Pioneer 10
Artist's conception of Pioneer 10 on its way to interstellar space | |||||||||||||||||||||||||
| Mission type | Planetary / Heliosphere exploration | ||||||||||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Operator | NASA / Ames | ||||||||||||||||||||||||
| COSPAR ID | 1972-012A | ||||||||||||||||||||||||
| SATCAT no. | 5860 | ||||||||||||||||||||||||
| Website | science.nasa.gov | ||||||||||||||||||||||||
| Mission duration | 30 years, 10 months and 21 days[1] | ||||||||||||||||||||||||
| Spacecraft properties | |||||||||||||||||||||||||
| Spacecraft | Pioneer F | ||||||||||||||||||||||||
| Manufacturer | TRW | ||||||||||||||||||||||||
| Launch mass | 258 kg[1] | ||||||||||||||||||||||||
| Power | 155 watts (at launch) | ||||||||||||||||||||||||
| Start of mission | |||||||||||||||||||||||||
| Launch date | March 3, 1972, 01:49:04 UTC[2] | ||||||||||||||||||||||||
| Rocket | Atlas SLV-3C Centaur-D Star-37E | ||||||||||||||||||||||||
| Launch site | Cape Canaveral LC-36A | ||||||||||||||||||||||||
| End of mission | |||||||||||||||||||||||||
| Disposal | Decommissioned | ||||||||||||||||||||||||
| Declared | 31 March 1997[3] | ||||||||||||||||||||||||
| Last contact | 27 April 2002 Last telemetry 23 January 2003[4] Last signal received | ||||||||||||||||||||||||
| Flyby of Jupiter | |||||||||||||||||||||||||
| Closest approach | December 3, 1973[5] | ||||||||||||||||||||||||
| Distance | 132,252 km (82,178 mi) | ||||||||||||||||||||||||
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Pioneer 10 (originally designated Pioneer F) is a NASA space probe launched in 1972 that completed the first mission to the planet Jupiter. It was the first spacecraft to traverse the asteroid belt and the first of five artificial objects to achieve the escape velocity needed to leave the Solar System. The mission was managed by NASA Ames Research Center in California, and the spacecraft was built by TRW Inc.
The spacecraft was built around a hexagonal satellite bus with a 2.74 m (9.0 ft) diameter parabolic high-gain antenna and was spin-stabilized about the antenna axis. Electrical power was supplied by four radioisotope thermoelectric generators (RTGs), which produced a combined 155 watts at launch.
Pioneer 10 was launched on March 3, 1972, at 01:49:00 UTC (March 2 local time), aboard an Atlas-Centaur rocket from Cape Canaveral Launch Complex 36A. Between July 15, 1972, and February 15, 1973, it became the first spacecraft to pass through the asteroid belt. Imaging of Jupiter began on November 6, 1973, from a distance of 25 million km (16 million mi), and the spacecraft returned more than 500 images. Its closest approach to Jupiter was on December 3, 1973, passing within 132,252 km (82,178 mi) of the planet. During the mission, its scientific instruments investigated the asteroid belt, the environment of Jupiter, the solar wind, cosmic rays, and the outer heliosphere.
The last signal from Pioneer 10 was received on January 23, 2003, after declining electrical power from its RTGs left the spacecraft unable to operate its radio transmitter. At that time, it was about 80 AU (12 billion km; 7.4 billion mi) from Earth.
Mission background
[edit]History
[edit]In the 1960s, aerospace engineer Gary Flandro of NASA's Jet Propulsion Laboratory proposed the Planetary Grand Tour, a mission concept that would take advantage of a rare alignment of the Solar System's outer planets. Although the concept was ultimately realized in the late 1970s by the Voyager program, NASA decided in 1964 to test key elements of the mission by sending two probes to the outer Solar System.[6] An advocacy group, the Outer Space Panel, chaired by James A. Van Allen, developed the scientific rationale for exploring the outer planets.[7][8] NASA's Goddard Space Flight Center proposed a pair of "Galactic Jupiter Probes" that would pass through the asteroid belt and explore Jupiter. The spacecraft were planned for launch in 1972 and 1973 during launch windows that occurred for only a few weeks every 13 months; launching outside those windows would have required significantly more propellant.[9]
NASA approved the mission in February 1969.[9] Before launch, the two spacecraft were designated Pioneer F and Pioneer G; they were later renamed Pioneer 10 and Pioneer 11, respectively. They formed part of the Pioneer program,[10] a series of uncrewed U.S. space missions launched between 1958 and 1978. Pioneer 10 and Pioneer 11 were the first spacecraft in the program designed to explore the outer Solar System. Their primary objectives were to investigate the interplanetary medium beyond Mars, study the asteroid belt, assess potential hazards to spacecraft passing through it, and explore Jupiter and its environment.[11]
More than 150 scientific experiments were proposed for the missions.[12] The final instrument payload, selected through a series of planning meetings during the 1960s and completed by early 1970, was designed to image and perform polarimetric observations of Jupiter and several of its moons, conduct infrared and ultraviolet observations of Jupiter, detect asteroids and meteoroids, determine the composition of charged particles, and measure magnetic fields, plasma, cosmic rays, and zodiacal light.[11] Radio tracking during the spacecraft's occultation by Jupiter would provide measurements of the planet's atmosphere, while precision tracking data would improve estimates of the masses of Jupiter and its moons.[11]
