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February 13, 2020

JWST

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Wikipedia dicit:

The James Webb Space Telescope (JWST) is a space telescope that is planned to be the successor to the Hubble Space Telescope. The JWST will provide improved infrared resolution and sensitivity over Hubble, and will enable a broad range of investigations across the fields of astronomy and cosmology, including observing some of the most distant events and objects in the universe, such as the formation of the first galaxies. Other goals include understanding the formation of stars and planets, and direct imaging of exoplanets and novas.

The primary mirror of the JWST, the Optical Telescope Element, is composed of 18 hexagonal mirror segments made of gold-plated beryllium which combine to create a 6.5-meter (21 ft; 260 in) diameter mirror that is much larger than the Hubble’s 2.4-meter (7.9 ft; 94 in) mirror. Unlike the Hubble, which observes in the near ultraviolet, visible, and near infrared (0.1 to 1 μm) spectra, the JWST will observe in a lower frequency range, from long-wavelength visible light through mid-infrared (0.6 to 28.3 μm), which will allow it to observe high redshift objects that are too old and too distant for the Hubble to observe. The telescope must be kept very cold in order to observe in the infrared without interference, so it will be deployed in space near the Earth–Sun L2 Lagrangian point, and a large sunshield made of silicon- and aluminum-coated Kapton will keep its mirror and instruments below 50 K (−220 °C; −370 °F).

The JWST is being developed by NASA—with significant contributions from the European Space Agency and the Canadian Space Agency—and is named for James E. Webb, who was the administrator of NASA from 1961 to 1968 and played an integral role in the Apollo program.

Video credit: NASA Goddard

 

February 12, 2020

MAVEN Investigates Ionosphere on Mars

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Wikipedia dicit:

NASA’s MAVEN (Mars Atmosphere and Volatile Evolution) spacecraft has discovered “layers” and “rifts” in the electrically charged part of the upper atmosphere (the ionosphere) of Mars. The phenomenon is very common at Earth and causes unpredictable disruptions to radio communications. However, we do not fully understand them because they form at altitudes that are very difficult to explore at Earth. The unexpected discovery by MAVEN shows that Mars is a unique laboratory to explore and better understand this highly disruptive phenomenon.

Video credit: NASA’s Goddard Space Flight Center/James Tralie (ADNET): Lead Producer, Lead Editor, Narrator/Bailee DesRocher (USRA): Lead Animator/Michael Lentz (USRA): Art Director/Jonathan North (USRA): Animator/Krystofer Kim (USRA): Animator/Jacquelyn DeMink (USRA): Animator/Bruce Jakosky (LASP): Scientist/Glyn Collinson (Catholic University of America): Scientist/Aaron E. Lepsch (ADNET): Technical Support

 

February 11, 2020

SolO

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Wikipedia dicit:

The Solar Orbiter (SolO) is a planned Sun-observing satellite, under development by the European Space Agency (ESA). SolO is intended to perform detailed measurements of the inner heliosphere and nascent solar wind, and perform close observations of the polar regions of the Sun, which is difficult to do from Earth, both serving to answer the question “How does the Sun create and control the heliosphere?”

The science payload is composed of 10 instruments:

Heliospheric in-situ instruments

Solar Wind Analyser (SWA): To measure solar wind properties and composition; Energetic Particle Detector (EPD): To measure suprathermal ions, electrons, neutral atoms, as well as energetic particles in the energy range from few keV/nuc to relativistic electrons and ions up to 100 MeV (protons) and 200 MeV/nuc (heavy ions); Magnetometer (MAG): it will provide detailed measurements of the magnetic field; Radio and Plasma Wave analyser (RPW): To measure magnetic and electric fields at high time resolution.

Solar remote-sensing instruments

PHI: Polarimetric and Helioseismic Imager (Germany): To provide high-resolution and full-disc measurements of the photospheric vector magnetic field and line-of-sight (LOS) velocity as well as the continuum intensity in the visible wavelength range; EUI – Extreme Ultraviolet Imager (Belgium): To provide image sequences of the solar atmospheric layers above the photosphere, thereby providing an indispensable link between the solar surface and outer corona that ultimately shapes the characteristics of the interplanetary medium; SPICE – Spectral Imaging of the Coronal Environment (France): To perform extreme ultraviolet imaging spectroscopy to remotely characterize plasma properties of the Sun’s on-disc corona; STIX – Spectrometer Telescope for Imaging X-rays (Switzerland): To provides imaging spectroscopy of solar thermal and non-thermal X-ray emission from 4 to 150 keV; METIS – Coronagraph (Italy): To simultaneously image the visible, ultraviolet and extreme ultraviolet emission of the solar corona and diagnose, with unprecedented temporal coverage and spatial resolution, the structure and dynamics of the full corona in the range from 1.4 to 3.0 (from 1.7 to 4.1) solar radii from Sun centre, at minimum (maximum) perihelion during the nominal mission; SoloHI – Solar Orbiter Heliospheric Imager (United States): To image both the quasi-steady flow and transient disturbances in the solar wind over a wide field of view by observing visible sunlight scattered by solar wind electrons.

