| Literature DB >> 33121079 |
Rafael Apolinar Bórquez López1, Luis Rafael Martinez Cordova2, Juan Carlos Gil Nuñez1, Jose Reyes Gonzalez Galaviz3, Jose Cuauhtemoc Ibarra Gamez1, Ramon Casillas Hernandez1.
Abstract
Precision aquaculture is a new field that allows farmers to have better control over aquaculture processes, facilitating decision-making and improving efficiency. The implementation and evaluation of a low-cost water-quality monitoring system based on open-source hardware, which is easy to rebuild for scientific applications, is reported in this paper. The proposed system measures temperature, dissolved oxygen, and pH, taking records and sending information through a wireless protocol (ZigBee) to a graphical user interface which can display information numerically and graphically, as well as simultaneously storing the information in a database. These variables are very important for aquaculture, as they have a direct influence on critical culture parameters such as growth and survival. Although it is a low-cost system, it offers good quality data and demonstrates efficiency for its use in precision aquaculture.Entities:
Keywords: arduino; low-cost; precision aquaculture; water quality
Mesh:
Substances:
Year: 2020 PMID: 33121079 PMCID: PMC7662340 DOI: 10.3390/s20216112
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1System component structure.
Figure 2Experimental setup with 7 g five shrimp in 20 L of marine water and the proposed electronic system (gray box).
Figure 3(a) PVC tube with vertical electrodes; and (b) underneath view of electrodes: black for dissolved oxygen, yellow for pH, and red sensor is temperature (from atlas scientific).
Figure 4Flow diagram of communication software with low-cost open-source hardware (LC OSH).
Figure 5Normal distribution of instrument characteristics.
Comparison of reads of water-quality parameters between the low-cost (LC) proposed system and reference equipment.
| Temperature [°C] | Dissolved Oxygen [mg L−1] | pH | ||||
|---|---|---|---|---|---|---|
| Reference | LC | Reference | LC | Reference | LC | |
|
| 24.02 | 24.05 | 7.14 | 7.13 | 8.18 | 8.24 |
|
| 2.92 | 2.81 | 1.12 | 1.15 | 0.14 | 0.11 |
|
| 12.31% | 11.83% | 15.59% | 16.01% | 1.71% | 1.33% |
|
| 19.60 | 20.08 | 4.17 | 4.02 | 7.96 | 8.02 |
|
| 30.00 | 29.94 | 8.81 | 8.04 | 8.40 | 8.35 |
Comparison of temperature, dissolved oxygen, and pH in three repetitions. a: statistically significant difference.
| Temperature [°C] | Dissolved Oxygen [mg L−1] | pH | |||||||
|---|---|---|---|---|---|---|---|---|---|
| LC 1 | LC 2 | LC 3 | LC 1 | LC 2 | LC 3 | LC 1 | LC 2 | LC 3 | |
|
| 23.66 a | 23.72 a | 23.86 a | 6.44 a | 6.95 a | 6.85 a | 8.05 a | 8.37 a | 7.94 a |
|
| 0.248 | 0.271 | 0.251 | 0.104 | 0.080 | 0.066 | 0.119 | 0.056 | 0.055 |
|
| 1.04% | 1.14% | 1.05% | 1.61% | 1.15% | 0.96% | 1.47% | 0.66% | 0.69% |
|
| 23.35 | 23.26 | 23.56 | 6.20 | 6.77 | 6.73 | 7.873 | 8.345 | 7.891 |
|
| 24.11 | 24.15 | 24.36 | 6.62 | 7.11 | 6.98 | 8.199 | 8.415 | 8.059 |
Price list of each of the components used.
| Label | Type | Quantity | Approximate Price (€) |
|---|---|---|---|
| Power unit | 9 V | 1 | 4 |
| Transceiver modules | XBEE XBP24-BZ7UIT-004 | 2 | 72 |
| Microcontroller | Iteaduino MEGA2650 | 1 | 13 |
| Debugger | USB FOCA FT232RL | 1 | 7 |
| Serial port expander | 74HC4052 Multiplexor | 1 | 10 |
| Embedded dissolved oxygen circuit | Atlas Scientific | 1 | 39 |
| Dissolved oxygen probe | Membrane-type PTFE | 1 | 200 |
| Embedded pH circuit | Atlas Scientific | 1 | 35 |
| pH probe | Silver/silver chloride | 1 | 70 |
| Total | 450 |
Figure 6Comparison between reference equipment and low-cost proposed system: (a) dissolved oxygen sensor, (b) pH sensor, and (c) temperature sensor.
Figure 7Scatterplots of low-cost open source hardware data versus reference equipment data. Dotted lines show the calculated r2 value of dissolved oxygen (a), pH (b) and temperature (c).
Figure 8Behavior of the proposed low-cost system over the test time.
Reliability (precision, accuracy, and sensibility) of the proposed low-cost water-quality system (σ is standard deviation and C.V. coefficient of variation).
| Temperature | Dissolved Oxygen | pH | |
|---|---|---|---|
|
| ±0.106 °C, 0.42% | ±0.177 mg L−1, 4.28% | ±0.242, 2.6% |
|
| 0.18 °C | 0.016 | 0.006 |
|
| 0.038 °C | 0.017 mg L−1 | 0.018 |