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BREAKING: Inside Rocket Lab's ( $RKLB ) Engine Development Center How Archimedes & Rutherford are made FACTORY TOUR (Part III) Sir Peter Beck walks us through Rocket Lab's engine factory in Long Beach, CA. It used to be Sir Richard Branson's $1.2B Virgin Orbit's facility. When it went bankrupt,...

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BREAKING: Inside Rocket Lab ( $RKLB ) w/ Sir Peter Beck FULL INTERVIEW (Part I) We sat down with Peter Beck Founder & CEO of Rocket Lab after another record quarter, $234M in revenue & $2.36B in backlog "The lawyers hate me saying it, but global domination is definitely part of the plan." "I didn't want to build a space company that just lives for the lifetime that I'm running it. It needed to be multi-generational." We go deeper into Iridium, Neutron, the $397M Space Force contract to build + launch "Flatellites," & how 81% of revenue last quarter was outside of launch. Covering: › Why the fix for a 9-month lead time was buying the supplier › The $8B Iridium acquisition & why he was surprised nobody saw it coming › Why the Neutron question should be about the 10th rocket, not the 1st › The 24-hour turnaround constraint that produced Hungry Hippo › Flatellites, building satellites for volume rather than one at a time Plus: building a launch industry in New Zealand from zero suppliers & no regulation, staying out of broadband to play in L-band, going public before SpaceX, GHOST & the launch site that ships in a container, & why the Archimedes engines are painted black. 𝐓𝐈𝐌𝐄𝐒𝐓𝐀𝐌𝐏𝐒 (00:00) Sir Peter Beck, Founder & CEO at Rocket Lab (00:59) Rocket Lab's biggest quarter (02:53) The competitive edge in Space (04:10) Rocket Lab's Acquisition Strategy (05:04) Reason behind the Iridium Deal (06:13) Competing with Blue Origin & SpaceX (09:56) Rocket Lab's Global Domination (11:19) Building a Launch Monopoly in New Zealand (12:33) Is this why Peter got Knighted? (16:42) Beating SpaceX to the Public Markets (20:05) Why Neutron is still facing delays (24:24) The reality of running a Rocket Company (27:38) Rocket Lab's latest contract wins (29:04) How defense became a prime mover for Rocket Lab (30:39) Ghost: Rocket Lab's portable launch pad (31:30) Has he seen Aliens? (33:18) What's next for Rocket Lab? (34:30) Where does Peter draw his inspiration? (36:12) Why he's never read a Business book (37:31) Why their Engine is painted black

Molly O’Shea

832,413 görüntüleme • 5 gün önce

BREAKING: Inside Rocket Lab ( $RKLB ) HQ Tour in Long Beach, CA w/ Sir Peter Beck FACTORY TOUR (Part II) Rocket Lab reached space in 2009 on ~$60,000 in total capitalization, using fittings pulled out of a junkyard. "From that adversity, comes good ideas" Electron reached orbit in 2017 on <$100M w/ 80 people. Meanwhile, their nearest competitor, billionaire-founded Virgin Orbit, burned $1.2B & went bankrupt. Rocket Lab now runs 13 acres of factory across 9 locations, globally. But before any of that, with dream of reaching space, Peter Beck applied to NASA: "I was objectively too dumb & also a foreign national. So foreign national, no degree, it wasn't looking good." NASA turned him down. He ended up launching their payloads instead, including CAPSTONE to the Moon, NASA's lunar pathfinder for Artemis, which operated out of the mission control room we walked through. We cover: › The $3.20 ferrules that got Rocket Lab to space › Why $100M & 80 people beat $1.2B at Virgin Orbit › Going public as a succession plan, not a financing event › Why a reaction wheel is a moat › The reality of buying companies Plus: the 2001 lobby, his take on "number eight wire," the CAPSTONE spare that stayed home, 12-year missions that cannot fail, & where new space entrants actually die. Check out the rest of the series: › Part I: Full sit-down interview w/ Peter Beck › Part II: Tour 01 - *This episode* › Part III: Tour 02 - Engine Development Center (Friday) 𝐓𝐈𝐌𝐄𝐒𝐓𝐀𝐌𝐏𝐒 (00:00) Touring inside Rocket Lab HQ (01:44) The origin story (05:45) What "Number Eight Wire" actually means (07:14) Too much Capital can kill a startup (09:03) Why Rocket Lab decided to go public (10:45) From Rockets to an entire Space Ecosystem (15:11) Where Escapade & CAPSTONE were flown (16:44) Inside the satellite build floor (17:15) In search for life on Venus (18:08) Inside the Electric Propulsion Lab (19:58) Inside the Thermal & Shock Testing Facility (20:47) How big is this facility? (21:45) Inside the NASA LOxSAT project (23:06) Why so many Space startups fail (24:00) Up Next: Inside the Engine Lab