NASA Ames Research Center, rather than Goddard, was selected to manage the project as part of the Pioneer program.[9] Ames, under the direction of Charles F. Hall, was chosen because of its experience with spin-stabilized spacecraft. The mission required a small, lightweight, magnetically clean spacecraft capable of operating in interplanetary space, and its design incorporated hardware previously proven on Pioneer 6 through Pioneer 9.[11]
In February 1970, NASA awarded TRW Inc. a US$380 million contract to build both spacecraft without a competitive bidding process in order to meet the mission schedule. B. J. O'Brien and Herb Lassen led the team responsible for assembling the spacecraft.[13] Their design and construction required an estimated 25 million man-hours.[14] One TRW engineer joked, "This spacecraft is guaranteed for two years of interplanetary flight. If any component fails within that warranty period, just return the spacecraft to our shop and we will repair it free of charge."[15]
To meet the original schedule, the first spacecraft would have had to launch between February 29 and March 17 to reach Jupiter in November 1974. The launch plan was later revised to target an arrival in December 1973, avoiding conflicts with other missions using the Deep Space Network and the period when Earth and Jupiter would be on opposite sides of the Sun. Pioneer 10's flyby trajectory was chosen to maximize scientific observations of Jupiter's radiation environment, even though mission planners expected some spacecraft systems to be damaged by the intense radiation. The planned closest approach, about three Jupiter radii from the planet's center, was considered the minimum safe distance that would still allow the spacecraft to survive the encounter while providing an unobstructed view of the sunlit hemisphere.[16]
A backup spacecraft, Pioneer H, is on display in the "Milestones of Flight" gallery at the National Air and Space Museum.[17] Many aspects of the Pioneer 10 mission informed the planning and design of the Voyager program.[18]
- Pioneer 10 in the final stages of construction (December 1971)
- Pioneer 10 tested in a space simulation chamber (January 1972)
- Pioneer 10 on a Star-37E kick motor just prior to being encapsulated for launch (February 1972)
- Pioneer 10 during encapsulation into payload fairing
Spacecraft design
[edit]
The Pioneer 10 spacecraft bus was a hexagonal structure 36 cm (14 in) deep, with six panels, each 76 cm (30 in) long. It housed the propellant system used for attitude control and contained eight of the spacecraft's 11 scientific instruments. The equipment compartment was enclosed in an aluminum honeycomb structure that provided protection against meteoroid impacts. Passive thermal control was provided by multilayer insulation made of aluminized Mylar and Kapton blankets. Heat generated by the spacecraft's electronics, ranging from 70 to 120 watts (W), was dissipated through louvers beneath the mounting platform, which maintained the equipment within its operating temperature limits.[3] At launch, the spacecraft had a mass of about 260 kg (570 lb).[11]: 42
Pioneer 10 carried 36 kg (79 lb) of liquid hydrazine monopropellant in a spherical tank 42 cm (17 in) in diameter.[3] Its orientation was controlled by six 4.5 N hydrazine thrusters arranged in three pairs.[19] One pair maintained the spacecraft's spin rate of 4.8 rpm, another provided trajectory correction maneuvers, and the third controlled attitude adjustments. The attitude thrusters also performed conical scanning maneuvers, allowing the spacecraft to maintain communication with Earth throughout the mission.[20] Attitude information was provided by a star tracker that used Canopus as a reference and by two Sun sensors.[21]
Communication system
[edit]Pioneer 10 carried a redundant communications system with two transceivers. One was connected to the narrow-beam high-gain antenna, and the other to the omnidirectional and medium-gain antennas. The high-gain antenna consisted of a 2.74 m (9.0 ft) parabolic dish made of aluminum honeycomb sandwich construction. The spacecraft spun about an axis aligned with the antenna, allowing it to remain pointed toward Earth.[3] Each transceiver had a power output of 8 W and operated in the S-band, receiving commands from Earth at 2110 MHz and transmitting data at 2292 MHz for the downlink. The spacecraft was tracked by NASA's Deep Space Network. Telemetry was encoded with convolutional coding, enabling most transmission errors to be resolved via error detection and correction by ground-based receiving equipment.[11]: 43 At launch, the data transmission rate was 256 bit/s, decreasing by about 1.27 millibit/s per day over the course of the mission.[3]
Power
[edit]
