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What will happen to Elon Musk’s Tesla on its space journey to Mars?
SpaceX has completed the last crucial step of Falcon Heavy’s inaugural test flight after successfully launching Elon Musk’s Tesla Roadster out of Earth’s orbit, on a trajectory into deep space. But what will happen to the car and ‘Starman’ as it makes its long journey to Mars? Let us explore the details.
Although Elon Musk indicated that the Tesla had been placed in an orbit that would nearly extend to the beginnings of the solar system’s first asteroid belt (on average more than 150 million miles away from Earth’s orbit), SpaceX updated that orbit estimate about 24 hours later and confirmed that the orbit was considerably closer to Mars’ orbit than the asteroid belt beyond the Red Planet.

Starman gives one final farewell to Earth as he departs for deep space aboard Musk’s Tesla Roadster. (SpaceX)
Understandably, the ultimate destination and state of the Roadster have been the source of an array of questions from those less familiar with interplanetary travel and orbital mechanics – most people.
How exactly does space travel work?
Before delving into the details, it’s crucial that I try to give everyone equal footing in the form of a basic understanding of what, how, and whens of spaceflight. To reach orbit, Falcon Heavy launched its Tesla payload horizontally. Once it rose vertically above the majority of Earth’s atmosphere, the rocket angled over until it was essentially thrusting parallel to Earth’s surface. Think of it like spinning a ball on a string: only after a certain speed will the ball successfully spin in a circle – spin too slow and the ball will simply fall. Reaching Earth orbit is very similar in concept: Falcon Heavy boosts the upper stage above Earth’s atmosphere, and the upper stage ignites and gains as much horizontal speed as possible.
All this time, both it and its Tesla payload are being pulled down by Earth’s gravity, but at a certain speed (8 kilometers per second, or ~18,000 mph), the rocket and its payload end up going faster around the Earth than its gravity can pull them down. A famous analogy can be found in a simple tennis ball: thrown normally, the ball will arc over and eventually fall to the ground. However, if a ball is thrown fast enough (and was also able to avoid being incinerated by friction against the atmosphere), one can imagine the ball going over the horizon, traveling around the Earth, and coming right back to the thrower.

Elon Musk walks among his recovered Falcon Heavy boosters at LZ-1 and 2. (Elon Musk)
Throwing a ball (or spaceship) into orbit
Amazingly, this becomes a far more reasonable proposition when dealing with asteroids, comets, and moons with much light gravity than Earth’s “1G.” For example, on Mars’ tiny moon Phobos, an astronaut could very nearly escape from the moon by running, and could almost effortlessly throw a ball fast enough to orbit Phobos (a blistering 25 mph would be required). Earth is just like that, just much, much, much larger, and with a thick atmosphere that both keeps us, humans, alive and also makes it quite a bit more difficult for us to get into orbit.
Back to Earth orbit. The first point of stability (when you are going faster forward than the Earth can pull you down) is called “low Earth orbit,” (LEO) being roughly the lowest height and velocity necessary to stably orbit the Earth. This is approximately where the International Space Station (ISS) is located (~ 250 miles above). Famously, astronauts and satellites at this altitude travel around the Earth once every 90 minutes, half in pure sunlight, half in the darkness of Earth’s own shadow – essentially a special sunrise and sunset every three-quarter of an hour.

Mars’ largest moon Phobos captured at the edge of the planet’s limb. Phobos is less than 15 miles in diameter. (ESA/Mars Express)
Now, expand that model of Earth and the Roadster in orbit around it to the entire solar system. In this model, Earth and all other objects are orbiting the Sun at different distances and speeds, like different bands of the same tree ring. The solar system is massive, however, and thus everything has to be scaled up: for example, the Earth orbits the Sun at 30 kilometers per second (~70,000 mph), nearly four times faster than our humble Tesla in LEO.
