Literature DB >> 23651082

Development of land use regression models for particle composition in twenty study areas in Europe.

Kees de Hoogh1, Meng Wang, Martin Adam, Chiara Badaloni, Rob Beelen, Matthias Birk, Giulia Cesaroni, Marta Cirach, Christophe Declercq, Audrius Dėdelė, Evi Dons, Audrey de Nazelle, Marloes Eeftens, Kirsten Eriksen, Charlotta Eriksson, Paul Fischer, Regina Gražulevičienė, Alexandros Gryparis, Barbara Hoffmann, Michael Jerrett, Klea Katsouyanni, Minas Iakovides, Timo Lanki, Sarah Lindley, Christian Madsen, Anna Mölter, Gioia Mosler, Gizella Nádor, Mark Nieuwenhuijsen, Göran Pershagen, Annette Peters, Harisch Phuleria, Nicole Probst-Hensch, Ole Raaschou-Nielsen, Ulrich Quass, Andrea Ranzi, Euripides Stephanou, Dorothea Sugiri, Per Schwarze, Ming-Yi Tsai, Tarja Yli-Tuomi, Mihály J Varró, Danielle Vienneau, Gudrun Weinmayr, Bert Brunekreef, Gerard Hoek.   

Abstract

Land Use Regression (LUR) models have been used to describe and model spatial variability of annual mean concentrations of traffic related pollutants such as nitrogen dioxide (NO2), nitrogen oxides (NOx) and particulate matter (PM). No models have yet been published of elemental composition. As part of the ESCAPE project, we measured the elemental composition in both the PM10 and PM2.5 fraction sizes at 20 sites in each of 20 study areas across Europe. LUR models for eight a priori selected elements (copper (Cu), iron (Fe), potassium (K), nickel (Ni), sulfur (S), silicon (Si), vanadium (V), and zinc (Zn)) were developed. Good models were developed for Cu, Fe, and Zn in both fractions (PM10 and PM2.5) explaining on average between 67 and 79% of the concentration variance (R(2)) with a large variability between areas. Traffic variables were the dominant predictors, reflecting nontailpipe emissions. Models for V and S in the PM10 and PM2.5 fractions and Si, Ni, and K in the PM10 fraction performed moderately with R(2) ranging from 50 to 61%. Si, NI, and K models for PM2.5 performed poorest with R(2) under 50%. The LUR models are used to estimate exposures to elemental composition in the health studies involved in ESCAPE.

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Year:  2013        PMID: 23651082     DOI: 10.1021/es400156t

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  44 in total

1.  Exposure assessment models for elemental components of particulate matter in an urban environment: A comparison of regression and random forest approaches.

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Review 2.  A review of AirQ Models and their applications for forecasting the air pollution health outcomes.

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3.  Assessment of different route choice on commuters' exposure to air pollution in Taipei, Taiwan.

Authors:  Hsien-Chih Li; Pei-Te Chiueh; Shi-Ping Liu; Yu-Yang Huang
Journal:  Environ Sci Pollut Res Int       Date:  2016-11-18       Impact factor: 4.223

Review 4.  Air pollution and allergic diseases.

Authors:  Eric B Brandt; Jocelyn M Biagini Myers; Patrick H Ryan; Gurjit K Khurana Hershey
Journal:  Curr Opin Pediatr       Date:  2015-12       Impact factor: 2.856

5.  Application of land use regression modelling to assess the spatial distribution of road traffic noise in three European cities.

Authors:  Inmaculada Aguilera; Maria Foraster; Xavier Basagaña; Elisabetta Corradi; Alexandre Deltell; Xavier Morelli; Harish C Phuleria; Martina S Ragettli; Marcela Rivera; Alexandre Thomasson; Rémy Slama; Nino Künzli
Journal:  J Expo Sci Environ Epidemiol       Date:  2014-09-17       Impact factor: 5.563

6.  Source Characterization and Exposure Modeling of Gas-Phase Polycyclic Aromatic Hydrocarbon (PAH) Concentrations in Southern California.

