Rocket Ecology

Practical guides for greener everyday living

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  • Casino en ligne en France : fonctionnement, risques et précautions

    Casino en ligne en France : fonctionnement, risques et précautions

    Les casinos en ligne reproduisent sur Internet des jeux traditionnellement proposés dans les établissements physiques. Ils peuvent offrir des machines à sous, des jeux de cartes, de la roulette ou des parties animées en direct. Leur accessibilité ne signifie cependant pas qu’ils sont légalement autorisés dans tous les pays.

    Quels jeux sont autorisés en France ?

    La réglementation française distingue les casinos physiques autorisés des jeux accessibles sur Internet. En ligne, les opérateurs agréés peuvent proposer des paris sportifs, des paris hippiques et du poker.

    En revanche, les machines à sous et les jeux de table de casino ne sont pas autorisés en ligne. Un site accessible depuis la France peut donc rester illégal, même lorsqu’il affiche une licence internationale.

    Les risques associés aux sites non autorisés

    L’utilisation d’un casino en ligne non autorisé peut exposer le joueur à plusieurs problèmes. Il peut s’agir d’un refus de paiement, d’une fermeture soudaine du compte, d’un vol de données ou d’une absence de recours efficace en cas de litige.

    Les autorités françaises peuvent également demander le blocage de plateformes proposant illégalement des jeux d’argent sur le territoire.

    Reconnaître les principaux signaux d’alerte

    Un site doit être considéré avec prudence lorsqu’il :

    • promet des gains garantis ;
    • exerce une forte pression pour effectuer un dépôt ;
    • dissimule ses conditions de retrait ;
    • réclame des frais imprévus pour libérer des gains ;
    • ne fournit aucune information vérifiable sur son exploitant ;
    • utilise abusivement le logo d’une autorité française.

    La présence d’une licence étrangère ne remplace pas l’agrément exigé en France.

    Protéger son budget

    Aucune méthode ne garantit un bénéfice régulier aux jeux de hasard. Le résultat dépend principalement du hasard et l’opérateur conserve généralement un avantage mathématique.

    Pour réduire les risques, il faut déterminer une limite de dépenses, ne jamais emprunter pour jouer et faire des pauses régulières. Les mineurs ne doivent jamais accéder aux jeux d’argent.

    Lorsqu’une personne ressent une perte de contrôle, elle peut utiliser les dispositifs d’auto-exclusion ou demander une interdiction volontaire de jeux. Demander de l’aide rapidement permet de mieux protéger sa santé et sa situation financière.

  • NASA Uses Subscale Aircraft to Accelerate Flight Innovation

    4 Min Read

    NASA Uses Subscale Aircraft to Accelerate Flight Innovation

    A white, blue, and red probe attached to a rotor with four blades flies in the blue sky, just above the Moon.

    An atmospheric probe model attached upside down to a quad rotor remotely piloted aircraft ascends with the Moon visible on Oct. 22, 2024. The quad rotor aircraft released the probe above Rogers Dry Lake, a flight area adjacent NASA’s Armstrong Flight Research Center in Edwards, California. The probe was designed and built at the center.

    Credits:
    NASA/Steve Freeman

    Testing new aerospace concepts in flight remains one of NASA’s most effective ways to advance knowledge and reduce risk.

    The Dale Reed Subscale Flight Research Laboratory at NASA’s Armstrong Flight Research Center in Edwards, California, supports this mission by using small, remotely piloted and autonomous aircraft as cost‑effective platforms to mature innovative ideas, accelerate learning, and enable smoother transitions to full‑scale flight.

    When experiments require a flight platform, several NASA remotely piloted aircraft are available: the Alta‑X quadrotor; the Dryden Remotely Operated Integrated Drone (DROID) with its 10‑foot wingspan; and the Multi‑Use Cub, a 14‑foot‑span fixed‑wing aircraft with an expandable payload capacity for flight experiments. For electric vertical takeoff and landing testing, the HQ‑90 quadrotor provides an additional option.

    Once aircraft and experiments are cleared for operations, laboratory pilots support the mission, including ground operations and flight activities.

    One man manages engine speed with a hand-held controller, while another firmly holds the subscale aircraft in place.
    Justin Link, left, holds the subscale aircraft in place, while Justin Hall manages engine speed during preliminary engine tests on Friday, Sept. 12, 2025, at NASA’s Armstong Flight Research Center in Edwards, California. Link is a pilot for small uncrewed aircraft systems at the center’s Dale Reed Subscale Flight Research Laboratory and Hall is the chief pilot.
    NASA/Christopher LC Clark

    Flight expertise

    Each staff member serves as an experienced and certified subscale aircraft pilot and is prepared to fly unique one-of-a-kind or modified commercial aircraft wherever the mission requires.

