Sustainability, Whole Building Energy and Other Topics
Parent: Center for the Built Environment
eScholarship stats: Breakdown by Item for December, 2024 through March, 2025
Item | Title | Total requests | Download | View-only | %Dnld |
---|---|---|---|---|---|
935461rm | Quantifying the Comprehensive Greenhouse Gas Co-Benefits of Green Buildings | 470 | 50 | 420 | 10.6% |
1876400c | Assessing Overheating Risk and Energy Impacts in California's Residential Buildings | 381 | 110 | 271 | 28.9% |
9pj5g228 | Spatial Thermal Autonomy (sTA): A New Metric for Enhancing Building Design Towards Comfort, Heat Resilience and Energy Autonomy | 344 | 151 | 193 | 43.9% |
5w54k5cn | The Villages at 995 East Santa Clara St, San Jose: Energy & Emission Report | 100 | 12 | 88 | 12.0% |
30h937bh | Case study of Kresge Foundation office complex. | 90 | 27 | 63 | 30.0% |
8fs0k03g | Plug Load Energy Analysis: The Role of Plug Loads in LEED Certification | 89 | 3 | 86 | 3.4% |
8tq4k81m | Harmonized Resilience at Roosevelt Village: How Futuristic Grid-Interactivity and Resilience Come Together in Senior Affordable Housing | 78 | 8 | 70 | 10.3% |
9xk3h2x1 | Passive and low-energy strategies to improve sleep thermal comfort and energy resilience during heat waves and cold snaps | 74 | 12 | 62 | 16.2% |
0165c77h | Sun, wind, and pedestrian comfort: a study of Toronto's Central Area | 69 | 25 | 44 | 36.2% |
6n99w3bx | Performance, Prediction and Optimization of Night Ventilation across Different Climates | 68 | 10 | 58 | 14.7% |
59w0x77k | Impact of Window vs Windowless Exam Rooms on Cognitive Performance: A Field Study During a University Exam | 67 | 17 | 50 | 25.4% |
0dg7j623 | A tenant interface for energy and maintenance systems | 65 | 10 | 55 | 15.4% |
22b1302f | Assessing thermal comfort and participation in residential demand flexibility programs | 64 | 20 | 44 | 31.3% |
2c76d4nw | Commercial Office Plug Load Energy Consumption Trends and the Role of Occupant Behavior | 57 | 18 | 39 | 31.6% |
7qg1945w | Effective Daylighting: Evaluating Daylighting Performance in the San Francisco Federal Building from the Perspective of Building Occupants | 46 | 7 | 39 | 15.2% |
0h50x0h8 | Urban Form, Wind, Comfort, and Sustainability: The San Francisco Experience | 45 | 7 | 38 | 15.6% |
61g3g267 | Transformation Towards a Carbon-Neutral Residential Community with Hydrogen Economy and Advanced Energy Management Strategies | 42 | 19 | 23 | 45.2% |
8ms2x24r | Quantification on Fuel Cell Degradation and Techno-Economic Analysis of a Hydrogen-Based Grid-Interactive Residential Energy Sharing Network with Fuel-Cell-Powered Vehicles | 42 | 9 | 33 | 21.4% |
0s43g082 | Sensitivity of passive design strategies to climate change | 40 | 3 | 37 | 7.5% |
4bw8g4xn | ResPoNSe: modeling the wide variability of residential energy consumption. | 38 | 2 | 36 | 5.3% |
748006tf | Measuring the effectiveness of San Francisco's planning standard for pedestrian wind comfort | 38 | 9 | 29 | 23.7% |
6tj0s2bm | Lessons learned from field monitoring of two radiant slab office buildings in California | 37 | 5 | 32 | 13.5% |
2dm1k82k | Wind and the city: An evaluation of San Francisco's planning approach since 1985 | 36 | 5 | 31 | 13.9% |
0pc847pb | Understanding Climate Change Impacts on Building Energy Use | 35 | 11 | 24 | 31.4% |
2j83q6pb | Optimizing energy conservation measures in a grocery store using present and future weather files | 34 | 3 | 31 | 8.8% |
0gn8f4hq | Wind and building energy consumption: an overview | 32 | 1 | 31 | 3.1% |
5c3460r1 | Urban form and climate: case study, Toronto | 32 | 11 | 21 | 34.4% |
5th5s8qb | Application of Gagge’s Energy Balance Model to Determine Humidity-Dependent Temperature Thresholds for Healthy Adults Using Electric Fans During Heatwaves | 32 | 11 | 21 | 34.4% |
2hw1t5zf | Laboratory field studies performance feedback | 31 | 2 | 29 | 6.5% |
4b65c4xw | Model-based benchmarking with application to laboratory buildings | 31 | 12 | 19 | 38.7% |
2pd6f6kb | Developing the San Francisco wind ordinance and its guidelines for compliance | 30 | 6 | 24 | 20.0% |
70w098tb | A Conversation on Adaptation in the Built Environment | 30 | 4 | 26 | 13.3% |
1g55n635 | Designing for an acceptable wind environment | 27 | 3 | 24 | 11.1% |
0s5159kp | Teaching students about two-dimensional heat transfer effects in buildings, building components, equipment, and appliances using Therm 2.0. | 26 | 6 | 20 | 23.1% |
6gz6t90p | Does Wind Discourage Sustainable Transportation Mode Choice? Findings from San Francisco, California, USA | 26 | 3 | 23 | 11.5% |
1pz2528w | Collecting Occupant Presence Data for Use in Energy Management of Commercial Buildings | 25 | 4 | 21 | 16.0% |
2z597468 | PMV-based event-triggered mechanism for building energy management under uncertainties | 23 | 4 | 19 | 17.4% |
2533v2d2 | California department of education HQ block 225: California's valedictorian | 22 | 6 | 16 | 27.3% |
3j62w3nm | Siteclimate: a program to create hourly site-specific weather data | 22 | 4 | 18 | 18.2% |
8v13t41t | Laboratory field studies/performance feedback | 22 | 2 | 20 | 9.1% |
2rx7w394 | Office tenant needs study | 21 | 6 | 15 | 28.6% |
1b435820 | Case study of CalSTRS headquarters | 20 | 5 | 15 | 25.0% |
7pc2q3vx | Geographical extrapolation of typical hourly weather data for energy calculation in buildings | 20 | 5 | 15 | 25.0% |
1885072n | Designing for the future: Are today’s building codes locking in the wrong strategies by using past climate data? | 15 | 5 | 10 | 33.3% |
71m63880 | Advanced benchmarking for complex building types: laboratories as an exemplar. | 15 | 2 | 13 | 13.3% |
51q6c2sf | Building a case for building performance | 13 | 5 | 8 | 38.5% |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.