Remember: when orbiting Earth, objects are still under the firm hold of the planet’s gravity, but merely moving so fast that they are in a constant state of freefall. Take away the air, and being on the ISS is akin to skydiving, but if the skydive never ended. To truly escape Earth’s gravity and head to the Moon, Mars, or beyond, a rocket needs to go even faster still. In the case of the Roadster, this meant first speeding up to 8 km/s to reach a stable orbit around Earth, followed several hours later by one final burn that gave the payload another 3-4 km/s of speed. On the scale of the solar system, Roadster’s journey away from Earth can be thought of like, well, a Roadster making its way to the top of a steep hill. After climbing to the top, the Roadster is nearly out of energy but has just enough to accelerate as it begins its way down the other side. About six hours after launch, the rocket’s upper stage successfully crested the summit of Earth’s gravitational hill before rocketing down the other side, on its way to deep space, Mars, and beyond.
In essence, the rocket moved Musk’s Tesla from an orbit around Earth to an orbit around the Sun itself. Just as Earth takes 365 days (a year) to travel once around the Sun, the Roadster will complete an orbit of the sun every once in awhile, likely closer to the two Earth years it takes for Mars to complete its orbit. Similarly, evidenced by Earth and all the other planets in the solar system, orbiting the sun is typically very stable – humans do not exactly live in fear of the Earth falling into the sun, we just keep going around and around. Like the planets, Musk’s Roadster will almost certainly remain in its current orbit for millions of years – maybe even a billion years – quietly completing an orbit around the sun every two or so years for what is effectively an eternity on a human scale. Eventually, it’s possible that the Roadster and Starman will be pulled over time by the gravity of Earth in such a way that it reenters Earth’s atmosphere and burns up, but that is unlikely to happen for thousands of millennia.
Where is the Roadster headed?
The graphic tweeted by Musk serves as a good initial explanation of complex terms used to describe orbital mechanics. Because it is not circular, the orbit is known as elliptical, while the points closest to (perihelion) and furthest from (aphelion) the Sun also have their special names. The AU mentioned in the graphic refers to astronomical units, a standard measurement based upon the average distance between the Earth and the Sun – approximately 93 million miles. For comparison, a full trip around the Earth’s equator is a little less than 25,000 miles. Space is unfathomably immense.
Third burn successful. Exceeded Mars orbit and kept going to the Asteroid Belt. pic.twitter.com/bKhRN73WHF
— Elon Musk (@elonmusk) February 7, 2018
- Falcon Heavy explodes off of Pad 39A in a spectacle of fire, Roadster in tow. (Tom Cross)
- The Roadster’s orbit will reach out on one end as far as Mars, SpaceX’s ultimate destination as a company. (SpaceX)
Falcon Heavy’s upper stage appears to have simply burned until it ran out of fuel, and managed with the far end of its orbit at about 1.61 astronautical units (~250 million km) is considerably less than Musk’s pre-launch press conference suggestion that the Roadster was expected to end up in an orbit of 380 to 450 million kilometers.
Musk: If the third burn goes as we hope, the Tesla will get as far away as 380 to 450 million km from Earth.
— Eric Berger (@SciGuySpace) February 5, 2018
Is the Roadster going to Mars?
Sadly, the answer is a hard “no.” At most, the Tesla might have been sent into an orbit around the sun (heliocentric orbit) with a very close approach to Mars – a flyby, so to speak. It appears that SpaceX managed to get quite close to that original goal, and it is entirely possible that Starman’s Roadster could pass close to Mars at points along its orbit, although there will be no way to capture or transmit images from the Roadster.

While there will be no cameras to capture it, it looks like Starman could actually – one day – pass close to the Red Planet on his billion year journey. (SpaceX)
Perhaps most importantly, to launch the Roadster into such a high orbit, SpaceX had to ensure that the rocket’s upper stage could coast for multiple hours in Earth orbit and still be able to precisely reignite its Merlin Vacuum (MVac) engine for a final burn. By successfully accomplishing precisely that, SpaceX has taken a huge step towards being able to compete with the United Launch Alliance for all government and defense-related launch contracts, even those requiring direct placement into geostationary orbit (GEO), versus a slower but more common geostationary transfer orbit (GTO). Not coincidentally, that capability also means that SpaceX can efficiently send payloads beyond Earth orbit, as they have now done for the first time with Musk’s Tesla Roadster.
