SpaceX Reveals Moon Cabin!
45sThe reveal of the Starship HLS cabin interior is a major milestone in space exploration, generating excitement and curiosity.
▶ Play Clip"Delivers on the promise of revealing the HLS cabin interior with detailed insights, though some speculation is presented as fact."
SpaceX has revealed the interior of the Starship Human Landing System (HLS) cabin, which will return humans to the lunar surface for the first time since Apollo 17. The video details the spacecraft's development progress, its revolutionary design, and the complex mission architecture required to land astronauts on the Moon.
SpaceX lifted the curtain on the crew cabin of the Starship human landing system, the spacecraft that will return humans to the lunar surface for the first time in over 50 years.
Jessica Jensen, SpaceX's head of customer operations, announced at a NASA Artemis 3 briefing that the primary structure is assembled and will be outfitted with key functional systems like avionics and power in the next few months.
Starship HLS requires an enormous amount of propellant, making it impossible to carry enough from the ground. The solution is refueling in orbit, a complex process spanning weeks, not safe with crew onboard.
Starship HLS launches after the Depot is fueled, docks to top off its tanks, then waits in low-Earth orbit. Orion arrives with two NASA astronauts, and the two spacecraft rendezvous and dock in LEO.
Starship HLS stands roughly 50 meters tall, 9 meters in diameter, with a stainless steel hull coated in white thermal reflective paint. Five large solar arrays, each nearly 18 meters long, deploy like flower petals.
Deploying large solar panels in space has virtually no effect on trajectory or velocity because there is no air to create drag in the vacuum.
The docking mechanism, designed to the modern androgynous standard inherited from Dragon 2, locks with a single metallic clunk. NASA tested it across more than 200 approach scenarios at Johnson Space Center.
Orion's pressurized cabin is under 9 cubic meters, while Starship HLS offers an estimated 160 cubic meters of livable pressurized space, nearly 20 times more.
The cabin includes a spacious common area with a foldaway dining table and comfortable seating. The galley can heat real meals like rice, meat, and vegetables, with refrigerated storage.
The bridge features large high-resolution touchscreens instead of physical switches. The UI is designed for context switching based on the crew member's role, unlike Dragon's fixed screens.
Starship HLS has individual crew cabins with fixed sleeping surfaces and dedicated restraints, offering privacy and better sleep compared to Orion's cramped capsule.
The exercise area includes a treadmill for low-gravity, a rowing machine, and resistance bands to combat muscle and bone loss. The hygiene system recycles water and offers privacy.
The environmental control and life support system (ECLSS) is a full closed-loop system with CO2 scrubbing, pressure regulation, humidity control, and sensors. SpaceX tested it with four people for 7 days in a full-scale mockup.
At about 100 meters above the surface, HLS uses secondary thrusters mounted high on the hull to avoid blasting regolith. The main Raptor engines are shut down, and the ship lands itself using software.
Starship HLS has two separate airlocks, each around 13 cubic meters, allowing two astronauts to egress simultaneously without depressurizing the main cabin. This avoids the Apollo-era problem of dragging regolith inside.
Inside each airlock, there's room to don and doff the Axiom EVA suit, with a PLSS rack, handholds, and data ports. Two NASA astronauts tested the airlock mockup at Hawthorne.
The distance from the cabin to the surface is about 35 meters. SpaceX designed an elevator, like an industrial cage lift, to safely lower astronauts and equipment, avoiding the difficulty of climbing a ladder in a heavy suit.
Starship HLS represents a revolutionary leap in lunar lander design, offering unprecedented interior space, advanced life support, and innovative features like airlocks and an elevator. The video highlights SpaceX's progress and the complex mission architecture that will enable humans to return to the Moon.
What is the pressurized volume of Starship HLS compared to Orion?
Starship HLS offers about 160 cubic meters, nearly 20 times Orion's 9 cubic meters.
04:31
Why does Starship HLS need orbital refueling?
It requires so much propellant that it's impossible to carry enough from the ground.
01:51
What is the height and diameter of Starship HLS?
