Monitoring the Wobbe Index of Natural Gas Using Fiber-Enhanced Raman Spectroscopy , 2017, Sensors.
[46] Rufus Edwards,et al. Indoor time–microenvironment–activity patterns in seven regions of Europe , 2007, Journal of Exposure Science and Environmental Epidemiology.
[47] Markus W. Sigrist,et al. New differential mode excitation photoacoustic scheme for near-infrared water vapour sensing , 2008 .
[48] Gesundheitliche Bewertung von Kohlendioxid in der Innenraumluft , 2008, Bundesgesundheitsblatt - Gesundheitsforschung - Gesundheitsschutz.