Molly O’Shea

426,965 görüntüleme • 3 gün önce

. Rocket Lab is bolstering its in-house production of satellite thrusters and lasers as demand grows for constellations. In our latest interview, CEO Peter Beck shares his thoughts on where the space industry is going and how his company is preparing to benefit. TIMESTAMPS 00:00 - Intro 01:01 - Why Peter Beck axed his own salary 02:17 - Electric Propulsion: Introducing Gauss 05:25 - How Rocket Lab’s Special Projects team solves space industry pain points 08:47 - Mynaric acquisition: Why satellite laser communications is critical 10:55 - $RKLB ’s satellite constellation strategy 12:28 - “The biggest opportunity is yet to be thought of” 13:55 - Are space-based data centers legit? 15:16 - Hyperscaler's strategic access to orbit 17:21 - US$2 billion-plus backlog: Military v Commercial revenue mix 20:06 - NASA 's Artemis II moon mission! 21:15 - Permanent lunar base thoughts (cc. NASAMoonBase ) 22:58 - Competition for Mars missions 25:06 - The Big Rocket Race: SpaceX 's Starship, Blue Origin New Glenn & Rocket Lab’s Neutron 26:58 - Neutron 2026 launch: “We work our ass off” 28:40 - “It’s all about the economics. This is where a lot of space companies go wrong.” 29:37 - Launch cadence & reusability 31:40 - Durability of rocket hardware (does useful lifetime compress with demand, like GPUs?) 33:06 - Outro Disclaimer: I own shares in Rocket Lab. This content is of a general nature and is not intended to be personalized financial advice.

Madison Malone

283,898 görüntüleme • 4 ay önce

My first interview with Peter Beck, Founder & CEO of Rocket Lab. Rocket Lab is scaling launch cadence faster than SpaceX scaled Falcon 9. 0:44 The biggest bottleneck to increasing launch cadence and mass to orbit 1:25 Growth of new space startups 3:05 Why governments have been ineffective at scaling launch 3:53 Tall Poppy Syndrome 4:38 Starting Rocket Lab without having $100 million 7:24 Scaling Electron vs focusing on Neutron 9:17 Rocket Lab hustle 11:10 Creating a culture of “F*ck it, let’s do it” 11:40 Worst supplier experiences 13:54 Having an engine explode before an important meeting 18:52 Rocket Lab’s first mission to the moon 20:55 Chewing glass and forcing the outcome to be good 22:57 Similarities in how Elon and Peter operate 25:05 Elon time and how to structure timelines 27:13 Designing a culture where everyone runs towards the fire 28:44 Making the Ferrari of rockets — the importance of creating beautiful things 31:20 “You don’t need to equate a price tag to beauty” 32:12 Why Peter hates launch day 34:48 “After a launch failure this place is a morgue” 35:22 Moving forward after a failure 36:40 Transitioning from an R&D organization to scaling rocket production 38:07 Production hell with rockets 39:09 Taking learnings from Electron to Neutron 41:03 Having dinner with Elon 42:00 Keeping the hiring bar extraordinarily high 44:05 “My job is to fix sh*t” 44:56 Rocket Lab’s first NASA launch 45:55 “The great thing about America is anything is possible” 47:40 Coming to Silicon Valley — meeting with Vinod Khosla 51:22 Why he decided to take $RKLB public 54:12 Creating a company that will outlive you 55:41 Turning Rocket Lab into a profitable business 57:23 The best space companies will all build their own rockets 1:00:35 Scaling Neutron 1:01:32 Why they’re using carbon fiber instead of steel 1:02:56 “Going public was a great capital unlock” 1:04:10 The importance of relentless optimism

