Sub-orbital spaceflight

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File:Riding on a Sounding Rocket.webm
Video of sub-orbital spaceflight of Black Brant IX sounding rocket
Sub-orbital human spaceflight (FAI-defined space border)
Name Year Flights Location
Mercury-Redstone 3
Mercury-Redstone 4
1961 2 Cape Canaveral
X-15 Flight 90
X-15 Flight 91
1963 2 Edwards AFB
Soyuz 18a 1975 1 Baikonur Cosmodrome
SpaceShipOne Flight 15P
SpaceShipOne Flight 16P
SpaceShipOne Flight 17P
2004 3 Mojave Air and Space Port
Blue Origin NS-16<ref name=sn20210720>Template:Cite news</ref>
Blue Origin NS-18
Blue Origin NS-19
2021 3 Corn Ranch
Blue Origin NS-20
Blue Origin NS-21

Blue Origin NS-22

2022 3
Blue Origin NS-25
Blue Origin NS-26
Blue Origin NS-28
2024 3
Blue Origin NS-30
Blue Origin NS-31
Blue Origin NS-32
2025 3
Sub-orbital human spaceflight (United States-defined space border; excluding those above)
Name Year Flights Location
X-15 Flight 62 1962 1 Edwards AFB
X-15 Flight 77
X-15 Flight 87
1963 2
X-15 Flight 138
X-15 Flight 143
X-15 Flight 150
X-15 Flight 153
1965 4
X-15 Flight 174 1966 1
X-15 Flight 190
X-15 Flight 191
1967 2
X-15 Flight 197 1968 1
Soyuz MS-10 2018 1 Baikonur Cosmodrome
VSS Unity VP-03 2018 1 Mojave Air and Space Port
VSS Unity VF-01 2019 1
VSS Unity Unity21
VSS Unity Unity22
2021 2 Spaceport America
VSS Unity Unity25
Galactic 01
Galactic 02
Galactic 03
Galactic 04
Galactic 05
2023 6 Spaceport America
Galactic 06
Galactic 07
2024 2 Spaceport America

A sub-orbital spaceflight is a spaceflight in which the spacecraft reaches outer space, but its trajectory intersects the surface of the gravitating body from which it was launched. Hence, it will not complete one orbital revolution, will not become an artificial satellite nor will it reach escape velocity.

For example, the path of an object launched from Earth that reaches the Kármán line (about Template:CvtTemplate:Cvt<ref>Template:Cite journal</ref> above sea level), and then falls back to Earth, is considered a sub-orbital spaceflight. Some sub-orbital flights have been undertaken to test spacecraft and launch vehicles later intended for orbital spaceflight. Other vehicles are specifically designed only for sub-orbital flight; examples include crewed vehicles, such as the X-15 and SpaceShipTwo, and uncrewed ones, such as ICBMs and sounding rockets.

Flights which attain sufficient velocity to go into low Earth orbit, and then de-orbit before completing their first full orbit, are not considered sub-orbital. Examples of this include flights of the Fractional Orbital Bombardment System.

A flight that does not reach space is still sometimes called sub-orbital, but cannot officially be classified as a "sub-orbital spaceflight". Usually a rocket is used, but some experimental sub-orbital spaceflights have also been achieved via the use of space guns.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

Altitude requirementEdit

File:Newton Cannon.svg
Isaac Newton's Cannonball. Paths A and B depict a sub-orbital trajectory.

By definition, a sub-orbital spaceflight reaches an altitude higher than Template:Convert above sea level. This altitude, known as the Kármán line, was chosen by the Fédération Aéronautique Internationale because it is roughly the point where a vehicle flying fast enough to support itself with aerodynamic lift from the Earth's atmosphere would be flying faster than orbital speed.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> The US military and NASA award astronaut wings to those flying above Template:Convert,<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> although the U.S. State Department does not show a distinct boundary between atmospheric flight and spaceflight.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

OrbitEdit

During freefall the trajectory is part of an elliptic orbit as given by the orbit equation. The perigee distance is less than the radius of the Earth R including atmosphere, hence the ellipse intersects the Earth, and hence the spacecraft will fail to complete an orbit. The major axis is vertical, the semi-major axis a is more than R/2. The specific orbital energy <math>\epsilon</math> is given by:

<math display="block">\varepsilon = -{\mu \over {2a}} > -{\mu \over {R}}\,\!</math>

where <math>\mu\,\!</math> is the standard gravitational parameter.

