| Literature DB >> 34815420 |
Philip Agee1, Leila Nikdel2, Sydney Roberts3.
Abstract
This paper provides an open dataset of measured energy use, solar energy production, and building air leakage data from a 328 m2 (3,531 ft2) all-electric, zero energy commercial building in Virginia, USA. Over two years of energy use data were collected at 1-hour intervals using circuit-level energy monitors. Over six years of solar energy production data were measured at 1-hour resolution by 56 microinverters (presented as daily and monthly data in this dataset). The building air leakage data was measured post-construction per ASTM-E779 Standard Test Method for Determining Air Leakage Rate by Fan Pressurization and the United States Army Corps (USACE) Building Enclosure Testing procedure; both pressurization and depressurization results are provided. The architectural and engineering (AE) documents are provided to aid researchers and practitioners in reliable modeling of building performance. The paper describes the data collection methods, cleaning, and convergence with weather data. This dataset can be employed to predict, benchmark, and calibrate operational outcomes in zero energy commercial buildings.Entities:
Year: 2021 PMID: 34815420 PMCID: PMC8610972 DOI: 10.1038/s41597-021-01082-8
Source DB: PubMed Journal: Sci Data ISSN: 2052-4463 Impact factor: 6.444
Building specifications.
| Category | Parameters | Building Characteristics |
|---|---|---|
| General | Climate zone | Mixed-humid, US 4 A |
| Building type | Office | |
| Area | 328 m2 (3,531 ft2) | |
| Schedule | 1st FLR 08:30–15:00 | |
| 2nd FLR 08:30–17:00 | ||
| Occupancy | 1st FLR: n = 3 | |
| 2nd FLR n = 3–20 depending on classes | ||
| Enclosure | Enclosure surface area | 1,155 m2 (12,437 ft2) |
| Window U-value | 0.30 BTUh/ft2/°F (1.70/W/m²K) | |
| SHGC (g-value) | 0.22 | |
| Visible light transmittance | 0.41 | |
| Wall U-value | 0.04 BTUh/ft2/°F (0.13 W/m²K) | |
| Roof/Attic U-value | 0.02 BTUh/ft2/°F (0.11 W/m²K) | |
| Air tightness | 1.02 L/s-m2 at 75 Pa (0.20 cfm75/ft2) | |
| Systems | Heating system | Air-source heat pump, 9 HSPF (n = 3) |
| Cooling system | Air-source heat pump, 15.5 SEER (n = 3) | |
| Distribution | 3 ducted air systems, within thermal boundary | |
| Temperature control | Programmable thermostat (n = 3) | |
| Water heating | 30-gallon, electric storage (0.93 EF) | |
| Ventilation | Energy recovery ventilator | |
| Int. Lighting Power Density | 7.62 W/m2 (designed) | |
| Ext. Lighting Power Density | 1.21 W/m2 (designed) | |
| Solar PV-system | 75.2 m², 12.3 kWp, panels & microinverters (n = 56), Azimuth: 135° |
Fig. 1Sensor architecture.
Fig. 2USACE Building Enclosure Testing procedure.
Primary data output overview.
| Category | Data Description | Unit | Data Resolution | Data Output |
|---|---|---|---|---|
| Energy Use | Circuit-level energy consumption | kWh | • Hourly | • HVAC.xlsx |
| • Daily | • Lighting.xlsx | |||
| • Monthly | • Plug & Process Loads.xlsx | |||
| • Whole Building.xlsx | ||||
| Energy Production | Solar energy production | Wh | • Energy Production.xlsx | |
| kWh | • Daily | |||
| • Monthly | ||||
| Building Air Leakage | Mean building pressure | Pa | Discrete test (n = 2) | • Building Air Tightness.xlsx |
| Mean building air flow | CFM75 | |||
| Mean building pressure | (−)Pa | |||
| Mean building air flow | CFM−75 |
Secondary data overview.
| Category | Data Description | Unit | Data Resolution | Data Output |
|---|---|---|---|---|
| Weather | Temperature | °C (°F) | Daily | • Weather_Daily_IP.xlsx |
| Monthly | • Weather_Monthly_IP.xlsx | |||
| • Weather_Monthly_SI.xlsx | ||||
| Dew point | °C (°F) | Daily | ||
| Monthly | ||||
| Humidity | % | Daily | ||
| Monthly | ||||
| Wind speed | m/s (mph) | Daily | ||
| Monthly | ||||
| Pressure | kPa (Hg) | Daily | ||
| Monthly | ||||
| Precipitation | cm (inch) | Daily | ||
| Monthly | ||||
| Heating degree days | # of days | Monthly | ||
| Cooling degree days | # of days | Monthly | ||
| Solar radiation | W/m2 | Hourly | • Solar Radiation_Daily.xlsx | |
| Daily | • Solar Radiation_Hourly.xlsx | |||
| Monthly | • Solar Radiation_Monthly.xlsx | |||
| EPW, DDY, and STAT | N/A | N/A | • AP.724016_TMY3.zip | |
| AE Documents | Architectural, mechanical, electrical, plumping plans, solar PV plans | N/A | N/A | • AE Documents.pdf |
| • Solar PV System Schematic Plan.pdf |
Fig. 3Example of daily energy production data. Lighter shades of represent higher energy production.
Data instrument, standard, and accuracy overview.
| Category | Instrument | Standard | Accuracy |
|---|---|---|---|
| Energy Use | • SiteSage IOT Gateway | • UL 61010-1 | +/− 1% |
| • 150 A CT (n = 2) | • IEC 61869-2 | ||
| • 50 A CT (n = 20) | |||
| • 20 A CT (n = 8) | |||
| Energy Production | • Enphase Envoy Gateway Microinverter (n = 56) | • ANSI C12.20 | +/− 0.5% |
| Building Air Leakage | • DG-700 Pressure and Flow Gauge (n = 2) | • ASTM E779 | • DG-700: +/− 1% |
| • Model 3 Blower Door Fan (n = 2) | • ASTM E1258-88 | • Fan: +/− 3% | |
| • TECLOG3 data logging software |
Fig. 4HDD/CDD (base 18 °C) influence on monthly HVAC consumption.
Fig. 5Building air tightness test results (a) pressurization and (b) depressurization.
| Measurement(s) | measured energy use • solar energy production • building air leakage |
| Technology Type(s) | circuit-level energy monitor • microinverter • ASTM-E779 Standard Test Method for Determining Air Leakage Rate by Fan Pressurization |
| Factor Type(s) | temporal interval |
| Sample Characteristic - Environment | zero energy commercial building |
| Sample Characteristic - Location | Commonwealth of Virginia |