Designing C2 Links for BVLOS UAS Operations
Highlights
- Defining and achieving bandwidth and latency performance metrics that cater for Beyond Visual Line-of-Sight (BVLOS) drone operations is a complex study that requires the design and analysis of telecommunication networks, avionics hardware, and embedded software.
- MBSE (Model-Based Systems Engineering) effectively consolidates complex requirements from EU regulators, telecom providers, and drone operators, facilitating focused design and regulatory alignment.
- Key attributable metrics for BVLOS operations can be targeted to specific stakeholders and provide realistic goals for long-term sustainable planning as BVLOS operations transit from rural to urban areas in Europe.
- The MBSE method is shown to provide a baseline design that is iterative and translatable to similar operational scenarios, and which will enhance speed of regulatory approval while taking into account the new and evolving safety and technical requirements being made by EU regulatory bodies.
Abstract
1. Introduction
- Develop an MBSE guide for designing C2 data links in BVLOS operations.
- Link architecture diagram connectors to system functions, enabling their use in regulatory verification.
- Align software verification tests with requirements tied to validated MBSE objectives.
2. Preliminaries
2.1. Specific Operations Risk Assessment (SORA)
2.2. Drone Communication Networks
3. MBSE for Safe BVLOS Flight Operations
3.1. Operational Architecture Diagram
3.2. Logical Architecture Diagram
3.3. Physical Architecture Diagram
- Packet Distribution: Manages packet distribution and load balancing across available paths to optimize data throughput.
- Transfer Measurement: Monitors data-transfer performance to support efficient path-utilization decisions.
- Link Evaluation: Assesses real-time link metrics to prioritize the most reliable communication paths.
- Hardware Management: Configures modem settings and manages physical resources.
- Predictive Link Estimation (future software add-on): Anticipates link conditions to maintain stable connection.
- Manage Initialization (future software add-on): Handles the coordination of the boot-up sequence between the main system and the C2 data-link system when intricate startup management is needed.
4. Test Results for Bandwidth and Latency
4.1. Test Setup for Bandwidth
| Listing 1: iPerf3 command example. |
| iperf3 -c <server_IP_address> -B <client_IP_address> -t 10 |
4.2. Results for Bandwidth
4.3. Test Setup for Latency
| Listing 2: Ping command example. |
| ping -c 100 <server_IP_address> |
4.4. Results for Latency
| Listing 3: Interface Status Log and Failover Trigger. |
| 2025-08-05 23:02:48 - enp60s0 is UP (CABLE CONNECTED) |
| 2025-08-05 23:02:49 - enp60s0 is UP (CABLE CONNECTED) |
| 2025-08-05 23:02:50 - enp60s0 is UP (CABLE CONNECTED) |
| 2025-08-05 23:02:51 - enp60s0 is UP (CABLE DISCONNECTED) |
| DEBUG: Cable disconnect detected! Triggering failover... |
| Listing 4: Failover Completion Time. |
| Failover completed in 0.116455208 s |
| Listing 5: Ping Test Output to 10.0.0.1. |
| 2. Testing connectivity to 10.0.0.1: |
| PING 10.0.0.1 (10.0.0.1) 56(84) bytes of data. |
| 64 bytes from 10.0.0.1: icmp_seq=1 ttl=64 time=9.41 ms |
| 64 bytes from 10.0.0.1: icmp_seq=2 ttl=64 time=65.6 ms |