Roughly 50 meters tall and 9 meters in diameter.
02:57
How many approach scenarios did NASA test for the docking assembly?
More than 200 different approach scenarios.
04:04
What is the purpose of the two airlocks on Starship HLS?
To allow two astronauts to egress simultaneously without depressurizing the main cabin, preventing regolith contamination.
09:51
How long did SpaceX test the ECLSS with four people in a mockup?
7 days continuously.
08:27
What is the distance from the HLS cabin to the lunar surface?
About 35 meters, equivalent to the 12th floor of a building.
11:15
Why does deploying solar arrays have no effect on trajectory?
Because there is no air in space to create drag.
03:26
Primary Structure Assembled
Confirms tangible progress on the HLS, moving from concept to hardware.
00:1420x More Space Than Orion
Highlights the revolutionary interior volume that will transform crew comfort and capability.
04:31Touchscreen Bridge
Shows a shift in spacecraft UI philosophy, emphasizing adaptability over fixed controls.
05:56Closed-Loop ECLSS
Demonstrates advanced life support that enables longer lunar stays.
07:45Dual Airlocks
Solves the Apollo-era problem of regolith contamination and enables efficient EVAs.
09:51Elevator to Surface
A novel solution to the challenge of descending 35 meters in a bulky suit.
11:15[00:02] flight fidelity Starship HLS cabin at Starbase. >> This is it. SpaceX just lifted the curtain on the crew cabin of the Starship human landing system, the spacecraft that will return humans to
[00:14] the lunar surface for the first time in over 50 years. Not only interior details, but also development progress. That's exactly what we're digging into today. Let's dive in. At a recent NASA Artemis 3 briefing, Jessica Jensen, the
[00:28] woman who runs SpaceX's entire customer operations, said something quietly extraordinary. >> The primary structure is assembled and prepared to be outfitted with key functional systems like avionics, power,
[00:42] in the next few months. >> Exciting, right? After a long stretch of silence, no updates, no timelines, nothing, SpaceX finally stepped in front of a room full of senior NASA officials and said this
[00:56] out loud. And what makes it hit differently this time is that she's not talking about another concept, not another polished 3D render. She's talking about a real Starship HLS cabin built from real materials. And soon, it
[01:10] will be equipped with real life support systems designed to carry real human beings to the moon for the first time since Apollo 17 left the lunar surface in 1972. And the best part is, we don't have to
[01:22] wait months as Jessica suggested. Based on everything SpaceX, NASA, and multiple contractors have already revealed, we can begin exploring the inside of this spacecraft right now and discover why Starship HLS may be the most
[01:37] revolutionary lunar lander humanity has ever built. But before we can step inside, we need to understand why the journey to that cabin is more complex than any trip in human history. Because Starship HLS is nothing like a plane or
[01:51] a car, you can't simply climb into the cabin and take off. To fly to the moon, it needs such an enormous amount of propellant that it's impossible to carry enough from the ground. The solution? Refuel in orbit. But orbital refueling
[02:05] isn't as simple as pulling into a gas station. It's an extraordinarily complex process spanning weeks and absolutely not safe to carry out with people sitting inside throughout. Only once the Starship Depot has been fully fueled,
[02:19] Starship Depot has been fully fueled, does Starship HLS launch. It flies up, docks with the Depot to top off its tanks with that superchilled propellant, and then waits in low-Earth orbit. And then, Orion arrives carrying two NASA
[02:32] astronauts launched aboard the SLS from Earth. The two spacecraft rendezvous and dock in LEO, one small, one enormous. Like a tiny boat lost in the middle of the ocean suddenly spotting an aircraft carrier
[02:45] materializing through the fog. A 15-story building floating in space white as a blank sheet of paper. That is Starship HLS. Standing roughly 50 m
[02:57] tall, 9 m in diameter, its stainless steel hull coated in white thermal reflective paint to protect the cryogenic propellant inside from solar radiation. Five large solar arrays spread open like enormous flower petals,
