Unmanned Systems
PLASMA FALCON 1.11 / 12.0 - 14.0 kg MTOW
Electrofluidsystems developed a novel swarm capable high-tech mini UAV with agile flight performance and the ability for high-altitude flights through heated pitot tubes, active flow control and plasma anti/de-icing or electro-thermal heating film structures on the leading edges of the outer wings. The PLASMA FALCON is made of a laser-sintered, additive manufactured structure with a honeycomb core reinforced prepreg glass fiber composite hull.
The world's first plasma flow controlled flying wing UAV has an improved performance at flight conditions which usually would stop other drones from flying because of strong crosswind induced flow separation and instability effects. The vehicles durability to crosswinds was increased by more than 60% and is thus higher than for other mini flying wing UAVs.
The high cruise speed and integrated plasma flow contol system makes the PLASMA FALCON system superior to existing flying wing drones. The sophisticated sliding discharge plasma actuators and generators were developed by our founder Berkant Göksel during his doctoral study at TU Berlin.
The 12.0 - 14.0 kg PLASMA FALCON 1.11 has a payload volume of 4.17 - 6.17 kg (34.8% - 44.1%), a very powerful 6.5 or 10.0 kW brushless electric motor for vertical takeoff and climb capabilities, a 360° ultrazoom visual system with fisheye navigation cameras and a high-end gyro-stabilized long-range HD EO/IR gimbal. There is also an optional eVTOL update kit available.
A new subclass of the PLASMA FALCON 1.11 is the plasma flow controlled CORONABAT 1.11 SIRIUS which has the EO/IR camera in nose configuration and can be also delivered from High-Altitude Platforms (HAPS) in a drag reducing swarm formation of four to six vehicles. That enables efficient gliding for many hours.
For this purpose, the new vehicle uses two units of the powerful 1024-core NVIDIA AI computer Jetson Orin NX 16GB with four to six 220 degree fisheye navigation cameras based on Sony IMX 586 (686/786) image sensors with 48mp (64/108mp) to capture 360 degree videos with ultrazoom function.
A swarm of four vehicles with a three wingspan distance in diamond formation has about 50% less total drag. So all following vehicles have a longer range. By repeated change of the lead position the range of all vehicles can be similarly extended. In a V-type formation with three vehicles the overall drag reduces by 35% followed by an echelon formation with two vehicles with about 25% drag reduction.
It is not widely known that bats keep the world record for the fastest level flight speed in the animal world. Brazilian free-tailed bats can reach 100 mph (160 km/h) in level flight. And this makes them faster than any bird on earth.
Bird-hunting peregrine falcons are the masters or titans of the sky. They just kick their preys out of the sky with a slashing blow from their powerful feets. And they can reach speeds of up to 242 mph (389 km/h) when diving but are much slower in level or horizontal flight.
Then, peregrine falcons can be even outflown by ordinary pigeons which can reach speeds of up to 92 mph (148 km/h) in level flight. And today, most of our mini and even small tactical UAVs are much slower than pigeons.
So we need a paradigm shift and have to apply new flight control techniques and advanced aircraft designs. Bats and birds can flap and morph their wings. We cannot do so easily. And when we do, our drones are still slow flyers. But what we can already do is active flow control by flapping plasma fields.
There are four pre-serial prototypes for the PLASMA FALCON class. The 12.0 kg version CORONA BAT 1.11 SIRIUS INTELLIGENCE with 4.17 kg (34.8%) payload volume has a maximum endurance of 117 minutes and a maximum range of 404 km at 208 km/h. The 14 kg version with a payload volume of 6.00 kg (42.9%) has a maximum range of 353 km (219 miles) at 224 km/h. The 14 kg version with canards for higher speeds can reach up to 607 km/h with three 3000 W electric motors and 7x15 racing propellers.
The next bigger CORONA BAT 1.66 SIRIUS INTELLIGENCE with 20 (25) kg and the all weather, day and night, multi-mode, multi-domain SAR/MTI radar NanoSAR NSP-2 from IMSAR and a high-end Electro-Optical/Infrared (EO/IR) gimbal camera for a powerful sensor-fusion has a maximum endurance of 243 (178) minutes or 4.05 (2.96) hours and an extraordinary range of 723 (591) km at optimum 179 (200) km/h using off-the-shelf LiPos. Custom-made Li-ion batteries with 8C continous discharge and a power density of up to 382 Wh/kg enable a range of 800+ km.
