Skip to Main Content
Frequently Asked Questions
Submit an ETD
Global Search Box
Need Help?
Keyword Search
Participating Institutions
Advanced Search
School Logo
Files
File List
Dissertation__Lou112021__final format approved LW 12-3-2021.pdf (3.02 MB)
ETD Abstract Container
Abstract Header
A Smart WIFI Thermostat Data-Based Neural Network Model for Controlling Thermal Comfort in Residences Through Estimates of Mean Radiant Temperature
Author Info
Lou, Yisheng
ORCID® Identifier
http://orcid.org/0000-0002-9293-4630
Permalink:
http://rave.ohiolink.edu/etdc/view?acc_num=dayton1638811272425223
Abstract Details
Year and Degree
2021, Doctor of Philosophy (Ph.D.), University of Dayton, Mechanical Engineering.
Abstract
Indoor thermal comfort in residential buildings is usually achieved by tenants manually adjusting fixed temperature set-points; this is known as a ‘static’ method. Prior research has explored automated control of thermal comfort based on the concept of a Predicted Mean Vote (PMV) index, which has been developed to provide a model of perceived human comfort. However, one of the dominant contributions to this index, the Mean Radiant Temperature (MRT), effectively the mean radiant temperature of the surrounding interior surfaces, has either been: 1) inaccurately assumed to be the same as indoor air temperature; and/or 2) costly to implement due to the need for numerous additional sensors. Research is posed to leverage prior work in automatically estimating the R-values of walls and ceilings using a combination of smart WiFi thermostat, building geometry, and historical energy consumption [51] to estimate the MRT with accuracy and thus provide a means to control for comfort, rather than temperature alone. In order to assess the energy saving potential of comfort control for any residence, a machine learning model of the indoor temperature based upon a NARX Neural Network is employed. This model leverages historical thermostat and weather data to develop a means to dynamically predict the interior temperature. With a developed model, it is possible to simulate different temperature set-points on indoor temperature, and thus identify the optimal set-point temperature at all times needed to maintain a reasonable comfort condition. Application of this ideal temperature set-point for minimum human comfort to historical weather data and indoor weather conditions can yield an estimate for minimum cooling energy. The initial results showed cooling energy savings in excess of 83% and 95%, respectively, for high- and low-efficiency residences. Based on this research, it is proposed that the approach to estimate MRT can be used to calculate a more accurate PMV value and a better representation of human comfort, without anything more than a smart WiFi thermostat with readily available data. Thus, a control strategy based on this paradigm can both achieve thermal comfort in residential buildings and less energy consumption. In addition, a Model Predictive Controller (MPC) is developed to realize more realistic and sensible control. Compressor protection is also considered in the development of the controller.
Committee
Timothy Reissman (Committee Chair)
Rajen Rajendran (Committee Member)
Andrew Chiasson (Committee Member)
Kevin Hallinan (Committee Co-Chair)
Pages
79 p.
Subject Headings
Energy
;
Mechanical Engineering
Keywords
thermal comfort control
;
PMV
;
mean radiant temperature
;
machine learning
;
neural network
;
indoor temperature prediction
;
model predictive control
;
smart WiFi thermostat
Recommended Citations
Refworks
EndNote
RIS
Mendeley
Citations
Lou, Y. (2021).
A Smart WIFI Thermostat Data-Based Neural Network Model for Controlling Thermal Comfort in Residences Through Estimates of Mean Radiant Temperature
[Doctoral dissertation, University of Dayton]. OhioLINK Electronic Theses and Dissertations Center. http://rave.ohiolink.edu/etdc/view?acc_num=dayton1638811272425223
APA Style (7th edition)
Lou, Yisheng.
A Smart WIFI Thermostat Data-Based Neural Network Model for Controlling Thermal Comfort in Residences Through Estimates of Mean Radiant Temperature.
2021. University of Dayton, Doctoral dissertation.
OhioLINK Electronic Theses and Dissertations Center
, http://rave.ohiolink.edu/etdc/view?acc_num=dayton1638811272425223.
MLA Style (8th edition)
Lou, Yisheng. "A Smart WIFI Thermostat Data-Based Neural Network Model for Controlling Thermal Comfort in Residences Through Estimates of Mean Radiant Temperature." Doctoral dissertation, University of Dayton, 2021. http://rave.ohiolink.edu/etdc/view?acc_num=dayton1638811272425223
Chicago Manual of Style (17th edition)
Abstract Footer
Document number:
dayton1638811272425223
Download Count:
391
Copyright Info
© 2021, all rights reserved.
This open access ETD is published by University of Dayton and OhioLINK.