Enabling dynamic life cycle assessment of buildings with wireless sensor networks
This paper summarizes the goals and initial findings from a project whose aim is to create robust and practical life cycle assessment (LCA) tools to assess the performance of buildings. A central feature of this project is the concept of a dynamic LCA framework for buildings, which should include, b...
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creator | Collinge, William O. Liang Liao Haifeng Xu Saunders, Christi L. Bilec, Melissa M. Landis, Amy E. Jones, Alex K. Schaefer, Laura A. |
description | This paper summarizes the goals and initial findings from a project whose aim is to create robust and practical life cycle assessment (LCA) tools to assess the performance of buildings. A central feature of this project is the concept of a dynamic LCA framework for buildings, which should include, but is not limited to; considering temporal variations in internal and external conditions during a building's operating lifetime, and incorporating the ability to rapidly update the LCA results based on changes to the building's design or operation (dynamic scenario modeling). A life cycle assessment (LCA) framework is necessary to understand how buildings and their occupants use materials, water, and energy resources, and are affected by the building's internal environmental quality throughout the its lifetime. However, LCA is not commonly used in building industry practice. This disparity is hypothesized to be the result of several factors: the perceived and actual complexity of LCA's application; the lack of inclusion of internal building effects important to practitioners and users, such as indoor environmental quality (IEQ); and the lack of detailed information on the dynamics of the building's use phase. This paper describes the feasibility of deploying a real-time, wireless sensor network to generate a dynamic LCA for buildings. Using the data collected from a sensor network, projections of the environmental impact of a building's use phase can be validated or improved. Building systems that demonstrate a highly variable impact on the LCA results or diverge widely from current predictions can be selected for additional study, and choices regarding where to expend finite resources in sensor applications can be refined. |
doi_str_mv | 10.1109/ISSST.2011.5936846 |
format | Conference Proceeding |
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A central feature of this project is the concept of a dynamic LCA framework for buildings, which should include, but is not limited to; considering temporal variations in internal and external conditions during a building's operating lifetime, and incorporating the ability to rapidly update the LCA results based on changes to the building's design or operation (dynamic scenario modeling). A life cycle assessment (LCA) framework is necessary to understand how buildings and their occupants use materials, water, and energy resources, and are affected by the building's internal environmental quality throughout the its lifetime. However, LCA is not commonly used in building industry practice. This disparity is hypothesized to be the result of several factors: the perceived and actual complexity of LCA's application; the lack of inclusion of internal building effects important to practitioners and users, such as indoor environmental quality (IEQ); and the lack of detailed information on the dynamics of the building's use phase. This paper describes the feasibility of deploying a real-time, wireless sensor network to generate a dynamic LCA for buildings. Using the data collected from a sensor network, projections of the environmental impact of a building's use phase can be validated or improved. 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A central feature of this project is the concept of a dynamic LCA framework for buildings, which should include, but is not limited to; considering temporal variations in internal and external conditions during a building's operating lifetime, and incorporating the ability to rapidly update the LCA results based on changes to the building's design or operation (dynamic scenario modeling). A life cycle assessment (LCA) framework is necessary to understand how buildings and their occupants use materials, water, and energy resources, and are affected by the building's internal environmental quality throughout the its lifetime. However, LCA is not commonly used in building industry practice. This disparity is hypothesized to be the result of several factors: the perceived and actual complexity of LCA's application; the lack of inclusion of internal building effects important to practitioners and users, such as indoor environmental quality (IEQ); and the lack of detailed information on the dynamics of the building's use phase. This paper describes the feasibility of deploying a real-time, wireless sensor network to generate a dynamic LCA for buildings. Using the data collected from a sensor network, projections of the environmental impact of a building's use phase can be validated or improved. Building systems that demonstrate a highly variable impact on the LCA results or diverge widely from current predictions can be selected for additional study, and choices regarding where to expend finite resources in sensor applications can be refined.