UAV & Drones
AutoFlight and AAAG Conduct Central Asia’s First Ton-Class eVTOL Flight
AutoFlight and Kazakhstan’s AAAG completed the first ton-class eVTOL flight in Central Asia, advancing regional low-altitude transport with a 50-aircraft order.

On May 19, 2026, Chinese eVTOL developer AutoFlight and Kazakhstan-based Alatau Advance Air Group (AAAG) successfully executed the first ton-class electric vertical takeoff and landing (eVTOL) flight demonstration in Central Asia. The historic flight took place in Alatau City, a new smart city development near Almaty, Kazakhstan.
According to an official statement from battery manufacturer and AutoFlight strategic investor CATL, the event also marked the signing of a Memorandum of Understanding (MOU) between AutoFlight and AAAG. The agreement secures an additional 50 large eVTOL aircraft to establish a regional low-altitude transportation network.
This milestone highlights Kazakhstan’s aggressive push into the Advanced Air Mobility (AAM) sector, backed by significant private Investments and new government legislation aimed at fostering a “Low Altitude Economy” in the region.
The Historic Flight Demonstration in Alatau City
Aircraft Specifications and Safety
The demonstration featured the AutoFlight PROSPERITY, also known as the V2000EM model. Industry research notes that this 100% electric air taxi is designed to carry one pilot and five passengers. During the maiden Central Asian flight, the aircraft was operated without passengers to comply with strict safety protocols.
According to provided technical specifications, the V2000EM boasts a top speed of 200 to 250 km/h and a range of up to 200 kilometers. Powered by 13 electric motors, it operates at a noise level of approximately 65 decibels, substantially quieter than a traditional helicopter’s 90 decibels, while producing zero local carbon emissions.
Expanding the Fleet and Drones Logistics
Beyond the passenger-focused PROSPERITY model, AutoFlight showcased its larger 5-ton V5000 Matrix, an eVTOL engineered for long-range transport and heavy cargo payloads up to 1,500 kilograms. The newly signed MOU for 50 aircraft includes a mix of both the V2000 and V5000 models, building upon an existing, fully paid order from AAAG.
The event also highlighted uncrewed drone logistics. Demonstrations included automated parcel locker deliveries by Keeta Drone, a subsidiary of China’s Meituan, and direct-to-door cable delivery mechanisms from California-based A2Z Drone Delivery.
Strategic Partnerships Driving Central Asia’s UAM Ecosystem
Financial Backing and Infrastructure
The development of Kazakhstan’s UAM network is heavily supported by private enterprise. AAAG, founded in March 2025 and registered at the Astana International Financial Centre, is spearheading the initiative. The project is backed by Alatau City Bank, with total investments in the local UAM ecosystem estimated by industry reports at $300 million.
Infrastructure development is already underway. According to industry reports, AAAG partnered with Italian operator UrbanV in December 2025 to design a national vertiport network. The first of these facilities is currently under construction at the demonstration site, which is slated to become the “UAM Center Eurasia.” Furthermore, the airspace will be managed by the UATM digital navigation platform, developed jointly by the Korea Airports Corporation and the Shenzhen Urban Transportation Planning Center.
The Role of CATL
Battery performance remains a critical factor in eVTOL viability, particularly concerning energy density and turnaround time. CATL, the world’s largest electric vehicle battery manufacturer, became a strategic investor in AutoFlight in August 2024, providing a significant competitive advantage.
In their official release, CATL emphasized their dedication to the project, stating they remain committed to supporting partners in building a smart, zero-carbon future for global aerial mobility.
Regulatory Support and the “Low-Altitude Economy”
Government Legislation
The rapid progress in Alatau City is underpinned by recent legislative action. On May 8, 2026, Kazakhstan’s President Kassym-Jomart Tokayev signed a Constitutional Law establishing a special legal regime for Alatau City, specifically designed to attract high-tech investments.
Vyacheslav Kim, a shareholder of Alatau City Bank, highlighted the importance of this government backing during the event.
“The President’s support has enabled us to establish UAM Center Eurasia and attract some of the world’s leading technology partners to Kazakhstan,” Kim stated.
AirPro News analysis
We observe that Kazakhstan is strategically positioning itself as a primary gateway for the “low-altitude economy” along the digital Silk Road. By designing Alatau City, a 340-square-mile smart city, from scratch, urban planners can integrate air mobility directly into the city’s master plan without the friction of retrofitting legacy infrastructure.
Furthermore, AAAG’s approach indicates a multi-vendor strategy rather than reliance on a single manufacturer. Their November 2025 Letter of Intent with US-based Joby Aviation for up to $250 million in aircraft and services suggests a robust, diversified UAM ecosystem. If Morgan Stanley’s projections of a $1 to $1.5 trillion global UAM market by 2040 hold true, early adopters like Kazakhstan could see significant economic and logistical benefits. For instance, regional travel times could be drastically reduced, with estimates suggesting a trip from Almaty Airport to the Medeu high-mountain resort could take just 10 to 12 minutes by air taxi.
