| Literature DB >> 31075925 |
Xiushan Wu1, Renyuan Tong2, Yanjie Wang3, Congli Mei4, Qing Li5.
Abstract
The online measurement of ground water quality, as one important area of water resource protection, can provide real-time measured water quality parameters and send out warning information in a timely manner when the water resource is polluted. Based on ultraviolet (UV) spectrophotometry, a remote online measurement method is proposed and used to measure the ground water quality parameters chemical oxygen demand (COD), total organic carbon (TOC), nitrate nitrogen (NO3-N), and turbidity (TURB). The principle of UV spectrophotometry and the data processing method are discussed in detail, the correlated mathematical modeling of COD and TOC is given, and a confirmatory experiment is carried out. Turbidity-compensated mathematical modeling is proposed to improve the COD measurement accuracy and a confirmatory experiment is finished with turbidity that ranges from 0 to 100 NTU (Nephelometric Turbidity Unit). The development of a measurement instrument to detect the ground water COD, TOC, NO3-N, and TURB is accomplished; the test experiments are completed according to the standard specification of China's technical requirement for water quality online automatic monitoring of UV, and the absolute measuring errors of COD, TOC, and NO3-N are smaller than 5.0%, while that of TURB is smaller than 5.4%, which meets the requirements for the online measurement of ground water quality.Entities:
Keywords: COD; TOC; ground water quality; online detector; spectrophotometry; turbidity
Year: 2019 PMID: 31075925 PMCID: PMC6539808 DOI: 10.3390/s19092153
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1The location of ground water 1 and water 2.
Figure 2Chemical oxygen demand/total organic carbon (COD/TOC) relationship line of ground water 1 and ground water 2.
Figure 3The ultraviolet absorbance of COD and nitrate nitrogen (NO3–N).
Figure 4Absorbance curves of turbidity (TURB) at 254 nm and 350 nm.
Mixed solution COD concentration measured results and relative errors.
| Serial Number | Mixed Solution | Measured | Relative Error without Compensation | Measured | Relative Error with Compensation |
|---|---|---|---|---|---|
| 1 | 10 | 18.56 | 85.6 | 9.57 | −4.30 |
| 2 | 20 | 34.12 | 70.6 | 18.98 | −5.10 |
| 3 | 40 | 63.67 | 59.2 | 37.90 | −5.25 |
| 4 | 60 | 103.24 | 72.1 | 57.49 | −4.10 |
| 5 | 80 | 130.50 | 63.1 | 75.39 | −5.80 |
| 6 | 100 | 167.83 | 67.8 | 94.56 | −5.44 |
| 7 | 120 | 189.34 | 57.8 | 113.66 | −5.20 |
| 8 | 160 | 250.59 | 56.6 | 150.78 | −5.76 |
Figure 5Mixed solution CCOD measured results.
Figure 6Instrument system block diagram.
Figure 7Optical detector unit (a) block diagram; (b) photograph; (c) Filter; (d) Filter transmission spectrum; and, (e) Automatic switching filter structure diagram.
Figure 8Incident light intensity detection structure diagram: (a) front view; and, (b) top view.
Figure 9Pipe unit: (a) structure diagram; and (b) pipe unit photograph.
Figure 10Instrument photograph.
Standard solutions for testing the instrument.
| Standard Solution Category | China National Standard Sample Number | Identification | Ingredients | Medium | Relative Expansion Uncertainty |
|---|---|---|---|---|---|
| COD | GBW (E) | 174960-3 | C8H5KO4 | H2O | |
| TOC | GSB 07-1967-2005 | 174860-3 | C8H5KO4 | H2O | |
| NO3–N | GSB 04-1772-2004 | 175059-3 | NO3- | H2O | |
| TURB | SGB-YQT01028H | 174760-3 | Formazine | H2O |
Absorbance of different concentrations of COD standard solution at 254 nm.
|
|
| ||
|---|---|---|---|
| 50.00 | 0.262 | 300.00 | 1.581 |
| 100.00 | 0.513 | 350.00 | 1.769 |
| 150.00 | 0.764 | 400.00 | 2.201 |
| 200.00 | 1.015 | 450.00 | 2.271 |
| 250.00 | 1.267 | 500.00 | 2.522 |
Measured results and relative errors for different concentrations of COD solution.
| Measured Results (mg/L) | Average Value | Relative Error (%) | ||||
|---|---|---|---|---|---|---|
| No.1 | No.2 | No.3 | No.4 | |||
| 50.00 | 52.33 | 52.23 | 51.49 | 53.46 | 52.37 | 4.75 |
| 100.00 | 102.11 | 102.23 | 103.59 | 104.99 | 103.23 | 3.23 |
| 150.00 | 154.11 | 155.67 | 155.34 | 159.45 | 156.14 | 4.10 |
| 200.00 | 205.34 | 201.33 | 203.45 | 204.55 | 203.66 | 1.83 |
| 250.00 | 248.44 | 246.78 | 245.99 | 247.55 | 247.69 | −1.12 |
| 300.00 | 311.20 | 309.19 | 310.42 | 315.33 | 311.53 | 3.85 |
| 350.00 | 348.45 | 347.66 | 345.89 | 346.01 | 347.00 | −0.86 |
| 400.00 | 410.45 | 411.4 | 412.44 | 412.34 | 411.65 | 2.91 |
| 450.00 | 456.56 | 455.59 | 457.88 | 459.79 | 457.45 | 1.65 |
| 500.00 | 510.00 | 528.89 | 529.89 | 529.98 | 530.98 | 4.79 |
Absorbance of different concentrations of TOC standard solution at 254 nm.
