Oberth was born into aTransylvanian Saxon family in Nagyszeben (Hermannstadt),Kingdom of Hungary (todaySibiu inRomania);[6] and besides his nativeGerman, he was fluent inHungarian andRomanian as well. At the age of 11, Oberth's interest in rocketry was sparked by the novels ofJules Verne, especiallyFrom the Earth to the Moon andAround the Moon. He was fond of reading them over and over until they were engraved in his memory.[7] As a result, Oberth constructed his firstmodel rocket as a school student at the age of 14. In his youthful experiments, he arrived independently at the concept of themultistage rocket. During this time, however, he lacked the resources to put his ideas into practice.
In 1912, Oberth began studying medicine inMunich,Germany, but afterWorld War I broke out, he was drafted into theImperial German Army, assigned to an infantry battalion, and sent to theEastern Front againstRussia. In 1915, Oberth was moved into a medical unit at a hospital inSegesvár (German: Schäßburg; Romanian: Sighișoara),Transylvania, in Austria-Hungary (today Romania).[8] There he found the spare time to conduct a series of experiments concerningweightlessness, and later resumed his rocketry designs. By 1917, he showed designs of a missile using liquid propellant with a range of 290 km (180 mi) toHermann von Stein, thePrussian Minister of War.[9]
On 6 July 1918, Oberth married Mathilde Hummel, with whom he had four children. Among Oberth's children, one lost his life as a soldier duringWorld War II. His daughter, Ilse (born 1924), died on August 28, 1944, in an accidental explosion at the Redl-Zipf V-2 rocket engine test facility and liquid oxygen plant where she worked as a rocket technician.
In 1919, Oberth once again moved to Germany, this time to study physics, initially in Munich and later at theUniversity of Göttingen.In 1922, Oberth's proposed doctoral dissertation on rocket science was rejected as "utopian". However, professorAugustin Maior of theUniversity of Cluj in Romania offered Oberth the opportunity to defend his original dissertation there in order to receive a doctorate.[10] He did so successfully on 23 May 1923.[8] He next had his 92-page work published privately in June 1923 as the somewhat controversial book,Die Rakete zu den Planetenräumen[11] (The Rocket into Planetary Space).[12] By 1929, Oberth had expanded this work to a 429-page book titledWege zur Raumschiffahrt (Ways to Spaceflight).[13] Oberth commented later that he made the deliberate choice not to write another doctoral dissertation. He wrote, "I refrained from writing another one, thinking to myself: Never mind, I will prove that I am able to become a greater scientist than some of you, even without the title of Doctor."[14] Oberth criticized theGerman system of education, saying "Our educational system is like an automobile which has strong rear lights, brightly illuminating the past. But looking forward, things are barely discernible."[14]
Oberth became in 1927 a member of theVerein für Raumschiffahrt (VfR) – the "Spaceflight Society" – an amateur rocketry group that had taken great inspiration from his book, and Oberth acted as something of a mentor to the enthusiasts who joined the Society, which included persons such asWernher von Braun, Rolf Engel,Rudolf Nebel orPaul Ehmayr. Oberth lacked the opportunities to work or to teach at the college or university level, as did many well-educated experts in the physical sciences and engineering in the time period of the 1920s through the 1930s – with the situation becoming much worse during the worldwideGreat Depression that started in 1929. Therefore, from 1924 through 1938, Oberth supported himself and his family by teachingphysics andmathematics at theStephan Ludwig Roth High School inMediaș, Romania.[8]
During portions of 1928 and 1929, Oberth served as a scientific advisor in Berlin for the filmWoman in the Moon, which was written byThea von Harbou and directed and produced byFritz Lang, in collaboration with theUniversum Film AG company. The film was of enormous value in popularizing the ideas of rocketry and space exploration. One of Oberth's main assignments was to build and launch a rocket as a publicity event just before the film's premiere. He also designed the model of theFriede, the main rocket portrayed in the film.