| 64 bytes from 10.0.0.1: icmp_seq=3 ttl=64 time=87.2 ms |
| --- 10.0.0.1 ping statistics --- |
| 3 packets transmitted, 3 received, 0% packet loss, time 2003 ms |
| rtt min/avg/max/mdev = 9.409/54.088/87.221/32.799 ms |
4.5. Validation of Results
4.6. Adapting C2 Data Link for New-Use Case
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Step | Description | Remarks |
|---|---|---|
| 1 | Concept of Operations (ConOps) Description | Gather all technical, operational, and system information necessary to assess the risks of the intended UAS operation. |
| 2 | Initial Ground Risk Class (GRC) | Assess intrinsic factors such as UAS weight. |
| 3 | Final GRC | Consider design aspects and mitigation measures to establish the final GRC. |
| 4 | Initial Air Risk Class (ARC) | Evaluate the initial air risk based on the characteristics of the airspace. |
| 5 | Residual ARC | Assess residual air risk after applying strategic mitigation. |
| 6 | Tactical Mitigation Performance Requirements (TMPR) | Manage any remaining mid-air collision risks. |
| 7 | Determine Specific Assurance Integrity Level (SAIL) | Based on ConOps, final GRC and residual ARC. |
| 8 | Determine Containment Requirements | Ensure that the target level of safety is achieved for ground and air risks. |
| 9 | Identify Operational Safety Objectives (OSO) | Demonstrate compliance with 24 OSOs at the required robustness levels. |
| 10 | Comprehensive Safety Portfolio | Demonstrate compliance with SORA regulations and document previous steps. |
| No. | Country | Organisation | Number of Registered Drone Operators | Number of OA | STS | A1/A2/A3 | STS/OA |
|---|---|---|---|---|---|---|---|
| 19 | Poland | Urząd Lotnictwa Cywilnego | 222,190 | 349 | 12,794 | 209,819 | 37 |
| 13 | Germany | Bundesministerium für Digitales und Verkehr (BMDV) | 694,000 | 289 | 11 | 346,600 | 0 |
| 20 | Czech Republic | Civil Aviation Authority of the Czech Republic | 54,782 | 272 | 0 | 60,636 | 0 |
| 10 | Netherlands | Human Environment and Transport Inspectorate | 66,228 | 245 | 330 | 7274 | 1 |
| 14 | France | Cabinets ministériels | 117,598 | 195 | 0 | 47,389 | 0 |
| 2 | Norway | CAA Norway | 23,660 | 167 | 215 | 34,513 | 1 |
| 5 | Denmark | Trafikstyrelsen—Droner | 8315 | 121 | 1511 | 32,185 | 12 |
| 4 | Finland | Finnish Transport and Communications Agency Traficom | 17,600 | 91 | 10 | 27,500 | 0 |
| 9 | Ireland | Irish Aviation Authority | 6451 | 66 | 546 | 19,238 | 8 |
| 24 | Slovenia | Civil Aviation Agency Slovenia | 5763 | 64 | 159 | 5454 | 2 |
| 17 | Spain | AESA | 94,033 | 46 | 43,255 | 140,432 | 940 |
| 21 | Austria | Austro Control | 51,978 | 44 | 0 | 76,262 | 0 |
| 28 | Greece | - | 11,350 | 42 | 0 | 16,210 | 0 |
| 15 | Switzerland | Federal Office of Civil Aviation FOCA | 67,200 | 33 | 5 | 61,331 | 0 |
| 23 | Hungary | Légügyi Kockázatértékelési Hatósági Főosztály | 4603 | 31 | 0 | 3752 | 0 |
| 3 | Sweden | Transport Styrelsen | 39,035 | 29 | 0 | 57,394 | 0 |
| 18 | Italy | Italian Civil Aviation Authority | 110,518 | 22 | 0 | 37,234 | 0 |
| 26 | Romania | - | 14,710 | 21 | 8989 | 8989 | 428 |
| 8 | Lithuania | Lietuvos Respublikos Seimo kanceliarija, biudžetinė įstaiga | 5583 | 19 | 397 | 4093 | 21 |
| 6 | Estonia | Estonian Transport Administration | 2976 | 15 | 10 | 4845 | 1 |