    NASA’s FireSense project conducted flights in the Geneva State Forest, located about 100 miles south of Montgomery, Alabama. NASA Armstrong flight research staff integrated the instrument onto an Alta-X drone and tested the system before deployment. Two team members then transported the drone and sensor to the forest, prepared the vehicle for flight, and operated it during the mission. The NASA sensor was flown on the drone to demonstrate how remotely piloted aircraft can gather localized weather data that influences smoke movement and fire behavior. This information may help operational agencies improve wildfire decision-making and better allocate firefighters and resources.

    Other missions occur closer to NASA Armstrong, such as the Enhancing Parachutes by Instrumenting the Canopy (EPIC) project. EPIC involved air‑launching a capsule containing a parachute and flexible sensor from the Alta‑X. Laboratory staff piloted the flights, supported flight operations, and worked with the EPIC team to design and integrate the parachute‑drop mechanism and safety system into the aircraft.

    These tests demonstrated that a flexible sensor could help researchers study supersonic parachutes. Continuation of this work can help fill gaps in computer models, making supersonic parachutes safer and more reliable for delivering science instruments and payloads to Mars.

    Two men integrate instruments onto a drone.
    Justin Link, left, pilot for small uncrewed aircraft systems, and Justin Hall, chief pilot for small uncrewed aircraft systems, install weather instruments on NASA’s Alta X drone at the agency’s Armstrong Flight Research Center in Edwards, California. Members of the center’s Dale Reed Subscale Flight Research Laboratory used the Alta X to support the agency’s FireSense project in March 2025 for a prescribed burn in Geneva State Forest, which is about 100 miles south of Montgomery, Alabama.
    NASA/Steve Freeman

    Advancing challenging research

    The Dale Reed Subscale Flight Research Laboratory uses rapid design and testing capabilities to help small aircraft fly big ideas. These concepts could lead to future breakthroughs that support NASA’s missions across aeronautics, science, and exploration.

    For decades, NASA and its partners have advanced Automatic Collision Avoidance Technology. The research demonstrated an autopilot could detect and recover from an imminent ground collision – a capability now helping save lives in high‑performance U.S. military jets. NASA Armstrong had key roles in that work and developed a simplified version, the Automatic Ground Collision Avoidance System, which was installed on the DROID for testing.

    The system demonstrated on the DROID — developed to assist general aviation pilots as well as remotely piloted and autonomous aircraft — performed well and led to further research toward a version that provides alerts and steering cues. The NASA Armstrong Technology Transfer Office is working to license the technology for U.S. businesses to develop the system as a commercial product.

    The Prandtl‑D (Preliminary Research Aerodynamic Design to Lower Drag) flying‑wing glider was also designed, fabricated, and flown at NASA Armstrong. Researchers found that its twisted wing design could reduce drag and generate thrust at the wingtips, advancing concepts that may support greater fuel economy for future aircraft. The original Prandtl‑D is now part of the Smithsonian National Air and Space Museum collection in Washington, and the Prandtl-D3 is at the California Science Center in Los Angeles. Researchers continue developing the next generation of the design in the laboratory.

    A wide range of capabilities in the laboratory help transform promising concepts into flight-ready test structures. These include rapid prototyping using traditional and advanced 3D manufacturing techniques, as well as composite and conventional fabrication processes. The team of engineers and technicians also provides custom component design and specialized fabrication to meet unique research needs.

    The laboratory supports electrical and mechanical design, hardware and software integration, and the safety and flight-readiness processes required for successful missions. Additional technical facilities, such as the Experimental Fabrication Branch and the Environmental Laboratory at NASA Armstrong, further enhance these capabilities. Together, they support development, testing, and validation activities that advance NASA’s aeronautics and exploration goals.

    Deborah Jackson, Al Bowers and Abbigail Waddell successfully launch the subscale Prandtl-D 3C glider.
    Deborah Jackson, Al Bowers and Abbigail Waddell successfully launch the subscale Prandtl-D 3C glider.
    NASA

    Details

    Last Updated

    Jul 15, 2026

    Editor
    Dede Dinius
    Contact

    Source: www.nasa.gov

  • NASA Pushes New Wing Design to Find Structural Limits

    3 Min Read

    NASA Pushes New Wing Design to Find Structural Limits

    A wide view of a test structure in a laboratory shows a full test assembly secured inside a steel rig. Hydraulic lines, sensors, and support equipment surround the structure, with additional lab equipment visible in the background.

