spacecraft

Could This New Northrop Spacecraft Use Its Robotic Arms To Attack Enemy Satellites?

A spacecraft equipped with two robotic arms, developed by Northrop Grumman, is set to be launched today. The company plans to establish an entire fleet of these Mission Robotic Vehicles (MRVs), ostensibly to offer a commercial service to refuel and repair satellites in orbit. However, the question has been raised about whether the MRV could also be used to attack enemy assets in space. The U.S. Space Force has said publicly that it is pursuing offensive space-based capabilities, primarily to help protect friendly satellites from growing threats.

Whether the MRV, or a derivative thereof, could be employed in an offensive role explicitly came up during a quarterly Northrop Grumman earnings call this morning. The company does not appear to have ruled out the possibility.

“As part of our satellite servicing portfolio, we’ve developed the first commercial robotic spacecraft capable of repairing, relocating, and servicing satellites in geosynchronous orbit via two robotic arms,” Northrop Grumman CEO Kathy Warden had highlighted in her introductory remarks at the start of the call. “It can also install life extension jetpacks onto other satellites for government or commercial customers, prolonging their useful life for up to eight years.”

Next Generation of Satellite Servicing Products: Mission Robotic Vehicle and Mission Extension Pods thumbnail

Next Generation of Satellite Servicing Products: Mission Robotic Vehicle and Mission Extension Pods




“The spacecraft is known as the Mission Robotic Vehicle, or MRV, and our first MRV is scheduled to launch later today, weather permitting,” she added.

“You probably can’t provide quantitative terms here, but just from a qualitative perspective, what’s the potential market for an offensive version of that spacecraft that could be used to disable adversary satellites?” Scott Mikus, Director for Aerospace, Defense and Space Research at Melius Research, asked later on during the call.

“So I appreciate the question. I will leave it up to the U.S. government to decide how that capability might fulfill mission objectives that they have in that regard,” CEO Warden said in response. “But certainly, it’s our objective to offer our clients options for technology deployment, and for them to determine policy for when and how they might deploy that technology.”

To take a step back, if all goes to plan, a SpaceX Falcon 9 space launch rocket carrying the MRV will blast off from Cape Canaveral sometime in a four-hour window starting at 5:15 PM ET today. The rocket will also carry three Mission Extension Pods (MEPs), which are the “life extension jetpacks” that Warden mentioned.

As noted, the MRV has two robotic arms that allow it to place the MEPs onto other satellites in orbit, as well as perform other tasks. The arms are part of what is formally called the Robotic Servicing of Geosynchronous Satellites (RSGS) payload. The RSGS system was developed through a program led by the U.S. Defense Advanced Research Projects Agency (DARPA), in cooperation with the U.S. Naval Research Laboratory (NRL). It is worth noting here that RSGS is the product of U.S. government work in this vein stretching back decades. There have also been other similar developments elsewhere globally, including in China and Russia, as we will come back to later on.

Robotic Servicing of Geosynchronous Satellites (RSGS) Concept Video thumbnail

Robotic Servicing of Geosynchronous Satellites (RSGS) Concept Video




The MRV’s upcoming mission will include rendezvousing with satellites belonging to Australian firm Optus and SES in Luxembourg and attaching MEPs to them, according to a report from Spaceflight Now. Both of these companies are commercial telecommunications providers.

Northrop Grumman’s fact sheet on the MRV says the spacecraft is capable of performing an array of on-orbit inspection and servicing missions beyond refueling via the MEPs. The robotic vehicle can also be used to ‘tow’ satellites from one position to another and help clear debris. All of this requires the ability to maneuver very closely with other target objects in space. This, in turn, brings us to the question of the MRV potentially offering an offensive anti-satellite capability.

For years, TWZ has highlighted how robotic arms on spacecraft are an inherently dual-use capability that could be used to launch attacks in space. In general, arms like this could be used to damage or destroy key systems on adversary satellites, such as optics or solar panels, or to just pull them out of orbit. In the latter case, the target could be towed into a degrading orbit where, if control could not be reestablished, it would re-enter the Earth’s atmosphere and be destroyed.

The U.S. military itself has repeatedly pointed to adversary satellites with robotic arms as one of many potential threats to its own space-based capabilities.

“We’re basically responding to a warfighting domain where our adversaries have already put interceptors in space, and we want to make sure that we rebalance that in terms of deterrence,” Chief of Space Operations Gen. Chance Saltzman, the Space Force’s top officer, said at a roundtable at the Air & Space Forces Association’s (AFA) annual Warfare Symposium in February. Saltzman was responding to a direct question from our Howard Altman.

“Interceptors by definition refer to a handful of well-acknowledged capabilities that other countries have, like ground and air-launched anti-satellite missiles or capabilities like the SJ-21 [the Chinese Shi Jian 21 satellite], which has a grappling arm,” a Space Force spokesperson also told TWZ at that time when asked for clarification about the “interceptors in space” Saltzman had mentioned.

Long March-3B launches Shijian-21 thumbnail

Long March-3B launches Shijian-21




‘Inspector satellites’ that could have dual-use purposes have been a hot topic of discussion for years now, with Russian developments drawing particular attention. A ‘killer satellite’ with close maneuvering capability could employ a variety of means beyond robotic arms to try to disable, damage, or even destroy a target in space. This could include electronic warfare jammers, directed energy weapons, chemical sprays, and small projectiles. The space-based inspector could itself be used as a kinetic kill vehicle and deliberately smashed into the target.