Ti Morse

165,782 görüntüleme • 5 ay önce

BREAKING: Inside Impulse Space with Tom Mueller (Tom Mueller) (SpaceX's 1st Employee) FULL TOUR The famous engineer behind the Merlin engine, now Founder, CEO & CTO of Impulse Space (Impulse Space) ICYMI: Merlin still powers Falcon 9 today, the most reliable rocket engine ever flown & the highest thrust-to-weight ever developed. It's the workhorse behind nearly every SpaceX mission: Starlink launches, Dragon crew & cargo flights to the ISS, & booster landings Tom walks us through the factory floor, from the avionics clean room to a live rocket engine firing in the vacuum chamber Impulse is building the in-space mobility layer: the vehicles & engines that move spacecraft after launch, from LEO to GEO, the Moon, infinity & beyond We cover: → Mira: precision maneuvering spacecraft & its saiph thrusters (8 thrusters, ~50 lbs thrust, 5-yr orbit life) → Helios: long haul same-day delivery vehicle (12 tons of LOX/methane, LEO to GEO) → Deneb Engine: 15,000 lbs thrust engine that powers Helios, ox-rich staged combustion, carbon skirt running over 3,000°F → Why 3D printing is "almost a cheat code" for rocket engines → In-house composite tanks, Novaloy, & copper liners machined from 700 lbs down to 25 → 3 spacecraft in orbit + a 1,200-meter rendezvous → Starlink, iterating Merlin & Raptor, & working with Elon Musk → Nuclear propulsion, the Moon, & why compute needs to move to space 𝐓𝐈𝐌𝐄𝐒𝐓𝐀𝐌𝐏𝐒 (00:00) Tom Mueller, Founder, CEO & CTO of Impulse Space (00:49) Inside Impulse Space (02:32) Avionics Bay floor (02:59) Building rockets at home (03:50) Mira and Helios (08:00) Why Tom left SpaceX (09:33) The Deneb Engine walkthrough (11:42) Testing in Mojave (12:23) Favorite part of the Engine (13:30) How it's 3D Printed (14:21) Why 3D Printing changes everything (16:54) Finding Talent for COPVs (17:28) No Modern hardware without software (19:52) The Mill Turn explained (22:42) Payload Deck Design (25:28) Entering the Secret Area (30:48) Thrust, Flow Rate, & 100 Sensors (32:13) Collision avoidance in Orbit (32:57) The Electric Propulsion Chamber (34:28) Nuclear Electric is the future (38:49) Data Centers in Space (40:28) SpaceX & Starlink's Growth (41:10) Working with Elon (42:07) If not CEO, then what? (42:32) Moon matters more than Mars

