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September 20, 2023 | International, C4ISR

Leidos awarded $7.9 billion U.S. Army tactical IT hardware contract

The contract has a maximum value of $7.9 billion if all options are exercised.

https://www.epicos.com/article/774343/leidos-awarded-79-billion-us-army-tactical-it-hardware-contract

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  • How the Office of Naval Research hopes to revolutionize manufacturing

    October 16, 2018 | International, Naval

    How the Office of Naval Research hopes to revolutionize manufacturing

    By: Daniel Cebul WASHINGTON — The Office of Naval Research awarded Lockheed Martin Oct. 1 a two-year, $5.8 million contract to explore how machine learning and artificial intelligence can make complex 3-D printing more reliable and save hours of tedious post-production inspections. In today's factories, 3-D printing parts requires persistent monitoring by specialists to ensure intricate parts are produced without impurities and imperfections that can compromise the integrity of the part overall. To improve this laborious process, the Navy is tasking Lockheed Martin with developing multi-axis robots that use lasers to deposit material and oversee the printing of parts. Lockheed Martin has multiple partners on the contract including Carnegie Mellon University, Iowa State University, Colorado School of Mines, America Makes, GKN and Wolf Robotics and Oak Ridge National Laboratory. The contract covers what Glynn Adams, a senior engineer with Lockheed Martin, describes as the pre-flight model of the program's development. Initial work will focus on developing computer models that can predict the microstructures and mechanical properties of 3-D printed materials to generate simulation data to train with. Adams said the Carnegie Mellon team will look at variables such as, “the spot size of the laser beam, the rate of feed of the titanium wire [and]the total amount energy density input into the material while it is being manufactured.” This information helps the team predict the microstructure, or organizational structure of a material on a very small scale, that influences the physical properties of the additive manufactured part. This data will then be shared with Iowa State, who will plug the information into a model that predicts the mechanical properties of the printed component. By taking temperature and spot size measurements, the team can also ensure they are, “accurately controlling energy density, the power of both the laser and the hot wire that goes into the process,” Adams said.. “All of that is happening before you actually try to do any kind of machine learning or artificial neural networks with the robot itself. That's just to try to train the models to the point where we have confidence in the models,” Adams said. Sounds easy, right? But one key problem could come in cleaning up the data and removing excess noise from the measurements. “Thermal measurements are pretty easy and not data intensive, but when you start looking at optical measurements you can collect just an enormous amount of data that is difficult to manage,” Adams explained. Lockheed Martin wants to learn how shrink the size of that dataset without sacrificing key parameters. The Colorado School of Mines and America Makes will tackle the problem of compressing and manipulating this data to extract the key information needed to train the algorithms. After this work has been completed, the algorithms then will be sent to Oak Ridge National Laboratory, where robots will begin producing 3-D titanium parts and learn how to reliably construct geometrically and structurally sound parts. This portion of the program will confront challenges from the additive manufacturing and AI components of the project. On the additive manufacturing side, the team will work with new manufacturing process, “trying to understand exactly what the primary, secondary and tertiary interactions are between all those different process parameters,” Adams said. “If you think about it, as you are building the part depending on the geometric complexity, now those interactions change based on the path the robot has to take to manufacture that part. One of the biggest challenges is going to be to understand exactly which of those parameters are the primary, which are the tertiary and to what level of control we need to be able to manipulate or control those process parameters in order to generate the confidence in the parts that we want.” At the same time, researchers also will tackle AI machine learning challenges. Like with other AI programs, it's crucial the algorithm is learning the right information, the right way. The models will give the algorithms a good starting point, but Adams said this will be an iterative process that depends on the algorithm's ability to self-correct. “At some point, there are some inaccuracies that could come into that model,” Adams explained. “So now, the system itself has to understand it may be getting into a regime that is not going to produce the mechanical properties or microstructures that you want, and be able to self-correct to make certain that instead of going into that regime it goes into a regime that produces the geometric part that you want.” With a complete algorithm that can be trusted to produce structurally sound 3-D printed parts, time-consuming post-production inspections will become a thing of the past. Instead of nondestructive inspections and evaluations, if you “have enough control on the process, enough in situ measurements, enough models to show that that process and the robot performed exactly as you thought it would, and produced a part that you know what its capabilities are going to be, you can immediately deploy that part,” said Adams. “That's the end game, that's what we're trying to get to, is to build the quality into the part instead of inspecting it in afterwards." Confidence in 3-D printed parts could have dramatic consequences for soldiers are across the services. As opposed to waiting for replacement parts, service members could readily search a database of components, find the part they need and have a replacement they can trust in hours rather than days or weeks. “When you can trust a robotic system to make a quality part, that opens the door to who can build usable parts and where you build them,” said Zach Loftus, Lockheed Martin Fellow for additive manufacturing. “Think about sustainment and how a maintainer can print a replacement part at sea, or a mechanic print a replacement part for a truck deep in the desert. This takes 3-D printing to the next, big step of deployment.” https://www.c4isrnet.com/industry/2018/10/15/how-the-office-of-naval-research-hopes-to-revolutionize-manufacturing

