Performance Evaluation of an Occupancy-Based HVAC Control System in an Office Building

Author:

Lin Guanjing12ORCID,Casillas Armando1,Sheng Maggie13,Granderson Jessica1

Affiliation:

1. Building Technology and Urban Systems Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA

2. Institute of Future Human Habitats, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen 518055, China

3. Electric Power Research Institute, Sunnyvale, CA 94090, USA

Abstract

As new algorithms incorporate occupancy count information into more sophisticated HVAC control, these technologies offer great potential for reductions in energy costs while enhancing flexibility. This study presents results from a two-year field evaluation of an occupancy-based HVAC control system installed in an office building. Two wings on each of the building’s 2–11 floors were equipped with occupancy counters to learn occupancy patterns. In combination with proprietary machine learning algorithms and thermal modeling, the occupancy data were leveraged to implement optimized start, early closure, and adjustments to fan operation at the air handling unit (AHU) level. This study conducted a holistic evaluation of technical performance, cost-effectiveness analysis, and user satisfaction. Results show the platform reduced weekday AHU run times by 2 h and 35 min per AHU per day during the pandemic time period. Simulation shows that 6.1% annual whole-building savings can be achieved when the building is fully occupied. The results are compared with prior studies, and potential drivers are discussed for future opportunities. The assessment results shed light on the expected in-the-field performance for researchers and industry stakeholders and enabled practical considerations as the technology strives to move beyond research-grade pilot trials into product-grade deployment.

Funder

Office of Energy Efficiency and Renewable Energy

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference39 articles.

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2. IEA—International Energy Agency (2018). 2018 Global Status Report: Towards a Zero-emission, Efficient and Resilient Buildings and Construction Sector, IEA.

3. Lin, G., Kramer, H., Nibler, V., Crowe, E., and Granderson, J. (2022). Building Analytics Tool Deployment at Scale: Benefits, Costs, and Deployment Practices. Energies, 15.

4. Lin, G., Kramer, H., and Granderson, J. (2020). Energy Management and Information Systems (EMIS) Specification and Procurement Support Materials, Better Buildings.

5. Lin, G., Nibler, V., Crowe, E., and Granderson, J. (2022, January 10–14). Assessing EMIS benefits: A new field evaluation protocol offers rigor and flexibility. Proceedings of the 7th International High Performance Buildings Conference, West Lafayette, IN, USA. Available online: https://docs.lib.purdue.edu/ihpbc/431.

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