PM10 Measurement and Analysis of Urban Public Spaces Indoor Environment

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Abstract:

The content of PM10 and PM2.5 in public places can harm to human health. Conduct the PM10 measurement in three public places of Qinhuangdao Kindergarten, Office Building and College Classroom. According to the measurement data statistics, analysis the influencing factors of indoor environmental pollution. The results showed three conclusions. First, the indoor PM10 concentrations influenced by the indoor whether heating or not. The PM10 concentration change ratio is 1.12~ 1.663, and the PM2.5 concentration change ratio is 1.29~2.1. Secondly, in the fog haze weather, indoor PM10 concentrations linear associated with outdoor PM10 concentrations; in the sunny day, there was no obvious correlation with the outdoor PM10 concentrations. Finally, contrast the standard drawn up by domestic and foreign relevant organizations and authorities, in the fog haze weather, indoor PM10 and PM2.5 concentrations below China standard value, but higher than USA, Europe, Japan standard value.

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Advanced Materials Research (Volumes 1065-1069)

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3177-3181

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December 2014

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© 2015 Trans Tech Publications Ltd. All Rights Reserved

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[1] Bechtel DG, Waldner CL, Wickstrom M. Associations between immune function in yearling beef cattle and airborne polycyclic aromatic hydrocarbons and PM1. 0 near oil and natural gas field facilities[J]. Arch Environ Occup Health, 2009, 64: 47-58.

DOI: 10.3200/aeoh.64.1.47-58

Google Scholar

[2] Engel -Cox JA , Weber SA. Compilation and assessment of recent positive matrix factorization and UNMIX receptor model studies on fine particulate matter source apportionment for the eastern United States[J]. J Air Waste Manag Assoc, 2007, 57: 1307-1316.

DOI: 10.3155/1047-3289.57.11.1307

Google Scholar

[3] Goyal R, Khare M. Indoor air quality modeling for PM 10, PM 2. 5, and PM 1. 0 in naturally ventilated classrooms of an urban Indian school building[J]. Environ Monit Assess, 2011, 176: 501-516.

DOI: 10.1007/s10661-010-1600-7

Google Scholar

[4] Meredith C, McCormack, Patrick N, et al. In-home particle concentrations and childhood asthma morbidity[J]. Environ Health Perspect, 2009, 117: 294-298.

Google Scholar

[5] Hamdam S E, Limam K, Abadie M O, et al. Deposition of fine particles on building internal surfaces. Atmospheric Environment, 2008, 42(39): 8893-8901.

DOI: 10.1016/j.atmosenv.2008.09.005

Google Scholar

[6] Pereira M L, Graudenz G, Tribess A, et al. Determination of particle concentration in the breathing zone for four different types of office ventilation systems. Building and Environment, 2009, 44(5): 904-911.

DOI: 10.1016/j.buildenv.2008.06.006

Google Scholar

[7] CN-HJ. Ambient air particulate matter (PM10 and PM2. 5) sampler technical requirements and testing methods [S], 2013. in China.

Google Scholar

[8] CN-HJ. Ambient air particulate matter (PM10 and PM2. 5) continuous automatic monitoring system technical requirements and testing methods [S], 2013. in China.

Google Scholar

[9] US-ASTM. Determination of sampling test tube collection of particulate emissions standard test method. [S](2011).

Google Scholar

[10] Meinan Shi, Huaichun Wu, Shihong Zhang, Haiyan Li, Tianshui Yang, Wei Liu, He Liu, Weekly cycle of magnetic characteristics of the daily PM2. 5 and PM2. 5–10 in Beijing, ChinaOriginal Research Article. Atmospheric Environment, 2014, 98: 357-367.

DOI: 10.1016/j.atmosenv.2014.08.079

Google Scholar

[11] David Y.H. Pui, Sheng-Chieh Chen, Zhili Zuo. PM2. 5 in China: Measurements, sources, visibility and health effects, and mitigation. Particuology, 2014, 13: 1-26.

DOI: 10.1016/j.partic.2013.11.001

Google Scholar