Almost always a < R, corresponding to a lower <math>\epsilon</math> than the minimum for a full orbit, which is <math>-{\mu \over {2R}}\,\!</math>

Thus the net extra specific energy needed compared to just raising the spacecraft into space is between 0 and <math>\mu \over{2R}\,\!</math>.

Speed, range, and altitudeEdit

To minimize the required delta-v (an astrodynamical measure which strongly determines the required fuel), the high-altitude part of the flight is made with the rockets off (this is technically called free-fall even for the upward part of the trajectory). (Compare with Oberth effect.) The maximum speed in a flight is attained at the lowest altitude of this free-fall trajectory, both at the start and at the end of it.Template:Citation needed

If one's goal is simply to "reach space", for example in competing for the Ansari X Prize, horizontal motion is not needed. In this case the lowest required delta-v, to reach 100 km altitude, is about 1.4 km/s. Moving slower, with less free-fall, would require more delta-v.Template:Citation needed

Compare this with orbital spaceflights: a low Earth orbit (LEO), with an altitude of about 300 km, needs a speed around 7.7 km/s, requiring a delta-v of about 9.2 km/s. (If there were no atmospheric drag the theoretical minimum delta-v would be 8.1 km/s to put a craft into a 300-kilometer high orbit starting from a stationary point like the South Pole. The theoretical minimum can be up to 0.46 km/s less if launching eastward from near the equator.)Template:Citation needed

For sub-orbital spaceflights covering a horizontal distance the maximum speed and required delta-v are in between those of a vertical flight and a LEO. The maximum speed at the lower ends of the trajectory are now composed of a horizontal and a vertical component. The higher the horizontal distance covered, the greater the horizontal speed will be. (The vertical velocity will increase with distance for short distances but will decrease with distance at longer distances.) For the V-2 rocket, just reaching space but with a range of about 330 km, the maximum speed was 1.6 km/s. Scaled Composites SpaceShipTwo which is under development will have a similar free-fall orbit but the announced maximum speed is 1.1 km/s (perhaps because of engine shut-off at a higher altitude).Template:Citation neededTemplate:Update inline

For larger ranges, due to the elliptic orbit the maximum altitude can be much more than for a LEO. On a 10,000-kilometer intercontinental flight, such as that of an intercontinental ballistic missile or possible future commercial spaceflight, the maximum speed is about 7 km/s, and the maximum altitude may be more than 1300 km. Any spaceflight that returns to the surface, including sub-orbital ones, will undergo atmospheric reentry. The speed at the start of the reentry is basically the maximum speed of the flight. The aerodynamic heating caused will vary accordingly: it is much less for a flight with a maximum speed of only 1 km/s than for one with a maximum speed of 7 or 8 km/s.Template:Citation needed

The minimum delta-v and the corresponding maximum altitude for a given range can be calculated, d, assuming a spherical Earth of circumference Template:Val and neglecting the Earth's rotation and atmosphere. Let θ be half the angle that the projectile is to go around the Earth, so in degrees it is 45°×d/Template:Val. The minimum-delta-v trajectory corresponds to an ellipse with one focus at the centre of the Earth and the other at the point halfway between the launch point and the destination point (somewhere inside the Earth). (This is the orbit that minimizes the semi-major axis, which is equal to the sum of the distances from a point on the orbit to the two foci. Minimizing the semi-major axis minimizes the specific orbital energy and thus the delta-v, which is the speed of launch.) Geometrical arguments lead then to the following (with R being the radius of the Earth, about 6370 km):

<math display="block">\text{major axis} = (1 + \sin\theta)R</math>

<math display="block">\text{minor axis} = R\sqrt{2\left(\sin\theta + \sin^2\theta\right)} = \sqrt{R\sin(\theta)\text{semi-major axis}}</math>