    The 15-foot Structural Wing Experiment Evaluating Truss-bracing test article is fully installed in the Flight Loads Laboratory at NASA’s Armstrong Flight Research Center in Edwards, California, on Wednesday, May 20, 2026. The model is part of NASA’s research to develop technologies for future ultra-efficient aircraft.

    Credits:
    NASA/Carla Escamilla

    NASA researchers recently put a new wing design, appearing long and thin with a lightweight structural design, through a series of grueling tests to find its structural limits. What they found left them encouraged about the wing’s potential, even when they pushed it past its intended limits.

    The 15-foot Structural Wing Experiment Evaluating Truss-bracing (SWEET-15) test article is part of NASA’s research to develop future ultra-efficient aircraft. The design incorporates a long wing supported by an aerodynamic strut, based on NASA’s earlier Transonic Truss‑Braced Wing concept.

    The research team is working to understand whether SWEET-15’s design and its new lightweight structural designs could help commercial airliners save fuel. But first, they need to understand how it behaves under the kinds of force wings experience in flight.

    A group of people work together in a large workshop, handling and inspecting a long metallic structure laid across padded tables. Tools, materials, and protective equipment are spread across the workspace.
    Lab technicians Phil Tofts, Chris McLain, and Jeff Howell and NASA engineers Erin Anderson and Richard Larson prepare the 15-foot Structural Wing Experiment Evaluating Truss-bracing model in the Flight Loads Laboratory at NASA’s Armstrong Flight Research Center in Edwards, California, on Thursday, Dec. 11, 2025. The model is part of NASA’s research to develop technologies for future ultra-efficient aircraft. 
    NASA/Christopher LC Clark

    The SWEET-15 design originated with combining five different advanced composite manufacturing and assembly technologies that enabled the novel structural design. The 15-foot-long test article was then designed and fabricated at NASA’s Langley Research Center in Hampton, Virginia, before traveling to NASA’s Armstrong Flight Research Center in Edwards, California, for testing.

    Over several months, NASA engineers intentionally bent the test wing in the Flight Loads Laboratory at NASA Armstrong. Numerous strain and load sensors, including fiber-optic strain sensors, were placed throughout the structure to track how the wing responded as forces increased.

    The data from the sensors confirmed the predictions made by NASA’s computer models. According to initial findings, the wing withstood the anticipated in-flight forces without issue. The results provided the team with confidence in the new manufacturing approaches and methods for connecting wing parts used in SWEET-15, which could support future efficient aircraft designs. The manufacturing approach, developed at NASA Langley used the Integrated Structural Assembly of Advanced Composites robot, aims to produce lighter and stronger composite structures for aerospace vehicles.

    A long beam is suspended in a laboratory while personnel observe and guide its placement. Overhead support equipment, cables, and lab infrastructure surround the test area.
    Lab technicians Jeff Howell, left and Chris Mount install the 15-foot Structural Wing Experiment Evaluating Truss-bracing model in the Flight Loads Lab at NASA’s Armstrong Flight Research Center in Edwards, California, Wednesday, February 11, 2026. The model is part of NASA’s research to develop technologies for future ultra-efficient aircraft.
    NASA/Christopher LC Clark

    The test concluded with a deliberate test-to-failure, where engineers increased loads beyond the wing’s design limits to determine how and where it would fail. The structure ultimately failed at roughly 127% of its design limit load, with visible damage appearing near the back edge of the wing and in the upper wing cover. This element of testing provided valuable insight into how the joints connecting the wing to its main strut and a secondary one, called a jury strut, behave under forces beyond the expected flight envelope.

    This marks the first time a representative composite truss-braced wing configuration has undergone this type of structural evaluation.  It was made possible only through NASA collaboration across centers and projects, with researchers utilizing agency resources such as the Fiber Optic Sensing System developed to gather data on both aircraft and spacecraft.