</description><subject>Buildings</subject><subject>Cooling</subject><subject>Dynamic Life Cycle Assessment</subject><subject>Energy consumption</subject><subject>Fuels</subject><subject>Green Building</subject><subject>Life Cycle Assessment</subject><subject>Materials</subject><subject>Sensor Network</subject><subject>Temperature sensors</subject><subject>Wireless sensor networks</subject><issn>1095-2020</issn><issn>2378-7260</issn><isbn>9781612843940</isbn><isbn>1612843948</isbn><isbn>9781612843933</isbn><isbn>1612843921</isbn><isbn>161284393X</isbn><isbn>9781612843926</isbn><fulltext>true</fulltext><rsrctype>conference_proceeding</rsrctype><creationdate>2011</creationdate><recordtype>conference_proceeding</recordtype><sourceid>6IE</sourceid><sourceid>RIE</sourceid><recordid>eNpVkM1OwzAQhM2fRCh9Abj4BRL8k9jxEVUtVKqEUMq5ip01GBwHxUFV3h5L9MJld6VvNZoZhO4oKSgl6mHbNM2-YITSolJc1KU4Q0slayooq0uuOD9HGeOyziUT5OIfK8klypJIlTPCyDW6ifGTpIuUIkOv69Bq78I77ubQ9s5g7yxgMxsPuI0RYuwhTHiwWP8436XPiI9u-khjBJ8wjhDiMOIA03EYv-IturKtj7A87QV626z3q-d89_K0XT3uckdlNeXKqE5UhtlOKMo0gE6GrS4N5aLsOFPCWmOEsRWztkspJNeV5VoSRWvLar5A93-6DgAO36Pr23E-nNrhv3SZVho</recordid><startdate>201105</startdate><enddate>201105</enddate><creator>Collinge, William O.</creator><creator>Liang Liao</creator><creator>Haifeng Xu</creator><creator>Saunders, Christi L.</creator><creator>Bilec, Melissa M.</creator><creator>Landis, Amy E.</creator><creator>Jones, Alex K.</creator><creator>Schaefer, Laura A.</creator><general>IEEE</general><scope>6IE</scope><scope>6IH</scope><scope>CBEJK</scope><scope>RIE</scope><scope>RIO</scope></search><sort><creationdate>201105</creationdate><title>Enabling dynamic life cycle assessment of buildings with wireless sensor networks</title><author>Collinge, William O. ; Liang Liao ; Haifeng Xu ; Saunders, Christi L. ; Bilec, Melissa M. ; Landis, Amy E. ; Jones, Alex K. ; Schaefer, Laura A.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-i175t-9c9d65c2fd6912beeb816fb4c1364d3296ffcc6cf52ffd39473b5f3b70918f283</frbrgroupid><rsrctype>conference_proceedings</rsrctype><prefilter>conference_proceedings</prefilter><language>eng</language><creationdate>2011</creationdate><topic>Buildings</topic><topic>Cooling</topic><topic>Dynamic Life Cycle Assessment</topic><topic>Energy consumption</topic><topic>Fuels</topic><topic>Green Building</topic><topic>Life Cycle Assessment</topic><topic>Materials</topic><topic>Sensor Network</topic><topic>Temperature sensors</topic><topic>Wireless sensor networks</topic><toplevel>online_resources</toplevel><creatorcontrib>Collinge, William O.</creatorcontrib><creatorcontrib>Liang Liao</creatorcontrib><creatorcontrib>Haifeng Xu</creatorcontrib><creatorcontrib>Saunders, Christi L.</creatorcontrib><creatorcontrib>Bilec, Melissa M.</creatorcontrib><creatorcontrib>Landis, Amy E.</creatorcontrib><creatorcontrib>Jones, Alex K.</creatorcontrib><creatorcontrib>Schaefer, Laura A.</creatorcontrib><collection>IEEE Electronic Library (IEL) Conference Proceedings</collection><collection>IEEE Proceedings Order Plan (POP) 1998-present by volume</collection><collection>IEEE Xplore All Conference Proceedings</collection><collection>IEEE Electronic Library (IEL)</collection><collection>IEEE Proceedings Order Plans (POP) 1998-present</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>Collinge, William O.</au><au>Liang Liao</au><au>Haifeng Xu</au><au>Saunders, Christi L.</au><au>Bilec, Melissa M.</au><au>Landis, Amy E.</au><au>Jones, Alex K.</au><au>Schaefer, Laura A.</au><format>book</format><genre>proceeding</genre><ristype>CONF</ristype><atitle>Enabling dynamic life cycle assessment of buildings with wireless sensor networks</atitle><btitle>Proceedings of the 2011 IEEE International Symposium on Sustainable Systems and Technology</btitle><stitle>ISSST</stitle><date>2011-05</date><risdate>2011</risdate><spage>1</spage><epage>6</epage><pages>1-6</pages><issn>1095-2020</issn><eissn>2378-7260</eissn><isbn>9781612843940</isbn><isbn>1612843948</isbn><eisbn>9781612843933</eisbn><eisbn>1612843921</eisbn><eisbn>161284393X</eisbn><eisbn>9781612843926</eisbn><abstract>This paper summarizes the goals and initial findings from a project whose aim is to create robust and practical life cycle assessment (LCA) tools to assess the performance of buildings. A central feature of this project is the concept of a dynamic LCA framework for buildings, which should include, but is not limited to; considering temporal variations in internal and external conditions during a building's operating lifetime, and incorporating the ability to rapidly update the LCA results based on changes to the building's design or operation (dynamic scenario modeling). A life cycle assessment (LCA) framework is necessary to understand how buildings and their occupants use materials, water, and energy resources, and are affected by the building's internal environmental quality throughout the its lifetime. However, LCA is not commonly used in building industry practice. This disparity is hypothesized to be the result of several factors: the perceived and actual complexity of LCA's application; the lack of inclusion of internal building effects important to practitioners and users, such as indoor environmental quality (IEQ); and the lack of detailed information on the dynamics of the building's use phase. This paper describes the feasibility of deploying a real-time, wireless sensor network to generate a dynamic LCA for buildings. Using the data collected from a sensor network, projections of the environmental impact of a building's use phase can be validated or improved. Building systems that demonstrate a highly variable impact on the LCA results or diverge widely from current predictions can be selected for additional study, and choices regarding where to expend finite resources in sensor applications can be refined.</abstract><pub>IEEE</pub><doi>10.1109/ISSST.2011.5936846</doi><tpages>6</tpages></addata></record> |
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subjects | Buildings Cooling Dynamic Life Cycle Assessment Energy consumption Fuels Green Building Life Cycle Assessment Materials Sensor Network Temperature sensors Wireless sensor networks |
title | Enabling dynamic life cycle assessment of buildings with wireless sensor networks |
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