<math display="block">\text{distance of apogee from centre of Earth} = \frac{R}{2}(1 + \sin\theta + \cos\theta)</math>

<math display="block">\text{altitude of apogee above surface} = \left(\frac{\sin\theta}{2} - \sin^2\frac{\theta}{2}\right)R = \left(\frac{1}{\sqrt{2}}\sin\left(\theta + \frac{\pi}{4}\right) - \frac{1}{2}\right)R</math>

The altitude of apogee is maximized (at about 1320 km) for a trajectory going one quarter of the way around the Earth (Template:Val). Longer ranges will have lower apogees in the minimal-delta-v solution.

<math display="block">\text{specific kinetic energy at launch} = \frac{\mu}{R} - \frac\mu\text{major axis} = \frac{\mu}{R}\frac{\sin\theta}{1 + \sin\theta}</math>

<math display="block">\Delta v = \text{speed at launch} = \sqrt{2\frac{\mu}{R}\frac{\sin\theta}{1 + \sin\theta}} = \sqrt{2gR\frac{\sin\theta}{1 + \sin\theta}}</math>

(where g is the acceleration of gravity at the Earth's surface). The Δv increases with range, leveling off at 7.9 km/s as the range approaches Template:Val (halfway around the world). The minimum-delta-v trajectory for going halfway around the world corresponds to a circular orbit just above the surface (of course in reality it would have to be above the atmosphere). See lower for the time of flight.

An intercontinental ballistic missile is defined as a missile that can hit a target at least 5500 km away, and according to the above formula this requires an initial speed of 6.1 km/s. Increasing the speed to 7.9 km/s to attain any point on Earth requires a considerably larger missile because the amount of fuel needed goes up exponentially with delta-v (see Rocket equation).

The initial direction of a minimum-delta-v trajectory points halfway between straight up and straight toward the destination point (which is below the horizon). Again, this is the case if the Earth's rotation is ignored. It is not exactly true for a rotating planet unless the launch takes place at a pole.<ref name="tpticbm">Template:Cite journal</ref>

Flight durationEdit

In a vertical flight of not too high altitudes, the time of the free-fall is both for the upward and for the downward part the maximum speed divided by the acceleration of gravity, so with a maximum speed of 1 km/s together 3 minutes and 20 seconds. The duration of the flight phases before and after the free-fall can vary.Template:Citation needed

For an intercontinental flight the boost phase takes 3 to 5 minutes, the free-fall (midcourse phase) about 25 minutes. For an ICBM the atmospheric reentry phase takes about 2 minutes; this will be longer for any soft landing, such as for a possible future commercial flight.Template:Citation needed Test flight 4 of the SpaceX 'Starship' performed such a flight with a lift off from Texas and a simulated soft touchdown in the Indian Ocean 66 minutes after liftoff.

Sub-orbital flights can last from just seconds to days. Pioneer 1 was NASA's first space probe, intended to reach the Moon. A partial failure caused it to instead follow a sub-orbital trajectory, reentering the Earth's atmosphere 43 hours after launch.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

To calculate the time of flight for a minimum-delta-v trajectory, according to Kepler's third law, the period for the entire orbit (if it did not go through the Earth) would be:

<math display="block">\text{period} = \left(\frac{\text{semi-major axis}}{R}\right)^\frac{3}{2} \times \text{period of low Earth orbit} = \left(\frac{1 + \sin\theta}2\right)^\frac{3}{2}2\pi\sqrt{\frac{R}{g}}</math>

Using Kepler's second law, we multiply this by the portion of the area of the ellipse swept by the line from the centre of the Earth to the projectile:

<math display="block">\text{area fraction} = \frac{1}{\pi}\arcsin\sqrt{\frac{2\sin\theta}{1 + \sin\theta}} + \frac{2\cos\theta\sin\theta}{\pi\text{(major axis)(minor axis)}}</math>

<math display="block">\begin{align}

 \text{time of flight}
   &= \left(\left(\frac{1 + \sin\theta}2\right)^\frac{3}{2}\arcsin\sqrt{\frac{2\sin\theta}{1 + \sin\theta}} + \frac{1}{2}\cos\theta\sqrt{\sin\theta}\right)2\sqrt\frac{R}{g} \\
   &= \left(\left(\frac{1 + \sin\theta}2\right)^\frac{3}{2}\arccos\frac{\cos\theta}{1 + \sin\theta} + \frac{1}{2}\cos\theta\sqrt{\sin\theta}\right)2\sqrt\frac{R}{g} \\

\end{align}</math>

This gives about 32 minutes for going a quarter of the way around the Earth, and 42 minutes for going halfway around. For short distances, this expression is asymptotic to <math>\sqrt{2d/g}</math>.

