Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications

Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2020 === Cataloged from PDF of thesis. === Includes bibliographical references (pages 115-120). === Building heating, ventilation and air conditioning (HVAC) accounts for about 13.6 quadrillion BTU ("qu...

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Bibliographic Details
Main Author: Strobach, Elise M.
Other Authors: Evelyn N. Wang.
Format: Others
Language:English
Published: Massachusetts Institute of Technology 2020
Subjects:
Online Access:https://hdl.handle.net/1721.1/127731
id ndltd-MIT-oai-dspace.mit.edu-1721.1-127731
record_format oai_dc
collection NDLTD
language English
format Others
sources NDLTD
topic Mechanical Engineering.
spellingShingle Mechanical Engineering.
Strobach, Elise M.
Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
description Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2020 === Cataloged from PDF of thesis. === Includes bibliographical references (pages 115-120). === Building heating, ventilation and air conditioning (HVAC) accounts for about 13.6 quadrillion BTU ("quads") per year or 14% of the total energy consumption in the United States.' Accounting for 39% of annual US carbon dioxide emissions, this consumption is directly related to the energy efficiency of the building envelopes. 2 Windows form an essential but lossy part of building envelopes, particularly during cold weather. Thermal losses in the U.S. from controlled indoor environments to outdoors climates account for $20 billion dollars in energy each year, signifying a need for more energy efficient windows. However, insulating windows represent a thermal challenge due to the needs for optical clarity and thermal performance. Successful application of window design requires an in-depth understanding of both fundamental heat transfer and the occupant needs of our buildings. === One promising solution to these energy losses is the use of silica aerogel, a porous material with super-insulating properties. Previous studies have explored the use of aerogels for energy efficient window glazing due to its low thermal conductivity and promise of transparency. However, its adoption in the general window market has been limited by its low optical clarity characterized by a blue haze. In this work, we present the development of a high-clarity silica aerogel that is able to achieve visible transmittance > 98 % and thermal conductivity < 13 mW/mK that has been optimized for use in building windows. This performance was achieved by careful tailoring of the interconnected particle network driven by optical modeling to reduce effective scattering size within the material below 10 nm diameter. Next, clarity and thermal conductivity of the material was improved by optimization of the solution-gelation synthesis across over 300 unique samples and 80 recipes. === This provided a framework for achieving a variety of low-haze aerogels with varied thermal, sound-proofing, and mechanical properties. After achieving high-clarity through optimization of the solution-gelation chemical recipe, several 5 inch diameter double-pane prototypes were to measure the optical, thermal, and acoustic performance. Results indicate that sealing high-clarity aerogel into the gaps of existing double-pane window designs, we can achieve a center-of-glazing U-factor of 0.20 BTU/h/ft²/F, which is 35-50% more insulating than current building codes across North America. These early thermal results and a production-scale techno-economic analysis indicate the aerogel has the ability to achieve cost-effective thermal performance that is competitive with traditional doubleand triple-pane windows. === Additionally, the aerogel is able to withstand exposure to extreme conditions, such as temperature > 200 °C, relative humidity > 60%, and ultraviolet exposure for more than 6 months without degradation of the nanostructure or optical quality. These results show a promising proof-of-concept design for an aerogel double-pane window that is capable of state-of-the-art performance without a prohibitive cost to consumers. Successful development and commercialization of this high-clarity aerogel has the potential to save billions of dollars in annual building energy losses while satisfying the diverse and complex needs of our buildings. === by Elise Strobach. === Ph. D. === Ph.D. Massachusetts Institute of Technology, Department of Mechanical Engineering
author2 Evelyn N. Wang.
author_facet Evelyn N. Wang.
