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Improving Air Handler Efficiency in Houses

Iain S. Walker, Lawrence Berkeley National Laboratory

Keywords

Abstract

Although furnaces, air conditioners and heat pumps have become significantly more efficient over the last couple of decades, residential air handlers have typical efficiencies of only 10% to 15% due to poor electric motor performance and aerodynamically poor fans and fan housings. Substantial increases in performance could be obtained through improved air handler design and construction. A prototype residential air handler intended to address these issues has recently been developed. The prototype and a standard production fan were tested in a full-scale duct system and test chamber at LBNL specifically designed for testing heating, ventilation, and air conditioning systems. The laboratory tests compared efficiency, total airflow, sensitivity to duct system flow resistance, and the effects of installation in a smaller cabinet. The test results showed that the prototype air handler had about twice the efficiency of the standard air handler (averaged over a wide range of operating conditions) and was less sensitive to duct system flow resistance changes. The performance of both air handlers was significantly reduced by reducing the clearance between the air handler and cabinet it was placed in. These test results showed that in addition to the large scope for performance improvement, air handler fans need to be tested in the cabinets they operate in.

Paper

Download this paper as pdf: 155.pdf

Panels of the 2004 ACEEE Summer Study on Energy Efficiency in Buildings

Panel 1. Residential Buildings: Technologies, Design, Performance Analysis, and Building Industry Trends

Panel 2. Residential Buildings: Program Design, Implementation, and Evaluation

Panel 3. Commercial Buildings: Technologies, Design, Performance Analysis, and Building Industry Trends

Panel 4. Commercial Buildings: Program Design, Implementation, and Evaluation

Panel 5. Utility Regulation and Deregulation: Incentives, Strategies, and Policies

Panel 6. Market Transformation: Designing for Lasting Change

Panel 7. Human and Social Dimensions of Energy Use: Trends and Their Implications

Panel 8. Energy and Environmental Policy: Changing the Climate for Energy Efficiency

Panel 9. Efficient Buildings in Efficient Communities

Panel 10. Roundtables: Thinking Outside the Box

Panel 11. Appliances and Equipment

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