An Open Source Low-Cost Wireless Control System for a Forced Circulation Solar Plant
Abstract
:1. Introduction
2. Experimental Section
- •
- T1 is the temperature of the water at the top of the solar panel.
- •
- T2 is the temperature of the outlet water from the panel.
- •
- T3 is the temperature of the inlet water to the panel.
- •
- T4 is the temperature at the top of the storage tank.
- •
- T5 is the temperature at the bottom of the storage tank.
- •
- P1 is the electric pump connecting the solar system to the storage tank.
- •
- P2 is the electric pump connecting the storage tank to the heat exchanger.
2.1. External Control Unit
2.2. Internal Control Unit
2.3. Data Connection
ZigBee End Device AT Configuration | ZigBee API Coordinator Configuration |
---|---|
Address: 0013A20040C281C1 | Address: 0013A20040BF97C0 |
PAN ID 1984 | PAN ID 1984 |
BAUD rate 115200 | BAUD rate 115200 |
D0 ADC [2] | |
IR 1388 |
Sequential Number | Example Value | Purpose |
---|---|---|
0 | 7E | Start delimiter |
1–2 | 00–12 | Frame length |
3 | 92 | Frame type |
4–7 | 00, 13, A2, 00 | First part of the sender address |
8–11 | 40, C2, 81, D4 | Second part of the sender address |
12–13 | 70, 13 | Network address assigned by the coordinator |
14 | 01 | Non-broadcast package |
15 | 01 | Number of samplings |
16–17 | 00, 00 | Bit mask indicating which pins of the XBee module are enabled for digital input |
18 | 01 | Bit mask indicating which pins are enabled for analogical input |
19–20 | 03, BC | Each pin enabled for analogical input returns a two-byte reading |
21 | 1C | Checksum |
2.4. Control Algorithm
3. Results and Discussion
3.1. Sensor Calibration
3.2. Application to the Real Plant
19 March 2015 | 9 July 2015 | |
---|---|---|
Tmin (°C) | 5.88 | 23.80 |
Tmax (°C) | 17.52 | 32.80 |
Pi (W/m2) | 600 | 950 |
- ŋ0
- is equal to 74.0 (%) (from datasheet);
- k1
- is equal to 3.89 (W/m2·K) (from datasheet);
- k2
- is equal to 0.018 (W/m2·K2) (from datasheet);
- Pi
- is the incident solar radiation (W/m2).
- T
- is the external temperature (°C).
- T2
- is the temperature of the outlet water from the panel (°C).
- T3
- is the temperature of the inlet water to the panel (°C).
Time | Pi (W/m2) | ∆T (K) | ŋ (%) |
---|---|---|---|
08:00 19 March 2015 | 114.31 | 8.53 | 73.70 |
12:00 19 March 2015 | 776.59 | 12.38 | 73.93 |
16:00 19 March 2015 | 452.62 | 17.12 | 73.84 |
20:00 19 March 2015 | 26.48 | 6.55 | 73.01 |
08:00 9 July 2015 | 207.41 | 6.70 | 73.87 |
12:00 9 July 2015 | 879.03 | 17.67 | 73.92 |
16:00 9 July 2015 | 631.65 | 21.84 | 73.85 |
20:00 9 July 2015 | 39.92 | 8.47 | 73.14 |
4. Conclusions and Future Work
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Salamone, F.; Belussi, L.; Danza, L.; Ghellere, M.; Meroni, I. An Open Source Low-Cost Wireless Control System for a Forced Circulation Solar Plant. Sensors 2015, 15, 27990-28004. https://doi.org/10.3390/s151127990
Salamone F, Belussi L, Danza L, Ghellere M, Meroni I. An Open Source Low-Cost Wireless Control System for a Forced Circulation Solar Plant. Sensors. 2015; 15(11):27990-28004. https://doi.org/10.3390/s151127990
Chicago/Turabian StyleSalamone, Francesco, Lorenzo Belussi, Ludovico Danza, Matteo Ghellere, and Italo Meroni. 2015. "An Open Source Low-Cost Wireless Control System for a Forced Circulation Solar Plant" Sensors 15, no. 11: 27990-28004. https://doi.org/10.3390/s151127990