Molly O’Shea

729,885 görüntüleme • 2 ay önce

Canada's first orbital-class rocket engine is now being manufactured! Our patent pending Hadfield-150 engine is the largest and most powerful rocket engine ever built in Canada, and the first known Canadian orbital-class engine to make it to this stage. The Hadfield-150 builds on everything we learned after years of painstakingly designing, manufacturing, and testing the Hadfield-10 series, our first regeneratively cooled and additively manufactured liquid rocket engine. Every engine test, both successful and unsuccessful on our Darkhorse test stand at Area 66, retired risk that's now carried straight into Hadfield-150 and sovereign orbital launch for Canada. A few details about the Hadfield-150 engine series: ✅ Designed to power Tundra and Tundra+, our light and medium-lift launch vehicles, and built to scale to Tempest, our larger reusable medium lift vehicle ✅ Manufactured entirely in-house, from design to print to test, for true sovereign launch capability ✅ Produced at Rocket Factory 1, on our expanding fleet of metal additive manufacturing systems at the AMA Lab, including the largest known metal 3D printer in Canada ✅ Designed for reusability and medium-lift scale from the outset, and built to significantly cut the time, infrastructure, manufacturing and cost iterative engine testing usually requires, with room to scale to even larger engines by leveraging the same design ✅ Capable of engine-out functionality, so losing one on an early flight doesn't have to mean losing the mission ✅ Optimized for Canada's Launch the North initiative, to deliver sovereign operational capability in a time and cost efficient manner Initial testing starts later this year at our new Blackhawk orbital engine test cell at Area 66, our private test range in Ontario. Stacked, integrated vehicle testing comes later at the Atlantic Spaceport Complex, our spaceport in Newfoundland and Labrador. Stay tuned for some exciting and fiery milestones ahead! 🚀🇨🇦 National Defence Defence Research and Development Canada Canadian Space Agency Transport Canada NGen Canada

NordSpace 🇨🇦

27,668 görüntüleme • 1 ay önce

After years of development, testing and refinement, we are printing one of our last Hadfield-10 rocket engines, a bittersweet moment 🫡 More of our team is transitioning toward getting our much larger orbital-class Hadfield-100 engine ready for the test stand, and getting Canada to orbit for the first time with our Tundra rocket. The pressure-fed Hadfield-10 series has been the backbone of NordSpace's propulsion program since our earliest days. It's the engine that proved we could design, manufacture, test and fly liquid rocket engines from scratch, entirely in-house, at the pace necessary to reach orbit. It powered our first successful hot-fire tests, survived our most demanding qualification campaigns, and gave our team the hard-won knowledge that no textbook or simulation could provide. It also powers our Taiga sub-orbital vehicle, which is taking flight in a few weeks. Every experimental lesson learned in its development from combustion stability, regenerative cooling, additive manufacturing, and test operations lives on in what comes next. That knowledge now flows directly into our turbopump fed Hadfield-100 engine, the most powerful rocket engine in Canadian history. Designed to power our orbital Tundra rocket to deliver 500+ kg to LEO and scaling further to 1,100 kg LEO in the Tundra+ configuration. Architected from day one to grow to the thrust levels required for our reusable Titan medium-lift vehicle targeting 5,000+ kg to LEO while striking the right balance between performance, scalability, heritage, and speed of development to meet the Government of Canada's targets. The Hadfield-10's design will also form the foundation of our SHARP Sabre hypersonic rocket's M2S-HyRock engine. The full shift to the Hadfield-100 is a major milestone for us, and it's not just about more powerful engines. The infrastructure we're developing from moving to a much larger facility, acquiring much larger metal 3D printers, developing new test cells, and pursuing rigorous standards all feed in to this next phase of growth for our program. To everyone on the NordSpace team who designed, printed, tested, and refined these engines across so many late nights, early mornings and weekends, thank you. This chapter made everything that follows possible, and the next one starts now. Ad astra per aspera 🚀🇨🇦 National Defence Canadian Space Agency Defence Research and Development Canada Canadian Armed Forces Transport Canada