A fuel cell module makes only sense with liquid hydrogen tanks as the energy density of a 6.0 kg system with two standardard two-liter hydrogen tanks (1376 Wh) is not sufficient with 229 Wh/kg. The new batteries have now energy densities of up to 321 Wh/kg for 10C or even 382 Wh/kg for 8C delivering 1813 Wh or 2300 Wh. So a more complex liquid hydrogen fuel cell system is more suitable for the next bigger Corona Bat variants with 2.22 and 3.33 m wingspan for extended range capabilities.
Electrofluidsystems selected the gyro-stabilized and ruggedized electro-optical-infrared (EO-IR) gimbal Merio Milvus 7HD-LP (270 g) camera to replace the previous NextVision NightHawk2 (250 g) for nose integration in the Corona Bat 1.11. The new camera with MIL-STD 461/810 certification has higher optical/IR resolutions and can withstand -40°C. The Merio Milvus 7HD-LP with optical camera (1920x1080, zoom x160), LWIR (1280x1025, zoom x8) and the NightHawk2-UZ with optical camera (1920x1080, zoom x40), LWIR (1280x720, zoom x4) are both available in the Plasma Falcon 1.11 with underbody gimbal integration.
Electrofluidsystems is once again setting new standards in drone technologies and also demonstrates for the first time the possible use of advanced satellite camera heads and ultrasonic sensors from automotive ADAS (Advanced Driver Assistance Systems).
These camera heads have good day and night vision and also work in the most adverse weather conditions with temperatures ranging from -40°C to 85°C. The camera systems are certified according to IP67K and are therefore dustproof and waterproof. The heated lenses even have an IP69K rating and are extremely robust even at very high pressures and speeds.
Corona Bat 1.11 is currently the most advanced high-tech mini reconnaissance drone and the world's first mini UAV with heated high-end pitot probes certified for flights up to 33,000 ft. The air data computers of the high-tech probes from the Swiss company Simtec AG usually only fit into tactical drones with a wingspan of more than 2 meters of classic fuselage-wing designs. Corona Bat 1.11 has integrated two redundant high-end pitot probes with separate heating units that are approved for high-altitude flights and temperatures as low as -55°C.
TECHNICAL SPECIFICATIONS
Plasma Falcon Class with Modular Payload Volume | CoronaBat 1.11 with 12 kg Sirius Interceptor Sirius Intelligence Surveillance Reconnaissance (ISR) | CoronaBat 1.11 with 14 kg Sirius Interceptor Sirius Intelligence Surveillance Reconnaissance (ISR) | CoronaBat 1.11 Cnrd 14 kg Sirius Interceptor Sirius Intelligence Surveillance Reconnaissance (ISR) | CoronaBat 1.66 with 20 - 25 kg Sirius Interceptor Sirius Intelligenc Surveillance Reconnaissance (ISR) |
Length | 0.97 m | 0.97 m | 0.97 m | 1.45 m |
Wingspan | 1.11 m | 1.11 m | 1.11 m | 1.66 m |
Maximum Static Thrust | 137.2 N with 12x14 80 - 150 N with jet engine | 137.2 N with 12x14 111.7 N w. 3x 7x15 148.9 N w. 4x 7x15 80 - 150 N with jet engine | 137.2 N with 12x14 111.7 N w. 3x 7x15 148.9 N w. 4x 7x15 80 - 150 N with jet engine | 226.4 N with 18x14 195.0 N with 16x16 161.2 N w. 135x14 137.2 N with 12x14 229.7 N w. 3x 10x14 148.9 N w. 4x 7x15 150 - 300 N with jet |