Frequently Asked Questions
What is an eVTOL?
eVTOL stands for electric vertical takeoff and landing. These aircraft use electric power to hover, take off, and land vertically, much like a Helicopters, but are generally quieter and produce zero local emissions.
Who are the main partners in the Kazakhstan eVTOL project?
The primary partners include Chinese eVTOL developer AutoFlight, Kazakhstan-based Alatau Advance Air Group (AAAG), and battery manufacturer CATL.
Where was the first Central Asian eVTOL flight held?
The demonstration flight took place on May 19, 2026, in Alatau City, a new smart city development near Almaty, Kazakhstan.
Sources: CATL, AutoFlight and AAAG Research Report
Photo Credit: CATL
UAV & Drones
Lockheed Martin NetSense 5G Drone Detection System
Lockheed Martin demonstrates NetSense, a passive AI-powered UAS detection system using existing 5G networks, targeting 2027 availability.

Lockheed Martin Corporation (LMT) has successfully demonstrated a new drones detection system that leverages existing commercial 5G cellular networks and artificial intelligence to track unauthorized Unmanned Aircraft Systems (UAS) in low-altitude airspace.
Announced in a press release on August 12, 2026, the NetSense Airspace Awareness-as-a-Service system is designed to eliminate the need for expensive, custom-built radar installations. By analyzing radio frequency (RF) disturbances on established networks, the platform offers a scalable security solution for airports, stadiums, and critical infrastructure.
Commercial partnerships and technology integration
The system relies on a coalition of commercial technology providers. Lockheed Martin developed the platform in collaboration with Verizon Communications Inc. (VZ), NVIDIA Corporation (NVDA), Keysight Technologies Inc. (KEYS), ODC, and Astris AI, a wholly owned subsidiary of Lockheed Martin.
Rather than deploying active Radar-Systems, the NetSense system operates passively. It utilizes the NVIDIA AI Aerial platform and ODC AI-native Radio Access Network (RAN) software to monitor RF signal disturbances across Verizon’s cellular network. When a UAS enters the monitored airspace, the system detects the disruption and predicts the aircraft’s flight path in real time.
“By working within the established 5G network spectrum, we’re able to collaborate with the commercial technology industry and deploy a solution that’s ready at the time of need,” said Sarah Hiza, Senior Vice President of Technology and Strategic Innovation at Lockheed Martin.
Deployment timeline and subscription model
Lockheed Martin initially introduced the NetSense prototype in March 2026. The company and its partners subsequently conducted a successful live demonstration of the system in a high-traffic urban environment in the Miami, Florida area in July 2026.
The manufacturers plans to initiate pilot deployments for select customers between the second half of 2026 and early 2027. General commercial availability is targeted for 2027. The system will be offered as a subscription service, utilizing commercial off-the-shelf (COTS) technologies to integrate directly into customers’ existing security operations.
Hiza noted the necessity of rapid development cycles for counter-drone technology to match the pace of the commercial market.
“As drones become more affordable and accessible, airspace awareness technology needs to evolve rapidly to outpace potential threats. That’s why we developed the NetSense solution.”
AirPro News analysis
We view the shift toward passive, network-based UAS detection as a critical development for airport operators. The proliferation of capable commercial drones has increased the risk of unauthorized incursions into restricted airspace, which frequently disrupt commercial flight operations and require runway closures. Traditional counter-UAS systems require significant capital expenditure and complex regulatory approvals for active radar emissions. By leveraging existing 5G infrastructure and COTS hardware, the NetSense system could substantially lower the barrier to entry for regional airports and private operators seeking comprehensive low-altitude airspace awareness without the footprint of traditional sensor arrays.
Sources: Lockheed Martin
Photo Credit: Lockheed Martin
UAV & Drones
ePropelled Receives $60M to Quadruple UAV Propulsion Capacity
A $60M U.S. government investment will expand ePropelled’s Laconia, NH facility fourfold to strengthen domestic UAV propulsion supply chains.

Electric propulsion manufacturer ePropelled will quadruple its production capacity for uncrewed aerial vehicle (UAV) systems following a $60 million investment from the U.S. government. The funding will expand the company’s manufacturing footprint in Laconia, New Hampshire, from 20,000 to 80,000 square feet.
Announced in a press release on August 11, 2026, the expansion is supported by the Industrial Base Analysis and Sustainment (IBAS) program. The initiative aims to strengthen the domestic supply chain for mission-critical drone technologies and reduce reliance on foreign suppliers for dual-use electric propulsion systems.