On June 5, 1929, Oberth won the inauguralPrix REP-Hirsch (REP-Hirsch Award) from theFrench Astronomical Society. This honor recognized his significant contributions to the field of astronautics and interplanetary travel, specifically highlighted in his bookWege zur Raumschiffahrt[13] ("Ways to Spaceflight"). The book, an expanded version ofDie Rakete zu den Planetenräumen ("The Rocket to Interplanetary Space"), secured his position as a prominent figure in the field.[15] The volume is dedicated to Lang and von Harbou.[13]
Opel RAK.1 - world's first public flight of a manned rocket-powered plane on September 30, 1929
Oberth's studentMax Valier joined forces withFritz von Opel to create the world's first large-scale experimental rocket programOpel-RAK, leading to speed records for ground and rail vehicles and the world's first rocket plane.Opel RAK.1, a purpose-built design byJulius Hatry,[16] was demonstrated to the public and world media on September 30, 1929, piloted by von Opel. Valier's and von Opel's demonstrations had a strong and long-lasting impact on later spaceflight pioneers, in particular on another of Oberth's students,Wernher von Braun.
Shortly after the Opel RAK team's successful liquid-fuel rocket launches of April 10 and 12, 1929 byFriedrich Wilhelm Sander at Opel Rennbahn in Rüsselsheim, Oberth conducted in the autumn of 1929 a static firing of his first liquid-fueled rocket motor, which he named theKegeldüse. The engine was built byKlaus Riedel in a workshop space provided by the Reich Institution of Chemical Technology, and although it lacked a cooling system, it did run briefly.[17] He was helped in this experiment by an 18-year-old student Wernher von Braun, who would later become a giant in both German and American rocket engineering from the 1940s onward, culminating with the giganticSaturn V rockets that made it possible for man to land on the Moon in 1969 and in several following years. Indeed, Von Braun said of him:
Hermann Oberth was the first who, when thinking about the possibility of spaceships, grabbed aslide-rule and presented mathematically analyzed concepts and designs ... I, myself, owe to him not only the guiding-star of my life, but also my first contact with the theoretical and practical aspects of rocketry and space travel. A place of honor should be reserved in the history of science and technology for his ground-breaking contributions in the field of astronautics.[2]
In 1923, Oberth's bookThe Rocket to the Planetary Spaces was published.[11] This publication is generally regarded as a kind of initial spark for rocket and space travel enthusiasm in Germany. Many later rocket engineers were inspired by his precise and comprehensive theoretical considerations and his bold conclusions.[18] The work sparked heated debates, known at the time as the Battle of the Many Formulas. The second edition appeared in 1925, and it was also sold out after a short time.[19]In his book, Oberth puts forward the following theses:
Premise 1: With the current level of science and technology, the construction of machines that can fly higher than the Earth's atmosphere is likely.
Premise 2: With further refinement, these machines can reach such speeds that they do not have to fall back to the Earth's surface and are even able to leave the Earth's sphere of attraction.
Premise 3: Such machines can be built in such a way that people (probably without health problems) can ride up with them.
Premise 4: Under certain economic conditions, the construction of such machines can be worthwhile. Such conditions can occur in a few decades.
With the launch ofSputnik (1957) and the flight ofYuri Gagarin (1961) into space, these ideas, which were still completely utopian at the beginning of the 1920s, became a reality less than four decades later.Marsha Freeman writes, "The rockets were only a means to an end, his goal was space travel."[20] Oberth thought of interplanetary space travel, of a multiplanetary humanity. In his first book in 1923 he gives the first "outlook":He goes into more detail on physical and physical-chemical, as well as physiological experiments in weightless space, on the space telescope, research into the solar corona, the space station for Earth observation and the space mirror in Earth orbit for influencing the weather[11]The third, greatly expanded edition of his first book was published by Oberth in 1929 with the new titleWays to Spaceflight.[13] In the years that followed, the book became the standard work for space exploration and rocket technology and was called the "Bible of scientificastronautics" by the French aviation and rocket pioneerRobert Esnault-Pelterie.[19]: 117 In this book, Oberth describes possible uses of his two-stage rocket, among other things on pages 285 to 333 thecrewed space flight includingspace suit for external use, thespace telescope forEarth observation and the duration of interplanetary flights, on pages 333 to 350 his ideas and the theoretical basis forspace stations innear Earth orbit from 700 to 1200 km above the ground for Earth and weather observation and as a starting point for flights to the Moon and to the planets, on pages 336 to 351 he explains the construction and function of the space mirror[11][13] he invented in 1923 with 100 bis 300 km in diameter in Earth orbit, with which, among other things, the weather is to be influenced in a targeted regional manner or the solar radiation is to be weakened in a targeted regional manner.On pages 350 to 386 in the chapter "Journeys to Strange Worlds", Hermann Oberth presents his scientific considerations and calculations for flights (including landings) to theMoon, toasteroids, toMars, toVenus, toMercury and tocomets.