Maximum Take-off Weight | 12.00 kg 117.7 N | 14.00 kg 137.3 N | 14.00 kg 137.3 N | 20.00 (25.00) kg 196.2 (245.3) N |
Empty Weight | 4.57 kg 1-Motor | 5.59 (4.57) kg 3-Motors (1-Motor) | 5.19 (4.74) kg 3-Motors (1-Motor) | 6.00 kg 1-Motor |
Battery Weight | 3.26 kg | 3.26 (3.26) kg | 3.26 (3.26) kg | 7.20 kg |
Optional Fuel Cell System (FSC) Weight | - | - | - | - |
Basic Payload Weight in Wing Section | 1.39 kg | 1.85 (2.20) kg | 2.07 (2.03) kg | 1.60 + 0.70 (1.6+2.60) kg or 1.60 + 0.70 (1.60 + 0.96 + 1.64 Auxiliary LiPo Battery 487 Wh or 622 Wh) kg |
Extra Payload Weight in Fuselage Section | 2.78 kg or 1.18 kg Auxiliary Battery 211 Wh + 1.60 kg | 3.30 (3.97) kg or 1.18 kg Auxiliary Battery 211 Wh + 2.12 (2.78) kg | 3.48 (3.97) kg or 1.18 kg Auxiliary Battery 211 Wh + 2.30 (2.78) kg | 4.50 (2.60 Auxiliary LiPo Battery 492 Wh + 5.00) kg or 2.60 (2.60) Auxiliary Battery 492 Wh + 1.90 NanoSAR (5.00) kg |
Total Payload Weight and Volume | 4.17 kg 34.8% | 5.15 (6.17) kg 36.8 (44.1) % | 5.55 (6.00) kg 39.6 (42.9) % | 6.80 (11.8) kg 34.0%(47.2%) |
Operating Temp. Range | -40° to +55°C | -40° to +55°C | -40° to +55°C | -40° to +55°C |
Optimal Cruise Speed on Ground Level | 208 km/h 129 mph | 226 km/h 141 mph | 224 km/h 139 mph | 179 (200) kmh 111 (124) mph |
Maximum Cruise Speed | 432 km/h or 268 mph with 12x14 | 435 km/h or 270 mph with 12x14 567 km/h or 352 mph w. 3x 7x15 588 km/h or 366 mph w. 4x 7x15 | 445 km/h or 276 mph with 12x14 607 km/h or 377 mph w. 3x 7x15 622 km/h or 386 mph w. 4x 7x15 | 326 (328) km/h or 202 (204) mph with 18x14 338 (340) km/h or 210 (211) mph with 16x16 375 (378) km/h or 233 (235) mph with 135x14 397 (401) km/h or 247 (249) mph with 12x14 423 (427) km/h or 263 (265) mph w. 3x 10x14 518 (524) km/h or 322 (326) mph w. 4x 7x15 |
Total Battery Energy | 836 Wh w. 18.8 Ah, 12s, 10C or 1047 Wh w. 23.6 Ah, 12s, 8C for Propulsion + 118 Wh or 150 Wh for Plasma Systems, Pitot Tube Heating and Electronics + Optional 211 Wh Auxiliary Battery in Fuselage for Mid-Range Intelligence, Surveillance & Rec.(ISR) | 836 Wh w. 18.8 Ah, 12s, 10C or 1047 Wh w. 23.6 Ah, 12s, 8C for Propulsion + 118 Wh or 150 Wh for Plasma Systems, Pitot Tube Heating and Electronics + Optional 211 Wh Auxiliary Battery in Fuselage for Mid-Range Intelligence, Surveillance & Rec.(ISR) | 836 Wh w. 18.8 Ah, 12s, 10C or 1047 Wh w. 23.6 Ah, 12s, 8C for Propulsion + 118 Wh or 150 Wh for Plasma Systems, Pitot Tube Heating and Electronics + Optional 211 Wh Auxiliary Battery in Fuselage for Mid-Range Intelligence, Surveillance & Rec.(ISR) | 1813 Wh w. 35.0 Ah, 14s, 10C or 2300 Wh w. 44.4 Ah, 14s, 8C for Propulsion + 487 Wh or 622 Wh for Plasma Systems, Pitot Tube Heating, Electronics & NanoSAR NSP-2 + Optional 487 Wh or 622 Wh Auxiliary Battery in Wing for Long-Range ISR Mission Electronics + Optional 492 Wh Auxiliary Battery in Fuselage for Long-Range ISR with NanoSAR NSP-2 |