Scaling domestic UAV production
ePropelled specializes in electric motors, electronic speed controllers, and complete propulsion systems for uncrewed aircraft. The newly announced facility expansion will allow the manufacturer to increase its annual production capacity by a factor of four. This scale-up addresses accelerating demand across defense, public safety, logistics, and agricultural markets.
In the company statement, ePropelled CEO Nick Grewal described the investment as a significant milestone for both the company and the broader U.S. advanced manufacturing sector.
“As demand for high-performance uncrewed systems continues to accelerate, expanding our manufacturing capacity ensures that we can deliver reliable, scalable, and secure propulsion systems produced in the United States,” Grewal said. “We are proud to support the government’s objective of strengthening domestic manufacturing while helping customers across government and commercial markets deploy advanced capabilities faster.”
Supply chain security and intellectual property
The $60 million injection aligns with broader federal objectives to secure the supply chain for critical aerospace components. By funding domestic production through programs like IBAS, the U.S. government is actively working to mitigate risks associated with offshore manufacturing of dual-use technologies.
Since its founding in 2018, ePropelled has developed a substantial portfolio of intellectual property to support these manufacturing efforts. The company has generated more than 40 patents across 13 categories, focusing on power and propulsion innovations for aerospace applications.
AirPro News analysis
The $60 million investment in ePropelled highlights a growing urgency within the U.S. defense apparatus to onshore critical subcomponents for uncrewed aerial systems. While airframe manufacturing has largely remained domestic for defense applications, propulsion systems and electronic speed controllers have historically relied on international supply chains. By quadrupling ePropelled’s capacity, the Industrial Base Analysis and Sustainment program is directly addressing a known bottleneck in UAV procurement. We expect to see similar targeted investments in domestic component manufacturers as the government continues to prioritize scalable, attritable uncrewed systems.
Sources: ePropelled
Photo Credit: ePropelled
UAV & Drones
Modovolo Uses BQP Quantum Software to Optimize UAV Propellers
Modovolo integrates BQP’s BQPhy software to run concurrent propeller simulations, improving UAV flight time and payload capacity.

Drones manufacturer Modovolo has integrated quantum-inspired simulation software from BQP to optimize the aerodynamic design of its 3D-printed propellers, yielding immediate increases in flight time and payload capacity.
Announced in a press release on August 7, 2026, the partnerships utilizes BQP’s BQPhy software and its QuantumNOW solver. The integration allows Modovolo to bypass traditional Computational Fluid Dynamics (CFD) bottlenecks by running tens of thousands of simulations concurrently on existing high-performance computing and graphics processing unit infrastructure.
Overcoming computational bottlenecks in propeller design
Propeller optimization presents a complex engineering challenge due to the vast number of aerodynamic and structural variables involved at every point along a blade. Modovolo Co-Founder and Chief Technology Officer Arion Mangio noted that traditional tools struggle to account for these infinite variables, making the design process lengthy and prone to error.
Prior to the integration, Modovolo relied on proprietary genetic algorithms to develop high-efficiency designs. However, the sheer volume of potential three-dimensional geometries made the process highly time-intensive, often requiring weeks of computational work to re-run design iterations.
“By running thousands of simulations simultaneously, BQPhy eliminates the traditional trial-and-error bottleneck. It gives forward-thinking manufacturers like Modovolo the power to discover radically optimized geometries that were previously computationally invisible, moving from software output to physical testing at a pace the industry hasn’t seen before,” said Abhishek Chopra, Founder and CEO of BQP.
Chopra added that the software integration focuses on total design-space exploration rather than simply accelerating individual simulations.
Translating simulation to UAV performance
The application of the QuantumNOW solver has directly impacted the physical capabilities of Modovolo’s Unmanned Aerial Vehicles (UAVs). By evaluating an unprecedented number of design variables simultaneously, the engineering team resolved immediate performance limitations and established a scalable system for future aircraft development.
Modovolo Co-Founder and CEO Justin Call explained that while the company had already developed a proprietary process for manufacturing affordable 3D-printed propellers, maximizing their aerodynamic efficiency using conventional software remained a slow process.
“BQPhy acted as a true force multiplier, giving us a massive competitive leap in UAV market. With the BQP-developed propellers we are seeing large increases in flight time and payload lift capacity,” Call stated.
AirPro News analysis
The integration of quantum-inspired solvers into commercial aerospace design highlights a critical shift in how manufacturers approach aerodynamic optimization. In the UAV sector, where battery density and payload capacity remain strict operational constraints, extracting marginal efficiency gains from propeller geometry is essential. By moving away from sequential CFD testing and adopting concurrent, large-scale simulation, manufacturers can significantly compress the development cycle. We expect this computational approach to become increasingly standard across the advanced air mobility and drone manufacturing sectors as companies seek to reduce the time and capital required for physical prototyping.
Sources: BQP via PR Newswire
Photo Credit: BQP
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