A U.S. Defense Intelligence Agency graphic highlighting some of the ways on-orbit attack can be carried out, including via robotic arms. DIA

Close inspection of other satellites in space also provides opportunities to gather intelligence about their capabilities and monitor their activities. U.S. satellites, as well as those belonging to Russia and other countries, have been observed doing just this over the years. Some commercial satellite imagery firms are even now offering space-based situational awareness as a service.

A commercial image of Landsat 8 taken from another satellite, WorldView-3, in orbit. Maxar Technologies (now Vantor) via NASA

As underscored by DARPA and NRL’s work on RSGS payload, the U.S. military already has a clear interest in the MRV spacecraft’s core capabilities. On-orbit refueling, in particular, is seen as offering vital freedom of maneuver to help safeguard friendly satellites from attack. Right now, ‘running and hiding’ is the most immediate option available for responding to threats, but doing so requires satellites to burn precision fuel, eating into their operational lifespan.

The Space Force also has an entire unit dedicated to a still-evolving “orbital warfare” mission set that has defensive and offensive elements.

“Protecting and defending satellites can’t simply be done by protect and defend. You can’t run away from a bully forever. Sometimes you got to turn around and punch,” Lt. Gen. Gregory Gagnon, head of U.S. Space Force Combat Forces Command (CFC), said at another roundtable at the AFA Warfare Symposium in February. “So protect and defend, although necessary, is insufficient to deliver space control. We also need, as part of our joint force, the ability to attack.”

Gagnon cited China’s massively expanding space-based capabilities as a key driver behind this viewpoint. He’s also mentioned plans for Space Delta 9, the formation tasked with orbital warfare, to begin exploring new offensive and defensive tactics using an experimental satellite.

“This prototype will be operated by my Orbital Warfare Delta. This is the only Orbital Warfare Delta in the United States government. Their job will be working on their maneuvers, which is one of the seven joint functions of warfighting, so that they can deliver offensive and defensive capabilities that are precise and not imprecise,” he explained. “They’re going to work on driving that spacecraft in a way that we couldn’t drive spacecraft before.”

The scale and scope of demands to protect U.S. satellites in orbit is only set to grow significantly in the coming years, fueled further now by the Golden Dome initiative. Golden Dome is a multi-faceted effort aimed at delivering a hugely expanded national missile defense architecture. A core element of the plan as it stands now is space-based anti-missile interceptors, which will be supported by large, distributed sensor and communications satellite constellations. In a report released in May, the Congressional Budget Office (CBO) assessed that 7,800 interceptors in orbit could be needed to make the concept work.

L3Harris

As already noted, the U.S. military has a clear interest in the on-orbit refueling and servicing capabilities that Northrop Grumman’s MRV spacecraft is designed to provide now. This could also be key to protecting and sustaining elements of Golden Dome, as well as other critical new space-based sensor and other satellite constellations.

The scheduled launch of the first MRV spacecraft today is a very important milestone all around, and one that might open the door to a very different kind of ‘armed’ space-based capability.

Contact the author: joe@twz.com

Joseph is TWZ’s Deputy Editor, helping to oversee the site’s highly experienced and dedicated team, while also writing informative and impactful defense and national security content. He lives right in the thick of it in the Washington, D.C. area.


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NASA declares MAVEN spacecraft dead, mission at an end

June 3 (UPI) — Almost six months after NASA lost contact with the spacecraft, the agency has declared the Mars Atmosphere and Volatile Environment satellite unrecoverable and its mission concluded.

NASA’s Deep Space Network (radio antennas that connect Earth with spacecraft) last received a transmission from the MAVEN satellite on Dec. 6, just before its orbit passed behind Mars. When it emerged, communications did not resume, NASA said. The cause of this lapse was under investigation, but the agency said the satellite was rotating at an usually high rate, leading to drained batteries.

The MAVEN mission was the first successful one dedicated to observing Mars’ atmosphere and its evolution. It orbited the planet for more than 11 years, far longer than its planned one-year lifespan.

NASA hosted a media teleconference Wednesday about the end of the mission and issued a statement.

“The MAVEN mission has truly advanced our understanding of the Martian atmosphere and evolution,” said Shannon Curry, MAVEN principal investigator and a professor at the Laboratory for Atmospheric and Space Physics at the University of Colorado Boulder. “This dataset has had a tremendous impact onthe field. Our science team is exceptionally proud of all of these amazing discoveries.”

The mission launched in November 2013 on an Atlas V rocket from Cape Canaveral, Fla., and arrived in Mars orbit 10 months later, Space.com reported.

During its mission, MAVEN provided information about Mars’ atmosphere and how it became the planet it is today, changing from a planet with a more Earth-like atmosphere that could host liquid water on the surface. It discovered new types of auroras across the planet and studied Mars’ dust storms.

MAVEN also played a key role as a communications link to the Curiosity and Persistence rovers on Mars. The Mars Odyssey and Mars Reconnaissance Orbiter spacecraft remain in operation to play that role.

“The science MAVEN has given us is key to informing what kind of radiation protection and safety measures we must take before sending humans to Mars,” said Louise Prockter, director of the planetary science division at NASA. “The data collected from MAVEN will continue to provide valuable insight into Mars for decades to come.”

The Mars Atmosphere and Volatile Evolution Mission (MAVEN) spacecraft undergoes final preparations at the Kennedy Space Center, Florida on September 27, 2013. MAVEN will be launched by a Atlas 5 rocket currently scheduled for a November 18, 2013 lift off. The Lockheed Martin spacecraft will orbit the planet Mars for one year after completing a ten month journey through space. The mission is to explore how the sun has effected Mars upper atmosphere and ionosphere. UPI/Joe Marino-Bill Cantrell | License Photo

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