Wireless Sensor Networks for Enabling Smart Production Lines in Industry 4.0

被引:6
作者
De Beelde, Brecht [1 ]
Plets, David [1 ]
Joseph, Wout [1 ]
机构
[1] Univ Ghent, IMEC, Dept Informat Technol, B-9052 Ghent, Belgium
来源
APPLIED SCIENCES-BASEL | 2021年 / 11卷 / 23期
关键词
network-planning; sensor networks; wireless communication; IIoT; PHY layer; MAC layer; FoF; Industry; 4; 0; INDOOR LOCALIZATION; LARGE-SCALE; LATENCY; MAC; TECHNOLOGIES; SYSTEMS;
D O I
10.3390/app112311248
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Featured Application Design of hybrid wireless sensor networks for industrial environments, used for connecting sensor modules that capture information, enabling automated production lines and AI-driven assembly. With the deployment of data-driven assembly and production factories, challenges arise in sensor data acquisition and gathering. Different wireless technologies are currently used for transferring data, each with different advantages and constraints. In this paper, we present a hybrid network architecture for providing Quality of Service (QoS) in an industrial environment where guaranteed minimal data rates and maximal latency are of utmost importance for controlling devices and processes. The location of the access points (APs) is determined during the initial network-planning action, together with physical parameters such as frequency, transmit power, and modulation and coding schemes. Instead of performing network-planning just once before the network rollout, the network is monitored continuously by adding telemetry data to the frame header of all data streams, and the network is automatically reconfigured in real-time if the requirements are not met. By not using maximum transmit powers during the initial roll-out, more APs are needed, but coverage is guaranteed when new obstructions such as metallic racks or machinery are added. It is found that decreasing the transmit power by 6 dB gives the best trade-off between the number of required APs and network robustness. The proposed architecture is validated via simulations and via a proof-of-concept setup.
引用
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页数:21
相关论文
共 55 条
[1]   Deploying Fog Computing in Industrial Internet of Things and Industry 4.0 [J].
Aazam, Mohammad ;
Zeadally, Sherali ;
Harras, Khaled A. .
IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2018, 14 (10) :4674-4682
[2]   A Survey on Information and Communication Technologies for Industry 4.0: State-of-the-Art, Taxonomies, Perspectives, and Challenges [J].
Aceto, Giuseppe ;
Persico, Valerio ;
Pescape, Antonio .
IEEE COMMUNICATIONS SURVEYS AND TUTORIALS, 2019, 21 (04) :3467-3501
[3]   Increasing LPWAN Scalability by Means of Concurrent Multiband IoT Technologies: An Industry 4.0 use Case [J].
Adame, Toni ;
Bel, Albert ;
Bellalta, Boris .
IEEE ACCESS, 2019, 7 :46990-47010
[4]  
[Anonymous], 2020, IEEE Std 802.15.4-2020, DOI [10.1109/IEEESTD.2020.9144691, DOI 10.1109/IEEESTD.2020.9144691]
[5]  
Aslam M., 2019, P EUCNC2019 EUR C NE, P2
[6]   Industry 4.0 Implementation Challenges and Opportunities: A Managerial Perspective [J].
Bajic, Bojana ;
Rikalovic, Aleksandar ;
Suzic, Nikola ;
Piuri, Vincenzo .
IEEE SYSTEMS JOURNAL, 2021, 15 (01) :546-559
[7]   Radio planning of wireless local area networks [J].
Bosio, Sandro ;
Capone, Antonio ;
Cesana, Matteo .
IEEE-ACM TRANSACTIONS ON NETWORKING, 2007, 15 (06) :1414-1427
[8]  
Caesarendra W, 2019, PROCEEDINGS OF 2019 12TH INTERNATIONAL CONFERENCE ON INFORMATION & COMMUNICATION TECHNOLOGY AND SYSTEM (ICTS), P120, DOI [10.1109/ICTS.2019.8850990, 10.1109/icts.2019.8850990]
[9]  
Cardillo E, 2019, 2019 IEEE INTERNATIONAL WORKSHOP ON METROLOGY FOR INDUSTRY 4.0 AND INTERNET OF THINGS (METROIND4.0&IOT), P254, DOI [10.1109/metroi4.2019.8792905, 10.1109/METROI4.2019.8792905]
[10]  
Cemernek D, 2017, IEEE INTL CONF IND I, P239, DOI 10.1109/INDIN.2017.8104778