Characteristics and Potential Ecological Risks of Heavy Metal Content in the Soil of a Plateau Alpine Mining Area in the Qilian Mountains
Abstract
:1. Introduction
2. Methods
2.1. Description of the Study Area
2.2. Sampling Process and Preparation
2.3. Soil Sample and Laboratory Analysis
2.4. Data Analysis
2.5. Evaluation Method of Soil Heavy Metal Pollution
2.5.1. Evaluation of Contamination Status and Ecological Risks of Heavy Metals
2.5.2. Geoaccumulation Index (Igeo)
2.6. Potential Ecological Risk Index (PERI)
3. Results and Discussions
3.1. Analysis of Heavy Metal Element Content in Soil
3.2. Spatial Distribution Characteristics of Soil Heavy Metal Elements
3.3. Evaluation of Soil Pollution Degree
3.4. Evaluation of the Geological Accumulation Index
3.5. Ecological Risk Assessment of Heavy Metal Pollution in Soil
3.6. Soil Heavy Metal Source Analysis
3.6.1. Principal Component Analysis (PCA)
3.6.2. Positive Matrix Factorization (PMF) Model
4. Conclusions
- (1)
- Descriptive statistical analysis shows that the contents of the heavy metal elements are accumulated to some extent. The average levels of all elements did not exceed the upper limit of the national soil environmental quality standard. The average contents of Cd, As, Cr, Cu, Zn, and Ni exceeded the soil background values in the Qinghai Lake Basin and Qinghai Province.
- (2)
- Geostatistical analysis showed that the spatial distribution of eight heavy metal elements in the soil of the study area showed an obvious island-like distribution pattern, and the high-value points of each heavy metal element appeared in several areas, indicating that human activities (mining and transportation) had a negative impact on the soil environmental quality in the study area. The spatial distribution patterns are similar for Zn, Cu, and Pb; Cr and Ni; and Cu and Zn. The southern part of the study area is close to the provincial highway, and the grasslands surrounding the highway in the east and west have high levels of heavy metal elements.
- (3)
- The single-factor pollution index values of Ni, Cd, Cu, Cr, Hg, and As are slightly polluted, while Pb and Zn are pollution-free. The comprehensive pollution index of Mero in the study area was 1.39, indicating that the whole study area was slightly polluted.
- (4)
- The mean value of RI in the study area shows moderate ecological risk. The spatial distribution pattern of the RI shows a clear island pattern, with the soil in the western part of the study area having the largest potential ecological risk index.
- (5)
- The correlation between the elements in the study area is strong, while the correlation between Hg, As, Ni, Pb, and Cr is not strong, indicating that the degree of accumulation of heavy metals is different and has heterogeneous characteristics. Pollution areas are mostly caused by the frequent activities of transport and mining industries, so the interference of human activities is the main factor responsible for the enrichment of the soil with heavy metals. Soil Ni and Cr are dominated by the geochemical origin of the soil in the studied region. Zn, Cu, and Cd are mainly affected by human activities. It is the main element responsible for soil contamination in the study area, and the contamination of the soil in the study area with Cd and Pb should be of concern.
- (6)
- In order to improve the accuracy of source analysis and deepen the understanding of different source analysis methods, this study compares the results of different source analysis methods for source identification. The two principal components of heavy metals in the studied region were resolved by PCA and accounted for 74.19% of the total variance. The optimal number of factors for the analysis of the PMF receptor model was three, with F1, F2, and F3 contributing 27.01%, 44.09%, and 28.90%, respectively, to the eight heavy metals. By comparison, the elements contained in the first principal component of PCA correspond to factors 1 and 3 of the PMF model, and the elements in the second principal component of PCA correspond to factor 2 of the PMF model. Although the results for heavy metal clustering and grouping from the two methods do not exactly agree, they show the same trend in the classification of heavy metal elements, which validates the reliability of the results and provides accurate source factors for the source analysis.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Pi | Pollution Classification | PN | Pollution Classification |
