Open Access Policy Deposits
Parent: Department of Architecture
eScholarship stats: Breakdown by Item for May through August, 2026
| Item | Title | Total requests | Download | View-only | %Dnld |
|---|---|---|---|---|---|
| 4qq2p9c6 | Developing an adaptive model of thermal comfort and preference | 2,997 | 1,020 | 1,977 | 34.0% |
| 4p479663 | Ceiling fans: Predicting indoor air speeds based on full scale laboratory measurements | 958 | 235 | 723 | 24.5% |
| 5w0349xv | Observations of upper-extremity skin temperature and corresponding overall-body thermal sensations and comfort | 901 | 148 | 753 | 16.4% |
| 3f4599hx | The skin's role in human thermoregulation and comfort | 876 | 618 | 258 | 70.5% |
| 2kd0135t | Analysis of the accuracy on PMV – PPD model using the ASHRAE Global Thermal Comfort Database II | 736 | 191 | 545 | 26.0% |
| 2m34683k | A better way to predict comfort: the new ASHRAE standard 55-2004 | 654 | 231 | 423 | 35.3% |
| 5kz1z9cg | Indoor Humidity and Human Health--Part I: Literature Review of Health Effects of Humidity-Influenced Indoor Pollutants | 654 | 225 | 429 | 34.4% |
| 13s1q2xc | Extending air temperature setpoints: Simulated energy savings and design considerations for new and retrofit buildings | 598 | 119 | 479 | 19.9% |
| 18d174zs | Personal comfort models—A new paradigm in thermal comfort for occupant-centric environmental control | 570 | 191 | 379 | 33.5% |
| 2048t8nn | Climate, comfort, & natural ventilation: a new adaptive comfort standard for ASHRAE standard 55 | 570 | 194 | 376 | 34.0% |
| 7897g2f8 | Air quality and thermal comfort in office buildings: Results of a large indoor environmental quality survey | 548 | 151 | 397 | 27.6% |
| 3kq5p62q | High-density thermal sensitivity maps of the human body | 545 | 226 | 319 | 41.5% |
| 4db4q37h | Web application for thermal comfort visualization and calculation according to ASHRAE Standard 55 | 535 | 189 | 346 | 35.3% |
| 54n6b7m3 | Personal comfort models: Predicting individuals' thermal preference using occupant heating and cooling behavior and machine learning | 535 | 137 | 398 | 25.6% |
| 8cj7n6ps | Ceiling-fan-integrated air conditioning: Airflow and temperature characteristics of a sidewall-supply jet interacting with a ceiling fan | 496 | 254 | 242 | 51.2% |
| 09b861jb | The impact of a view from a window on thermal comfort, emotion, and cognitive performance | 491 | 254 | 237 | 51.7% |
| 47g1b9p9 | Climate Change 2007: Mitigation of Climate Change. | 490 | 37 | 453 | 7.6% |
| 52z25398 | Hippie modernism: Curation and knowledge production | 476 | 151 | 325 | 31.7% |
| 2mk3n264 | Detailed experimental investigation of air speed field induced by ceiling fans | 432 | 85 | 347 | 19.7% |
| 4ph1m7t5 | Introduction of a Cooling Fan Efficiency Index | 429 | 136 | 293 | 31.7% |
| 3sw061xh | Thermal sensation and comfort models for non-uniform and transient environments: Part I: local sensation of individual body parts | 420 | 218 | 202 | 51.9% |
| 3wj1f6xj | Experimental evaluation of visual flicker caused by ceiling fans | 416 | 134 | 282 | 32.2% |
| 89m1h2dg | Modeling the comfort effects of short-wave solar radiation indoors | 415 | 106 | 309 | 25.5% |
| 3wt134z7 | Hot, cold, or just right? An infrared biometric sensor to improve occupant comfort and reduce overcooling in buildings via closed-loop control | 413 | 291 | 122 | 70.5% |
| 2tm289vb | Thermal sensation and comfort models for non-uniform and transient environments: Part III: whole-body sensation and comfort | 395 | 134 | 261 | 33.9% |
| 3sq8z441 | A model of human physiology and comfort for assessing complex thermal environments | 391 | 210 | 181 | 53.7% |
| 6d94f90b | Moving air for comfort | 391 | 143 | 248 | 36.6% |
| 6xh4n610 | The Northwestern Amazon malocas: Craft now and then | 383 | 169 | 214 | 44.1% |
| 3pq2j9mh | Ceiling fan air speeds around desks and office partitions | 380 | 140 | 240 | 36.8% |
| 92z5q2qb | Progress in thermal comfort research over the last twenty years | 371 | 146 | 225 | 39.4% |
| 9hn3s947 | Convective and radiative heat transfer coefficients for individual human body segments | 369 | 267 | 102 | 72.4% |
| 30c8q5j4 | Skin and core temperature response to partial- and whole-body heating and cooling | 368 | 240 | 128 | 65.2% |
| 8cf6c6dr | Listening to the occupants: a web-based indoor environmental quality survey | 367 | 74 | 293 | 20.2% |
| 0mx5r4hd | Cooling efficiency of a brushless direct current stand fan | 366 | 57 | 309 | 15.6% |
| 4kv4f2mk | A review of the corrective power of personal comfort systems in non-neutral ambient environments | 362 | 101 | 261 | 27.9% |
| 5w53c7kr | Simplified calculation method for design cooling loads in underfloor air distribution (UFAD) systems | 359 | 105 | 254 | 29.2% |
| 0q03g71s | Air movement and thermal comfort | 355 | 210 | 145 | 59.2% |
| 1wc7t219 | Quantitative relationships between occupant satisfaction and satisfaction aspects of indoor environmental quality and building design | 354 | 108 | 246 | 30.5% |
| 5m10h001 | Air pollutant exposure concentrations from cooking a meal with a gas or induction cooktop and the effectiveness of two recirculating range hoods with filters | 348 | 211 | 137 | 60.6% |
| 2p3270bn | Effect of a heated and cooled office chair on thermal comfort | 347 | 51 | 296 | 14.7% |
| 85x6r3wv | A review of advanced air distribution methods - theory, practice, limitations and solutions | 340 | 188 | 152 | 55.3% |
| 1pz9j3j2 | Thermal sensation and comfort models for non-uniform and transient environments: Part II: local comfort of individual body parts | 337 | 157 | 180 | 46.6% |
| 3fb0p5gk | Personal thermal comfort models with wearable sensors | 336 | 76 | 260 | 22.6% |
| 58c601vw | Resilient cooling strategies – A critical review and qualitative assessment | 336 | 163 | 173 | 48.5% |
| 28x9d7xj | Energy savings from extended air temperature setpoints and reductions in room air mixing | 332 | 123 | 209 | 37.0% |
| 0080620p | Nudging the adaptive thermal comfort model | 327 | 99 | 228 | 30.3% |
| 0dh6c67d | Development of the ASHRAE Global Thermal Comfort Database II | 327 | 115 | 212 | 35.2% |
| 9m01h86r | Embodied carbon in mechanical, electrical, and plumbing systems: A critical literature review | 327 | 97 | 230 | 29.7% |
| 89m0z34x | Percentage of commercial buildings showing at least 80% occupant satisfied with their thermal comfort | 326 | 88 | 238 | 27.0% |
| 0bs743x8 | Thermosensory micromapping of warm and cold sensitivity across glabrous and hairy skin of male and female hands and feet | 319 | 111 | 208 | 34.8% |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.