How long will it take?
Because the Roadster is not actually going to any planets, moons, or asteroids, it will never reach them. However, the electric car’s newfound orbital home means that it will at least be far, far from Earth – at points, it’s trajectory will cross closest to the orbits of Mars and Earth. It will take a minimum of several months for the Roadster to reach those distances, even at its blistering speed of 12 kilometers per second relative to Earth. Jonathan McDowell, a practicing astronomer, estimated that the Roadster would pass Mars orbit – to be clear, not arriving at Mars, simply reaching the same distance away from the Sun as Mars orbits – in July 2018, approximately five months from today.
Corrected orbital data for the Roadster: 0.99 x 1.71 AU x 1.1 deg
C3 = 12.0, passes orbit of Mars Jul 2018, aphelion November— Jonathan McDowell (@planet4589) February 8, 2018
What’s going to happen to Starman and the Roadster?
Soaring through the hard vacuum of deep space, not a whole lot can be expected to happen to Elon Musk’s Tesla Roadster and Starman. As mentioned, the high heliocentric orbit it was placed in will be incredibly stable, likely allowing the car to remain in deep space for tens of millions of years. Now, that is not to say that future human explorers millions of years from now would recognize whatever remained – deep space is characterized by a relatively extreme radiation environment that will not be kind to many components that make up the Roadster’s structure. Carbon fiber, plastic, leather, and paint all contain organic components that will be assaulted by an environment far harsher than that in and around Earth.
- Elon’s Tesla Roadster and his astronaut stand-in. (Elon Musk)
- . . . . . . . . yep. This is a thing, now. (SpaceX)
Still, hyperbolic claims that “Radiation Will Tear Elon Musk’s Rocket Car to Bits in a Year” are ridiculously exaggerated. Vacuum is characterized by the absence of anything, and that includes all conceivable methods of erosion. While high energy radiation found in deep space can and likely will shred the Tesla’s structural integrity and eventually bleach or discolor the car, the Roadster will be perfectly suspended in microgravity (basically zero gravity) conditions with almost no chance whatsoever of impacts by even tiny space debris like micrometeorites. If an aspiring car collector tried to recover the eccentric and historic trophy from space in several centuries/millennia, Roadster would very likely fall to pieces or even crumble to dust when moved or placed in an environment with any significant gravity. But, it will almost without a doubt retain its recognizable shape almost indefinitely, at least on a human scale. Starman can be expected to react very similarly.
hyperbolic claims that “Radiation Will Tear Elon Musk’s Rocket Car to Bits in a Year” are ridiculously exaggerated.
Finally, it appears that SpaceX has not installed any method of power generation or communication on Starman’s ride, meaning that humans likely saw their last views of the vehicle after SpaceX cut the live feed to Starman. This sadly means that there will be no photo ops with Starman soaring past Mars or exploring the asteroid belt, although that option will certainly be reserved for any future eccentric, Muskian test payloads.
Why does sending a car into deep space matter?
Ultimately, this final success is an invaluable cherry on top of what was already a stunning achievement. Without a single scrubbed launch attempt or unintended hold during the final countdown, SpaceX’s first launch of what is now the most capable operational rocket in the world was a perfect success in almost all regards. Although the massive rocket’s center booster failed to land aboard the drone ship Of Course I Still Love You (OCISLY) due to an apparent shortage of the chemical components used to reignite the booster’s engines, both side boosters were recovered on land with what can only be described as well-oiled expertise. Meanwhile, the rocket simply survived the launch in general, didn’t destroy the pad, successfully tested its unproven side booster separation mechanism, and launched an eccentric payload into the highest orbit yet achieved by the commercial launch company.
- It’s easy to understand why Musk himself laughed about Roadster looking very much like CGI. (SpaceX)
- Is this real life? Who knows anymore. (SpaceX)
- . . . . . . . . yep. This is a thing, now. (SpaceX)
In the case of Elon Musk, it certainly appears that it is possible to – at least once and awhile – have one’s cake and eat it too. Follow along live as launch photographer Tom Cross and I cover these exciting proceedings as close to live as possible.
