Oregon State University to Move Forward with Wave Energy Project

On Monday, March 1, federal energy regulators gave Oregon State University permission to move forward with an offshore wave energy testing facility.

The PacWave South project is meant to further the development of wave energy technology, which uses the motion of water and currents to produce electricity. Waves off the coast of Oregon have been discovered to have a much higher wave energy generation potential than nearby California or Washington, at least by coastal area. The Oregon Department of Energy estimates that the near-shore waves could eventually be able to generate power for 28 million homes every year.

Wave energy testing facility

The university project must pass a final review period before it can begin construction, but it has already received a license from the Federal Energy Regulatory Commission. “It’s huge,” said Burke Hales, the OSU project’s chief scientist. “It’s the first license of its type to be issued in the United States.”

According to the project’s website, PacWave South will be a wave energy test facility that is grid-connected, accredited, and pre-permitted. Because the entire regulatory process is being done before construction starts, it will be ready to test all expected types of wave energy devices, save millions of dollars, and allow development and optimization of those designs to move more quickly.

The construction will cover two square nautical miles of ocean and include four ocean berths connected to shore by a 7-mile cable route. Infrastructure will include data cables, electric cables, and a grid connection station on land, giving companies easy and immediate access to the wave energy converters. Across its four berths, it will be able to test different technologies simultaneously, and it has space for up to 20 devices.

Oregon State University is developing the project with the U.S. Department of Energy, the State of Oregon, and local stakeholders.

“We hope to be moving forward this summer with groundbreaking for building our shoreside facility,” said Hales. He also said that the underground and sub-surface work for running transmission lines should begin this year, also. They aim to begin installing the test facility’s offshore components in 2022.

About the Author

Matt Jones is senior editor of Spaces4Learning. He can be reached at [email protected].

Featured

  • Nashville Elementary School Receives LEED Gold Certification

    Goodlettsville Elementary School, part of Metro Nashville Public Schools in Nashville, Tenn., recently achieved LEED Gold Certification from the U.S. Green Building Council (USGBC), according to a news release. The 81,750-square-foot school opened in 2023 and was designed by Goodwyn Mills Cawood (GMC).

  • Building Beyond Simulation: Creating Immersive Ecosystems for Healthcare Education

    Health sciences education is one of the fastest-growing facility types in colleges and universities. The demand for medical, nursing, and allied health professionals is driving the creation and renovation of medical simulation training facilities that provide students with real-world experience through advanced simulation-based learning.

  • Planning with Clarity: Using AI to Make Better Campus Decisions, Not Just Better Designs

    Higher education leaders are being asked to make increasingly high-stakes decisions about campus facilities amid greater uncertainty than ever before. Social and economic pressures, shifting enrollment, and evolving learning models compete with growing deferred maintenance needs to strain even the most robust infrastructure budgets.

  • University of Pennsylvania Releases Design of Future Physical Sciences Building

    The University of Pennsylvania (Penn) in Philadelphia, Penn., recently released renderings of an upcoming 350,000-square-foot Physical Sciences Building, according to news release. The facility was designed by CO Architects and will unite the university’s departments of Physics and Astronomy, Mathematics, and Earth and Environmental Science.