[03:12] each nearly 18 m long, slowly rotating to capture maximum sunlight. Many people wonder whether deploying solar panels that large would slow the spacecraft down or push it off course. In reality, no. On Earth, if you open an umbrella
[03:26] into the wind, the drag can tear it apart. But in the vacuum of space, there's no air to create drag. So, deploying the solar arrays has virtually no meaningful effect on the spacecraft's trajectory or velocity. Only after the
[03:39] solar panels have been deployed and are supplying stable power, does Starship supplying stable power, does Starship HLS begin its long journey to the moon. Orion maneuvers carefully. The two spacecraft approach nose to nose. The
[03:52] docking mechanism, designed to the modern androgenous standard inherited from the Dragon 2 system, but optimized for the lunar environment, locks into place with a single metallic clunk that both astronauts will hear clearly
[04:04] through the hull. NASA has comprehensively tested this docking assembly at the Johnson Space Center across more than 200 different approach scenarios. Nothing is left to chance. The connecting tunnel opens and the
[04:17] astronaut steps through. This moment, this is the moment everyone needs to pay attention to. Stepping from Orion into Starship HLS is like stepping out of a compact car into a sprawling luxury mansion. Orion's pressurized cabin is
[04:31] mansion. Orion's pressurized cabin is under 9 cubic meters. Starship HLS offers an estimated 160 cubic meters of livable pressurized space, nearly 20 times more. That's not a typo, 20 times. The first thing you feel isn't
[04:46] technology. The first thing you feel is space. After days crammed inside Orion, sitting shoulder to shoulder, every piece of gear stowed tight, every piece of gear stowed tight, every movement calculated, stepping into HLS
[05:00] is stepping into something that feels almost like freedom. High ceilings, cool, clean, steady air, warm artificial light washing evenly across the walls from LED strips running all the way
[05:13] around. They'll spend those first days just settling in, getting to know their temporary home. One side of the cabin opens into a spacious common area with a foldaway dining table and seating that's genuinely comfortable compared to
[05:27] anything Orion offered. And the food? No more cold energy bars or pouches of reconstituted powder. They can actually heat up real meals, rice, meat, vegetables, even some fresh items kept in refrigerated storage using a compact
[05:43] but surprisingly capable galley system. In microgravity or under the moon's weak pull, eating becomes a much more pleasant experience. No more worrying about crumbs floating into your eyes. And above the dining area, set into the
[05:56] curved wall, is what SpaceX calls the bridge. It looks nothing like a traditional spacecraft cockpit. No rows of physical switches, no analog dials, of physical switches, no analog dials, no mechanical controls. Instead, large
[06:10] high-resolution touchscreens. And not just here. They're in the common area, outside each sleep cabin, flanking both airlocks, everywhere. The lead Starship software developer described it directly. The UI has to work for crew
[06:24] members doing completely different jobs. A commander reviewing descent trajectories, a flight surgeon checking life support telemetry, a geologist pulling up landing site maps. Same interface, same ship, just context
[06:38] switching depending on who's looking. It's a completely different philosophy from Dragon, which had three fixed screens in a compact capsule built for one single job. Starship HLS is different in kind, not just in scale.
[06:51] Further back are the private sleep quarters. No more hanging a sleeping bag against the wall like in Orion. Starship HLS has individual crew cabins, compact but genuinely private, with fixed sleeping surfaces, dedicated sleep
[07:05] restraints, and just enough personal space for each astronaut to decompress after a long shift. Sleeping a full deep sleep on the moon, that's going to feel completely different from those restless nights in a cramped capsule. And to stay
[07:19] in shape, they train every day. The exercise area is cleverly designed around space-efficient multi-purpose equipment. A treadmill built for low-gravity environments, a rowing machine, resistance bands, all working
[07:32] to fight the muscle and bone loss that's plagued astronauts on long-duration missions. When they're done, they can clean up with a hygiene system that's a genuine step up from anything Apollo era, recycled water, real privacy.
