Skip to main content

Minnesota roads could go electric

Transportation infrastructure can evolve to support clean vehicle electrification, study finds
By Adam Hill April 26, 2022 Read time: 2 mins
HVDC transmission lines buried in the highway are a cost-effective option for electric and communications infrastructure (© Valeriya Luzina | Dreamstime.com)

High-voltage, direct current (HVDC) transmission lines buried in the highway are a cost-effective option for electric and communications infrastructure, according to a new report.

The Ray and NGI Consulting's NextGen Highways Feasibility Study for the Minnesota Department of Transportation (MnDoT) looks at co-locating lines in the highway right-of-way (ROW).

“Federal policy not only authorises building electrical transmission and fibre along our roads, but it also strongly encourages state DoTs to approach infrastructure planning with a wide lens, taking into account both immediate and future public needs that could be met by leveraging transportation ROW,” said Laura Rogers, deputy director of The Ray.

“To support clean vehicle electrification, our existing transportation infrastructure will need to evolve to incorporate the infrastructure to power and connect these vehicles."

This issue has come to prominence as authorities look at projects such as renewable energy generation, electrical transmission and distribution projects, broadband, vegetation management, inductive charging in travel lanes and alternative fuelling facilities.

In April 2021, Federal Highway Administration guidance said highway ROW “can be leveraged by state DoTs for pressing public needs relating to climate change, equitable communications access and energy reliability".

“The findings from this study demonstrate that buried HVDC transmission is cost-effective and can be feasibly sited in interstate and highway ROW after making appropriate consideration for existing and future transportation system needs,” said Morgan Putnam, founder of NGI.

“This means that our existing highway system can enable transportation and grid decarbonisation and strengthen grid reliability and resilience – all while delivering billions of dollars in societal benefits.”

The NextGen Highways team worked with an internal working group at MnDoT to examine policy, regulation and projects, analysed MnDoT-specific concerns, examined HVDC transmission line requirements, and looked at the cost-benefits ratio.

It found that good practice is already available: utilities and regulators in Wisconsin have successfully collaborated with the Wisconsin DoT to place more than 800 miles of electric transmission infrastructure within and along state and interstate highway ROW over the last 20 years.

The NextGen Highways team is planning to continue its work with MnDoT in 2022 and to launch a coalition of state DoTs, utilities and transmission developers to support the co-location of buried fibre and transmission in highway and interstate ROW. 

For more information on companies in this article

Related Content

  • Bentley adds open API for Blyncsy
    July 21, 2025
    New API provides access to the crowdsourced dash camera imagery
  • Four finalists for Detroit's Sustainable Cities Challenge
    June 25, 2025
    Ideas seek to improve efficiency of freight operations in Eastern Market area
  • Scorecard scores
    July 30, 2012
    For situations where normal cost-benefit analysis doesn't work, TNO has developed Scorecard. How can governments ascertain the best strategy for implementing innovative solutions that are influenced by knowledge and technology as well as political context, human behaviour, impact on process and organisation? TNO, the Netherlands-headquartered applied scientific research organisation, has created a scorecard that helps assess developments like SAFESPOT, the major European project which is designing cooperati
  • EU to support studies on ITS for Hamburg port upgrade
    February 18, 2015
    The EU's TEN-T Programme will invest over US$500,000 in a study aimed at introducing an intelligent traffic management system in the port of Hamburg in Germany. The study is to contribute to an optimised use of the port's infrastructure, reduced traffic-related pollution, faster transport and cargo handling and improved road safety. The study will look into ways to improve the utilisation rates and cost-effectiveness of existing infrastructure and facilities in the port by introducing an intelligent traffic