Submitted:
07 April 2024
Posted:
08 April 2024
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Abstract
Keywords:
1. Introduction
2. Theory
2.1. Charge and Site Densities
2.2. Organic Charge Models
3. Materials and Methods
3.1. Data Mining
3.2. Calculation of Organic Charge
3.3. Determining Site Density through Model Optimization
3.4. Limitations in the Conceptual Approach
4. Results and Discussion
4.1. Comparison of OAN- Based on Oliver and Hruška Models
4.2. Comparison of Modelled OAN- with Calculated Org.-
4.3. Governing Factors for Site- and Charge -Densities
4.4. Spatiotemporal Variations in Functional Site Density
4.5. Spatial Differences in Contemporary Site Density
4.6. Temporal Trends in Charge Density
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Measured | Calculated | Oliver modelled | ||||||||
| Site | No. samples | SO42- | pH | TOC | RAl | Org.- | CD | OAN- | SD | R2 |
| # | ||||||||||
| Birkenes | 1083 | 48.5 | 4.88 | 5.7 | 270 | 14.8 | 2.49 | 22 | 5.31 | 0.7781 |
| Øygardsbekken | 826 | 34.8 | 5.49 | 1.5 | 58 | 7.37 | 4.23 | 15 | 11.7 | 0.5703 |
| Langtjern | 1086 | 16.3 | 5.05 | 11 | 155 | 59.8 | 5.25 | 61 | 6.88 | 0.9892 |
| Storgama | 1047 | 14.3 | 5.00 | 6.2 | 103 | 27.1 | 4.30 | 28 | 5.97 | 0.9585 |
| Kårvatn | 806 | 12.5 | 6.39 | 0.87 | 14 | 13.7 | 14.8 | 18 | 19.1 | 0.7426 |
| Dalelva | 1081 | 77.5 | 6.37 | 3.4 | 34 | 37.8 | 10.9 | 43 | 12.6 | 0.8625 |
| Station | CD Trend |
SO42 -Trend |
H+ Trend |
ILAl/TOC Trend |
| Birkenes | 0.10 | -1.93 | -0.10 | -0.47 |
| Øygardsbekken | 0.11 | -1.13 | -0.14 | -0.31 |
| Langtjern | 0.01 | -0.73 | -0.02 | -0.28 |
| Storgama | 0.06 | -0.84 | -0.19 | -0.30 |
| Kårvatn | -0.32 | -0.16 | 0.00 | -0.15 |
| Dalelva | -0.17 | -1.02 | 0.00 | -0.20 |
| Dataset | Site type | Data type | Period | # sites | # samples | Oliver SD | Hruška SD | Oliver CD | Hruška CD |
| Trend Lakes | Acid sensitive |
Spatio-temporal | 1986 - 2020 | 44 | 1 535 | 11.1 | 13.9 | 6.36 | 6.07 |
| Reference streams | Different land use | Spatio-temporal | 2017 - 2023 | 35 | 1 310 | 14.4 | 16.3 | 12.0 | 12.2 |
| Reference streams | Different land use | Spatial | 2022 | 16 | 181 | 13.8 | 15.8 | 12.3 | 13.6 |
| Rivers | High order | Spatial | 2021 - 2023 | 10 | 335 | 11.0 | 12.6 | 8.29 | 8.97 |
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