Specific Energy | 297 Wh/kg with 10C or 382 Wh/kg with 8C | 297 Wh/kg with 10C or 382 Wh/kg with 8C | 297 Wh/kg with 10C or 382 Wh/kg with 8C | 321 Wh/kg with 10C or 382 Wh/kg with 8C |
Cruise Power | 484 W at 208 km/h with 12x14 | 603 W at 226 km/h with 12x14 568 W at 226 km/h w. 3x7x15 584 W at 226 km/h w. 4x7x15 | 648 W at 224 km/h with 12x14 624 W at 224 km/h w. 3x7x15 639 W at 224 km/h w. 4x7x15 | 699 (936) W at 179 (200) km/h with 18x14 646 (862) W at 179 (200) km/h with 16x16 621 (849) W at 179 (200) km/h with 135x14 608 (833) W at 179 (200) km/h with 12x14 700 (960) W at 179 (200) km/h w. 3x 10x14 601 (826) W at 179 (200) km/h w. 4x 7x15 |
VTOL Power | - | - | - | - |
Vertical Takeoff Capability | Self-launch from 60° - 90° ramp with thrust for vertical lift for 143 km/h with 12x14 | Self-launch from 60° - 90° ramp with thrust for vertical lift for 149 km/h with 12x14 or 3x 7x15 | Self-launch from 60° - 90° ramp with thrust for vertical lift for 149 km/h with 12x14 or 3x 7x15 | Self-launch from 60° - 75° ramp with thrust for vertical lift for 124 (142) km/h with 18x14 or 16x16 |
Endurance and Flight Range on Ground Level for Sirius Interceptor with 90% Battery Energy for Mid-Range Interception with Extra Payload in Fuselage | 93.1 min and 323 km at 208 km/h with 12x14 and 836 Wh 17.9 min and 112 km at 375 km/h with 12x14 and 836 Wh 8.98 min and 64 km at 432 km/h with 12x14 and 836 Wh | 74.7 min and 281 km at 226 km/h with 12x14 and 836 Wh 79.3 min and 299 km at 226 km/h w. 3x 7x15 and 836 Wh 18.8 min and 117 km at 375 km/h with 12x14 and 836 Wh 20.2 min and 126 km at 375 km/h w. 3x 7x15 and 836 Wh 9.27 min and 67 km at 435 km/h with 12x14 and 836 Wh 4.36 min and 41 km at 567 km/h w. 3x 7x15 and 836 Wh 3.81 min and 37 km at 588 km/h w. 4x 7x15 and 836 W | 69.5 min and 259 km at 224 km/h with 12x14 and 836 Wh 72.2 min and 270 km at 224 km/h w. 3x 7x15 and 836 Wh 22.8 min and 142 km at 375 km/h with 12x14 and 836 Wh 25.0 min and 156 km at 375 km/h w. 3x 7x15 and 836 Wh 10.5 min and 78 km at 445 km/h with 12x14 and 836 Wh 5.94 min and 60 km at 607 km/h w. 3x 7x15 and 836 Wh 5.15 min and 53 km at 622 km/h w. 4x 7x15 and 836 Wh | 140 - 178 (105 - 133) min and 417 - 529 (348 - 442) km at 179 (200) km/h with 18x14 and 1813 - 2300 Wh 152 - 192 (114 - 144) min and 451 - 572 (378 - 480) km at 179 (200) km/h with 16x16 and 1813 - 2300 Wh 158 - 200 (115 - 146) min and 469 - 595 (384 - 487) km at 179 (200) km/h with 135x14 and 1813 - 2300 Wh 161 - 204 (117 - 149) min and 479 - 608 (391 - 496) km at 179 (200) km/h with 12x14 and 1813 - 2300 Wh 140 - 177 (102 - 129) min and 416 - 528 (340 - 431) km at 179 (200) km/h w. 3 x10x14 and 1813 - 2300 Wh 163 - 207 (118 - 150) min and 485 - 615 (395 - 501) km at 179 (200) km/h w. 4x 7x15 and 1813 - 2300 Wh 20.9 - 26.5 (21.4- 27.2) min and 114 - 144 (117 - 148) km at 326 (328) km/h with 18x14 and 1813 - 2300 Wh 23.8 - 30.2 (24.7- 31.4) min and 134 - 170 (140 - 178) km at 338 (340) km/h with 16x16 and 1813 - 2300 Wh 16.2 - 20.6 (16.6- 21.1) min and 101 - 129 (105 - 133) km at 375 (378) km/h w. 135x14 and 1813 - 2300 Wh 13.9 - 17.7 (14.5- 18.5) min and 092 - 117 (97 - 123) km at 397 (401) km/h with 12x14 and 1813 - 2300 Wh 10.2 - 12.9 (9.60- 12.2) min and 072 - 91 (68 - 87) km at 423 (427) km/h w. 3x 10x14 and 1813 - 2300 Wh 5.51 - 6.99 (5.03- 6.38) min and 48 - 60 (44 - 56) km at 518 (524) km/h with 4x 7x15 and 1813 - 2300 Wh |