In 1923, Oberth initially outlined the concept of his space mirrors in his bookDie Rakete zu den Planetenräumen (The Rocket to Interplanetary Space). These mirrors, with diameters ranging from 100 to 300 km, were envisioned to be composed of a grid network consisting of individually adjustable facets.
Oberth's concept of space mirrors in orbit around the Earth serves the purpose of focusing sunlight on specific regions of the planet's surface or redirecting it into space. This approach differs from creating shaded areas at the Lagrange point between the Earth and the Sun, as it does not involve diminishing solar radiation across the entire exposed surface. According to Oberth, these colossal orbital mirrors possess the potential to illuminate individual cities, safeguard against natural disasters, manipulate weather patterns and climate, and even create additional living space for billions of people. He places significant emphasis on their capacity to influence the trajectories of barometric high and low-pressure areas. However, it is important to acknowledge that the implementation of suchclimate engineering interventions, including space mirrors, requires further extensive research before their practical applicability can be fully realized.
Further publications followed in which he took into account the technical progress achieved up to that point:Ways to Spaceflight (1929),Menschen im Weltraum. Neue Projekte für Raketen-und Raumfahrt (People in Space. New Projects for Rocket and Space, 1957), andDer Weltraumspiegel (The Space Mirror, 1978).
To optimize costs, Oberth's concept proposes the utilization of lunar minerals for producing components on the Moon. The Moon's lower gravitational pull necessitates less energy for launching these components into lunar orbit. Additionally, the Earth's atmosphere is spared the burden of numerous rocket launches. The envisioned process involves launching the components from the lunar surface into lunar orbit using an electromagnetic lunar slingshot, subsequently "stacking" them at a 60° libration point. These components could then be transported into orbit via electric spaceships, designed by Oberth with minimal recoil. Once in orbit, the components would be assembled into mirrors with diameters ranging from 100 to 300 km. Oberth's estimate in 1978 suggested that the realization of this concept could occur between 2018 and 2038.
Oberth emphasized that these mirrors could potentially serve as weapons. Given this aspect, coupled with the complexity of the project, the realization of these mirrors would only be feasible as a peace initiative undertaken by humanity.[11][13]: 87–88 [21][22][23]
In 2023, the space mirror devised by Oberth is categorized within the field of Climate Engineering, specifically under Solar Radiation Management (SRM) as a subset of Space-Mirrors. The associated risks of these deliberate interventions in weather and climate are also examined and deliberated upon within this classification.
Hermann Oberth published his concept of a moving and jumping lunar vehicle for future, extensive lunar exploration in 1953.[24][25] In his considerations, he assumed that large distances should be covered quickly and that extensive fissures/ravines or impassable terrain that block the way should be overcome so that large detours can be avoided.The vehicle, which would weigh about 10000 kg on Earth and only 1654 kg on the Moon due to the weak gravitational pull, would be built on Earth, transported to the Moon and dropped on the lunar surface. The tower-like structure has only one leg and it stands on a tracked chassis with a footprint of 2.5 m x 2.5 m. A motor with51.5 kW of power is sufficient to drive at a speed of up to 150 km/h, depending on the terrain. The required energy in the form of electrical current is supplied by the solar power plant above the crew cabin and the gyroscope. The leg is a gas-tight cylinder in which the 4.5 m long "jumping leg" can move up and down like a piston in a shock absorber and can be extended and retracted for jumping. The powerful gyroscope above the crew cabin keeps the vehicle vertical and ensures that the vehicle can never tilt more than 45 degrees. The jumps could be up to 125 m high and several 100 m wide. Jumping would occur if the vehicle had to overcome an impassable area or fissures/ravines, or if it had to get from a higher location (e.g. a mountain terrace) to a lower location or vice versa.[26]Oberth writes: "I wanted to present my readers not just with a rough sketch of the lunar car, but with drawings and descriptions based on precise calculations and designs. So I racked my brains over hundreds of details, calculated, compared, constructed, rejected and re-planned until the design was such that I could present it with a clear conscience. Now I can say: I am sure that my moon car can be built."Feasibility studies or development work on Oberth's lunar vehicle have not begun by 2023 because there are no concrete plans for lunar exploration in which such a large vehicle could be used.