Pioneer 10 was powered by four SNAP-19 radioisotope thermoelectric generators (RTGs). The RTGs were mounted on two three-rod trusses, each 3 m (9.8 ft) long and separated by 120 degrees, to minimize interference with the spacecraft's sensitive scientific instruments. Together, they produced about 155 W of electrical power at launch, declining to about 140 W by the time the spacecraft reached Jupiter. The spacecraft required approximately 100 W to operate all of its systems.[11]: 44–45 The RTGs were fueled by plutonium-238 contained in multilayer capsules protected by graphite heat shields.[22]
The SNAP-19 generators were designed to provide power for at least two years, a requirement that Pioneer 10 greatly exceeded.[23] Because plutonium-238 has a half-life of 87.74 years, radioactive decay reduced the RTGs' output only gradually. A more significant decline resulted from the degradation of the thermocouples that converted heat into electricity. By 2001, the RTGs produced only 65 W, limiting spacecraft operations to a small number of instruments at any one time.[3]
Computers
[edit]Most of Pioneer 10's computing was performed on the ground, with command sequences transmitted to the spacecraft. The spacecraft could store up to five commands simultaneously from a library of 222 command sequences prepared by mission controllers. Its onboard command system comprised two command decoders integrated with a command distribution unit that provided limited processing capability and controlled spacecraft operations. Because of these limitations, mission operators had to prepare command sequences well in advance. A data storage unit could record up to 6,144 bytes of scientific data, while a digital telemetry unit formatted the data into one of 13 transmission formats before sending it to Earth.[11]: 38
Scientific instruments
[edit]| Helium Vector Magnetometer (HVM) | |
|
Measured the fine structure of the interplanetary magnetic field, mapped the Jovian magnetic field, and provided magnetic field measurements to evaluate solar wind interaction with Jupiter. The magnetometer system consisted of a helium-filled cell mounted on a 6.6 m boom to partly isolate the instrument from the spacecraft's magnetic field.[24]
| |
| Quadrispherical Plasma Analyzer | |
|
Measured particles in the solar wind emitted by the Sun.[25]
| |
| Charged Particle Instrument (CPI) | |
|
Detected cosmic rays in the Solar System.[27]
| |
| Cosmic Ray Telescope (CRT) | |
|
Collected data on the energy and composition of cosmic-ray particles.[28]
| |
| Geiger Tube Telescope (GTT) | |
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Surveyed the intensities, energy spectra, and angular distributions of electrons and protons along the spacecraft's path through Jupiter's radiation belts.[29]
| |
| Trapped Radiation Detector (TRD) | |
|
Consisted of an unfocused Cherenkov counter that detected light emitted by charged particles as they passed through it. It measured electrons with energies between 0.5 to 12 MeV, electrons from 100 to 400 keV using an electron scatter detector, and minimum-ionizing particles with energies below 3 MeV and protons with energies from 50 to 350 MeV using a solid-state diode detector.[30]
| |
| Meteoroid Detectors | |
|
Consisted of 12 panels of pressurized cell detectors mounted on the back of the main dish antenna that recorded penetrating impacts of small meteoroids.[31]
| |
| Asteroid/Meteoroid Detector (AMD) | |
|
Looked into space with four non-imaging telescopes and tracked particles which ranged from nearby microscopic dust to distant asteroids.[32]
| |
| Ultraviolet Photometer | |
|
Sensed ultraviolet light (200 to 800 Å) to measure the abundance of hydrogen and helium in interplanetary space and Jupiter’s atmosphere.[33]
| |
| Imaging Photopolarimeter (IPP) | |
|
Relied on the spacecraft's rotation to scan the planet with a small telescope in narrow strips only 0.03 degrees wide, looking at the planet in red (5800 to 7000 Å) and blue (3900 to 4900 Å) light. These strips were then processed to build up a visual image of the planet.[34]
| |
| Infrared Radiometer | |
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Provided information on cloud temperature and the output of heat from Jupiter.[35]
| |
Mission profile
[edit]Launch and trajectory
[edit]

Pioneer 10 · Earth · Jupiter
Pioneer 10 was launched on March 3, 1972, at 01:49:00 UTC (8:49 p.m. Eastern Standard Time on March 2) from Cape Canaveral Launch Complex 36A, aboard an Atlas-Centaur launch vehicle. The vehicle's third stage was a solid-fuel Star-37E stage (TE-M-364-4) developed specifically for the Pioneer program. It provided about 67 kilonewtons (15,000 lbf) of thrust and spun the spacecraft to an initial rotation rate of 30 rpm.[36] Twenty minutes after launch, the spacecraft's three booms were deployed, reducing the rotation rate to 4.8 rpm, which was maintained for the rest of the mission. The launch vehicle accelerated Pioneer 10 for 17 minutes, reaching a velocity of 51,682 km/h (32,114 mph).[37]
After contact was established through the high-gain antenna, several instruments were activated for testing as the spacecraft traversed Earth's radiation belts. Ninety minutes after launch, Pioneer 10 reached interplanetary space.[37] It passed the Moon 11 hours after launch[38] and became the fastest human-made object at the time.[39] Two days after launch, the scientific instruments were activated, beginning with the cosmic ray telescope. All instruments were operational within ten days.[38]
