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  4. A holistic modeling framework for estimating the influence of climate change on indoor air quality
 
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June 22, 2022
Journal Article
Title

A holistic modeling framework for estimating the influence of climate change on indoor air quality

Abstract
The IPCC 2021 report predicts rising global temperatures and more frequent extreme weather events in the future, which will have different effects on the regional climate and concentrations of ambient air pollutants. Consequently, changes in heat and mass transfer between the inside and outside of buildings will also have an increasing impact on indoor air quality. It is therefore surprising that indoor spaces and occupant well-being still play a subordinate role in the studies of climate change. To increase awareness for this topic, the Indoor Air Quality Climate Change (IAQCC) model system was developed, which allows short and long-term predictions of the indoor climate with respect to outdoor conditions. The IAQCC is a holistic model that combines different scenarios in the form of submodels: building physics, indoor emissions, chemical-physical reaction and transformation, mold growth, and indoor exposure. IAQCC allows simulation of indoor gas and particle concentrations with outdoor influences, indoor materials and activity emissions, particle deposition and coagulation, gas reactions, and SVOC partitioning. These key processes are fundamentally linked to temperature and relative humidity. With the aid of the building physics model, the indoor temperature and humidity, and pollutant transport in building zones can be simulated. The exposure model refers to the calculated concentrations and provides evaluations of indoor thermal comfort and exposure to gaseous, particulate, and microbial pollutants.
Author(s)
Salthammer, Tunga  
Fraunhofer-Institut für Holzforschung - Wilhelm-Klauditz-Institut WKI  
Zhao, Jiangyue
Fraunhofer-Institut für Holzforschung - Wilhelm-Klauditz-Institut WKI  
Schieweck, Alexandra  
Fraunhofer-Institut für Holzforschung - Wilhelm-Klauditz-Institut WKI  
Uhde, Erik  
Fraunhofer-Institut für Holzforschung - Wilhelm-Klauditz-Institut WKI  
Hussein, Tareq
Fraunhofer-Institut für Holzforschung Wilhelm-Klauditz-Institut WKI  
Antretter, Florian  
Fraunhofer-Institut für Bauphysik IBP  
Künzel, Hartwig  
Fraunhofer-Institut für Bauphysik IBP  
Pazold, Matthias  
5C3RROlutions GmbH, Raubling
Radon, Jan  
C3RROlutions GmbH, Raubling
Birmili, Wolfram
Journal
Indoor Air  
Open Access
DOI
10.1111/ina.13039
Language
English
Fraunhofer-Institut für Bauphysik IBP  
Fraunhofer-Institut für Holzforschung Wilhelm-Klauditz-Institut WKI  
Fraunhofer Group
Fraunhofer-Verbund Werkstoffe, Bauteile - Materials
Keyword(s)
  • building simulation model

  • emission rates

  • exposure

  • gas-phase reactions

  • indoor aerosol model

  • mold growth

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