---|---|---|---|
Pi ≤ 1 | Unpolluted | PN ≤ 0.7 | Clean/Safe |
1 < Pi ≤ 2 | Mildly pollution | 0.7 < PN ≤ 1.0 | Still clean/warning limit |
2 < Pi ≤ 3 | Slightly polluted | 1.0 < PN ≤ 2.0 | Slightly polluted |
3 < Pi ≤ 5 | Moderately polluted | 2.0 < PN ≤ 3.0 | Moderately polluted |
Pi > 5 | Heavily polluted | PN > 3.0 | Heavily polluted |
Geoaccumulation Index (Igeo) | Soil Quality |
---|---|
Igeo ≤ 0 | Unpolluted |
0 < Igeo ≤ 1 | Unpolluted to moderately polluted |
1 < Igeo ≤ 2 | Moderately polluted |
2 < Igeo ≤ 3 | Moderately to heavily polluted |
3 < Igeo ≤ 4 | Heavily polluted |
4 < Igeo ≤ 5 | Heavily to extremely polluted |
5 < Igeo | Extremely contaminated |
Individual Potential Ecological Risk Index (Ei) | Comprehensive Potential Ecological Risk Index (RI) | Soil Quality |
---|---|---|
Ei ≤ 40 | RI ≤ 110 | Low risk |
40 < Ei ≤ 80 | 110 < RI ≤ 220 | Moderate risk |
80 < Ei ≤ 160 | 220 < RI ≤ 440 | Considerable risk |
160 < Ei ≤ 320 | 440 < RI ≤ 880 | High risk |
Ei > 320 | RI > 880 | Very high risk |
Elements | Cd | Hg | As | Pb | Cr | Cu | Zn | Ni | pH |
---|---|---|---|---|---|---|---|---|---|
Mean (mg·kg−1) | 0.20 | 0.02 | 14.36 | 19.94 | 94.76 | 29.90 | 77.02 | 52.67 | 8.60 |
Median (mg·kg−1) | 0.17 | 0.02 | 13.95 | 19.90 | 92.45 | 28.90 | 76.05 | 47.45 | 8.63 |
Kurt (mg·kg−1) | 20.54 | −0.11 | 5.46 | 1.26 | 2.35 | 4.35 | 1.78 | 1.60 | 0.61 |
Deviation (mg·kg−1) | 4.03 | 0.31 | 1.71 | 0.78 | 1.30 | 1.46 | 0.79 | 1.55 | −0.51 |
Min (mg·kg−1) | 0.10 | 0.01 | 10.80 | 15.90 | 67.50 | 17.60 | 50.80 | 39.90 | 7.99 |
Max (mg·kg−1) | 0.82 | 0.04 | 23.80 | 28.10 | 158.00 | 59.20 | 123.00 | 90.50 | 9.02 |
SD (mg·kg−1) | 0.11 | 0.01 | 2.23 | 2.44 | 17.20 | 7.22 | 13.67 | 12.50 | 0.21 |
CV% | 55.05 | 23.64 | 15.55 | 12.23 | 18.15 | 24.14 | 17.74 | 23.73 | 2.41 |
Qinghai Lake Basin BV (mg·kg−1) | 0.14 | 0.06 | 11.66 | 20.47 | 54.17 | 19.72 | 64.28 | 24.96 | - |
Qinghai BV (mg·kg−1) | 0.14 | 0.02 | 14.00 | 20.90 | 70.10 | 22.20 | 80.30 | 29.60 | - |
GB 15618-2018 [57] (mg·kg−1) | 0.60 | 3.40 | 25.00 | 170.00 | 250.00 | 100.00 | 300.00 | 190.00 | - |
Elements | Cd | Hg | As | Pb | Cr | Cu | Zn | Ni |
---|---|---|---|---|---|---|---|---|
Single-factor index (Pi,ave) | 1.43 | 1.21 | 1.03 | 0.95 | 1.35 | 1.35 | 0.96 | 1.78 |
Nemerow synthesis indices (PN,ave) | 1.51 | 1.30 | 1.16 | 1.10 | 1.51 | 1.46 | 1.06 | 2.02 |
Item | Cd | Hg | As | Pb | Cr | Cu | Zn | Ni |
---|---|---|---|---|---|---|---|---|
Ei (min) | 20.80 | 26.80 | 7.71 | 3.80 | 1.93 | 3.96 | 0.63 | 6.74 |
Ei (max) | 179.34 | 80.60 | 17.00 | 6.72 | 4.51 | 13.33 | 1.53 | 15.29 |
Ei (avg) | 42.94 | 48.32 | 10.26 | 4.77 | 2.70 | 6.73 | 0.96 | 8.90 |
RI (min) | 75.03 | |||||||
RI (max) | 287.12 | |||||||
RI (avg) | 125.57 |
Element | PC1 | PC2 |
---|---|---|
Zn | 0.917 | −0.072 |
Cu | 0.874 | −0.041 |
Pb | 0.712 | −0.618 |
Cd | 0.677 | 0.352 |
Hg | 0.647 | −0.289 |
As | 0.584 | −0.505 |
Ni | 0.457 | 0.826 |
Cr | 0.538 | 0.757 |
Characteristic value | 3.829 | 2.106 |
Variance contribution rate % | 47.86 | 47.86 |
Total variance contribution rate/% | 26.33 | 74.19 |
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Zhang, F.; Cao, G.; Cao, S.; Zhang, Z.; Li, H.; Jiang, G. Characteristics and Potential Ecological Risks of Heavy Metal Content in the Soil of a Plateau Alpine Mining Area in the Qilian Mountains. Land 2023, 12, 1727. https://doi.org/10.3390/land12091727
Zhang F, Cao G, Cao S, Zhang Z, Li H, Jiang G. Characteristics and Potential Ecological Risks of Heavy Metal Content in the Soil of a Plateau Alpine Mining Area in the Qilian Mountains. Land. 2023; 12(9):1727. https://doi.org/10.3390/land12091727
Chicago/Turabian StyleZhang, Fuling, Guangchao Cao, Shengkui Cao, Zhuo Zhang, Hongda Li, and Gang Jiang. 2023. "Characteristics and Potential Ecological Risks of Heavy Metal Content in the Soil of a Plateau Alpine Mining Area in the Qilian Mountains" Land 12, no. 9: 1727. https://doi.org/10.3390/land12091727
APA StyleZhang, F., Cao, G., Cao, S., Zhang, Z., Li, H., & Jiang, G. (2023). Characteristics and Potential Ecological Risks of Heavy Metal Content in the Soil of a Plateau Alpine Mining Area in the Qilian Mountains. Land, 12(9), 1727. https://doi.org/10.3390/land12091727