During the first seven months of its journey, Pioneer 10 performed three course corrections. The spacecraft's instruments underwent checkout procedures, during which photometers observed Jupiter and zodiacal light, while other instruments measured cosmic rays, magnetic fields, and the solar wind. The only significant anomaly during this period was the failure of the Canopus sensor, which required the spacecraft to maintain its orientation using its two Sun sensors.[37]
While traveling through the interplanetary medium, Pioneer 10 became the first mission to detect interplanetary helium atoms. It also detected high-energy ions of aluminum and sodium in the solar wind. In early August 1972, the spacecraft detected a solar shock wave from the solar storms of August 1972 at a distance of 2.2 AU (330 million km; 200 million mi), providing valuable data for heliophysics research.[40] On July 15, 1972, Pioneer 10 became the first spacecraft to enter the asteroid belt between Mars and Jupiter.[4] Mission planners expected it to pass safely through the belt, with the closest predicted approach to any known asteroid being 8.8 million km (5.5 million mi). One of the closest approaches was to the asteroid 307 Nike on December 2, 1972.[41]
The spacecraft's experiments revealed fewer particles below a micrometer (μm) in the asteroid belt than in near-Earth space. The density of dust particles between 10 and 100 μm remained nearly constant from Earth to the outer edge of the belt, while particles between 100 μm and 1.0 mm increased in density by a factor of three within the belt. No fragments larger than a millimeter were detected, indicating that such objects were much rarer than expected. Because Pioneer 10 encountered no large particles, it safely crossed the asteroid belt and emerged on the other side around February 15, 1973.[42][43]
Encounter with Jupiter
[edit]
Pioneer 10 · Jupiter · Io · Europa · Ganymede · Callisto

On November 6, 1973, Pioneer 10 was 25 million km (16 million mi) from Jupiter. Testing of its imaging system began, and the data were successfully received by the Deep Space Network. Mission controllers then uploaded 16,000 commands to guide the spacecraft through the next 60 days of flyby operations. Pioneer 10 passed the orbit of the outer moon Sinope on November 8. It reached the bow shock of Jupiter's magnetosphere on November 16, when the solar wind slowed from 451 km/s (280 mi/s) to 225 km/s (140 mi/s), and crossed the magnetopause the following day. The spacecraft also confirmed that Jupiter's magnetic field was inverted compared to Earth's. By November 29, it had crossed the orbits of all the outermost moons and continued to operate as planned.[44]
Pioneer 10's imaging photopolarimeter produced red and blue images as the spacecraft's rotation swept the instrument across Jupiter. These images were combined with a synthetic green channel to create full-color composites. By November 26, twelve such images had been received on Earth. By December 2, their quality surpassed the best Earth-based images of Jupiter available at the time. They were displayed in near real time, and the Pioneer program later received an Emmy Award for its public presentation of the mission. Motion of the spacecraft introduced geometric distortions that were later corrected through computer processing.[44] During the encounter, Pioneer 10 transmitted more than 500 images.[45]
The spacecraft's trajectory followed Jupiter's magnetic equator, where the ion radiation is concentrated.[46] Electron radiation there is about 10,000 times stronger than the maximum levels found around Earth.[47] Passing within 20 RJ through the inner radiation belts, Pioneer 10 received an integrated radiation dose of about 200,000 rads from electrons and 56,000 rads from protons. For comparison, a whole-body dose of 500 rads is fatal to humans.[48] Radiation levels proved to be about ten times higher than mission planners had predicted, raising concerns that the spacecraft would not survive the encounter. Beginning on December 3, the intense radiation caused false commands to be generated. Although contingency commands corrected most of them, some images of Io and close-up views of Jupiter were lost. Similar false commands occurred as the spacecraft departed the planet.[44] Despite these problems, Pioneer 10 successfully returned images of Ganymede and Europa. Images of Ganymede revealed low-albedo regions near the center and south pole, while the north pole appeared brighter. Europa was too distant for detailed imaging, although some albedo features were visible.[49]
Pioneer 10's trajectory carried it behind Io, allowing scientists to measure the effects of the moon's atmosphere on the spacecraft's radio signals. The observations showed that Io's ionosphere extended about 700 km (430 mi) above Io's dayside surface, with electron densities ranging from about 60,000 electrons per cubic centimeter on the dayside to 9,000 on the nightside. An unexpected discovery was that Io orbits within a hydrogen cloud extending about 805,000 km (500,000 mi), with a width and height of about 402,000 km (250,000 mi). A smaller hydrogen cloud, about 110,000 km (68,000 mi) across, was also believed to have been detected near Europa.[49]