Authors:  Shahir Masri; Lianfa Li; Andy Dang; Judith H Chung; Jiu-Chiuan Chen; Zhi-Hua Tina Fan; Jun Wu
Journal:  Atmos Environ (1994)       Date:  2018-01-08       Impact factor: 4.798

7.  Spatiotemporal prediction of fine particulate matter using high-resolution satellite images in the Southeastern US 2003-2011.

Authors:  Mihye Lee; Itai Kloog; Alexandra Chudnovsky; Alexei Lyapustin; Yujie Wang; Steven Melly; Brent Coull; Petros Koutrakis; Joel Schwartz
Journal:  J Expo Sci Environ Epidemiol       Date:  2015-06-17       Impact factor: 5.563

8.  Long-Term Exposure to Source-Specific Fine Particles and Mortality─A Pooled Analysis of 14 European Cohorts within the ELAPSE Project.

Authors:  Jie Chen; Gerard Hoek; Kees de Hoogh; Sophia Rodopoulou; Zorana J Andersen; Tom Bellander; Jørgen Brandt; Daniela Fecht; Francesco Forastiere; John Gulliver; Ole Hertel; Barbara Hoffmann; Ulla Arthur Hvidtfeldt; W M Monique Verschuren; Karl-Heinz Jöckel; Jeanette T Jørgensen; Klea Katsouyanni; Matthias Ketzel; Diego Yacamán Méndez; Karin Leander; Shuo Liu; Petter Ljungman; Elodie Faure; Patrik K E Magnusson; Gabriele Nagel; Göran Pershagen; Annette Peters; Ole Raaschou-Nielsen; Debora Rizzuto; Evangelia Samoli; Yvonne T van der Schouw; Sara Schramm; Gianluca Severi; Massimo Stafoggia; Maciej Strak; Mette Sørensen; Anne Tjønneland; Gudrun Weinmayr; Kathrin Wolf; Emanuel Zitt; Bert Brunekreef; George D Thurston
Journal:  Environ Sci Technol       Date:  2022-06-23       Impact factor: 11.357

9.  Long-term exposure to ambient air pollution and bladder cancer incidence in a pooled European cohort: the ELAPSE project.

Authors:  Ole Raaschou-Nielsen; Gerard Hoek; Jie Chen; Sophia Rodopoulou; Maciej Strak; Kees de Hoogh; Tahir Taj; Aslak Harbo Poulsen; Zorana J Andersen; Tom Bellander; Jørgen Brandt; Emanuel Zitt; Daniela Fecht; Francesco Forastiere; John Gulliver; Ole Hertel; Barbara Hoffmann; Ulla Arthur Hvidtfeldt; W M Monique Verschuren; Jeanette T Jørgensen; Klea Katsouyanni; Matthias Ketzel; Anton Lager; Karin Leander; Shuo Liu; Petter Ljungman; Gianluca Severi; Marie-Christine Boutron-Ruault; Patrik K E Magnusson; Gabriele Nagel; Göran Pershagen; Annette Peters; Debora Rizzuto; Yvonne T van der Schouw; Evangelia Samoli; Mette Sørensen; Massimo Stafoggia; Anne Tjønneland; Gudrun Weinmayr; Kathrin Wolf; Bert Brunekreef
Journal:  Br J Cancer       Date:  2022-02-16       Impact factor: 9.075

10.  Prediction of fine particulate matter chemical components with a spatio-temporal model for the Multi-Ethnic Study of Atherosclerosis cohort.

Authors:  Sun-Young Kim; Lianne Sheppard; Silas Bergen; Adam A Szpiro; Paul D Sampson; Joel D Kaufman; Sverre Vedal
Journal:  J Expo Sci Environ Epidemiol       Date:  2016-05-18       Impact factor: 5.563

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