Endurance and Flight Range on Ground Level for Sirius Intelligence with 90% Battery Energy for Long-Range ISR Mission or for Kinetic Long-Range Interception | 117 min and 404 km at 208 km/h with 12x14 & 1047 Wh 22.4 min and 140 km at 375 km/h with 12x14 & 1047 Wh 11.2 min and 81 km at 432 km/h with 12x14 & 1047 Wh | 93.6 min and 353 km at 226 km/h with 12x14 & 1047 Wh 99.3 min and 374 km at 226 km/h w. 3x 7x15 & 1047 Wh 23.5 min and 147 km at 375 km/h with 12x14 & 1047 Wh 25.3 min and 158 km at 375 km/h w. 3x 7x15 & 1047 Wh 11.6 min and 84 km at 435 km/h with 12x14 & 1047 Wh 5.47 min and 52 km at 567 km/h w. 3x 7x15 & 1047 Wh 4.77 min and 47 km at 588 km/h w. 4x 7x15 & 1047 Wh | 87.1 min and 325 km at 224 km/h with 12x14 & 1047 Wh 90.5 min and 338 km at 224 km/h w. 3x 7x15 & 1047 Wh 28.5 min and 178 km at 375 km/h with 12x14 & 1047 Wh 28.5 min and 196 km at 375 km/h w. 3x 7x15 & 1047 Wh 13.1 min and 97 km at 445 km/h with 12x14 & 1047 Wh 7.44 min and 75 km at 607 km/h w. 3x 7x15 & 1047 Wh 6.45 min and 67 km at 622 km/h w. 4x 7x15 & 1047 Wh | 216 (161) min and 642 (536) km at 179 (200) km/h with 18x14 & 2792 Wh 233 (175) min and 695 (582) km at 179 (200) km/h with 16x16 & 2792 Wh 243 (178) min and 723 (591) km at 179 (200) km/h with 135x14 & 2792 Wh 248 (181) min and 738 (603) km at 179 (200) km/h with 12x14 & 2792 Wh 215 (157) min and 641 (523) km at 179 (200) km/h w. 3x 10x14 & 2792 Wh 251 (182) min and 746 (608) km at 179 (200) km/h w. 4x 7x15 & 2792 Wh 32.2 (33.0) min and 175 (180) km at 326 (328) km/h with 18x14 & 2792 Wh 36.7 min (38.1) and 207 (216) km at 338 (340) km/h with 16x16 & 2792 Wh 25.0 min (25.6) and 156 (161) km at 375 (378) km/h w. 135x14 & 2792 Wh 21.5 min (22.3) and 142 (149) km at 397 (401) km/h with 12x14 & 2792 Wh 15.6 min (14.8) and 110 (105) km at 423 (427) km/h w. 3x 10x14 & 2792 Wh |
Max. Flight Altitude | 0 - 9,144 m (30,000 ft) | 0 - 9,144 m (30,000 ft) | 0 - 9,144 m (30,000 ft) | 0 - 9,144 m (30,000 ft) |
First Flight | 2026 (prop) | 2026 (prop) | 2026 (prop) | 2027 (prop) 2027 (jet) |
Brushless Electric Motor with High-Pitch Propeller | 1x 6500 W with 12x14 or 1x 10 kW with 12x14 | 1x 10 kW with 12x14 or 3x 4100 W with 7x15 or 4x 3500 W with 7x15 | 1x 10 kW with 12x14 or 3x 3500 W with 7x15 or 4x 3000 W with 7x15 | 1x 15 kW with 18x14, 16x16, 135x14 or 12x14 or 3 x 5600 W with 3x 10x14 or 4 x 6500 W with 7x15 |
Corona Bat 1.11 also features a globally unique plasma anti-de-icing system, powered by two RF piezo plasma and two HV-DC DC voltage generators. This enables the efficient ignition of sliding discharges, which run several centimeters along the leading edge and thus also contribute to active flow and direction control. The drone can thus be controlled at high speed even without rudder deflection when necessary. These are usually technologies used on very advanced hypersonic guided missiles.
