An Application of a LPWAN for Upgrading Proximal Soil Sensing Systems
Abstract
:1. Introduction
- This paper put forward a new idea for applying the emerging LPWAN technology in proximal soil sensing systems and carried out engineering practice.
- Instead of directly eliminating the inventoried proximal soil sensor device with outdated technology, this paper upgraded it by designing an AHS; the new device not only retained the original mature sensing technology of the sensor device, but also exhibited ultralow power consumption and long-distance transmission. In addition, this paper gave full play to the application value and economic value of the devices stored in the inventory.
- The proposed approach also provides a reference for applying LPWAN technology to a wider range of inventoried sensor devices for technical upgrading.
2. Design of the System Architecture
3. Hardware Design of the AHS
3.1. Proximal Soil Sensor Device and Power Supply
3.2. Ultralow-Power MCU System
3.3. Communication Module Based on LoRa
4. Software Design
4.1. Software Design of the MCU
4.2. Server Design
5. System Test and Analysis
5.1. Actual Energy Consumption Test and Analysis
5.2. Channel Characteristics and Gateway Capacity Analysis
5.3. Communication Test and Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
IoT | Internet of Things |
LPWAN | Low-Power Wide-Area Network |
AHS | Attachment Hardware System |
ECa | apparent Electrical Conductivity |
ISEs | Ion Selective Electrodes |
ISFETs | Ion Sensitive Field Effect Transistors |
MCU | Microcontroller Unit |
PaaS | Platform as a Service |
VWC | Volumetric Water Content |
MQTT | Message Queuing Telemetry Transport |
RAAEP | Red Azalea Agricultural Ecological Park |
RSSI | Received Signal Strength Indication |
SNR | Signal-to-Noise Ratio |
DTU | Data Transfer Unit |
ERP | Effective Radiated Power |
BW | Band Width |
SF | Spreading Factor |
CR | Coding Rate |
LBT | Listen Before Talk |
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Sigfox | LoRa | NB-IoT | |
---|---|---|---|
Frequency | Unlicensed sub-1 GHz ISM bands | Unlicensed sub-1 GHz ISM bands | Licensed LTE frequency bands |
Range | 10 km (urban), 40 km (rural) | 5 km (urban), 20 km (rural) | 1 km (urban), 10 km (rural) |
Bandwidth | 100 Hz | 250 kHz and 125 kHz | 200 kHz |
Maximum data rate | 100 bps | 50 kbps | 200 kbps |
Interference immunity | Very high | Very high | Low |
Adaptive data rate | No | Yes | No |
Allow private network | No | Yes | No |
ADC Sampling Battery Voltage | Sensor Work | Data Sending and Receiving | Low Power Mode | |
---|---|---|---|---|
Voltage(V) | 3.3 | 12 | 3.3 | 3.3 |
Current (mA) | 15.4 | 40.9 | 168.3 | 4.3 × 10−3 |
Duration (s) | 6 | 3 | 2 | T-11 |
TFREQ | RFREQ | POW | BW | TSF | RSF | CR |
---|---|---|---|---|---|---|
475.5 MHz | 506.5 MHz | 20 dBm | 125 kHz | 12 | 12 | 4/5 |
Spreading Factor | 7 | 8 | 9 | 10 | 11 | 12 |
---|---|---|---|---|---|---|
Demodulator SNR | −7.5 dB | −10 dB | −12.5 dB | −15 dB | −17.5 dB | −20 dB |
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Tu, Y.; Tang, H.; Hu, W. An Application of a LPWAN for Upgrading Proximal Soil Sensing Systems. Sensors 2022, 22, 4333. https://doi.org/10.3390/s22124333
Tu Y, Tang H, Hu W. An Application of a LPWAN for Upgrading Proximal Soil Sensing Systems. Sensors. 2022; 22(12):4333. https://doi.org/10.3390/s22124333
Chicago/Turabian StyleTu, Yonghui, Haoye Tang, and Wenyou Hu. 2022. "An Application of a LPWAN for Upgrading Proximal Soil Sensing Systems" Sensors 22, no. 12: 4333. https://doi.org/10.3390/s22124333
APA StyleTu, Y., Tang, H., & Hu, W. (2022). An Application of a LPWAN for Upgrading Proximal Soil Sensing Systems. Sensors, 22(12), 4333. https://doi.org/10.3390/s22124333