Strobach, Elise M.
author Strobach, Elise M.
author_sort Strobach, Elise M.
title Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
title_short Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
title_full Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
title_fullStr Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
title_full_unstemmed Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications
title_sort optically transparent, thermally insulating and soundproofing (ottis) aerogel for high-efficiency window applications
publisher Massachusetts Institute of Technology
publishDate 2020
url https://hdl.handle.net/1721.1/127731
work_keys_str_mv AT strobachelisem opticallytransparentthermallyinsulatingandsoundproofingottisaerogelforhighefficiencywindowapplications
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spelling ndltd-MIT-oai-dspace.mit.edu-1721.1-1277312020-09-29T05:09:45Z Optically transparent, thermally insulating and soundproofing (OTTIS) aerogel for high-efficiency window applications Strobach, Elise M. Evelyn N. Wang. Massachusetts Institute of Technology. Department of Mechanical Engineering. Massachusetts Institute of Technology. Department of Mechanical Engineering Mechanical Engineering. Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2020 Cataloged from PDF of thesis. Includes bibliographical references (pages 115-120). Building heating, ventilation and air conditioning (HVAC) accounts for about 13.6 quadrillion BTU ("quads") per year or 14% of the total energy consumption in the United States.' Accounting for 39% of annual US carbon dioxide emissions, this consumption is directly related to the energy efficiency of the building envelopes. 2 Windows form an essential but lossy part of building envelopes, particularly during cold weather. Thermal losses in the U.S. from controlled indoor environments to outdoors climates account for $20 billion dollars in energy each year, signifying a need for more energy efficient windows. However, insulating windows represent a thermal challenge due to the needs for optical clarity and thermal performance. Successful application of window design requires an in-depth understanding of both fundamental heat transfer and the occupant needs of our buildings. One promising solution to these energy losses is the use of silica aerogel, a porous material with super-insulating properties. Previous studies have explored the use of aerogels for energy efficient window glazing due to its low thermal conductivity and promise of transparency. However, its adoption in the general window market has been limited by its low optical clarity characterized by a blue haze. In this work, we present the development of a high-clarity silica aerogel that is able to achieve visible transmittance > 98 % and thermal conductivity < 13 mW/mK that has been optimized for use in building windows. This performance was achieved by careful tailoring of the interconnected particle network driven by optical modeling to reduce effective scattering size within the material below 10 nm diameter. Next, clarity and thermal conductivity of the material was improved by optimization of the solution-gelation synthesis across over 300 unique samples and 80 recipes. This provided a framework for achieving a variety of low-haze aerogels with varied thermal, sound-proofing, and mechanical properties. After achieving high-clarity through optimization of the solution-gelation chemical recipe, several 5 inch diameter double-pane prototypes were to measure the optical, thermal, and acoustic performance. Results indicate that sealing high-clarity aerogel into the gaps of existing double-pane window designs, we can achieve a center-of-glazing U-factor of 0.20 BTU/h/ft²/F, which is 35-50% more insulating than current building codes across North America. These early thermal results and a production-scale techno-economic analysis indicate the aerogel has the ability to achieve cost-effective thermal performance that is competitive with traditional doubleand triple-pane windows. Additionally, the aerogel is able to withstand exposure to extreme conditions, such as temperature > 200 °C, relative humidity > 60%, and ultraviolet exposure for more than 6 months without degradation of the nanostructure or optical quality. These results show a promising proof-of-concept design for an aerogel double-pane window that is capable of state-of-the-art performance without a prohibitive cost to consumers. Successful development and commercialization of this high-clarity aerogel has the potential to save billions of dollars in annual building energy losses while satisfying the diverse and complex needs of our buildings. by Elise Strobach. Ph. D. Ph.D. Massachusetts Institute of Technology, Department of Mechanical Engineering 2020-09-25T20:05:41Z 2020-09-25T20:05:41Z 2020 2020 Thesis https://hdl.handle.net/1721.1/127731 1196353422 eng MIT theses may be protected by copyright. Please reuse MIT thesis content according to the MIT Libraries Permissions Policy, which is available through the URL provided. http://dspace.mit.edu/handle/1721.1/7582 120 pages application/pdf Massachusetts Institute of Technology