Lysimeter Sampling System for Optimal Determination of Trace Elements in Soil Solutions
Abstract
:1. Introduction
2. Different Types of Lysimeters Used for the Collection of Soil Solution for TE Analysis
2.1. Tension and Zero-Tension Lysimeters
Optimizing Vacuum Pressure in Tension Lysimeters
2.2. Materials of Lysimeter
2.2.1. Critical Properties of Lysimeter Material
Cation Exchange Capacity (CEC) of the Cup Material
Nominal Pore Diameter and Bubbling Pressure
3. Sorption and Release of TEs from Lysimeters
3.1. Effect of Dissolved Organic Carbon (DOC) on Adsorption
3.2. Effect of pH on Adsorption
3.3. Effect of Ionic Strength on Adsorption
4. Methods of Lysimeter Sampling
4.1. Hydraulic Contact
4.2. Cleaning of Lysimeters
4.3. Conditioning the Lysimeter
4.4. Sampling Strategies
5. Other Considerations
5.1. Need for Replicates
5.2. Soil Type
5.3. Colloids and Microorganisms
5.4. Soil Moisture Condition
6. Summary and Outlook
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Lysimeter Type | Features | Advantages | Disadvantages | Literature |
---|---|---|---|---|
Ceramic | Ceramic cups are composed mainly of alumina and small amounts of SiO2, Fe2O3, and TiO2. | Simple and versatile | Adsorption of considerable amounts of relatively soluble TEs such as Cd, Co, Mn, Ni, and Zn to the cup at pH 4 and 5; removal of these TEs from the soil solution was significantly greater at pH 6; Cu, Cr, As, and Pb are almost completely re-moved from solution at pH 4, 5, and 6. Quite brittle; special care is required to avoid cracking. | [37,38,39] |
Surgical (316L) stainless steel (SS) lysimeter | This is composed of powdered 316 L stainless steel (SS) that is resistant to corrosion and relatively inert material. This lysimeter consists of five major parts: (1) a bottom disc to close the collection chamber, (2) a 316 L SS collection chamber, (3) a filter section made from 316 L SS-type, (4) an upper disk, and (5) 316 sst tubing that connects the lysimeter to the vacuum hose. A tungsten inert gas weld is used to connect these discs and tubings. | High mechanical strength and corrosion resistance due to the formation of a Cr2O3 surface layer | Presence of Cr and Fe were observed in localized areas of the SS tube [40]. High heat which is required to weld the steel can destroy the protective chromium oxide layer. Then, the material will begin to oxidize. This can happen if lysimeters are scratched while inserting them to the soil as well. Thus, not suitable for analyzing Fe, Cr, or Ni compared to concentrations in soils and soil solutions. | [17,36] |
PTFE | This is produced from PTFE polymer. Some PTFE cups are manufactured by mixing PTFE with quartz flour to create the porous cup, thus combining the characteristics of PTFE with the good hydraulic conductivity of silica flour (Prenart Super Quartz; Prenart Equipment, Frederiksberg, Denmark). | Less reactive A flexible material | At low ionic strength of the soil solution, the adsorption of Cd, Cu, Ni, and Zn to the PTFE cup is high. Pressure operating range is extremely narrow (with the use of silica flour it can be expanded up to about 7 centibars of suction). Sample intake rate is considerably higher compared to ceramic cups. Thus, prolonged exposure of the bulk solution to the open-air increases evaporation and ultimately the ion concentration. | [24,41] |
Nylon | Nylon membrane is attached to the acrylic ends and sealed along the seam where the nylon membrane is wrapped around the polyethylene support using the acrylic adhesive. | Low adsorption of TEs at pH 4 and 5; trace metal concentrations in the collected solution are representative | Slight sorption of As, Cr, Cu, and Pb in solutions was observed at pH 6. | [37] |
pH | Lysimeter Material | |||||||||
---|---|---|---|---|---|---|---|---|---|---|
Nylon | PTFE | Al2O3 | Ceramic | Borosilicate | ||||||
<4 | Cd, Cu | Cu | Cd, Cu | Cu | ||||||
4–5 | Cd, Cu, Mn, Ni, Pb, Zn | Cu, Ni, Pb, Zn | Cd, Cu, Mn, Ni, Pb, Zn | Cd, Co, * Cr, * Cu, * Pb, Zn | Mn, Ni | |||||
5–6 | Cu, Ni, Zn | Cr | ||||||||
>6 | Cd, Co, Cr, Cu, Mn, Ni, Zn | Co, Cr, Mn, Ni | Cd, Cu, Pb, Zn | Mn, Ni | Cd, Cu, Pb, Zn | Mn, Ni | Co, Cr, Cu, Mn, Ni, Pb, Zn |
Lysimeter Type | Diagram | CEC (mmolc/cup) | Nominal Pore Diameter (μm) | Reference |
---|---|---|---|---|
Surgical (316L) stainless steel (SS) lysimeter | Unknown | 5 | [18] | |
Ceramic cup lysimeter | 0.40–0.65 | 1 | [43] | |
PTFE | Unknown | <2 | [24] | |
Nylon membrane | 0.06 | 0.2 | [37] |
Method of Cleaning | Material | Primary Elements of Interest |
---|---|---|
Ceramic cup | As, Cd, Cr, Cu, Co, Mn, Ni, Pb, Zn | |
| Surgical (316L) stainless steel | Mn, Fe, Ni, Cu, Zn, Mo, V, Cr, Co, Li, Al, Ba, As, Ag, Cd, Tl, Pb, Th, U |
| Fritted glass | Cd, Cr, Co, Zn |
| PTFE | Al, Ca, Cd, Cr, Co, Fe, Hf, Mn, Ni, Sr, Th, Ti, V, Zn, Zr |
| Nylon | As, Cd, Cr, Cu, Co, Mn, Ni, Pb, Zn |
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Fernando, S.U.; Galagedara, L.; Krishnapillai, M.; Cuss, C.W. Lysimeter Sampling System for Optimal Determination of Trace Elements in Soil Solutions. Water 2023, 15, 3277. https://doi.org/10.3390/w15183277
Fernando SU, Galagedara L, Krishnapillai M, Cuss CW. Lysimeter Sampling System for Optimal Determination of Trace Elements in Soil Solutions. Water. 2023; 15(18):3277. https://doi.org/10.3390/w15183277
Chicago/Turabian StyleFernando, Salani U., Lakshman Galagedara, Mano Krishnapillai, and Chad W. Cuss. 2023. "Lysimeter Sampling System for Optimal Determination of Trace Elements in Soil Solutions" Water 15, no. 18: 3277. https://doi.org/10.3390/w15183277
APA StyleFernando, S. U., Galagedara, L., Krishnapillai, M., & Cuss, C. W. (2023). Lysimeter Sampling System for Optimal Determination of Trace Elements in Soil Solutions. Water, 15(18), 3277. https://doi.org/10.3390/w15183277