A Comfort-Based Approach to Smart Heating and Air Conditioning

Author:

Auffenberg Frederik1ORCID,Snow Stephen1,Stein Sebastian1,Rogers Alex2

Affiliation:

1. University of Southampton, Southampton, UK

2. University of Oxford, Parks Road, Oxford

Abstract

In this article, we address the interrelated challenges of predicting user comfort and using this to reduce energy consumption in smart heating, ventilation, and air conditioning (HVAC) systems. At present, such systems use simple models of user comfort when deciding on a set-point temperature. Being built using broad population statistics, these models generally fail to represent individual users’ preferences, resulting in poor estimates of the users’ preferred temperatures. To address this issue, we propose the Bayesian Comfort Model (BCM). This personalised thermal comfort model uses a Bayesian network to learn from a user’s feedback, allowing it to adapt to the users’ individual preferences over time. We further propose an alternative to the ASHRAE 7-point scale used to assess user comfort. Using this model, we create an optimal HVAC control algorithm that minimizes energy consumption while preserving user comfort. Through an empirical evaluation based on the ASHRAE RP-884 dataset and data collected in a separate deployment by us, we show that our model is consistently 13.2% to 25.8% more accurate than current models and how using our alternative comfort scale can increase our model’s accuracy. Through simulations we show that using this model, our HVAC control algorithm can reduce energy consumption by 7.3% to 13.5% while decreasing user discomfort by 24.8% simultaneously.

Funder

Carbon Management Fund of the University of Southampton

Publisher

Association for Computing Machinery (ACM)

Subject

Artificial Intelligence,Theoretical Computer Science

Reference31 articles.

1. ASHRAE 55 2010. Thermal Environmental Conditions for Human Occupancy (ANSI Approved). ASHRAE 55 2010. Thermal Environmental Conditions for Human Occupancy (ANSI Approved).

2. Towards a psycho-physiological model of thermal perception

3. Debating the future of comfort: environmental sustainability, energy consumption and the indoor environment

4. Thermal comfort in naturally ventilated buildings: revisions to ASHRAE Standard 55

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