Uploaded June 2024 | Updated September 2026, 2 weeks ago
Team Vision 2006 Proposal
An Alternate Approach towards Achieving the New Vision
for Space Exploration
The Jupiter-III HLV is a revolutionary idea that seeks to revamp the current External Tank/SRB system of the Space Shuttle to produce a cutting-edge heavy lift launch vehicle. This proposal involves replacing the forward attachment of the External Tank with a more formidable structural system, thereby enhancing the capacity to transmit higher thrust and rotational loads. The new center tank's upper inter-stage region would drive the attached External Tank/SRB components, reducing the stress on the aft attachment points of the LH2 tanks.
This HLV concept leverages the External Tank/SRB stack as a common core booster, providing ample room for adjustments in lift capacity through modifications to the central core lift vehicle. The parallel burn configuration of the Jupiter-III HLV offers numerous advantages, including a reduction in development costs, improved structural efficiency, and heightened payload capacity flexibility. With a large proportion of already developed components in the Shuttle External Tank/SRB system, the costs of developing this HLV would be kept to a minimum.
Moreover, the Jupiter-III HLV would optimally utilize the Kennedy Spaceflight Center's Vehicle Assembly Building (VAB) volume, making it a more practical option than conventional stacked lift vehicle designs. With further extensions to a four SSET Jupiter V configuration integrated around a new 14 Meter ICES core and main/2nd stage engines, the lift capacity of this HLV could potentially surpass 1,000 metric tons to low Earth orbit, making it a game-changer in the aerospace industry.
Music: purple-planet.com
#spaceshuttle #nasa #ksp
Team Vision 2006 Proposal
An Alternate Approach towards Achieving the New Vision
for Space Exploration
The Jupiter-III HLV is a revolutionary idea that seeks to revamp the current External Tank/SRB system of the Space Shuttle to produce a cutting-edge heavy lift launch vehicle. This proposal involves replacing the forward attachment of the External Tank with a more formidable structural system, thereby enhancing the capacity to transmit higher thrust and rotational loads. The new center tank's upper inter-stage region would drive the attached External Tank/SRB components, reducing the stress on the aft attachment points of the LH2 tanks.
This HLV concept leverages the External Tank/SRB stack as a common core booster, providing ample room for adjustments in lift capacity through modifications to the central core lift vehicle. The parallel burn configuration of the Jupiter-III HLV offers numerous advantages, including a reduction in development costs, improved structural efficiency, and heightened payload capacity flexibility. With a large proportion of already developed components in the Shuttle External Tank/SRB system, the costs of developing this HLV would be kept to a minimum.
Moreover, the Jupiter-III HLV would optimally utilize the Kennedy Spaceflight Center's Vehicle Assembly Building (VAB) volume, making it a more practical option than conventional stacked lift vehicle designs. With further extensions to a four SSET Jupiter V configuration integrated around a new 14 Meter ICES core and main/2nd stage engines, the lift capacity of this HLV could potentially surpass 1,000 metric tons to low Earth orbit, making it a game-changer in the aerospace industry.
Music: purple-planet.com
#spaceshuttle #nasa #ksp



![The Hydrofoil Albatros Rocket
1974 Russian Space Shuttle Design Concept
Alexeyev Sukhoi Albatros 3 Stage Rocket System
At its core, the vehicle was conceptualized as a multi-stage system, with the initial stage featuring a hydrofoil weighing approximately 1800 tons and stretching 70 meters in length. This hydrofoil, designed by Alexeyev, served as a precursor to a full-fledged ekranoplan. Its purpose was akin to the Space Shuttle’s external fuel tank, carrying a substantial payload of 200 tons of Liquid Oxygen (LOX) and Liquid Hydrogen (LH2). These propellants were intended to fuel the motors of the second stage.
Mounted atop the hydrofoil, the second stage, estimated at 210 tons, utilized the LOX and LH2 from the first stage to accelerate the entire assembly to a remarkable speed of 180 km/h over a span of 110 seconds. This acceleration occurred along the surface of the Caspian Sea, or alternatively, the Aral or Lake Baikal, effectively utilizing the vast water bodies as makeshift runways. After reaching the desired speed, the second stage detached from the hydrofoil and initiated its own propulsion system, lifting itself off the now-empty barge.
This second stage was an innovative creation from Sukhoi, designed as a high-speed reusable winged rocket plane/booster. Its primary objective was to elevate the third stage—an actual spaceplane, also crafted by Sukhoi—to a high altitude. The spaceplane, a pivotal component of the system, was equipped to propel itself into orbit while the booster, having fulfilled its purpose, coasted back to Earth. While details about the piloted nature of the booster remain uncertain, given Sukhoi’s background, it is plausible that it might have been manned.
The final stage of this remarkable vehicle was a tail-less rocket plane, boasting a mass of about 80 tons and spanning 40 meters in length. This design made it comparable to the American orbiter. Despite its similarity in appearance to certain iterations of the Hermes shuttle or the later Russian/European Kliper, it stood out due to its payload capacity of 30 tons to Low Earth Orbit (LEO) and its crew of two. Technically, this stage was a marvel, incorporating advanced engineering concepts to achieve its objectives.
Sources:
https://falsesteps.wordpress.com/2016/07/14/sidebar-alexeyevsukhoi-albatros/
http://www.astronautix.com/a/albatros.html.
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#hydrofoiling #hydrofoil The Hydrofoil Albatros Rocket](https://i.ytimg.com/vi/BD-HAEY2ndg/mqdefault.jpg)