NASA did not decide to use Jupiter's gravity to send Pioneer 10 out of the Solar System until after the spacecraft had passed across the asteroid belt. Pioneer 10 was the first spacecraft to perform such a gravity-assist maneuver, establishing a model for many later missions. Although this extended mission was not part of the original proposal, it was planned before launch.[50]
At closest approach, Pioneer 10 reached a speed of 132,000 km/h (82,000 mph; 37,000 m/s) and passed within 132,252 km (82,178 mi) of Jupiter's outer atmosphere.[51] It obtained close-up images of the Great Red Spot and the planet's terminator before communication was temporarily interrupted as the spacecraft passed behind Jupiter.[46] Radio occultation measurements revealed a temperature inversion in the upper atmosphere between the 10 and 100 mbar pressure levels. Temperatures ranged from −133 to −113 °C (140 to 160 K; −207 to −171 °F) at 10 mbar and from −183 to −163 °C (90.1 to 110.1 K; −297.4 to −261.4 °F) at 100 mbar.[52] Pioneer 10 also produced an infrared map confirming that Jupiter emits more heat than it receives from the Sun.[53]
As Pioneer 10 receded from Jupiter, it returned crescent views of the planet.[54] It also crossed Jupiter's magnetospheric bow shock several more times. Because the bow shock shifts in response to changes in the solar wind, the spacecraft crossed it 17 times before finally leaving Jupiter's magnetosphere.[55]
- Jupiter as imaged by Pioneer 10
- Jupiter close up as imaged by Pioneer 10
- Ganymede as imaged by Pioneer 10
- Europa as imaged by Pioneer 10
- Crescent Jupiter as imaged by Pioneer 10
Deep space
[edit]After its encounter with Jupiter, Pioneer 10 crossed Saturn's orbit in 1976 and Uranus's orbit in 1979.[56] On June 13, 1983, it crossed Neptune's orbit, becoming the first human-made object to pass beyond the orbits of the Solar System's major planets. The mission officially ended on March 31, 1997, when the spacecraft was 67 AU (10.0 billion km; 6.2 billion mi) from the Sun, although it continued to transmit usable data after that date.[3]
After the mission ended, the Deep Space Network continued to track Pioneer 10's increasingly weak radio signal to train flight controllers in techniques for acquiring deep-space spacecraft signals. Researchers also conducted a study for the NASA Institute for Advanced Concepts that applied chaos theory to recover coherent data from the fading transmission.[57]
The last successful reception of telemetry from Pioneer 10 occurred on April 27, 2002. Subsequent signals were too weak to provide usable data, although they could still be detected. The final signal from the spacecraft was received on January 23, 2003, when it was about 80 AU (12 billion km; 7.4 billion mi) from Earth.[58] Further attempts to contact the spacecraft were unsuccessful. A final transmission attempt was made on March 4, 2006, the last time the spacecraft's antenna was expected to be properly aligned with Earth, but no response was received.[59] NASA concluded that the output of the spacecraft's radioisotope thermoelectric generators had likely fallen below the level required to power the transmitter, and no further contact attempts were made.[60]
Timeline
[edit]

Plot 1 is viewed from the north ecliptic pole, to scale.
Plots 2 to 4 are third-angle projections at 20% scale.
In the SVG file, hover over a trajectory or orbit to highlight it and its associated launches and flybys.
| Date | Event |
|---|---|
1972-03-03 |
Spacecraft launched at 01:49:00 UTC. |
1972-06- |
Crossed orbit of Mars. |
1972-07-15 |
Entered asteroid belt. |
1973-02-15 |
Exited asteroid belt. |
1973-12 |
Start Jupiter observation phase. |
1973-12-03 |
Encounter with the Jovian system. |
12:26:00 |
Callisto flyby at 1,392,300 km (865,100 mi). |
13:56:00 |
Ganymede flyby at 446,250 km (277,290 mi). |
19:26:00 |
Europa flyby at 321,000 km (199,000 mi). |
22:56:00 |
Io flyby at 357,000 km (222,000 mi). |
1973-12-04 |
|
02:26:00 |
Jupiter closest approach at 200,000 km (120,000 mi). |
02:36:00 |
Jupiter equator plane crossing. |
02:41:45 |
Io occultation entry. |
02:43:16 |
Io occultation exit. |
03:42:25 |
Jupiter occultation entry. |
03:42:25 |
Jupiter shadow entry. |
04:15:35 |
Jupiter occultation exit. |
04:47:21 |
Jupiter shadow exit. |
1974-01-01 |
Phase end |
1974-01-01 |
Begin extended mission. |
| Extended mission | |
|---|---|
1983-04-25 |
Pioneer 10 crossed Pluto's orbit. Because of Pluto's highly eccentric orbit, it was closer to the Sun than Neptune at the time.[61] |
1983-06-13 |
Pioneer 10 crossed Neptune's orbit, then the outermost known planet, becoming the first human-made object to pass beyond the orbits of the Solar System's major planets.[1] At the time, TRW offered a recorded version of the spacecraft's data by telephone at 1-900-410-4111, created by slowing the data stream and converting it into audible sound.[62] |
1997-03-31 |
NASA officially ended the mission, although contact with the spacecraft continued to obtain telemetry.[63] |
1998-02-17 |