    A man wearing ear protection works closely with multiple hydraulic and instrumentation units connected to a large beam mounted on a test structure. Numerous cables, hoses, and measurement devices extend from the setup.
    NASA research engineer Walter Hargis regulates the 15-foot Structural Wing Experiment Evaluating Truss-bracing model in the Flight Loads Laboratory at NASA’s Armstrong Flight Research Center in Edwards, California, on Tuesday, March 31, 2026. The model is part of NASA’s research to develop technologies for future ultra-efficient aircraft. 
    NASA/Ryan Kline

    To prepare for the testing, engineers at NASA Langley designed, analyzed, and manufactured the wing and completed safety preparations and lab setup.

    Researchers will now analyze the data collected during testing to inform future airframe designs and support NASA’s ongoing efforts to develop more efficient aviation technologies.

    The work is being conducted through NASA’s Subsonic Flight Demonstrator project in the agency’s Research Technology Mission Directorate. The successful testing of multiple innovative components marks a milestone in NASA’s aeronautics research.

    To learn more, visit:

    https://www.nasa.gov/aeronautics/

    Source: www.nasa.gov

  • NASA, GE Aerospace Work Enables Hybrid-Electric Flight Demonstration

    4 min read

    Preparations for Next Moonwalk Simulations Underway (and Underwater)

    Modified Saab 340, a hybrid-electric aircraft in flight.
    A modified Saab 340B aircraft in flight powered in part by a hybrid electric system built by GE Aerospace, along with NASA, BETA Technologies, and Boeing.
    GE Aerospace

    An aircraft powered by a megawatt-class hybrid-electric engine developed in collaboration with NASA and built by GE Aerospace, demonstrated flight of an innovation that can inform new generations of fuel-saving aircraft power systems.

    Mounted to a Saab 340B aircraft, the engine flew at Farnborough International Air Show in the United Kingdom. It was the public debut of a system that has in recent months made historic test flights, becoming the first hybrid electric-powered aircraft to fly above 30,000 feet.

    “This achievement reflects what NASA does best in aeronautics: we explore bold possibilities, validate them through rigorous research and testing, and work with industry to turn breakthrough ideas into technologies that bring real value for the American people,” said Laurie Grindle, director of the Aeronautics Division within the agency’s Research and Technology Mission Directorate at NASA Headquarters in Washington.

    The testing leveraged work done through NASA’s former Electrified Powertrain Flight Demonstration project and the agency’s ongoing Subsonic Vehicle Technologies and Tools project – years of collaborative research that included key testing at NASA test facilities. 

    The engine integrates electric motors, a gas turbine, and energy storage capabilities. It was designed to demonstrate the capacity to power an aircraft around the size of a regional-class jet, reducing fuel burn and costs without sacrificing performance. The unit’s technology and designs are expected to be used to help develop future hybrid systems that could lower airline operating costs. 

    The demonstration flight came after years of rapid development for the technology. For NASA, it also validates work that stretches back to a time when hybrid aviation propulsion seemed almost beyond the horizon of possibility.

    This achievement reflects what NASA does best in aeronautics: we explore bold possibilities, validate them through rigorous research and testing, and work with industry to turn breakthrough ideas into technologies that bring real value for the American people.

    LAURIE A. GRINDLE

    LAURIE A. GRINDLE

    Director of the Aeronautics Division within the agency's Research and Technology Mission Directorate

    “This is the culmination of more than 15 years of work, and we did that because it’s going to have an impact for aircraft that will help reduce energy use and help U.S. companies and the public,” said Ralph Jansen, aerospace engineer at NASA’s Glenn Research Center in Cleveland. “It’s about having a vision that no one believes can happen and then doing the work to define and execute the research and development needed to make it happen.”  

    This accomplishment was possible because of the collaborative effort of hundreds of people working on Electrified Powertrain Flight Demonstration and Subsonic Vehicle Technologies and Tools projects across NASA centers, in conjunction with GE Aerospace and its partner companies.

    Hybird-Electric Evolves

    In recent years, aviation has seen a boom in small aircraft and drones powered by electrical systems drawing from batteries. But large passenger and cargo planes require complex engines capable of supplying massive amounts of power. So more than a decade ago when NASA began contemplating hybrid systems, just the possibility of using electric motors to supplement some energy was a daunting engineering challenge. 

    NASA spent about seven years performing preliminary research, working with small businesses and other partners to consider technological obstacles and the potential commercial viability of hybrid systems. During that time, the agency addressed several barriers to implementation including the power, thermal, and battery technology, and the integration of the power system, engine, and aircraft.

    Through the agency’s Electrified Powertrain Flight Demonstration award, GE Aerospace and NASA worked with researchers to develop lighter and more efficient power systems and shrink key components – sometimes dramatically. 