The principle of ion propulsion was first presented in 1929 by the space pioneer Hermann Oberth in his workWays to Spaceflight,[13] which is referred to as the "Bible of Space Technology",[19]: 117 in which he describes for the first time the physics, the function, the construction and the use for the interplanetary flight of an ion engine on pages 386 to 399.Oberth also presented at the 12th Rocket and Space Conference of the Deutsche Raketen-Gesellschaft (DRG) (German Rocket Society) in September 1963 in Hamburg, FRG a new idea for the electric spaceship.[27] Quote: "My proposal concerns an electric spaceship that does not emit ions and electrons, but rather nebula droplets that are 1,000 to 100,000 times larger in size depending on the project and to form an ion or electron as a condensation nucleus."
From 1923 to 1938 Oberth worked — with short breaks in 1929 and 1930 — as a high school teacher for physics and mathematics in his home region,Transylvania in Romania.[19] The Romanian Oberth, who was professionally known worldwide and had many foreign contacts, was regarded as a security risk for the secrecy of the development work on theV-2, the world's first large rocket, in Peenemünde.Therefore, from June 1938 he was given a two-year research contract with the German Research Institute for Aviation (DVL) at the Vienna University of Technology and then from July 1940 at the University of Technology Dresden.[28]When he wanted to return to Transylvania in May 1941, he received German citizenship and was conscripted in August 1941 under the alias "Friedrich Hann"[29]: 58 to the Army Research Institute Peenemünde, where the V-2 rocket was developed under the direction ofWernher von Braun.Oberth was not involved in this work,[29]: 58 [18]: 150 [28]: 157–164 [30]: 101 but placed in the patent review,[31]: 144 [18]: 94 and wrote various reports, for example "About the best outline of multi-stage rockets" and about "Defense against enemy planes with large, remote-controlled solid missile".[31][18](Oberth criticized the V-2 design because, in his view, it was too complicated and too expensive for military purposes. He would have developed a solid fuel rocket for the V-2's intended purposes.)[19] Around September 1943, he was awarded theWar Merit Cross 1st Class, with Swords for his "outstanding, courageous behavior ... during the attack" on Peenemünde on the night of the 17th and 18th August byOperation Hydra, part ofAllied operations against the German rocket programme.[5] In December 1943 Oberth asked for his transfer[30]: 101 to WASAG in Reinsdorf near Wittenberg/FRG to develop the anti-aircraft solid missile recommended by him.He fled there in April 1945, had to go to two different US internment camps, was released in August 1945 as a "person unaffected by the Nazi era", and came to live with his family near Nuremberg inFeucht,[19][20][18] where his family had moved in 1943.[19]
Hermann Oberth (forefront) with officials of theArmy Ballistic Missile Agency at Huntsville, Alabama in 1956. Left to right around Oberth:Ernst Stuhlinger (seated), Major GeneralHolger Toftoy, Commanding Officer responsible for "Project Paperclip",Wernher von Braun, Director, Development Operations Division,Robert Lusser, a Project Paperclip engineer who returned to Germany in 1959.