From the form involving arccosine, the derivative of the time of flight with respect to d (or θ) goes to zero as d approaches Template:Val (halfway around the world). The derivative of Δv also goes to zero here. So if d = Template:Val, the length of the minimum-delta-v trajectory will be about Template:Val, but it will take only a few seconds less time than the trajectory for d = Template:Val (for which the trajectory is Template:Val long).

Flight profilesEdit

File:Mr3-flight-timeline-simple.png
Profile for the first crewed American sub-orbital flight, 1961. Launch rocket lifts the spacecraft for the first 2:22 minutes. Dashed line: zero gravity.
File:Science and Mechanics Nov 1931 cover.jpg
Science and Mechanics cover of November 1931, showing a proposed sub-orbital spaceship that would reach an altitude Template:Convert on its one-hour trip from Berlin to New York.

While there are a great many possible sub-orbital flight profiles, it is expected that some will be more common than others.

File:X-15.jpg
The X-15 (1958–1968) was launched to an altitude of 13.7 km by a B-52 mothership, lifted itself to approximately 100 km, and then glided to the ground.

Ballistic missilesEdit

The first sub-orbital vehicles which reached space were ballistic missiles. The first ballistic missile to reach space was the German V-2, the work of the scientists at Peenemünde, on October 3, 1942, which reached an altitude of Template:Convert.<ref>Germany's V-2 Rocket, Kennedy, Gregory P.</ref> Then in the late 1940s the US and USSR concurrently developed missiles all of which were based on the V-2 Rocket, and then much longer range Intercontinental Ballistic Missiles (ICBMs). There are now many countries who possess ICBMs and even more with shorter range Intermediate Range Ballistic Missiles (IRBMs).Template:Citation needed

Tourist flightsEdit

Sub-orbital tourist flights will initially focus on attaining the altitude required to qualify as reaching space. The flight path will be either vertical or very steep, with the spacecraft landing back at its take-off site.

The spacecraft will shut off its engines well before reaching maximum altitude, and then coast up to its highest point. During a few minutes, from the point when the engines are shut off to the point where the atmosphere begins to slow down the downward acceleration, the passengers will experience weightlessness.

Megaroc had been planned for sub-orbital spaceflight by the British Interplanetary Society in the 1940s.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref><ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

In late 1945, a group led by M. Tikhonravov K. and N. G. Chernysheva at the Soviet NII-4 academy (dedicated to rocket artillery science and technology), began work on a stratospheric rocket project, VR-190, aimed at vertical flight by a crew of two pilots, to an altitude of 200 km (65,000 ft) using captured V-2.<ref>Template:Cite book</ref>

In 2004, a number of companies worked on vehicles in this class as entrants to the Ansari X Prize competition. The Scaled Composites SpaceShipOne was officially declared by Rick Searfoss to have won the competition on October 4, 2004, after completing two flights within a two-week period.

In 2005, Sir Richard Branson of the Virgin Group announced the creation of Virgin Galactic and his plans for a 9-seat capacity SpaceShipTwo named VSS Enterprise. It has since been completed with eight seats (one pilot, one co-pilot and six passengers) and has taken part in captive-carry tests and with the first mother-ship WhiteKnightTwo, or VMS Eve. It has also completed solitary glides, with the movable tail sections in both fixed and "feathered" configurations. The hybrid rocket motor has been fired multiple times in ground-based test stands, and was fired in a powered flight for the second time on 5 September 2013.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> Four additional SpaceShipTwos have been ordered and will operate from the new Spaceport America. Commercial flights carrying passengers were expected in 2014, but became cancelled due to the disaster during SS2 PF04 flight. Branson stated, "[w]e are going to learn from what went wrong, discover how we can improve safety and performance and then move forwards together."<ref>"Branson on Virgin Galactic crash: 'Space is hard – but worth it'". CNET. Retrieved August 1, 2015.</ref>