NordSpace 🇨🇦

42,533 görüntüleme • 5 ay önce

Every rocket ever built before Starship was thrown away after one use. Elon Musk just explained on a SpaceX livestream why that single fact made space exploration practically impossible until now. His analogy was the one that landed hardest. Imagine if you had to throw away a commercial airplane every time it flew. Not maintain it. Not refuel it. Throw it away and build a new one. What happens to the price of a ticket? What happens to the airline industry? What happens to global travel? It collapses. Nobody flies. That is exactly what every space program in history has been doing with rockets. Building them once, using them once, throwing them away. The cost was not a failure of ambition. It was a structural consequence of how the hardware worked. Starship is the first rocket ever designed for full and rapid reusability. Not just reusable. Rapidly reusable. The rocket lands, gets caught by the tower, goes back on the launch stand, and flies again without refurbishment. Like an aircraft. No laborious inspection between flights. Starship B3 is already more than double the thrust of the Saturn 5 moon rocket. Version 4 will be roughly three times. And Musk said they expect Starship to be flying more than once per hour eventually. That number is hard to absorb. The most powerful moving object ever built. Flying more than once per hour. The cost of getting mass to orbit does not drop gradually when that happens. It collapses. And when the cost collapses, everything that was previously impossible becomes a question of how fast you can build. Reusability is not a feature. It is the entire unlock. Every other problem in space is downstream of this one.

Ihtesham Ali

10,431 görüntüleme • 2 ay önce

Why Japan Is Teaching Rockets to Come Home The concept of a reusable rocket is deceptively simple: instead of discarding an expensive stage into the ocean after every launch, land it and launch it again. SpaceX built its competitive edge on this very principle—and now others are mastering the same technology. Japan joined this club over the weekend. Its space agency, JAXA, conducted the first flight of the RV-X—a small experimental rocket developed in partnership with Mitsubishi Heavy Industries. The flight was brief, lasting less than a minute: it rose 11 meters, shifted 16 meters laterally, and executed a soft, vertical landing. Keeping a rocket upright on a column of thrust is akin to balancing a pencil on your fingertip—except the pencil weighs tons and is powered by a flame. A split-second error is all it takes to lose that vertical stability. Engineering features play a crucial role here: an upgraded engine that has undergone 165 hot-fire tests and four shock-absorbing legs designed to cushion the impact with the ground. All of this serves as a rehearsal for a far more ambitious goal: a future reusable successor to the current expendable H3 rocket, intended to deliver payloads to orbit at a significantly lower cost. Japan is not acting alone; it is developing the RV-X in collaboration with France and Germany, while just a day earlier, China successfully recovered a first stage for the first time. The world is gradually shifting toward rockets that do not burn up after a single flight but instead return to pick up their next payload.

Black Hole

16,771 görüntüleme • 1 ay önce

NEW: How 137 Ventures Built a 1%+ Position in SpaceX Over 16 Years Interview with Justin Fishner-Wolfson, Co-Founder & Managing Partner One of the most underrated investment stories in tech: a contrarian approach that built one of the most consequential ownership positions in the industry. 137 quietly accumulated SpaceX since 2011, investing over 2 dozen times & never sold a share. Today the firm runs $15B+ AUM, deployed $1.7B last year, holds positions in 40+ companies, & has backed nearly 60 portfolio companies in company’s history. Big names include: SpaceX, Palantir, Uber, Anduril, Cognition, Brex, Impulse Space, Gusto, Ramp, & Hadrian. The thesis, circa 2011: companies would stay private longer. That bet built into one of venture's largest SpaceX positions, accumulated through secondaries and tenders. We cover: - Early SpaceX conviction - Buying the tender cadence - Why secondary, why now - Companies over categories - Cash on cash discipline - Passing on foundational models - Impulse Series D 𝐓𝐈𝐌𝐄𝐒𝐓𝐀𝐌𝐏𝐒 (00:00) Justin Fishner-Wolfson, Co-Founder & Managing Partner at 137 Ventures (00:51) The story of SpaceX (02:50) Why companies are staying private longer (04:15) What Liquidity actually means for Founders and Employees (05:38) Why he left Founders Fund to start from scratch (06:23) $240B Secondaries market (07:01) What made SpaceX a generational bet (07:52) How the Falcon 9 made the entire Space Industry obsolete (10:59) When Starlink became the obvious winner (13:29) How 137 Ventures turns Conviction into Compounding (14:09) Backing SpaceX alumni: the Impulse investment (14:32) Will the secondary market keep growing? (15:15) Companies vs. Categories (16:25) Separating AI hype from long-term durability (17:47) How 137 Ventures is structurally different from traditional VC (22:19) SpaceX made blue collar workers rich (23:24) Ownership percentage vs. Cash on cash returns (24:31) The most memorable moments (25:43) The Third Falcon 1 Launch (26:55) Why test failures are actually a good sign (28:32) The biggest lessons from Elon and Gwynne (29:07) What's next for 137 Ventures

