|

Design of data collection and management system based on the LoRa protocol

Authors: Bashlykov N.A.
Published in issue: #5(34)/2019
DOI: 10.18698/2541-8009-2019-5-472


Category: Instrument Engineering, Metrology, Information-Measuring Instruments and Systems | Chapter: Instruments and Measuring Methods

Keywords: reception and data transmission, wireless communication, Internet of things, Kicad, TopoR, microcontroller, STM32, LoRa, SX1276
Published: 07.05.2019

The process of developing a transceiver device based on the LoRa (Long Range) protocol, which allows for packet data transmission over a long distance, is described. The sequence of development of a radio electronic device is presented. The choice of the type of printed circuit board, micro components, and the technology of their subsequent mounting is justified. The device was modeled in a symbiosis of two computer-aided design systems: Kicad and TopoR. The requirements for the device, taking into account the characteristics of the application area were formulated. The relevance of the topic is determined by the promising concept of the Internet of things, since in this way you can create any data collection system. The LoRa technology is underdeveloped in Russia, which makes the development of wireless data transmission devices of a wider range promising.


References

[1] Besprovodnaya peredacha dannykh: tipy, tekhnologiya i ustroystva [Wireless data communication: types, technology and devices]. FB.ru: website. URL: http://fb.ru/article/382356/besprovodnaya-peredacha-dannyih-tipyi-tehnologiya-i-ustroystva (accessed: 26.02.2019) (in Russ.).

[2] Verkhulevskiy K. Semtech LoRa technology: a new impetus of “Internet of things”. Besprovodnye tekhnologii [Wireless Technologies], 2015, no. 3, pp. 42–48 (in Russ.).

[3] Shemchuk Yu. LPWAN and other wireless technologies. Control Engineering Rossiya: journal appendix, 2016. URL: https://controleng.ru/wp-content/uploads/IoT_54.pdf (in Russ.).

[4] Ispol’zovanie radiotekhnologiy LPWAN dlya rynka Interneta veshchey (IoT) [Using LPWAN radiotechnology for Internet of Things (IoT)]. CRN.ru: website (in Russ.). URL: https://www.crn.ru/news/detail.php?ID=112179 (accessed: 26.02.2019).

[5] Obzor tekhnologii LoRa. itechinfo.ru: website (in Russ.). URL: https://itechinfo.ru/content/obzor-tekhnologii-lora (accessed: 26.02.2019).

[6] Sornin N., Luis M., Eirich T., et al. LoRaWAN™ specification. V1.0. LoRa Alliance, 2015.

[7] Uzkopolosnyy dostup dlya shirokogo vnedreniya interneta veshchey [Narrowband access for large-scale implementation of Internet of Things]. habr.com: website. URL: https://habr.com/ru/company/technoserv/blog/345850/ (accessed: 26.02.2019) (in Russ.).

[8] Sravnenie tekhnologiy “STRIZh” i LoRa [Comparison of StRIZh and LoRA technologies]. strij.tech: website. URL: https://strij.tech/publications/tehnologiya/lpwan-strij-lora.html (accessed: 26.02.2019) (in Russ.).

[9] KiCad EDA. kicad-pcb.org: website. URL: http://kicad-pcb.org/about/kicad/ (accessed: 26.02.2019).

[10] TopoR. eremex.ru: website (in Russ.). URL: https://www.eremex.ru/products/delta-design/topor/ (accessed: 26.02.2019).

[11] Centenaro M., Vangelista L., Zanella A., et al. Long-range communications in unlicensed bands: the rising stars in the IoT and smart city scenarios. IEEE Wireless Commun., 2016, vol. 23, no. 5, pp. 60–67. DOI: 10.1109/MWC.2016.7721743 URL: https://ieeexplore.ieee.org/document/7721743

[12] SX1276/77/78/79 Datasheet. Semtech Corp., 2016.

[13] STM32F072xx. STMicroelectronics, 2017.