Video credit: NASA’s Goddard Space Flight Center/Genna Duberstein (ADNET): Lead Producer/Maria-Jose Vinas Garcia (Telophase): Translator/Aaron E. Lepsch (ADNET): Technical Support/Scott Wiessinger (USRA): Technical Support/Animation by ESA/ATG Medialab

 

February 10, 2020

Atlas V/SolO Mission Profile

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Wikipedia dicit:

The Solar Orbiter (SolO) is a planned Sun-observing satellite, under development by the European Space Agency (ESA). SolO is intended to perform detailed measurements of the inner heliosphere and nascent solar wind, and perform close observations of the polar regions of the Sun, which is difficult to do from Earth, both serving to answer the question “How does the Sun create and control the heliosphere?”

SolO will make observations of the Sun from an eccentric orbit moving as close as ~60 solar radii (RS), or 0.284 astronomical units (au), placing it inside Mercury’s perihelion of 0.3075 au. During the planned 7-year mission the orbital inclination will be raised to about 25°.

The spacecraft will make a close approach to the Sun every five months. The closest approach will be positioned to allow a repeated study of the same region of the solar atmosphere. Solar Orbiter will be able to observe the magnetic activity building up in the atmosphere that can lead to powerful solar flares or eruptions.

Researchers will also have the chance to coordinate observations with NASA’s Parker Solar Probe mission (2018-2025) which is performing measurements of the Sun’s extended corona.

The objective of the mission is to perform close-up, high-resolution studies of the Sun and its inner heliosphere. The new understanding will help answer these questions:

How and where do the solar wind plasma and magnetic field originate in the corona?

How do solar transients drive heliospheric variability?

How do solar eruptions produce energetic particle radiation that fills the heliosphere?

How does the solar dynamo work and drive connections between the Sun and the heliosphere?

 

Video credit: United Launch Alliance

 

February 6, 2020

Van Allen Probes

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Wikipedia dicit:

The Van Allen Probes, formerly known as the Radiation Belt Storm Probes, were two robotic spacecraft that were used to study the Van Allen radiation belts that surround Earth. NASA conducted the Van Allen Probes mission as part of the Living With a Star program. Understanding the radiation belt environment and its variability has practical applications in the areas of spacecraft operations, spacecraft system design, mission planning and astronaut safety. The probes were launched on 30 August 2012 and operated for seven years. Both spacecraft were deactivated in 2019 when they ran out of fuel. They are expected to deorbit during the 2030s.

Video credit: NASA/Goddard Space Flight Center Scientific Visualization Studio/Tom Bridgman (GST): Lead Animator/Scott Wiessinger (USRA): Producer/Genna Duberstein (USRA): Producer/David G. Sibeck (NASA/GSFC): Scientist/Shrikanth G. Kanekal (NASA/GSFC): Scientist

 

February 5, 2020

Copenhagen Suborbitals 2019 Year Review

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Wikipedia dicit:

In 2014, Copenhagen Suborbitals settled on the basic design for their first crewed rocket and space capsule. The rocket will be named Spica, and will stand 12–14 m tall with a diameter of 950 mm. It will be powered by the BPM-100 engine class, using liquid oxygen as oxidizer and ethanol as fuel, producing 100 kilonewtons of thrust. It’s likely to feature pressure-blow-down tanks, optimised by a dynamic pressure regulation (DPR) system, but turbo pumps are also a possibility, although they are difficult to build. Flight control will be thrust vectoring via a gimbal engine. The rocket will be fully guided by home-built electronics and software. Most of the systems and technology will initially be tested on the smaller Nexø class rockets. The space capsule will be of a tubular design as its predecessor Tycho Brahe, but its greater diameter will allow the astronaut to assume a sitting position during launch and re-entry, in order to withstand the G-forces.

Video credit: Copenhagen Suborbitals