Teslarati – Instagram – Twitter
Tom Cross – Twitter
Eric Ralph – Twitter
News
SpaceX readies Starship Flight 14 for a historic journey into uncharted territory
SpaceX finished Starship’s Flight 14 rehearsal, clearing the way for its first orbital flight Monday.
SpaceX has cleared one of the last hurdles before Starship’s first trip to orbit. The company posted on X Thursday afternoon that its launch rehearsal for Flight 14 was complete, keeping the mission on track for Monday, September 28. The launch window opens at 7:15 a.m. CT at Starbase, Texas, and runs for 75 minutes.
A wet dress rehearsal is essentially launch day without the launch. Crews fill Booster 21 and Ship 41 with thousands of tons of extremely cold propellant, run the countdown nearly to ignition, then drain everything back out. It lets engineers catch leaks or equipment problems before anything leaves the pad. SpaceX still needs a launch license from the FAA before the stack, which stands 407 feet tall, can fly.
Flight 14 matters because of where it is going. All 13 previous Starship flights followed a suborbital path, which works like throwing a ball extremely high and far: the vehicle reaches space, but it is always on a course that brings it back down within about an hour. This time, Ship 41 will perform a short engine firing called an orbital insertion burn roughly 25 minutes after liftoff, giving it enough speed to keep falling around Earth instead of back into it. SpaceX plans about six laps at an altitude near 275 kilometers (171 miles) over nearly 10 hours, as Teslarati detailed when the mission was first announced.
Launch rehearsal complete ahead of Starship Flight 14 pic.twitter.com/h5LBYyBqi4
— SpaceX (@SpaceX) September 24, 2026
Getting into orbit also means Starship has to prove it can get back out. The ship must relight a single Raptor engine in space to slow down for reentry. SpaceX says it will only attempt the orbital insertion burn after flight controllers confirm the hardware needed for that return burn has enough backup, and its flight plan includes health checks that could shorten the mission to two or five orbits.
Flight 14 is also the first to put working satellites into service. Flight 13 carried 20 Starlink V3 satellites in July, but they came back down with the ship because that mission never reached orbit. This time, 26 V3 satellites are meant to stay up and join the constellation within a few weeks. Together they add about 26 terabits per second of network capacity, which SpaceX says is roughly 10 times what a single Falcon 9 launch of older V2 Mini satellites adds. Three of them carry cameras that will photograph Starship’s heat shield in orbit to check for tile damage before reentry.
The hardware has changed too. Ship 41 flies with extra fasteners on tiles in the most vulnerable areas, fixes for gaps where superheated plasma slipped behind tiles, and curved tiles designed to reduce heating between them. Two tiles recovered from Ship 40 will fly again, the first reuse of any part of a Starship heat shield. Booster 21 carries better engine filtering and new relight software after ice clogged three center engines on the previous booster, leaving only eight of 13 engines to restart for its landing burn.
Ship 41 is targeting a splashdown in the Pacific Ocean west of Chile, a new recovery zone after several Indian Ocean landings, while Booster 21 aims for the Gulf. Neither will be caught by the tower on this flight. Elon Musk said in August that a ship catch was likely “in a few months.”
Elon Musk
Google just picked SpaceX for its first step into orbital AI
Google will launch its first Project Suncatcher AI satellite on SpaceX’s Transporter-18 rideshare next week.
Google is about to put its own AI chips into orbit for the first time, and it is paying SpaceX to get them there.
The company said Thursday that the first in-orbit test of Project Suncatcher, its research effort to find out whether space can host large-scale AI computing, will fly next week on SpaceX’s Transporter-18 rideshare mission.
The satellite, called MVP, is about the size of a refrigerator and carries four of Google’s Tensor Processing Units, the same chips Google runs in its ground data centers. Google originally planned to launch two custom satellites in 2027, but chose to move faster by integrating its chips into a satellite.