Voyager 1 overtakes Pioneer 10 as the most distant human-made object from the Sun, at 69.419 AU (10.4 billion km; 6.45 billion mi). Voyager 1 is moving away from the Sun over 1 AU per year faster than Pioneer 10.[63] |
2002-03-02 |
Successful telemetry reception: 39 minutes of error-free data were received from a distance of 79.83 AU (11.9 billion km; 7.42 billion mi).[64] |
2002-04-27 |
Last successful telemetry reception: 33 minutes of error-free data were received from a distance of 80.22 AU (12.0 billion km; 7.46 billion mi).[64] |
2003-01-23 |
Final signal received from the spacecraft. The transmission was extremely weak, and subsequent signals were barely detectable.[64] |
2003-02-07 |
An attempt to contact the spacecraft was unsuccessful.[64] |
2006-03-04 |
Final unsuccessful attempt to contact the spacecraft.[59] |
2023-07-18 |
Voyager 2 passed Pioneer 10 to become the second-most-distant spacecraft from the Sun.[65][66] |
Current status and future
[edit]
On July 18, 2023, Voyager 2 overtook Pioneer 10, making Pioneer 10 the third-most-distant spacecraft from the Sun, after Voyager 1 and Voyager 2.[65][66] As of July 2026, Pioneer 10 is estimated to be about 141.4 AU (21.2 billion km; 13.1 billion mi) from the Sun and 142.3 AU (21.3 billion km; 13.2 billion mi) from Earth.[67] Sunlight takes about 19.7 hours to reach the spacecraft, and the Sun appears at an apparent magnitude of −15.9.[67] Pioneer 10 is traveling in the direction of the constellation Taurus.[67]
If undisturbed, Pioneer 10, its sister spacecraft Pioneer 11, the two Voyager spacecraft, and New Horizons will continue through interstellar space. Pioneer 10's trajectory is directed toward Aldebaran, currently about 68 light-years from the Sun. If Aldebaran had no relative velocity with respect to the Solar System, Pioneer 10 would take more than two million years to reach its present location.[3][67] Long before then, in about 90,000 years, Pioneer 10 is expected to pass within about 0.23 parsecs (0.75 light-years) of HIP 117795, a late K-type star.[68]
Pioneer anomaly
[edit]Analysis of radio tracking data from Pioneer 10 and Pioneer 11 at distances between 20 and 70 AU from the Sun revealed a small but persistent anomalous Doppler frequency drift. The drift was consistent with a constant acceleration of (8.74 ± 1.33) × 10−10 m/s2 directed toward the Sun. Although researchers initially suspected an unidentified systematic error, no clear cause was found, prompting decades of investigation.[69] Analyses published in 2012 by physicist Slava Turyshev and his team revealed that the anomaly resulted from the anisotropic emission of thermal radiation from the spacecraft, which produced a small recoil force directed toward the Sun.[70][71]
Pioneer plaque
[edit]
Because it was strongly advocated by Carl Sagan,[13] Pioneer 10 and Pioneer 11 each carry a 152 by 229 mm (6.0 by 9.0 in) gold-anodized aluminum plaque intended as a message in the event that either spacecraft is ever discovered by intelligent extraterrestrial life. The plaque depicts nude male and female human figures alongside a series of symbolic diagrams designed to convey the spacecraft's origin.[72] It is mounted on the antenna support struts, where it is shielded from erosion by interstellar dust.[73]
Commemoration
[edit]On February 28, 1975, at Mountain View, California, the United States Postal Service issued a commemorative stamp depicting Pioneer 10.[74]
In popular culture
[edit]Pioneer 10 has appeared in several works of popular culture. In the 1989 film Star Trek V: The Final Frontier, a Klingon Bird-of-Prey destroys the spacecraft for target practice.[75] In the serialized speculative fiction multimedia narrative 17776, Pioneer 10 is portrayed as a sentient character. In the 1995 video game Chaos Control, an alien encounter with Pioneer 10 triggers a conflict between humanity and an extraterrestrial civilization.[76]
See also
[edit]References
[edit]- 1 2 3 "Pioneer 10 - NASA Science". science.nasa.gov. NASA. December 21, 2017. Retrieved August 10, 2023.
- ↑ R. B. Frauenholz; J. E. Ball (October 1972). A Summary of the Pioneer 10 Maneuver Strategy (PDF). Vol. 2. NASA / JPL.
- 1 2 3 4 5 6 7 8 John D. Anderson; Philip A. Laing; et al. (April 2002). "Study of the anomalous acceleration of Pioneer 10 and 11". Physical Review D. 65 (8) 082004. arXiv:gr-qc/0104064. Bibcode:2002PhRvD..65h2004A. doi:10.1103/PhysRevD.65.082004. S2CID 92994412.
- 1 2 Asif A. Siddiqi (September 20, 2018). Beyond Earth: A Chronicle of Deep Space Exploration, 1958–2016. The NASA History series (2nd ed.). Washington, DC: NASA. ISBN 978-1-626-83042-4. LCCN 2017059404. SP2018-4041.
- ↑ "The Pioneer Missions". nasa.gov. NASA. March 26, 2007. Archived from the original on June 29, 2011. Retrieved May 7, 2019.
- ↑ Launius 2004, p. 36.
- ↑ Van Allen 2001, p. 155.
- ↑ Burrows 1990, pp. 16.
- 1 2 3 Burrows 1999, p. 476.
- ↑ Burgess 1982, p. 16.
- 1 2 3 4 5 6 7 8 Richard O. Fimmel; William Swindell; Eric Burgess (August 1974). Pioneer Odyssey: Encounter with a Giant. NASA. Bibcode:1974ntrs.book02224F. 20190002224. Retrieved July 6, 2011.
- ↑ Simpson 2001, p. 144.
- 1 2 Dyer 1998, p. 302.
- ↑ Wolverton 2004, p. 124.
- ↑ "PIONEER BEAT 'WARRANTY'". Aviation Week. Retrieved September 15, 2017.
