Submitted:
28 May 2026
Posted:
29 May 2026
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Abstract
Keywords:
1. Introduction
1.1. Objectives Scope and Boundaries
2. Background
2.1. Wired DAQ in Physics Facilities
2.2. LPWAN Technology Primer
2.3. The Physics-Facility IoT Challenge
3. Methods
3.1. Review Design
3.2. Eligibility Criteria
3.3. Search Strategy
- 1.
- Technology: “LoRa” OR “LoRaWAN” OR “NB-IoT” OR “LTE-M” OR “LPWAN” OR “wireless IoT” OR “wireless sensor network”
- 2.
- Facility: “particle accelerator” OR “cyclotron” OR “nuclear physics” OR “detector” OR “underground laboratory” OR “LHC” OR “CERN”
- 3.
- Function: “data acquisition” OR “DAQ” OR “monitoring” OR “instrumentation” OR “sensor”
3.4. Study Selection
3.5. Data Extraction
3.6. Evidence Synthesis
4. Results
4.1. Study Selection and PRISMA-ScR Flow
4.2. Publication Trends
4.3. Communication Protocol Landscape
4.4. Radiation Environment and Tolerance
4.5. Use-Case Taxonomy
4.5.1. Radiation Environment Monitoring
4.5.2. Equipment Health Monitoring
4.5.3. Environmental Sensing in Underground Laboratories
4.5.4. Safety Systems
4.6. Evidence Map
4.7. Documented Facility Deployments
4.8. Data Pipeline Architectures
4.9. Edge Intelligence
4.10. Timestamp Synchronisation
5. Evidence Gaps and Research Priorities
5.1. African Geological RF Propagation
5.2. Long-Term TID Degradation at Deployed Nodes
5.3. Standardised Wired/Wireless DAQ Integration
5.4. Sub-Millisecond Wireless Synchronisation
5.5. Global South Facility Documentation
6. Discussion
6.1. State of the Field
6.2. Implications for NRF–iThemba LABS and PAUL
6.3. Technology Outlook
6.4. Limitations
7. Conclusions
8. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| ADC | Analogue-to-digital converter |
| CERN | European Organization for Nuclear Research |
| CDS | CERN Document Server |
| COTS | Commercial off-the-shelf |
| CSS | Chirp spread spectrum |
| DAQ | Data acquisition |
| EPICS | Experimental Physics and Industrial Control System |
| GPS | Global Positioning System |
| IoT | Internet of Things |
| JBI | Joanna Briggs Institute |
| LHC | Large Hadron Collider |
| LPWAN | Low-power wide-area network |
| LSTM | Long short-term memory |
| MQTT | Message Queuing Telemetry Transport |
| NB-IoT | Narrowband Internet of Things |
| NTP | Network Time Protocol |
| OPC-UA | OPC Unified Architecture |
| PAUL | Paarl Africa Underground Laboratory |
| PCC | Population, Concept and Context |
| PdM | Predictive maintenance |
| PRISMA-ScR | Preferred Reporting Items for Systematic Reviews and Meta-Analyses extension for Scoping Reviews |
| SCADA | Supervisory control and data acquisition |
| SEU | Single-event upset |
| SF | Spreading factor |
| TDC | Time-to-digital converter |
| TID | Total ionising dose |
| UWB | Ultra-wideband |
| VME | Versa Module Europa |
References
- ATLAS Collaboration. Technical Design Report for the ATLAS Inner Tracker Strip Detector; CERN-LHCC-2017-005; CERN: Geneva, Switzerland, 2017.
- NRF–iThemba LABS. iThemba LABS Annual Report 2020; National Research Foundation: Somerset West, South Africa, 2020.
- Brun, R.; Rademakers, F. ROOT An object-oriented data analysis framework. Nucl. Instrum. Methods Phys. Res. A 1997, 389, 81–86. [CrossRef]
- Dalesio, L.R.; Hill, J.O.; Kraimer, M. et al. The experimental physics and industrial control system architecture: Past, present, and future. Nucl. Instrum. Methods Phys. Res. A 1994, 352, 179–184. [CrossRef]
- Nkadimeng, E.K.; Gololo, M.; Stodart, N.; Kumar, M.; Mellado, B. Proactive Equipment Monitoring Using LSTM for Predictive Maintenance at NRF–iThemba LABS. Sensors 2024 (under review).
- Mekki, K.; Bajic, E.; Chaxel, F.; Meyer, F. A comparative study of LPWAN technologies for large-scale IoT deployment. ICT Express 2019, 5, 1–7.
- Semtech Corporation. AN1200.22 LoRa Modulation Basics; Application Note; Semtech: Camarillo, CA, USA, 2019.
- Boukabache, H.; Danzeca, S.; Heracleous, N.; Perrin, D.; Pirc, V.; Zimmaro, A.; Murtas, F.; Silari, M. An IoT LoRaWAN network for environmental radiation monitoring at CERN. IEEE Trans. Instrum. Meas. 2021, 70, 6008512. [CrossRef]
- OPC Foundation. OPC Unified Architecture Specification, Part 1: Overview and Concepts; Release 1.04; OPC Foundation: Scottsdale, AZ, USA, 2017.
- 3GPP. Technical Specification 36.201: LTE Physical Layer, Release 13; 3GPP: Sophia Antipolis, France, 2016.
- Paarl Africa Underground Laboratory Collaboration. PAUL Conceptual Design Report; University of the Witwatersrand: Johannesburg, South Africa, 2024 (in preparation).