Oberth was not involved in the American "Project Paperclip" because he was not involved in the development of the V-2. For Oberth there was no employment in Germany, either as a teacher of physics or mathematics or as a scientist, so he went to Switzerland in 1948 and worked there as a scientific consultant and an author for the specialist journalInteravia. In the years 1950 to 1953 he was in the service of theItalian Navy and developed a solid fuel rocket. In 1953, Oberth returned to Feucht, Germany, to publish his bookMenschen im Weltraum (Man into Space), in which he described his ideas for space-basedreflecting telescopes, space stations, electric-powered spaceships, and space suits. Oberth worked from 1955 for his former assistant Wernher von Braun, who was developing space rockets for NASA in Huntsville, Alabama. Among other things, Oberth was involved in preparing the study "The Development of Space Technology in the Next Ten Years". In 1958, Oberth returned to Feucht, Germany, where he published his ideas for a lunar exploration vehicle, a "moon catapult", and "damped" helicopters and airplanes. In 1961, Oberth returned to the United States, where he worked for theConvair Corporation as a technical consultant for theAtlas missile program. He retired in 1962.[31][20][28][19]
During the 1950s and 1960s, Oberth offered his opinions regardingunidentified flying objects (UFOs). He was a supporter of theextraterrestrial hypothesis for the origin of the UFOs that were seen from Earth. For example, in an article inThe American Weekly magazine of 24 October 1954, Oberth stated: "It is my thesis that flying saucers are real, and that they are space ships from another solar system. I think that they possibly are manned by intelligent observers who are members of a race that may have been investigating our earth for centuries".[32] He also published in the second edition ofFlying Saucer Review, an article titled, "They Come From Outer Space". He discussed the history of reports of "strange luminous objects" in the sky, mentioning that the earliest historical case is of "Shining Shields" reported byPliny the Elder. He wrote, "Having weighed all the pros and cons, I find the explanation of flying discs from outer space the most likely one. I call this the "Uraniden" hypothesis, because from our viewpoint the hypothetical beings appear to come from the sky (Greek – 'Uranos')."[33]
Wernher von Braun holds the coveted Hermarn Oberth award presented to him by Oberth during the banquet hosted by the Alabama Section of the American Rocket Society (ARS), on October 19, 1961. Hermann Oberth wearsOrder of Merit of the Federal Republic of Germany.
The1973 oil crisis inspired Oberth to look into alternative energy sources, including a plan for awind power station that could utilize thejet stream. However, his primary interest during his retirement years was to turn to more abstract philosophical questions. Most notable among his several books from this period isPrimer For Those Who Would Govern.
Oberth returned to the United States to view the launch ofSTS-61-A, a mission carried out by the Space ShuttleChallenger, on 30 October 1985.
1927: Honorary member of the GermanVerein für Raumschiffahrt (Space Flight Association), Berlin
1929: International Award for Astronautics (Robert Esnault-Pelterie-Hirsch-Award) of theSociété astronomique de France, Paris
1946: Honorary Member of the Astronautical Section of theFrench Academy of Sciences, Paris
1948: Honorary President of theGesellschaft für Weltraumforschung (Society for Space Research), Stuttgart, Germany
1949: Honorary memberships of theBritish Interplanetary Society, London /Dansk Selskab for Rumfartsforskening, Copenhagen /Pacific Rocket Society /Detroit Rocket Society and ofNorthwest German Society for Space Flight
1950: TheGesellschaft für Weltraumforschung (Society for Space Research) donates the Hermann Oberth Medal
1951: Honorary President of theDetroit Rocket Society
1952: Honorary President of theDeutsche Raketen-Gesellschaft (German Rocket Society), Bremen, Germany
1952: Honorary President of theVereinigte Astronautische Vereinigung (United Astronautical Association), Leipzig
1953: Honorary member of theSchweizerischen Arbeitsgemeinschaft für Raumfahrt (Swiss Association for Astronautics), Lucerne
1954: Diesel Medal in gold from theDeutschen Erfinderverbandes (German Inventors' Association), Nuremberg
1954: Honorary memberships of theAustrian Society for Space Research, Vienna and of theGerman Association of Inventors