Scientific experimentsEdit

A major use of sub-orbital vehicles today is as scientific sounding rockets. Scientific sub-orbital flights began in the 1920s when Robert H. Goddard launched the first liquid fueled rockets, however they did not reach space altitude. In the late 1940s, captured German V-2 ballistic missiles were converted into V-2 sounding rockets which helped lay the foundation for modern sounding rockets.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> Today there are dozens of different sounding rockets on the market, from a variety of suppliers in various countries. Typically, researchers wish to conduct experiments in microgravity or above the atmosphere.

Sub-orbital transportationEdit

Research, such as that done for the X-20 Dyna-Soar project suggests that a semi-ballistic sub-orbital flight could travel from Europe to North America in less than an hour.

However, the size of rocket, relative to the payload, necessary to achieve this, is similar to an ICBM. ICBMs have delta-v's somewhat less than orbital; and therefore would be somewhat cheaper than the costs for reaching orbit, but the difference is not large.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

Due to the high cost of spaceflight, suborbital flights are likely to be initially limited to high value, very high urgency cargo deliveries such as courier flights, military fast-response operations or space tourism.Template:Opinion

The SpaceLiner is a hypersonic suborbital spaceplane concept that could transport 50 passengers from Australia to Europe in 90 minutes or 100 passengers from Europe to California in 60 minutes.<ref>Template:Cite journal</ref> The main challenge lies in increasing the reliability of the different components, particularly the engines, in order to make their use for passenger transportation on a daily basis possible.

SpaceX is potentially considering using their Starship as a sub-orbital point-to-point transportation system.<ref name=trati20190530>Template:Cite news</ref>

Notable uncrewed sub-orbital spaceflightsEdit

{{#invoke:citation/CS1|citation |CitationClass=web }}</ref>

  • Albert II, a male rhesus macaque, became the first mammal in space on 14 June 1949 in a sub-orbital flight from Holloman Air Force Base in New Mexico to an altitude of 83 miles (134 km) aboard a U.S. V-2 sounding rocket.
  • USSR – Energia, 15 May 1987, a Polyus payload which failed to reach orbit
  • SpaceX IFT-7, 16 January 2025, a Starship flight test which blew up during ascent, forcing airline flights to alter course to avoid falling debris and setting back Elon Musk's flagship rocket program.<ref>{{#invoke:citation/CS1|citation

|CitationClass=web }}</ref><ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> There were also numerous reports of damage on the ground.<ref>{{#invoke:citation/CS1|citation |CitationClass=web }}</ref> It is, to date, the most massive object launched into a sub-orbital trajectory.