  • Navy Awards Contract for First Vessel In Its Family of Unmanned Surface Vehicles

    July 15, 2020 | International, Naval

    Navy Awards Contract for First Vessel In Its Family of Unmanned Surface Vehicles

    By: Sam LaGrone July 14, 2020 8:48 PM • Updated: July 15, 2020 6:38 AM The Navy has awarded a contract for the first unmanned surface vessel it will design and build on its own, a key milestone for the eventual family of unmanned systems that will be a key component of the future surface fleet, according to a Monday contract announcement from the Pentagon. L3 Technologies won a $35-million contract to develop a prototype medium unmanned surface vehicle (MUSV) on Monday, which could grow to $281 million if options for eight follow-on craft are exercised, Naval Sea Systems Command announced. The contract calls for delivering the first prototype by the end of the Fiscal Year 2023, according to a release from NAVSEA. “The president's 2021 budget request for the Navy includes additional funding for a second MUSV prototype in FY23. The acquisition strategy for the FY23 vessel is to be determined, however, for flexibility, the development contract contains options for additional USVs,” read the statement. The award to L3 for MUSV is the Navy's first bite at the apple for developing a USV. DARPA contracted for two Sea Hunter vessels in what was originally the Anti-Submarine Warfare (ASW) Continuous Trail Unmanned Vessel (ACTUV) program but has since shifted its focus to be the predecessor to MUSV. A Pentagon office also contracted for two Large USVs as part of the Overlord program, and the Navy will also take those vessels and use them to shape an eventual LUSV program of its own. The Navy envisions a family of unmanned systems that will be the backbone of a future fleet of netted “attritable” platforms that will provide lower-cost options compared to manned surface combatants like the Arleigh Burke-class destroyer or the new FFG(X) frigate program. “The initial focus is on the design, fabrication, testing and support of funded MUSV prototype vehicles. Rapid prototyping efforts will inform procurement of additional MUSV units,” Navy spokesman Capt. Danny Hernandez told USNI News on Tuesday. “The Navy will continue to assess the MUSV acquisition plan and has the option to conduct new or additional competitions, if warranted.” According to a notional list of requirements reviewed by USNI News in 2019, the MUSV would “function as a sensor and communications relay as part of a family of unmanned surface systems being developed by the service. The craft will be able to carry a payload equivalent to a 40-foot shipping container, will operate on its own for at least 60 days before needing to return to port, and be capable of refueling at sea,” reported USNI News. “The craft will have to also be able to autonomously operate under the rules of the maritime road at a cruising speed of about 16 knots with a minimum range of about 4,500 nautical miles and operate via a government-provided communication relay system.” L3 served as a subcontractor for Leidos, the lead contractor for the Sea Hunter program that DARPA contracted for before passing it off to the Navy. However, the next version of the MUSV will be different from the Sea Hunter, Navy officials told USNI News this week. “The MUSV and the existing Sea Hunter vessel have differing missions and requirements. The existing Sea Hunter vessel was designed and built with the mission of anti-submarine warfare and would be capable of tracking and following submarines using a hull-mounted sonar array over long distances. The MUSV will provide and improve distributed situational awareness in maritime areas of responsibility through [intelligence, surveillance and reconnaissance] and [electronic warfare] implemented by modular payloads,” Hernandez told USNI News. While the program is under development, the current Sea Hunter has been assigned to Surface Development Squadron 1 and is set to operate with a carrier strike group in the near future. L3 Technologies Inc., Camden, New Jersey, is awarded a $34,999,948 fixed-price-incentive-firm-target contract for the detail design and fabrication of a prototype Medium Unmanned Surface Vehicle (MUSV). This contract includes options for up to eight additional MUSVs, logistics packages, engineering support, technical data, and other direct costs, which, if exercised, will bring the cumulative value of this contract to $281,435,446. Work will be performed in Morgan City, Louisiana (72.7%); Arlington, Virginia (9.8%); Jeanerette, Louisiana (8.1%); New Orleans, Louisiana (6.6%); Worthington, Ohio (1.7%); Lafayette, Louisiana (0.9 %); and Gautier, Mississippi (0.2%), and is expected to be completed by December 2022. If all options are exercised, work will continue through June 2027. Fiscal 2019 and 2020 research, development, test and evaluation funding in the amount of $34,999,948 will be obligated at the time of award, and $29,779,038 will expire at the end of the current fiscal year. https://news.usni.org/2020/07/14/navy-awards-contract-for-first-vessel-in-its-family-of-unmanned-surface-vehicles

  • Army’s testbed ISR business jets are opening doors to new mission possibilities

    September 7, 2022 | International, Aerospace

    Army’s testbed ISR business jets are opening doors to new mission possibilities

    With the prototypes, "we're able to launch from one area and very quickly get to another area that is much further away in distance. So it opens up the aperture from a mission perspective," a program leader said.

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