1955: Plaque of Honor of theAmerican Astronautical Society
1956: Edward Pendray Award from theAmerican Rocket Society, New York
1958: TheAmerican Astronautical Society donates the Hermann Oberth Award
1959: TheAmerican Rocket Society donates the Hermann Oberth Award
1960: Honorary Member of theHellenic Astronautical Society, Athens, Greece
1961: Honorary Doctorate fromWesley College in Mount Pleasant (Iowa, US)
1961:Order of Merit of the Federal Republic of Germany, Great Cross of Merit, Order of Merit of the FRG
1961: Awarded theYuri Gagarin Medal
1961: Honorary memberships of theAssociation Internazionale "Uomini nello Sazio", Rome and ofCentro Italiano Ricerche Elettroniche Nuclear, Rome
1961: Hat of Honor and Golden Key of theCity of El Paso, US
1962: Prix Galabert, Paris
1962: Odre du Merite pour la Recherche et l'Invention of the Société d'Encouragement pour la he et l'Invention, Paris
1963: Honorary Member of theSpanish Astronautical Association
1963: Honorary doctorate Dr.-Ing. eh of theTechnische Universität Berlin
1963: TheDeutsche Raketen-Gesellschaft (German Rocket Society) is renamed toHermann-Oberth-Gesellschaft, todayDeutsche Gesellschaft für Luft- und Raumfahrt, Lilienthal – Oberth
1963: Joseph-Ritter-von-Prechtl-Medal of theUniversity of Vienna
1963: Honorary memberships of thePortuguese Astronautical Association and ofSociety for Interplanetary Science, Vienna
1965: Pioneer necklace of the compass rose with brilliant from theInternational Committee of Aerospace Activities
1968: Honorary member of theDeutsche Gesellschaft für Luft- und Raumfahrtmedizin (German Society for Aerospace Medicine)
1969: Honorary doctorate from theUniversitat Politècnica de Catalunya[38]
1969: Medal of theInternational Academy for Astronautics (IAA)
1969: TheHermann Oberth Society donates the Hermann Oberth Ring of Honor and a Hermann Oberth Award
1969: Honorary Member of theAmerican Institute of Aeronautics and Astronautics (AIAA) and AIAA Medal of Honor
1969: Honorary member of theÖsterreichischen Gesellschaft für Weltraumforschung und Flugkörpertechnik (Austrian Society for Space Research and Missile Technology), Vienna
1969: Honorary Member of theCentro de Estudios Interplanetaios, Madrid
1969: Golden Key of theCity of Cleveland, Ohio, US
1969: Badge of honor from theOstdeutschen Kulturrats. Stiftung für kulturelle Zusammenarbeit (East German Cultural Council. Foundation for Cultural Cooperation), Bonn
1969: Founding of theInternationaler Förderkreis für Raumfahrt Hermann Oberth - Wernher von Braun (International Promotional Group for Astronautics, Hermann Oberth – Wernher von Braun), Nuremberg, Germany
1970: TheHermann Oberth-Geselllschaft donates the Hermann Oberth Medal in Gold
1970: Wilhelm Exner Medal in gold from theÖsterreichischen Gewerbeverband (Austrian Trade Association), Vienna
1970: Culture Award of theTransylvanian Saxons Landsmannschaft in Germany and Austria
1971: Opening of theHermann Oberth Raumfahrt-Museum (Hermann Oberth Space Flight Museum) in Feucht/Nuremberg, Germany
1972: Honorary doctorate from theBabeș Bolyai University in Cluj-Napoca (Klausenburg), Romania
1974: Scientific Order of Merit 1st Class of theSocialist Republic of Romania
1974: Dozens of 80th birthday medals and honors
1976: Hermann Oberth monument in the city park of Feucht/Nuremberg, Germany
1976: Oberth department in the Technical Museum, Bucharest, Romania
1979: Jubilee Congress in Salzburg on the occasion of the 85th birthday
1981: Relief portrait in the main hall ofBerlin-Tegel Airport[39]
1982: Tsiolkovsky Medal from theUSSR Academy of Sciences
1984: Honorary doctorate from theTechnische Universität Graz, Austria
1984: Cross of Merit of the Bavarian Order of Merit, Munich, Germany
1984: Golden Ring of Honor of theDeutsches Museum, Munich, Germany
1984: Leibnitz plaque of honor from theAkademie der Wissenschaften der DDR (Academy of Sciences, GDR)
1985:Order of Merit of the Federal Republic of Germany, Grand Cross of Merit with star, Order of Merit of FRG
1997: A moon crater is named after Hermann Oberth.[40]
1999: An asteroid is named after Hermann Oberth: (9253) Oberth
Hermann Oberth School in Mediaș, Romania
Hermann Oberth kindergarten and high school in Bucharest, Romania
Hermann Oberth Faculty of Engineering in Hermannstadt at the Lucian Blaga University, Romania
Hermann-Oberth-Place in Schaeßburg, Romania
Oberth effect – the effect for fuel-saving maneuvers in interplanetary space travel is named after him. He was the first to describe it.