Crewed sub-orbital spaceflightsEdit

Above 100 km (62.14 mi) in altitude.Template:Efn

Template:Suborbital spaceflight timeline.svg

Date (GMT) Mission Crew Country Remarks
1 1961-05-05 Mercury-Redstone 3 Alan Shepard Template:USA First crewed sub-orbital spaceflight, first American in space
2 1961-07-21 Mercury-Redstone 4 Virgil Grissom Template:USA Second crewed sub-orbital spaceflight, second American in space
3 1963-07-19 X-15 Flight 90 Joseph A. Walker Template:USA First winged craft in space
4 1963-08-22 X-15 Flight 91 Joseph A. Walker Template:USA First person and spacecraft to make two flights into space
5 1975-04-05 Soyuz 18a Vasili Lazarev
Oleg Makarov
Template:USSR Failed orbital launch. Aborted after malfunction during stage separation
6 2004-06-21 SpaceShipOne flight 15P Mike Melvill Template:USA First commercial spaceflight
7 2004-09-29 SpaceShipOne flight 16P Mike Melvill Template:USA First of two flights to win Ansari X-Prize
8 2004-10-04 SpaceShipOne flight 17P Brian Binnie Template:USA Second X-Prize flight, clinching award
9 2021-07-20 Blue Origin NS-16 Jeff Bezos
Mark Bezos
Wally Funk
Oliver Daemen
Template:USA First crewed Blue Origin flight
10 2021-10-13 Blue Origin NS-18 Audrey Powers
Chris Boshuizen
Glen de Vries
William Shatner
Template:USA Second crewed Blue Origin flight
11 2021-12-11 Blue Origin NS-19 Template:Nowrap
Michael Strahan
Dylan Taylor
Evan Dick
Lane Bess
Cameron Bess
Template:USA Third crewed Blue Origin flight
12 2022-03-31 Blue Origin NS-20 Template:Nowrap
Sharon Hagle
Marc Hagle
Jim Kitchen
George Nield
Gary Lai
Template:USA Fourth crewed Blue Origin flight
13 2022-06-04 Blue Origin NS-21 Evan Dick
Katya Echazarreta
Hamish Harding
Victor Correa Hespanha
Jaison Robinson
Victor Vescovo
Template:USA Fifth crewed Blue Origin flight
14 2022-08-04 Blue Origin NS-22 Coby Cotton
Mário Ferreira
Vanessa O'Brien
Clint Kelly III
Sara Sabry
Steve Young
Template:USA Sixth crewed Blue Origin flight
15 2024-05-19 Blue Origin NS-25 Mason Angel
Sylvain Chiron
Ed Dwight
Kenneth Hess
Carol Schaller
Gopichand Thotakura
Template:USA Seventh crewed Blue Origin flight
16 2024-08-29 Blue Origin NS-26 Nicolina Elrick
Rob Ferl
Eugene Grin
Eiman Jahangir
Karsen Kitchen
Ephraim Rabin
Template:USA Eighth crewed Blue Origin flight
17 2024-11-22 Blue Origin NS-28 Henry (Hank) Wolfond
Austin Litteral
James (J.D.) Russell
Sharon Hagle
Marc Hagle
Emily Calandrelli
Template:USA Ninth crewed Blue Origin flight
18 2025-02-25 Blue Origin NS-30 Lane Bess
Jesús Calleja
Tushar Shah
Richard Scott
Elaine Chia Hyde
Russell Wilson
Template:USA Tenth crewed Blue Origin flight
19 2025-04-14 Blue Origin NS-31 Aisha Bowe
Amanda Nguyen
Gayle King
Katy Perry
Lauren Sánchez
Kerianne Flynn
Template:USA Eleventh crewed Blue Origin flight. All female crew.
20 2025-05-31 Blue Origin NS-32 Dr. Gretchen Green
Jesse Williams
Aymette (Amy) Medina Jorge
Paul Jeris
Jaime Alemán
Mark Rocket I
Template:USA Twelfth crewed Blue Origin flight.

Crewed vertically-launched suborbital flightsEdit

Most manned rocket flights were either orbital spaceflights or flights of rocket-powered aircraft, which were launched horizontally. Manned vertically launched suborbital flights were before the first launch of New Shepard rare and often the result of a failure of a manned rocket for orbital spaceflight. The following list shows all manned vertically launched suborbital rocket flights.