Corona Bat 1.11 also includes an alternative, electro-thermal anti-de-icing system based on innovative heating film structures, which can replace the plasma actuator films on the leading edges of the outer wings. For this purpose, the plasma generators are replaced by two additional heating units. These are identical heaters that are also used for the high-end heated pitot probes.
The additional battery power with 118 Wh is also used to heat the 835 Wh motor battery when necessary. The new battery has an energy density of 297 Wh/kg for the Corona Bat 1.11 and even 320 Wh/kg for the next bigger Corona Bat 1.66. That enables an extraordinary range at high cruise speeds going beyond what is available today with sailplane-type fuselage-wing configurations.
With CoronaBat UAS Electrofluidsystems redefines the next generation of swarm-capable, highly maneurable, high-speed mini UAV systems for real-time surveillance assisted by an AES-256 encrypted dual video telemetry system and the Mesh Rider Dual Radio from Doodle Labs with a handheld high-end GCS controller based on the ruggedized and robust Panasonic FZ-S1.
The CoronaBat UAV system has two onboard DroneCore2 modules from Airvolute with the latest NVIDIA AI computer Jetson Orin NX. The main autopilot is based on the US-made hardware Cube Blue with ADS-B antenna from CubePilot with two additional Cube Blue units on the DroneCore2 modules for triple autopilot redundancy.
The Cube Blue is identical to the Cube Orange with the main difference being that it is manufactured in the USA. The Cube Blue is designed for operators that require a US-made flight controller option, such as government or military operators.
One of the two AI-computers is reserved for the SWARMPILOT with four navigation cameras and the optional blockchain platform SWARMCHAIN for more secure communication and coordination of swarming unmanned aerial vehicles (SUAVs).
Electrofluidsystems CoronaBat 1.11 with its huge payload bay is also a 1:20 (CoronaBat 22.2) and 1:27 (CoronaBat 30.0) scale model for a new generation of flying wing cargo aircrafts with ultra-efficient 550 PS RED AIRCRAFT A03 Diesel engines which can be also modified to work with hydrogen fuel using plasma combustion systems. The standard A03 high-altitude engine with 500 PS can provides 375 PS at 35,000 ft (10,668 m).
At 45,000 ft (13,716 m) altitude, the CoronaBat 22.2 needs 460 PS to fly with a speed of 400 km/h. Otto Aviation uses advanced multi-stage turbo chargers and heat exchangers in the Celera 500L to compensate the dramatic power drop at altitudes from 10,668 m to 15,000 m where the standard engine only provides 170 PS (see for the US patent 9,446,835 B2 from William Otto).
The payload bay of both versions can be easily accessed through the front door and in case of the bigger 8,600 kg variant with 30.0 m span can carry different standard cargo containers like LD-1, LD-2 or LD-3 and also different bulk cargo packages on 463L master pallets (HCU-6/E) as shown in the concept visualization above. The CoronaBat 30.0 will have a rear clamshell door to release airdrop pallets.