MVP’s solar panels supply about one kilowatt of power, and Google will run Gemini models on the TPUs only in bursts of roughly 15 minutes before the chips shut down so the radiators can shed heat. In a blog post, Google said its Trillium TPUs survived vibration testing that mimicked sustained launch loads of up to 10g, with individual components seeing 50 to 100g, and handled a radiation dose greater than a five year mission would deliver.
SpaceX and Google mull massive partnership on Musk’s orbital data dream: report
Next week’s flight, slated for October 1, follows a relationship that became public in May, when Teslarati reported that Google was in talks with SpaceX for a launch deal tied to orbital data centers. Google also holds a stake of roughly 6% in SpaceX.
The two companies are chasing the same idea from very different starting points. SpaceX’s own orbital compute program is built around the AI1 satellite, a roughly 70 meter structure derived from Starlink V3 hardware that is designed for 150 kW of peak compute, about 150 times the power MVP will draw. Elon Musk has brushed off concerns about crowding orbit with those satellites, and SpaceX is building its Gigasat factory in Bastrop, Texas, to produce them, targeting an annualized rate of about 1 GW of space compute by the end of 2027.
Musk also posted on X on Thursday that “the amount of compute in space will obviously round up to 100% of all compute.”
Google has been more cautious in public. Its research estimates that launch prices need to fall below about $200 per kilogram before an orbital data center can compete with a ground facility on energy cost, a threshold the company believes could be reached around the mid 2030s. The Suncatcher team has said it expects the effort to remain a project rather than a product for years, which leaves the first real test of its hardware riding on a rocket from the company with the most aggressive timeline in the field.
Elon Musk
Tesla Cybercab gets initial tie-in to localized, in-house cathode plant
Tesla has taken another concrete step toward owning its battery supply chain, and it’s doing so with what is perhaps the most important vehicle in its short-but-storied history.
On September 23, Tesla announced that it has officially built the first Cybercab with cathode material produced in-house at the company’s first cathode plant in the U.S., and the first in the U.S. overall.
First Cybercab made using our in-house cathode material – from the first cathode plant in the Americas pic.twitter.com/X95aVXsT9H
— Robotaxi (@robotaxi) September 23, 2026
Active cathode material is the most expensive piece of a lithium-ion battery cell, and it often accounts for more than a third of cell cost. For years, the industry sourced a majority of it from Asia, but Tesla’s decision to make it in the United States bodes well for the Cybercab project. This is the latest chapter in Tesla’s vertical integration strategy, which began in public at Battery Day in 2020.
At the Battery Day Event, Elon Musk said the company would build a North American cathode plant and overhaul the process to cut costs and waste, while also making some of the most powerful and long-lasting cells in the industry.
The Austin facility took years to appear. Tesla filed permits for “Project Cathode” in 2022 on land near Giga Texas. By mid-2022, the building frame was up and Tesla later invested hundreds of millions of dollars as part of a larger expansion of the Giga Texas plant. The company stated it was operating the first large-scale cathode production facility in North America to supplement 4680 cell production.
One month later, that material reached a finished Cybercab.
Made with nickel cathode manufactured locally at Gigafactory Texas! https://t.co/DqMm5fZV3n
— Elon Musk (@elonmusk) September 24, 2026
The timing of this breakthrough is monumental for the Cybercab program. As Tesla officially launched the first Cybercab rides to the public earlier this month, production of the ride-hailing-geared vehicle is moving forward on the planned S-curve that CEO Elon Musk told everyone to expect.
Nevertheless, packs of Cybercab units have been spotted throughout the United States, in an effort to potentially activate the fleet as soon as the company gains regulatory approval in various geographic areas.
On top of that, Tesla owning the cathode step and pairing it with its own in-house lithium from the Gulf Coast refinery shortens the supply chain that once stretched thousands of miles and subjects every pack to fewer external price shocks and geopolitical risks.
Tesla is not yet independent of all of its foreign suppliers, as some precursor metals come from mines and chemical plants. But the first in-house cathode Cybercab shows the company is closing the most expensive and most concentrated gap in its battery production efforts. For a vehicle like Cybercab to operate at a high utilization within the Robotaxi network, that control over cost is so crucial.
It is arguably as important as the software that drives it.