|
|
| ||
|---|---|---|---|
| 10.00 | 0.181 | 60.00 | 1.153 |
| 20.00 | 0.353 | 70.00 | 1.228 |
| 30.00 | 0.480 | 80.00 | 1.403 |
| 40.00 | 0.714 | 90.00 | 1.577 |
| 50.00 | 0.879 | 100.00 | 1.752 |
Measured results and relative errors for different concentrations of TOC solution.
| Measured Results (mg/L) | Average Value (mg/L) | Relative Error (%) | ||||
|---|---|---|---|---|---|---|
| No.1 | No.2 | No.3 | No.4 | |||
| 10.00 | 10.58 | 10.39 | 10.43 | 10.35 | 10.44 | 4.37 |
| 20.00 | 21.10 | 21.05 | 20.89 | 20.99 | 21.00 | 4.89 |
| 30.00 | 29.79 | 29.90 | 30.02 | 29.87 | 29.89 | −3.50 |
| 40.00 | 41.89 | 42.05 | 41.78 | 41.86 | 41.90 | 4.73 |
| 50.00 | 52.90 | 52.49 | 52.06 | 51.99 | 52.36 | 4.72 |
| 60.00 | 58.04 | 57.88 | 57.89 | 57.90 | 57.93 | −3.45 |
| 70.00 | 67.30 | 67.50 | 67.34 | 67.20 | 67.34 | −3.81 |
| 80.00 | 83.80 | 83.90 | 84.10 | 84.10 | 84.98 | 4.97 |
| 90.00 | 89.00 | 88.70 | 88.67 | 88.60 | 88.74 | −1.40 |
| 100.00 | 104.90 | 104.48 | 103.59 | 104.10 | 104.27 | 4.27 |
Absorbance of different concentrations of NO3–N standard solution at 220 nm and 275nm.
|
|
|
|
| ||
|---|---|---|---|---|---|
| 1.00 | 0.017 | 0.001 | 6.00 | 0.085 | 0.001 |
| 2.00 | 0.028 | 0.000 | 7.00 | 0.098 | 0.001 |
| 3.00 | 0.044 | 0.001 | 8.00 | 0.110 | 0.000 |
| 4.00 | 0.055 | 0.000 | 9.00 | 0.123 | 0.000 |
| 5.00 | 0.070 | 0.000 | 10.00 | 0.140 | 0.002 |
Measured results and relative errors for different concentrations of NO3–N solution.
| CNO3–N_T (mg/L) | Measured Results (mg/L) | Average Value | Relative Error (%) | |||
|---|---|---|---|---|---|---|
| No.1 | No.2 | No.3 | No.4 | |||
| 1.00 | 0.95 | 0.98 | 0.97 | 0.98 | 0.97 | −3.00 |
| 2.00 | 1.93 | 1.95 | 1.95 | 1.94 | 1.94 | −2.88 |
| 3.00 | 3.08 | 3.08 | 3.06 | 3.05 | 3.07 | 2.25 |
| 4.00 | 4.05 | 4.05 | 4.06 | 4.05 | 4.05 | 1.31 |
| 5.00 | 4.92 | 4.95 | 4.96 | 4.95 | 4.94 | −1.10 |
| 6.00 | 5.92 | 5.95 | 5.90 | 5.93 | 5.93 | −1.25 |
| 7.00 | 7.20 | 7.15 | 7.10 | 7.11 | 7.14 | 2.00 |
| 8.00 | 8.25 | 8.27 | 8.25 | 8.30 | 8.27 | 3.34 |
| 9.00 | 8.70 | 8.73 | 8.69 | 8.65 | 8.69 | −3.42 |
| 10.00 | 10.50 | 10.48 | 10.45 | 10.50 | 10.48 | 4.83 |
Absorbance of different concentrations of TURB standard solution at 350 nm.
|
|
| ||
|---|---|---|---|
| 40.00 | 0.103 | 240.00 | 0.573 |
| 80.00 | 0.192 | 280.00 | 0.632 |
| 120.00 | 0.280 | 320.00 | 0.720 |
| 160.00 | 0.388 | 360.00 | 0.808 |
| 200.00 | 0.496 | 400.00 | 0.894 |
Measured results and relative errors for different concentrations of TURB solution.
| Measured Results (NTU) | Average Value | Relative Error (%) | ||||
|---|---|---|---|---|---|---|
| No.1 | No.2 | No.3 | No.4 | |||
| 40.00 | 41.10 | 42.50 | 42.20 | 42.54 | 42.09 | 5.21 |
| 80.00 | 84.15 | 85.59 | 85.23 | 82.34 | 84.32 | 5.40 |
| 120.00 | 115.49 | 116.67 | 113.99 | 112.32 | 114.62 | −4.49 |
| 160.00 | 158.90 | 155.23 | 156.29 | 157.89 | 157.08 | −1.83 |
| 200.00 | 205.23 | 207.84 | 206.34 | 204.79 | 206.05 | 3.03 |
| 240.00 | 245.46 | 243.26 | 244.67 | 244.54 | 244.48 | 1.87 |
| 280.00 | 275.45 | 278.33 | 277.99 | 276.80 | 277.14 | −1.02 |
| 320.00 | 310.40 | 312.55 | 316.78 | 313.20 | 313.23 | 2.16 |
| 360.00 | 380.60 | 381.30 | 382.52 | 379.68 | 381.03 | 5.84 |
| 400.00 | 407.46 | 408.26 | 407.47 | 405.54 | 405.98 | 1.80 |