Date (GMT) Mission Crew Launch vehicle Apogee Country Remarks
1961-05-05 Mercury-Redstone 3 Alan Shepard Mercury-Redstone Launch Vehicle 187.5 km Template:USA first American in space
1961-07-21 Mercury-Redstone 4 Virgil Grissom Mercury-Redstone Launch Vehicle 190.3 km Template:USA second American in space
1975-04-05 Soyuz 18a Vasili Lazarev
Oleg Makarov
Soyuz 192 km Template:USSR Failed orbital launch. Aborted after malfunction during stage separation
1983-09-26 Soyuz 7K-ST No.16L Vladimir Titov
Gennadi Strekalov
Soyuz 0.65 km Template:USSR Launch abort
1986-01-28 STS-25 Francis R. "Dick" Scobee
Michael J. Smith
Ellison S. Onizuka
Judith A. Resnik
Ronald E. McNair
Gregory B. Jarvis
S. Christa McAuliffe
Space Shuttle Challenger 20 km Template:USA Space Shuttle Challenger disaster, all astronauts on board were killed
2014-01-30 Hughes 1 Mike Hughes self-built rocket 0.419 km Template:USA Mike Hughes got injured
2018-03-24 Hughes 2 Mike Hughes self-built rocket 0.572 km Template:USA
2018-10-11 Soyuz MS-10 Aleksey Ovchinin
Nick Hague
Soyuz 93 km {{#invoke:flag }} Failed orbital launch
2020-02-22 Hughes 3 Mike Hughes self-built rocket 1.5 km Template:USA Mike Hughes killed at crash landing as parachute was destroyed at launch
2021-07-20 Blue Origin NS-16 Jeff Bezos
Mark Bezos
Wally Funk
Oliver Daemen
New Shepard 107 km Template:USA First crewed Blue Origin flight
2021-10-13 Blue Origin NS-18 Audrey Powers
Chris Boshuizen
Glen de Vries
William Shatner
New Shepard 107 km Template:USA Second crewed Blue Origin flight
2021-12-11 Blue Origin NS-19 Template:Nowrap
Michael Strahan
Dylan Taylor
Evan Dick
Lane Bess
Cameron Bess
New Shepard 107 km Template:USA Third crewed Blue Origin flight
2022-03-31 Blue Origin NS-20 Template:Nowrap
Sharon Hagle
Marc Hagle
Jim Kitchen
George Nield
Gary Lai
New Shepard 107 km Template:USA Fourth crewed Blue Origin flight
2022-06-04 Blue Origin NS-21 Evan Dick
Katya Echazarreta
Hamish Harding
Victor Correa Hespanha
Jaison Robinson
Victor Vescovo
New Shepard 107 km Template:USA Fifth crewed Blue Origin flight
2022-08-04 Blue Origin NS-22 Coby Cotton
Mário Ferreira
Vanessa O'Brien
Clint Kelly III
Sara Sabry
Steve Young
New Shepard 107 km Template:USA Sixth crewed Blue Origin flight
2024-05-19 Blue Origin NS-25 Mason Angel
Sylvain Chiron
Ed Dwight
Kenneth Hess
Carol Schaller
Gopichand Thotakura
New Shepard 107 km Template:USA Seventh crewed Blue Origin flight
2024-08-29 Blue Origin NS-26 Nicolina Elrick
Rob Ferl
Eugene Grin
Eiman Jahangir
Karsen Kitchen
Ephraim Rabin
New Shepard 105 km Template:USA Eighth crewed Blue Origin flight
2024-11-22 Blue Origin NS-28 Henry (Hank) Wolfond
Austin Litteral
James (J.D.) Russell
Sharon Hagle
Marc Hagle
Emily Calandrelli
New Shepard 107 km Template:USA Ninth crewed Blue Origin flight
2025-02-25 Blue Origin NS-30 Lane Bess
Jesús Calleja
Tushar Shah
Richard Scott
Elaine Chia Hyde
Russell Wilson
New Shepard 107 km Template:USA Tenth crewed Blue Origin flight
2025-04-14 Blue Origin NS-31 Aisha Bowe
Amanda Nguyen
Gayle King
Katy Perry
Lauren Sánchez
Kerianne Flynn
New Shepard 106 km Template:USA Eleventh crewed Blue Origin flight

Future of crewed sub-orbital spaceflightEdit

Private companies such as Virgin Galactic, Armadillo Aerospace (reinvented as Exos Aerospace), Airbus,<ref>Template:Cite news</ref> Blue Origin and Masten Space Systems are taking an interest in sub-orbital spaceflight, due in part to ventures like the Ansari X Prize. NASA and others are experimenting with scramjet-based hypersonic aircraft which may well be used with flight profiles that qualify as sub-orbital spaceflight. Non-profit entities like ARCASPACE and Copenhagen Suborbitals also attempt rocket-based launches.

Suborbital spaceflight projectsEdit

See alsoEdit

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NotesEdit

Template:Notelist

ReferencesEdit

Template:Reflist

Template:Spaceflight