Electrofluidsystems optionally piloted flying wing cargo UAV CoronaBat 22.2 can also fly with sustainable aviation fuel-powered GE Catalyst turboprop engines and reach a constant cruise speed of 507 km/h (272 kts) at 13,176 m (45,000 ft) altitude. The same engine can also power the upscaled CoronaBat 30.0.
PLASMA RAY 1.11 / 11 - 18 kg MTOW
The stingray-shaped PLASMA RAY is an electric VTOL (eVTOL) UAV with 1.11 m wingspan and a maximum take-off weight (MTOW) of 11 - 18 kg. The deliverable payload weight is 4.0 - 8.2 kg. The near-term vision is to extend the product family to 1.66 m - 3.33 m wingspan until 2027. The AI swarm controller (SWARMPILOT) will enable coordinated flights in half-diamond and full diamond-shaped formations, reducing drag and increasing range by up to 50%.
The first pre-serial prototypes of the PlasmaRay with 1.11 m wingspan will use 12 electric ducted fan (EDF) jets from Schuebeler (DS-30-AXI HDS) and three kind of different brushless electric motors. There will be three basic versions for the PlasmaRay:
TECHNICAL SPECIFICATIONS
PLASMARAY 1.11 | H2PLASMARAY 1.11 | LH2PLASMARAY 1.11 | |
Length | 0.78 m | 0.78 m | 0.78 m |
Wingspan | 1.11 m | 1.11 m | 1.11 |
Maximum Take-off Weight | 17.8 kg | 17.8 kg | 17.8 kg |
Empty Weight | 5.4 kg | 5.8 kg | 5.8 kg |
Battery Weight | 8.4 / 6.3 / 4.2 kg (4 / 3 / 2 x ...) | 2.2 kg (2 x ....) | 2.2 kg (2 x ...) |
Fuel Cell System (FCS) Weight | - | 5.7 / 4.3 kg (2 x 800 W FCS from IE plus 4 liters H2) | 5.7 / 4.3 kg (2 x 800 W FCS from IE plus 3.0 / 1.5 liters LH2) |
Payload & Package Weight | 4.0 / 6.1 / 8.2 kg | 4.1 / 5.5 kg | 4.1 / 5.5 kg |
Cruise Speed | 233 - 266 km/h | 187 - 218 km/h | 187 - 218 km/h |
Maximum Cruise Speed | 300+ km/h | 300+ km/h | 300+ km/h |
Flight Range | 150+ / 110+ / 70+ km | 150+ / 70+ km | 340+ / 170+ km |
Endurance | 40+ / 30+ / 20+ min (with 1 min VTOL) | 50+ / 25+ min (with 2 min VTOL) | 110+ / 55+ min (with 2 min VTOL) |
Flight Altitude | 0 - 5,500 m | 0 - 5,500 m | 0 - 5,500 m |
Total Energy | 1,704 / 1,278 / 852 Wh | 1,820 / 1,114 Wh | 3,753 / 2,080 Wh |
Specific Energy | ... Wh/kg (LiPo) | ... Wh/kg (H2 + LiPo) | ... Wh/kg (LH2 + LiPo) |
VTOL Power | 11,790 W | 11,790 W | 11,790 W |
Cruise Power | 2,000 W | 1,600 W | 1,600 W |
First Flight: | 2027 | 2027 | 2027 |
Electric Ducted Fan (EDF) Motor | 5+5+2 Schübeler DS-30-AXI HDS | 5+5+2 Schübeler DS-30-AXI HDS | 5+5+2 Schübeler DS-30-AXI HDS |
PLASMARAY 1.11 and H2PLASMARAY 1.11 UAV systems are plasma flow controlled, swarm capable eVTOL demonstrators for a new class of hydrogen fuel-cell powered, hyperfast air taxis with 6.66 m (900 - 1,000 kg), 8.88 m (1,850 - 2,000 kg), 11.1 (3,000 kg), 13.3 m (5,700 kg), 18.0 m (10,500 kg) and 19.9 m (13,500 kg) wingspan.
Electrofluidsystems also works on new heavy cargo BWB aircraft concepts based on the PlasmaRay design. A 4,700 kg PlasmaRay system would use 36 Vasyfan VF-570 lift fans (with each having 150 kg static thrust).














