How do we specify glass railings?

Glass design and engineering analysis can be inconsistent across projects. There are several possible reasons for this including the treatment of guardrails as a product rather than an engineered structure, general inexperience with glass as an engineered material, and limited access to glass design software in the U.S.

To ensure you have all the pertinent details, ask suppliers to provide you with a comprehensive proposal, including detailed takeoffs with specific inclusions or exclusions for each railing style within the project scope. These details should include aspects such as finish, linear footage, structural attachment, and makeup. Additionally, request a submittal package that includes 3D renderings based on the architectural and structural specifics for the project.

High-definition surveying (HDS) technology offers tremendous benefits over conventional surveying. It allows for the capture of thousands of critical measurements with precision accuracy, thereby significantly reducing the need for fabrication rework. It also offers a much faster track to the manufacturing process by eliminating the risk of human error and saving weeks of manual field measuring.

Regardless of the method selected for analysis, there are two key principles that should be considered when specifying glass railing: the elastic properties of laminate interlayers (and how they change with temperature and load duration), and understanding that local stresses—e.g., contact materials, support size, and hole size—are critical. In light of these varying factors, it’s recommended that a good finite element program be used to accurately determine glass stresses instead of any manual analysis.

Glass analysis is the most critical aspect of specifying point-supported glass due to life-safety factors. It’s essential that those who have a stake in a project understand this and take appropriate measures to ensure that building code requirements are met.

This article originally appeared in the College Planning & Management June 2019 issue of Spaces4Learning.

About the Author

Dan Stachel is vice president of Trex Commercial Products (www.trexcommercial.com).

Featured

  • Image courtesy of Armstrong International

    The Modern Hot Water System Approach to Keep Higher Education Buildings Safe and Operational

    Higher education campuses face unique structural and operational demands. With a range of old and new buildings, a variety of facility types, and ambitious sustainability goals, it's essential that no aspect of infrastructural performance is overlooked. Facility managers must be equipped to provide a safe, reliable and efficient space for students, faculty and guests.

  • Kimball International Launches Season 5 of Alternative Design Podcast

    Commercial furnishings manufacturer Kimball International recently premiered the fifth season of its Alternative Design podcast, according to a news release. The first episode was released on March 17, and new episodes will launch monthly. The podcast discusses forces that shape built environments, from work to housing to healthcare to human wellness.

  • California High School Debuts $35M Performing Arts Center

    Irvine High School in Irvine, Calif., recently opened its new Performing Arts Center built in partnership with C.W. Driver Companies, according to a news release. The facility cost $35 million and covers about 25,000 square feet.

  • New Jersey PreK–12 School Breaks Ground on New STEM Building

    Saddle River Day School (SRDS) in Saddle River, N.J., recently announced that it has broken ground on the new Dr. Kristen Walsh Hall of Science & Entrepreneurship, according to a news release. The school partnered with DIGroup Architecture for the design of the new facility, which will provide the school with space to expand its STEM and business education classes.

Digital Edition