In 2012, the 90,000-sf Molecular Engineering and Sciences Building was completed on the University of Washington Campus. This past summer, the five-story, 78,000-sf Nanoengineering and Sciences Building was completed. The two connected buildings make up a 168,000-sf complex that accommodates growth in the molecular engineering and nanoengineering fields, responds to the evolving interdisciplinary nature of teaching and research, and fits within a historic, high-density area of the UW campus.
The new $87.8 million, ZGF Architects-designed nanoengineering building will house the UW Institute for Nano-Engineered Systems and is specifically equipped for the performance or organic, inorganic, and biomolecular synthesis. The limestone, aluminum and glass curtain wall facility can accommodate students and faculty in a variety of nanoengineering disciplines such as energy, materials science, computation, and medicine.
Photo: Aaron Leitz Photography.
Flexibility of space was a driver for both phases of the complex. Research labs were designed to adapt as the equipment, research, and faculty change. Overhead service carriers above the lab benches allow for researchers to “plug and play” in any location. At the end of each lab there are rooms that can be arranged to house large equipment or specialty research spaces.
In addition to the labs, the new building also includes general-purpose classrooms, conference rooms, and collaboration spaces. Floors two through four are programmed research laboratory spaces. The first floor includes two highly adaptable classrooms and a shared, informal learning center.
Because the nanoengineering building has mainly southern and northern exposures, ZGF needed a strategy to address the added heat loads to the building due to the different orientation from phase one. Radiant flooring is used for heating and cooling purposes and chilled sails are used in the ceilings along the south wall of the office spaces. The units are ceiling-mounted and flush to the ceiling plane.
Photo: Aaron Leitz Photography.
The new facility incorporates numerous sustainability features such as rain gardens and green roofs planted with vegetation to attract native bees. Stormwater runoff will be directed to the roof gardens to reduce runoff to additional drainage systems.
One of the more unique sustainable features is the use of phase-change materials (PCM). PCM is a gel that becomes warm and liquid during the day and solidifies at night. It is encapsulated in walls and ceiling panels of the naturally ventilated spaces and reduces temperature as it changes material states. The PCM is composed of an inorganic material base and is “charged” at night when windows to office spaces are automatically opened to provide a flush of cool air. The PCM has been shown to reduce the temperature around 1.5 to 2 degrees during peek times on the hottest days of the year.
Photo: Aaron Leitz Photography.
The building team included Hoffman Construction Company (GC), KPFF (civil engineering, structural engineering), AEI (MEP), Site Workshop (landscape architecture), Research Facilities Design (lab planning), and Studio SC (graphics, wayfinding signage).
Photo: Aaron Leitz Photography.
Photo: Aaron Leitz Photography.
Related Stories
| Nov 15, 2013
Metal makes its mark on interior spaces
Beyond its long-standing role as a preferred material for a building’s structure and roof, metal is making its mark on interior spaces as well.
| Nov 13, 2013
Installed capacity of geothermal heat pumps to grow by 150% by 2020, says study
The worldwide installed capacity of GHP systems will reach 127.4 gigawatts-thermal over the next seven years, growth of nearly 150%, according to a recent report from Navigant Research.
| Oct 30, 2013
15 stellar historic preservation, adaptive reuse, and renovation projects
The winners of the 2013 Reconstruction Awards showcase the best work of distinguished Building Teams, encompassing historic preservation, adaptive reuse, and renovations and additions.
| Oct 30, 2013
11 hot BIM/VDC topics for 2013
If you like to geek out on building information modeling and virtual design and construction, you should enjoy this overview of the top BIM/VDC topics.
| Oct 18, 2013
Researchers discover tension-fusing properties of metal
When a group of MIT researchers recently discovered that stress can cause metal alloy to fuse rather than break apart, they assumed it must be a mistake. It wasn't. The surprising finding could lead to self-healing materials that repair early damage before it has a chance to spread.
| Oct 8, 2013
Toronto Maple Leafs arena converted to university recreation facility
Using steel reinforcement and massive box trusses, a Building Team methodically inserts four new floors in the landmark arena while preserving and restoring its historic exterior.
| Oct 7, 2013
10 award-winning metal building projects
The FDNY Fireboat Firehouse in New York and the Cirrus Logic Building in Austin, Texas, are among nine projects named winners of the 2013 Chairman’s Award by the Metal Construction Association for outstanding design and construction.
| Oct 1, 2013
13 structural steel buildings that dazzle
The Barclays Center arena in Brooklyn and the NASCAR Hall of Fame in Charlotte, N.C., are among projects named 2013 IDEAS2 winners by the American Institute of Steel Construction.
| Sep 24, 2013
8 grand green roofs (and walls)
A dramatic interior green wall at Drexel University and a massive, 4.4-acre vegetated roof at the Kauffman Performing Arts Center in Kansas City are among the projects honored in the 2013 Green Roof and Wall Awards of Excellence.
| Sep 19, 2013
What we can learn from the world’s greenest buildings
Renowned green building author, Jerry Yudelson, offers five valuable lessons for designers, contractors, and building owners, based on a study of 55 high-performance projects from around the world.