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Aerial Powerline Wildfire Mitigation Strategies

Oct. 1, 2024
Enhancing grid resilience with aerial covered conductor systems

The electric utility industry has been afflicted by punishing wildfires for decades, and the problem has seemed to peak in recent years. The toll of destruction has included millions of acres of land burned per year, lives lost, habitats destroyed, and natural resources damaged, such as reservoirs used to store precious drinking water. A fundamental goal of utility planners is to fortify the grid infrastructure so that the possibility of electric power lines being the cause of a wildfire ignition is reduced to the lowest risk factor possible. This paper will look at various construction techniques and mitigation strategies for each.

Statistics vary, but it is estimated that power lines account for only three percent of the wildfire ignition scenarios, but fully 19 percent of all the acreage burned in California from 2016 to 2020. What percentage of the property damage is attributed to powerline wildfire ignition is not known with accuracy but is significant, since wildfires are often in remote areas where access is difficult and response time slower. The data shows that United Staes wildfire causes damage equivalent to 2-4% of U. S. GDP, which translates to between $394 billion and $894 billion dollars annually. Reducing these events and associated costs is of paramount importance to the electric utility industry and to the nation as a whole.

Bare Wire Lines

Assuming bare wire power lines are responsible for the vast majority of wildfire ignitions when power lines are involved, it is imperative to devise mitigation measures. Bare wires can cause ignition by contacting trees in windy conditions, conductor clashing, falling from the pole and igniting dry brush on the ground, or falling to the ground, hitting a rock, throwing a spark, and initiating ignition that way.

Aerial Covered Conductor

Aerial covered conductor is like bare wire construction, in that it uses aluminum or copper conductors. The 3-layer insulation system on top of the bare wire includes a semiconducting layer (to smooth out electric fields when in contact with a grounded object), an inner layer of low-density polyethylene (which gives a high BIL and is soft to enable stripping for taps and transitions), and an outer layer of High Density Polyethylene (providing UV inhibition, track resistance, abrasion resistance, and color). The system voltage class determines the total insulation thickness, with thicker insulation as the voltage class increases.

Aerial Covered Conductor comes in two standard configurations. The first is Spacer Cable, where phase conductors attach to an overhead messenger wire using High Density Polyethylene (HDPE) spacers every 30 feet. The messenger wire serves multiple purposes: it provides mechanical strength, acts as a system neutral, serves as a lightning shield, and protects the phase conductors from falling debris. Both the spacers and insulators are made of HDPE to ensure dielectric compatibility.

Tree Wire systems resemble bare wire construction but incorporate the exact same 3-layer covered conductor design used in Spacer Cable Systems. Typically, the phase conductors in Tree Wire systems are either ACSR or AAAC, as they are self-supported and fully tensioned.

These systems are strung in an open wire configuration on crossarms, using polyethylene insulators. The photo below on the left shows a Spacer Cable System, while the photo on the right shows a tree wire configuration.

Wildfire Risk Aversion with Covered Conductor

The most common modes of bare wire power lines causing wildfire ignition are when power lines come into contact with the surrounding environment. Possibilities include conductor clashing, live conductors falling to the ground and igniting dry brush, de-energized conductors falling to the ground, hitting a rock and throwing a spark onto dry brush, or a tree branch lying across two phases, igniting, and falling to the ground in flames. Animals and birds can also get into the lines, and either get between the phases or between the phase and neutral, become engulfed with flames and drop to the ground. The last cause is mylar balloons being irresponsibly released into the air which sometimes end up on pole tops and create flashovers with massive fireballs.

With covered conductors, incidents like tree branches touching phase conductors, phase conductors touching each other in high winds, or lines knocked to the ground do not result in enough current to cause ignition. Additionally, the polyethylene covering on the covered conductors prevents sparks when they fall to the ground. This contrasts with bare wire scenarios, where metallic conductors can cause sparks upon impact. Extensive testing of mylar balloons and covered conductor has verified that whether lodged phase to phase or between the phase and ground of a covered conductor system, there is no flashover.

Summary and Conclusions

Power lines, while essential for modern society, pose an inherent risk when it comes to wildfire ignition. Fortunately, there are mitigation strategies available for different types of power line construction options: bare wire, underground, and covered conductor. Among these, covered conductor systems stand out as the most practical and cost-effective tool for combating this phenomenon.

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