- ↑ Burrows 1990, pp. 16–19.
- ↑ "Milestones of Flight". Smithsonian National Air and Space Museum. Archived from the original on April 15, 2012. Retrieved June 7, 2011.
- ↑ Burrows 1990, pp. 266–8.
- ↑ Wade, Mark. "Pioneer 10-11". Encyclopedia Astronautica. Archived from the original on November 20, 2010. Retrieved February 8, 2011.
- ↑ "Weebau Spaceflight Encyclopedia". November 9, 2010. Retrieved January 12, 2012.
- ↑ Fimmel, van_Allen & Burgess 1980, pp. 46–47.
- ↑ E. A. Skrabek; J. W. McGrew (January 12–16, 1987). "Pioneer 10 and 11 RTG performance update". Transactions of the Fourth Symposium on Space Nuclear Power Systems. Albuquerque, New Mexico. pp. 201–204. Bibcode:1987snps.symp..201S.
- ↑ G. L. Bennett; E. A. Skrabek (March 26–29, 1996). "Power performance of US space radioisotope thermoelectric generators". Fifteenth International Conference on Thermoelectrics. Pasadena, California. pp. 357–372. doi:10.1109/ICT.1996.553506.
- ↑ Edward J. Smith. "Pioneer 10: Magnetic Fields". nssdc.gsfc.nasa.gov. NASA. Retrieved February 19, 2011.
- ↑ "Quadrispherical Plasma Analyzer". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- 1 2 3 4 5 6 7 8 9 10 Simpson 2001, p. 146.
- ↑ "Charged Particle Instrument (CPI)". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Cosmic-Ray Spectra". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Geiger Tube Telescope (GTT)". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Jovian Trapped Radiation". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Meteoroid Detectors". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Asteroid/Meteoroid Astronomy". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Ultraviolet Photometry". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Imaging Photopolarimeter (IPP)". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "Infrared Radiometers". NASA / National Space Science Data Center. Retrieved February 19, 2011.
- ↑ "NASA Glenn: Pioneer Launch History". NASA. March 7, 2003. Archived from the original on July 13, 2017. Retrieved June 13, 2011.
- 1 2 3 Rogers 1995, p. 23.
- 1 2 Fimmel, van_Allen & Burgess 1980, p. 73.
- ↑ Burrows 1990, pp. 17.
- ↑ D. J. Knipp; B. J. Fraser; M. A. Shea; D. F. Smart (2018). "On the Little-Known Consequences of the 4 August 1972 Ultra-Fast Coronal Mass Ejecta: Facts, Commentary and Call to Action". Space Weather. 16 (11): 1635–1643. Bibcode:2018SpWea..16.1635K. doi:10.1029/2018SW002024.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 75.
- ↑ "Pioneer 10 beats the asteroid belt". New Scientist. 57 (835). New Scientist Publications: 470. March 1, 1973.
- ↑ Burgess 1982, p. 32.
- 1 2 3 Fimmel, van_Allen & Burgess 1980, pp. 79–93.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 170.
- 1 2 Fimmel, van_Allen & Burgess 1980, p. 93.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 126.
- ↑ Garry E. Hunt; Patrick Moore (1981). Jupiter (1st ed.). London: Royal Astronomical Society. ISBN 978-0-528-81542-3.
- 1 2 Fimmel, van_Allen & Burgess 1980, p. 121.
- ↑ "NASA says 'bye bye Birdie' to Pioneer 10 Spacecraft". The Salina Journal. June 13, 1983. Retrieved December 6, 2017.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 79.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 135.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 141.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 90.
- ↑ Fimmel, van_Allen & Burgess 1980, pp. 123–124.
- ↑ Fimmel, van_Allen & Burgess 1980, p. 91.
- ↑ Tony Phillips (May 3, 2001). "Seven billion miles and counting". NASA. Archived from the original on May 10, 2015. Retrieved June 7, 2011.
- ↑ "This Month in History", Smithsonian magazine, June 2003.
- 1 2 Emily Lakdawalla (March 6, 2006). "The Final Attempt to Contact Pioneer 10". The Planetary Society. Archived from the original on June 16, 2006. Retrieved June 7, 2011.
- ↑ Angelo 2007, p. 221.
- ↑ John Noble Wilford (April 26, 1983). "Pioneer 10 Pushes Beyond Goals, Into the Unknown". The New York Times. Retrieved June 13, 2011.
- ↑ "The Galveston Daily News (June 19, 1983)". The Galveston Daily News. June 13, 1983. Retrieved January 8, 2014.
- 1 2 James A. Van Allen (February 17, 1998). "Update on Pioneer 10". University of Iowa. Retrieved January 9, 2011.
- 1 2 3 4 James A. Van Allen (February 20, 2003). "Termination of Pioneer 10's Mission". University of Iowa. Retrieved January 9, 2011.
- 1 2 "Distance between the Sun and Voyager 2".
- 1 2 "Distance between the Sun and Pioneer 10".
- 1 2 3 4 Chris Peat (September 9, 2012). "Spacecraft escaping the Solar System". Heavens Above. Retrieved September 9, 2019.