- Tricco, A.C.; Lillie, E.; Zarin, W.; O’Brien, K.K.; Colquhoun, H.; Levac, D. et al. PRISMA Extension for Scoping Reviews (PRISMA-ScR): Checklist and explanation. Ann. Intern. Med. 2018, 169, 467–473. [CrossRef]
- Arksey, H.; O’Malley, L. Scoping studies: Towards a methodological framework. Int. J. Soc. Res. Methodol. 2005, 8, 19–32. [CrossRef]
- Peters, M.D.J. et al. Chapter 11: Scoping reviews. In JBI Manual for Evidence Synthesis; Aromataris, E., Munn, Z., Eds.; JBI: Adelaide, Australia, 2020.
- Munn, Z. et al. Systematic review or scoping review? Guidance for authors when choosing between a systematic or scoping review approach. BMC Med. Res. Methodol. 2018, 18, 143. [CrossRef]
- ANSI/VITA. VMEbus International Trade Association Standard 1-2014; VITA: Scottsdale, AZ, USA, 2014.
- Nkadimeng, E.K. et al. The Dolosse Data Acquisition Framework at NRF–iThemba LABS. JINST 2024 (in preparation).
- Boukabache, H.; Danzeca, S. et al. Monitoring particle accelerators with wireless IoT. In Proceedings of IBIC 2023; CERN: Geneva, Switzerland, 2023.
- Srour, J.R.; Marshall, C.J.; Marshall, P.W. Review of displacement damage effects in silicon devices. IEEE Trans. Nucl. Sci. 2003, 50, 653–670. [CrossRef]
- Chehri, A.; Fortier, P.; Tardif, P.M. UWB-based sensor networks for localisation in mining environments. Ad Hoc Networks 2009, 7, 987–1000. [CrossRef]
- Warden, P.; Situnayake, D. TinyML: Machine Learning with TensorFlow Lite on Arduino and Ultra-Low-Power Microcontrollers; O’Reilly Media: Sebastopol, CA, USA, 2020.






| Element | Inclusion | Exclusion |
|---|---|---|
| Population | Nuclear or particle physics facility (accelerator, cyclotron, underground laboratory, detector test facility) | General industrial or commercial IoT deployments without a physics-facility context |
| Concept | Wireless IoT DAQ: LoRaWAN®, NB-IoT, LTE-M, or Sigfox used for sensor data acquisition or equipment monitoring within or directly associated with a physics facility | Wired DAQ only; wireless communication not used for data acquisition (e.g., remote desktop, file transfer, control commands only) |
| Context | Peer-reviewed journal articles, conference proceedings, and institutional technical reports in English, 2015–2025 | Non-English publications; pre-2015 publications; grey literature without a named institutional author |
| Parameter | LoRaWAN® | NB-IoT | LTE-M |
|---|---|---|---|
| Frequency band | 433/868/915 MHz (ISM) | Licensed LTE | Licensed LTE |
| Max. data rate | 50 kbit/s (SF7) | 250 kbit/s | 1 Mbit/s |
| Range, open terrain | 5–15 km | 1–10 km | 1–10 km |
| Range, shielded | 100–500 m | 100–400 m | 100–400 m |
| TX power (typical) | 14 dBm | 23 dBm | 23 dBm |
| Sleep current | ∼1 A | ∼3 A | ∼5 A |
| Time sync. accuracy | 1–10 ms | <1 ms | <1 ms |
| Infrastructure req. | Private gateway | Cellular operator | Cellular operator |
| Radiation sensitivity | Lower (simpler RF) | Moderate | Moderate |
| Studies reporting use | 34 (72%) | 4 (9%) | 4 (8%) |
| Facility | Country | Proto. | App. | Scale | n |
|---|---|---|---|---|---|
| CERN (LHC) | Switzerland | L | RM,EH,EN,SF | >10,000 nodes; 60 km tunnel | 14 |
| NRF–iThemba LABS | S. Africa | L | EH,EN | Pilot; C70 + K600 cyclotron | 4 |
| TRIUMF | Canada | L | RM,EH | ∼200 nodes; 500 MeV cyc. | 3 |
| PSI (SLS) | Switzerland | L | EN,RM | Pilot; synchrotron beamlines | 3 |
| GSI/FAIR | Germany | L,N | RM,EH | Commissioning; heavy-ion | 4 |
| BNL (RHIC) | USA | N | RM,EH | Production; collider complex | 2 |
| GANIL | France | L | EH,RM | Pilot; heavy-ion accelerator | 2 |
| RIKEN (RIBF) | Japan | L | EH | Pilot; RI beam factory | 2 |
| JINR (Dubna) | Russia | W | RM | Pilot; experimental halls | 2 |
| PSNC Underground | Poland | L | EN,SF | Small-scale underground lab | 2 |
| iSS Underground | Spain | L | EN,SF | Underground prototype | 2 |
| PAUL (proposed) | S. Africa | L | EN,SF,RM | Design phase; deep underground | 1 |
| Model | Task | RAM / Flash | Inference rate |
|---|---|---|---|
| Shallow decision tree | Anomaly classification | <4 kB/16 kB | >1000 s−1 |
| FFT + threshold | Bearing fault (frequency domain) | 8 kB/16 kB | >500 s−1 |
| Quantised 1D-CNN | Vibration fault detection | 32–128 kB/64–256 kB | 10–100 s−1 |
| Tiny LSTM (unrolled) | Temporal anomaly | 16–64 kB/64 kB | 1–10 s−1 |
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