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From https://electrek.co/2026/09/25/tesla-patent-new-roadster-hidden-active-rear-wing-700-kg-downforce/
Tesla patent shows new Roadster with a hidden 700 kg-downforce rear wing
Figures 2A and 2B: the car in the patent, with the wing stowed (left) and deployed (right) (Image: Tesla/USPTO)
A new Tesla patent application describes a two-piece active rear wing that hides flush in the bodywork and can produce up to 700 kg of downforce once deployed. The car in the drawings looks a lot like the next-generation Tesla Roadster.
The USPTO published the filing on September 24, a week before the Roadster unveiling Tesla has scheduled for October 1 in Texas.
Tesla’s hidden wing, by the numbers
The application, US 2026/0285418 A1, is titled “Deployable and Active Rear Wing Assembly with Safety Features.” Tesla filed it in August 2025 as a continuation of a March 2025 application, which is now listed as abandoned. The named inventors are David Lemire and James Michael Arthur Crook.
The wing has two parts: a main element and a smaller leading-edge slat that sits 3 to 15 mm ahead of it. In “road mode,” the main element sits flush with the deck lid thanks to a step in its shape, and the slat hides under the rear panel. You wouldn’t know there’s a wing there.
In road mode, the wing sits flush with the deck lid and the slat hides underneath (Image: Tesla/USPTO)
Then it deploys up and back on a four-bar linkage. The filing also describes versions with linear rails and lead screws. Tesla says it can go from fully stowed to fully deployed in under 3 seconds and change its angle in under a quarter of a second.
The four-bar linkage and actuators that deploy and rotate the wing, run by a dedicated wing controller (Image: Tesla/USPTO)
The downforce figure is the headline. According to the filing, the wing can generate “0 kg of downforce in DRS mode, and up to 700 kg of downforce in high downforce mode at top speed,” and the example Tesla gives is speeds above 100 mph. That’s hypercar territory. McLaren’s track-focused Senna is rated at 800 kg.
Tesla also gives aero coefficients. Deploying the wing adds 350 drag counts (0.035 Cd) and 1,000 counts of downforce. Once it’s up, rotating it flat into the DRS position removes 250 counts of drag. So the same car can be a slippery road car or a track car at the push of a button.
From stowed to deployed to rotating on the fly (Image: Tesla/USPTO)
A controller runs the wing based on speed, acceleration, steering angle, brake input, GPS location and “autonomous driving sensor data.” It flattens the wing on straights and rotates it to high downforce under braking or in fast corners. It can even switch to track mode on its own when GPS says you’ve arrived at a racing circuit.
Tesla also uses non-back-drivable actuators, so the wing holds its position under load without drawing power.
A wing built to get out of the way
Tesla admits there’s a downside to a wing that sticks out this far behind the car. The filing says the wing sits “fully clear” of the rear when deployed, and it specifically mentions the risk of a cyclist or motorcyclist hitting it from behind.
So there are two safety systems. The first is purely mechanical: latches release when an impact goes over a set force threshold, and the wing folds back until its trailing edge is no farther out than the rear of the car. The second is predictive. It uses the car’s sensors to start retracting the wing before an expected rear collision, while weighing that against the stability the car loses when the aero changes mid-maneuver.
The wing retracts until its trailing edge lines up with the rear of the car on a central or corner impact (Image: Tesla/USPTO)
The patent lists those sensors as cameras, radar and lidar. Lidar is something Elon Musk has spent years calling a crutch, when it comes to self-driving, and it’s almost certainly patent boilerplate rather than a hint about the Roadster’s hardware.
Tesla patent shows new Roadster with a hidden 700 kg-downforce rear wing
A new Tesla patent application describes a two-piece active rear wing that hides flush in the bodywork and can produce up to 700 kg of downforce once deployed. The car in the drawings looks a lot like the next-generation Tesla Roadster.
The USPTO published the filing on September 24, a week before the Roadster unveiling Tesla has scheduled for October 1 in Texas.
Tesla’s hidden wing, by the numbers
The application, US 2026/0285418 A1, is titled “Deployable and Active Rear Wing Assembly with Safety Features.” Tesla filed it in August 2025 as a continuation of a March 2025 application, which is now listed as abandoned. The named inventors are David Lemire and James Michael Arthur Crook.
The wing has two parts: a main element and a smaller leading-edge slat that sits 3 to 15 mm ahead of it. In “road mode,” the main element sits flush with the deck lid thanks to a step in its shape, and the slat hides under the rear panel. You wouldn’t know there’s a wing there.
In road mode, the wing sits flush with the deck lid and the slat hides underneath (Image: Tesla/USPTO)
Then it deploys up and back on a four-bar linkage. The filing also describes versions with linear rails and lead screws. Tesla says it can go from fully stowed to fully deployed in under 3 seconds and change its angle in under a quarter of a second.
The four-bar linkage and actuators that deploy and rotate the wing, run by a dedicated wing controller (Image: Tesla/USPTO)
The downforce figure is the headline. According to the filing, the wing can generate “0 kg of downforce in DRS mode, and up to 700 kg of downforce in high downforce mode at top speed,” and the example Tesla gives is speeds above 100 mph. That’s hypercar territory. McLaren’s track-focused Senna is rated at 800 kg.
Tesla also gives aero coefficients. Deploying the wing adds 350 drag counts (0.035 Cd) and 1,000 counts of downforce. Once it’s up, rotating it flat into the DRS position removes 250 counts of drag. So the same car can be a slippery road car or a track car at the push of a button.
From stowed to deployed to rotating on the fly (Image: Tesla/USPTO)
A controller runs the wing based on speed, acceleration, steering angle, brake input, GPS location and “autonomous driving sensor data.” It flattens the wing on straights and rotates it to high downforce under braking or in fast corners. It can even switch to track mode on its own when GPS says you’ve arrived at a racing circuit.
Tesla also uses non-back-drivable actuators, so the wing holds its position under load without drawing power.
A wing built to get out of the way
Tesla admits there’s a downside to a wing that sticks out this far behind the car. The filing says the wing sits “fully clear” of the rear when deployed, and it specifically mentions the risk of a cyclist or motorcyclist hitting it from behind.
So there are two safety systems. The first is purely mechanical: latches release when an impact goes over a set force threshold, and the wing folds back until its trailing edge is no farther out than the rear of the car. The second is predictive. It uses the car’s sensors to start retracting the wing before an expected rear collision, while weighing that against the stability the car loses when the aero changes mid-maneuver.
The wing retracts until its trailing edge lines up with the rear of the car on a central or corner impact (Image: Tesla/USPTO)
The patent lists those sensors as cameras, radar and lidar. Lidar is something Elon Musk has spent years calling a crutch, when it comes to self-driving, and it’s almost certainly patent boilerplate rather than a hint about the Roadster’s hardware.