Molly O’Shea

158,129 görüntüleme • 2 ay önce

Inside Nemotron and NVIDIA's AI lab: my conversation with Bryan Catanzaro (Bryan Catanzaro). NVIDIA is a chip company. So why does it put hundreds of researchers on building AI models - and then give them away for free? We go deep into the Nemotron models, what it takes to build a top AI lab, and the future of frontier AI. 01:33 - Is open source AI catching the frontier? 05:29 - Do closed labs blocking distillation slow open source down? 07:42 - Is the US falling behind China? 10:30 - Why companies actually choose open models 12:39 - A "crazy" 2008 bet: machine learning on GPUs 15:33 - Working with Andrew Ng and Dario Amodei at Baidu 17:41 - Coming back to NVIDIA: DLSS and the birth of Megatron 21:55 - The real reason NVIDIA builds its own models 24:28 - Is Moore's Law really dead? 33:37 - The Nemotron family: Nano, Super, Ultra 35:09 - Built for agents: why NVIDIA bets on speed 36:02 - How you train a 550B model in 4 bits 39:25 - Hybrid Mamba-Transformer, explained simply 42:31 - Mixture of experts, and why NVIDIA built NVL72 around it 47:26 - Why a 1-million-token context window matters 49:26 - Multi-token prediction: how the model predicts 5 tokens at once 52:47 - Multi-teacher distillation: teaching one model from many 58:01 - Where reinforcement learning goes next 01:00:16 - Inside NVIDIA's research org: "the mission is the boss" 01:04:03 - How NVIDIA decides who gets the GPUs 01:10:53 - Why NVIDIA still feels entrepreneurial after 33 years 01:12:58 - Why Bryan doesn't believe in the singularity 01:17:50 - The AI backlash 01:19:18 - The controversial case: open AI is safer than closed

Matt Turck

56,903 görüntüleme • 1 ay önce

Elon Musk reveals what happens when a rocket launch needs approval from Fish and Wildlife Elon: "Nonetheless, we were forced to kidnap a seal, strap it to a board, put headphones on the seal and play sonic boom sounds to it to see if it would be distressed." Elon: "This is an actual thing that happened. This is actually real. I have pictures." Before the seal, there was a shark. Elon: "One of the things that was a bit of a challenge at one point is that they were worried about our rocket hitting a shark." He asked for the data to calculate the odds. They refused, in case shark hunters got hold of it. Elon: "Then they said, well, there's another part of Fish and Wildlife that can do this analysis. I'm like, well, why don't you give them the data? They don't, we don't trust them. Like, excuse me, but they're literally in your department." Then a second agency raised whales. Elon: "If our rocket does hit a whale, which is extremely unlikely beyond all belief, that whale has some seriously bad luck. It's the least lucky whale ever." The seal test was for launches out of Vandenberg, where the seal population has been rising for years. Elon: "So if anything, rocket booms are an aphrodisiac based on the evidence." Elon: "The amazing part is how calm the seal was. Because if I was a seal, I'd be like, this is the end. They're definitely gonna eat me." Elon: "Its seal buddies are never gonna believe him that he got strapped to a board and they put headphones on his ears." They did it twice. Elon: "I don't think the public is quite aware of the madness that goes on."

Naruto

7,957,768 görüntüleme • 25 gün önce