    NASA and GE Aerospace also leveraged agency facilities and resources to further their research. In 2022, GE Aerospace tested an integrated version of its propulsion system at NASA’s Electric Aircraft Testbed at the agency’s Neil A. Armstrong Test Facility in Sandusky, Ohio. Testing allowed the system to operate in conditions simulating 45,000 feet in altitude, the range in which commercial single-aisle aircraft fly. 

    The team added components, including electric motors, power converters, propellers, and a GE Aerospace commercial engine, followed by more ground tests and eventual flight tests. For the researchers who’d spent years on the concept, seeing the engine powering an aircraft in flight was a major step in a long journey.

    “I’ve got to say, I was pretty touched seeing it fly. It was just awesome,” Jansen said.  “It’s just like a regular plane, which is probably the best thing of all.”

    NASA’s current support for this research is through the Aeronautics Division of its Research and Technology Mission Directorate.

    Source: www.nasa.gov

  • NASA to Showcase Agency’s Newest Wind Tunnel in Virginia

    Flight Dynamics Research Facility
    The Flight Dynamics Research Facility, located at NASA’s Langley Research Center in Hampton, Virginia, is the agency’s first major wind tunnel built in more than 40 years.
    NASA/Mark Knopp

    Media are invited to NASA’s Langley Research Center in Hampton, Virginia, on Friday, July 31, to attend a media tour and ribbon-cutting ceremony for the Flight Dynamics Research Facility, the agency’s first new wind tunnel in more than 40 years.

    The event will include a brief media availability with:

    • NASA Administrator Jared Isaacman
    • Dr. Trina Dyal, center director, NASA Langley
    • Administrator Edward C. Forst, U.S. General Services Administration

    This event is in person only and open to members of the media who are United States citizens or lawful permanent residents. Information about timing will be shared closer to the event. NASA’s media accreditation policy is available online.

    Media requesting to participate in person must RSVP no later than 5 p.m. EDT on Wednesday, July 29. Media RSVPs must be sent to Kimiko Booker, [email protected], and Brittny McGraw, [email protected], with the following information:

    • Legal first and last names (must match government identification)
    • Email
    • Phone number
    • Job title and organization

    The wind tunnel opening marks a major milestone in the evolution of NASA and the nation’s aeronautics and space research capabilities. The state-of-the-art facility will support research and technology development that will advance NASA’s aeronautics, exploration, and science goals, including establishing a sustained human presence on the lunar surface through the Artemis program and the development of a Moon Base.

    Learn more about the Flight Dynamics Research Facility at:

    https://go.nasa.gov/4yzKEGQ

    -end-

    Camille Gallo / Rob Margetta
    Headquarters, Washington
    202-358-1600
    [email protected] / [email protected] 

    Kimiko Booker / Brittny McGraw
    NASA Langley, Hampton, Va.
    757-506-5939 / 757-769-3763
    [email protected] / [email protected]

    Details

    Last Updated

    Jul 22, 2026

    Editor
    Jennifer M. Dooren

    Source: www.nasa.gov

  • Maintainers Work Quietly Behind Scenes Ensuring Global Power

    Crew chiefs assigned to the Air National Guard’s 171st Air Refueling Wing, based near Pittsburgh, keep two aerial refueling flying squadrons of KC-135 Stratotanker refueling tanker aircraft mission ready.

    Source: www.war.gov

  • Signers of the Declaration of Independence: Virginia, Part 1

    Virginia’s Thomas Jefferson was a Founding Father who drafted the Declaration of Independence and who doubled the size of the country with the Louisiana Purchase while serving as the third president.

    Source: www.war.gov

  • Medal of Honor Monday: Army Tech. Sgt. Ted Takayuki Tanouye

    Army Tech. Sgt. Ted Takayuki Tanouye posthumously received the Medal of Honor for his heroic actions in western Italy during World War II.

    Source: www.war.gov

  • Airmen Participate in the World's Largest Multiday March

    Airmen walked in the 108th International Four Days Marches in Nijmegen, Netherlands, a long-standing, 100-mile event that brought together 47,000 participants, including 6,455 military members from 38 nations.

    Source: www.war.gov

  • Signers of the Declaration of Independence: Virginia, Part 2

    Learn how three of Virginia’s seven delegates who signed the Declaration of Independence — Benjamin Harrison V, Francis Lightfoot Lee and Carter Braxton — helped shape America.

    Source: www.war.gov