- ↑ Coryn A. L. Bailer-Jones; Davide Farnocchia (April 3, 2019). "Future stellar flybys of the Voyager and Pioneer spacecraft". Research Notes of the AAS. 3 (4): 59. arXiv:1912.03503. Bibcode:2019RNAAS...3...59B. doi:10.3847/2515-5172/ab158e. S2CID 134524048.
- ↑ R. R. Britt (October 18, 2004). "The Problem with Gravity: New Mission Would Probe Strange Puzzle". Space.com. Retrieved June 7, 2011.
- ↑ "Pioneer Anomaly Solved!". The Planetary Society. Archived from the original on April 22, 2012. Retrieved April 20, 2012.
- ↑ S. G. Turyshev; V. T. Toth; G. Kinsella; et al. (June 12, 2012). "Support for the Thermal Origin of the Pioneer Anomaly". Physical Review Letters. 108 (24) 241101. arXiv:1204.2507. Bibcode:2012PhRvL.108x1101T. doi:10.1103/PhysRevLett.108.241101. PMID 23004253.
- ↑ Carl Sagan; Linda Salzman Sagan & Frank Drake (February 25, 1972). "A Message from Earth". Science. 175 (4024): 881–884. Bibcode:1972Sci...175..881S. doi:10.1126/science.175.4024.881. PMID 17781060.
- ↑ Richard O. Fimmel; James A. van Allen; Eric Burgess. "The Plaque". NASA. Retrieved April 29, 2023.
- ↑ Batdorf, Lynn; Piazza, Jill. "Space Issues". National Postal Museum. Smithsonian Institution. Retrieved July 19, 2026.
- ↑ Michael Okuda; Denise Okuda; Debbie Mirek (May 17, 2011). The Star Trek Encyclopedia. Simon and Schuster. p. 1716. ISBN 978-1-4516-4688-7. Retrieved June 11, 2018.
- ↑ Infogrames (1995). Chaos Control (Philips CD-i, Sega Saturn, Sony PlayStation, MS-DOS, Apple Macintosh). Infogrames.
Opening narration describes Pioneer 10 being encountered by aliens, leading to the war.
Bibliography
[edit]- Angelo, Joseph A. (2007). Robot Spacecraft. Frontiers in Space. Facts on File Science Library. Infobase Publishing. ISBN 978-0-8160-5773-3.
- Burgess, Eric (1982). "Pioneer Odysseys". By Jupiter: Odysseys to a Giant. Columbia University Press. ISBN 978-0-231-05176-7.
- Burrows, William E. (1990). Exploring Space: Voyages in the Solar System and Beyond. Random House. ISBN 978-0-394-56983-3.
- Burrows, William E. (1999). This New Ocean: The Story of the First Space Age. Modern Library. Random House Digital, Inc. ISBN 978-0-375-75485-2.
- Dyer, Davis (1998). TRW: Pioneering Technology and Innovation since 1900. Harvard Business Press. ISBN 978-0-87584-606-4.
- Fimmel, Richard O.; van Allen, James; Burgess, Eric (1980). "Pioneer: First to Jupiter, Saturn, and Beyond" (PDF). NASA Special Publication. 446. Washington D.C., USA: NASA / Ames. ASIN B000IRXYN0. Bibcode:1980NASSP.446.....F. NASA-SP-446.
- Launius, Roger D. (2004). Frontiers of Space Exploration. Greenwood Press Guides to Historic Events of the Twentieth Century (2nd ed.). Greenwood Publishing Group. p. 36. ISBN 978-0-313-32524-3.
- Rogers, John Hubert (1995). The Giant Planet Jupiter. Practical Astronomy Handbook series. Vol. 6. Cambridge University Press. ISBN 978-0-521-41008-3.
- Simpson, J. A. (2001). "The Cosmic Radiation". In Johan A. M. Bleeker; Johannes Geiss; Martin C. E. Huber (eds.). The Century of Space Science. Vol. 1. Springer. p. 146. ISBN 978-0-7923-7196-0.
- Van Allen, James A. (2001). "Magnetospheric Physics". In Johannes Alphonsus Marie Bleeker; Arturo Russo (eds.). The Century of Space Science. Vol. 1. Springer. p. 155. ISBN 978-0-7923-7196-0.
- Wolverton, Mark (2004). The Depths of Space: The Story of the Pioneer planetary probes. National Academies Press. ISBN 978-0-309-09050-6.
External links
[edit]- Pioneer Project Archive Page Archived August 15, 2011, at the Wayback Machine
- Pioneer 10 Profile by NASA's Solar System Exploration
- NSSDC Pioneer 10 page
- Jupiter Odyssey (1974) is available for free viewing and download at the Internet Archive
- 1972 in spaceflight
- 1972 in the United States
- 1972 robots
- Derelict space probes
- Missions to Jupiter
- NASA space probes
- Nuclear-powered robots
- March 1972 in the United States
- Spacecraft escaping the Solar System
- Spacecraft launched by Atlas-Centaur rockets
- Spacecraft launched in 1972
- Pioneer program
- TRW Inc.
- Missions to Europa (moon)