Hermann Oberth is memorialized by theHermann Oberth Space Travel Museum inFeucht, Germany, and by theHermann Oberth Society. The museum brings together scientists, researchers, engineers, and astronauts from the East and the West to carry on his work in rocketry and space exploration.
In Romania, the Faculty of Engineering ofLucian Blaga University of Sibiu is named after him.[43] In 1994, amemorial house was established in Mediaș on the 100th anniversary of his birth. It exhibits various items related to rocket technology and space travel, and also has an audio-video room for documentary films.[44]
He discovered theOberth effect (powered flyby or Oberth maneuver), a fuel-saving strategy for interplanetary space flight that is commonly used today. There are alsoa crater on the Moon and asteroid9253 Oberth named after him.
InStar Trek III: The Search for Spock, the USSGrissom was classified as anOberth-class starship. Several otherOberth-class starships also appeared in subsequentStar Trek films and television series.
^abMort de Hermann Oberth, pionnier de la conquête spatiale ("The Death of Hermann Oberth, Space Conquest Pioneer"), inLe Monde, 1 January 1990, pp. 3, 16, accessed on 7 October 2006.
^Augustin Maior. 19 October 2016.Archived from the original on 11 September 2013. Retrieved19 October 2016.
^abcdeOberth, Hermann (1923).Die Rakete zu den Planetenräumen. Oldenburg, Munich, Germany.
^abcdeBrandau, Daniel (2019).Raketenträume, Raumfahrt- und Technikenthusiasmus in Deutschland 1923–1963 (Rocket dreams, space and technology enthusiasm in Germany 1923–1963). Schöning & Bill, Paderborn, FRG.
^abcdefghiBarth, Hans (1985).Hermann Oberth, Leben-Werk-Wirkung. Uni-Verlag, Feucht/FRG.
^Oberth, Hermann (1957).Menschen im Weltraum (in German). Econ Duesseldorf Germany. pp. 177–506.
^Oberth, Hermann (1957).Man into Space. Harper&Brothers. pp. 125–182.
^Oberth, Hermann (1978).Der Weltraumspiegel (in German). Kriterion Bucharest.
^Oberth, Hermann (1953). "Vom Ruhm allein kann man nicht leben" [You can't live on fame alone].Revue (in German). No. 32. Hamburg: Bauer.
^Büdeler, Werner (1954). "Das Mond-Auto kann springen" [The moon car can jump].Weltbild (in German). No. 1. Th. Martens.
^Oberth, Hermann (1959).The Moon Car. New York: Harper & Brothers. p. 41.
^Oberth, Hermann (1963).The electric spaceship. EBÖ-Druck und Verlag der DRG, Hannover, FRG, Bölkow-Library.
^abcRauschenbach, Boris (1995).Über die Erde hinaus, eine Biographie, Hermann Oberth (Beyond the Earth, a Biography, Hermann Oberth). Böttinger, Wiesbaden, FRG.
^abBode, Volkhard (1995).Raketenspuren, Waffenschmiede und Militärstandort Peenemünde (Rocket tracks, weaponsmiths and military base in Peenemünde). Links, Berlin, FRG.
^abBarber, Murray (2020).Die V2, Entwicklung-Technik-Einsatz (V2 - The A4 Rocket. From Peenemünde to Redstone). Motorbuch, Stuttgart, FRG.
^abcFritz, Alfred (1969).Der Weltraumprofessor Hermann Oberth (The space professor Hermann Oberth). Ensslin & Laibling, Reutlingen, FRG.
^Ernst Klee:Das Personenlexikon zum Dritten Reich. Wer war was vor und nach 1945. 2nd, revised edition. Fischer Taschenbuch Verlag, Frankfurt am Main 2005,ISBN3-596-16048-0, p. 442 referring to theRundbrief ofStille Hilfe 1/1990.
^Wolfgang Bahr:Namhafte Männer siebenbürgischer Pennalien. In:Junges Leben. 2/2012, pp. 13f.