| 16 | Portugal | ANAC—Autoridade Nacional da Aviação Civil | 11,460 | 12 | 0 | 4488 | 0 |
| 25 | Croatia | Croatian Civil Aviation Agency | 2628 | 11 | 0 | 6545 | 0 |
| 7 | Latvia | Civilās aviācijas aģentūra | 4391 | 10 | 49 | 6696 | 5 |
| 11 | Belgium | FOD Mobiliteit en Vervoer | 23,112 | 8 | 0 | 18,966 | 0 |
| 12 | Luxembourg | Direction de l’Aviation Civile | 3063 | 4 | 0 | 94,362 | 0 |
| 27 | Bulgaria | Directorate General “Civil Aviation Administration” | 3361 | 1 | 0 | 2642 | 0 |
| 1 | Iceland | The Icelandic Transport Authority | 1562 | 0 | 0 | 930 | 0 |
| 22 | Slovakia | Transport Authority | 858 | 0 | 0 | 100 | 0 |
| Metric | Original Scheduler Software | Modified Scheduler Software | Change |
|---|---|---|---|
| Total Data Transmitted | 0.92 MBytes | 2.01 MBytes | +118% |
| Data Received by GCS | 0.38 MBytes | 1.65 MBytes | +334% |
| Delivery Success Rate | 41.72% | 82.09% | +96.7% |
| Interval | Transfer | Bitrate | Retransmissions (Retr) | Congestion Window (Cwnd) |
|---|---|---|---|---|
| 0.00–1.00 s | 76.4 KBytes | 625 Kbits/s | 0 | 32.5 KBytes |
| 1.00–2.00 s | 173 KBytes | 1.41 Mbits/s | 0 | 42.4 KBytes |
| 2.00–3.00 s | 0.00 Bytes | 0.00 bits/s | 0 | 43.8 KBytes |
| 3.00–4.00 s | 96.2 KBytes | 788 Kbits/s | 0 | 48.1 KBytes |
| 4.00–5.00 s | 127 KBytes | 1.04 Mbits/s | 0 | 59.4 KBytes |
| 5.00–6.00 s | 191 KBytes | 1.56 Mbits/s | 0 | 79.2 KBytes |
| 6.00–7.00 s | 0.00 Bytes | 0.00 bits/s | 0 | 97.6 KBytes |
| 7.00–8.00 s | 255 KBytes | 2.09 Mbits/s | 0 | 117 KBytes |
| 8.00–9.00 s | 0.00 Bytes | 0.00 bits/s | 3 | 117 KBytes |
| 9.00–10.00 s | 0.00 Bytes | 0.00 bits/s | 14 | 83.4 KBytes |
| 0.00–10.00 s | 918 KBytes | 752 Kbits/s | 17 | Sender |
| 0.00–11.95 s | 383 KBytes | 263 Kbits/s | Receiver |
| Interval | Transfer | Bitrate | Retransmissions (Retr) | Congestion Window (Cwnd) |
|---|---|---|---|---|
| 0.00–1.00 s | 341 KBytes | 2.79 Mbits/s | 0 | 45.2 KBytes |
| 1.00–2.00 s | 255 KBytes | 2.09 Mbits/s | 0 | 53.7 KBytes |
| 2.00–3.00 s | 127 KBytes | 1.04 Mbits/s | 0 | 62.2 KBytes |
| 3.00–4.00 s | 191 KBytes | 1.56 Mbits/s | 0 | 70.7 KBytes |
| 4.00–5.00 s | 382 KBytes | 3.13 Mbits/s | 0 | 87.7 KBytes |
| 5.00–6.00 s | 0.00 Bytes | 0.00 bits/s | 12 | 74.9 KBytes |
| 6.00–7.00 s | 255 KBytes | 2.09 Mbits/s | 6 | 80.6 KBytes |
| 7.00–8.00 s | 255 KBytes | 2.09 Mbits/s | 0 | 94.7 KBytes |
| 8.00–9.00 s | 255 KBytes | 2.09 Mbits/s | 9 | 65.0 KBytes |
| 9.00–10.00 s | 0.00 Bytes | 0.00 bits/s | 0 | 73.5 KBytes |
| 0.00–10.00 s | 2.01 MBytes | 1.69 Mbits/s | 27 | Sender |
| 0.00–10.46 s | 1.65 MBytes | 1.32 Mbits/s | – | Receiver |
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Share and Cite
Wei Cong, B.T.; Rajan, R.T.; Larsen, M. Designing C2 Links for BVLOS UAS Operations. Drones 2026, 10, 397. https://doi.org/10.3390/drones10060397
Wei Cong BT, Rajan RT, Larsen M. Designing C2 Links for BVLOS UAS Operations. Drones. 2026; 10(6):397. https://doi.org/10.3390/drones10060397
Chicago/Turabian StyleWei Cong, Barry Tee, Raj Thilak Rajan, and Morten Larsen. 2026. "Designing C2 Links for BVLOS UAS Operations" Drones 10, no. 6: 397. https://doi.org/10.3390/drones10060397
APA StyleWei Cong, B. T., Rajan, R. T., & Larsen, M. (2026). Designing C2 Links for BVLOS UAS Operations. Drones, 10(6), 397. https://doi.org/10.3390/drones10060397