[07:45] Through all of this, the ECLSS, the environmental control and life support system, runs quietly in the background. And we're not talking about the bare-bones setup from the old Apollo lunar module, where astronauts had a few
[07:59] lunar module, where astronauts had a few lithium hydroxide canisters to scrub CO2 and a pair of silver zinc batteries to power the entire spacecraft for a grand total of 2 or 3 days. This is a full close-loop system, CO2 scrubbing,
[08:12] automatic pressure regulation, humidity control, continuous atmospheric sensors monitoring every breath they take. SpaceX actually tested this with four people inside a full-scale cabin mock-up in Hawthorne, California. Running
[08:27] continuously for a full 7 days, eating, sleeping, exercising, the whole thing. 7 days. That's also exactly how long Artemis 4 plans to stay on the moon. But, before any of that begins, the ship
[08:41] still has to land. At around 100 m above the surface, HLS would have already fired up its secondary thrusters. Small gaseous propellant jets mounted high on the hull, rather than at the base. The six main Raptor engines, so powerful
[08:57] that even at their lowest throttle setting, they'd blast the lunar regolith into a storm of razor-sharp particles, are shut down. The smaller auxiliary thrusters take over, easing the spacecraft down as gently as a
[09:09] helicopter. The four landing legs had already deployed. Ranging sensors feed continuous data to the flight computer. The crew watches, they verify, but the ship lands itself, and SpaceX is betting everything on its software. And then,
[09:24] touchdown. A gentle contact. So gentle that the astronauts inside might not feel it at first, but the computer knows, the sensors know. And after a few seconds, the display lights up. Touchdown
[09:37] confirmed. Before anyone sets foot on the surface, there's one more thing to do. Check systems, run through procedures, and suit up. And this is where you start to understand why HLS's two airlocks are a stroke of engineering
[09:51] genius. The old Apollo lunar module had no airlock at all. To go outside, the crew had to depressurize the entire cabin down to zero, suit up inside, climb out through a hatch on top of the cockpit, crawl out, and then descend a
[10:06] All while wearing a bulky pressurized space suit. Every single EVA was a technical circus act. And every time they came back, they dragged in a cloud of lunar regolith dust, stuff as sharp as shattered glass, straight into their
[10:21] living space. Starship HLS has two separate airlocks, each around 13 cubic out simultaneously without depressurizing the main cabin at all.
[10:33] Inside each airlock, there's enough room to fully don and doff the Axiom EVA suit. Axiom Space's next-generation EVA suit developed specifically for Artemis. Along with a dedicated PLSS rack for the backpack life support unit, handholds
[10:48] positioned precisely based on ergonomics research, and data ports that tie directly into the ship's comm systems. Two NASA astronauts have actually tested this airlock mockup at Hawthorne in person. Fully suited, running through
[11:01] every motion, every maneuver, every handhold. Not for a pretty slide in a status report, but because their lives depend on every single detail. And below the airlock, something you've never seen on any landing vehicle in history, an
[11:15] elevator. The distance from the HLS cabin down to the lunar surface is about 35 m, the equivalent of climbing from the ground floor to the 12th floor of a building in a heavy rigid EVA suit with a PLSS strapped to your back. Climbing a
[11:31] folding ladder bolted to the outside of the hole is not a great idea, especially time in your life and your entire nervous system is trying to make sense of gravity that's only 1/6 of what you've known your whole life. So, SpaceX
[11:46] designed an elevator. Nothing fancy, more like an industrial cage lift or what people often describe as a shark cage, but solid, reliable, and built to do exactly one thing: get astronauts and equipment down to the surface safely.
[12:00] The airlock door opens. The astronaut steps into the cage. The mechanism begins its slow descent. This is a moment that no computer simulation can fully capture. As the elevator descends, the lunar surface rises to meet you. The
[12:14] ash gray of the regolith, scattered small craters, the enormous shadow of Starship HLS stretching out ahead, and in the distance, the horizon curves because the moon is smaller than Earth against a sky of absolute black. No
[12:29] atmosphere, no scattered light, just the sun blazing like a white diamond hanging sun blazing like a white diamond hanging in the void.
[12:48] >> Vehicle is pitching downrange. >> How many G chamber pressures are
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