Published July 19, 2021
| Version
v1
Dataset
Open
LTER Zöbelboden, Austria, Soil chemistry, 2008
Creators
Description
Solid soil chemistry data of the LTER station Zöbelboden from the year 2008
Methods
The soil data originates from the soil sampling in 2008 in the course of the establishement of the itensive plot IP3.
The forest floor was sampled once with a 30x30cm frame. The mineral soil was sampled with a metal pole with a 70-mm diameter at 3 points within a distance of two meters. Each undisturbed soil core was placed in polystyrene cases and divided into the following geometric horizons (0-5, 5-10, 10-20, 20-30, 30-50 cm). All geometric horizons were sampled triply, and subsequently pooled to the corresponding geometric horizons.
In the laboratory samples were weighted. Green plant material like roots and grasses were separated, weighted, dried at 30°C until constant weight, re-weighted and stored separately. The remaining material was weighted, dried at approximately 30°C until constant weight, whereas coarse aggregates have been crushed and re-weighted again. The dry soil was sieved through a 2.0 mm sieve and subsequently 10 g of the samples were dried at 105° C until constant weight. In contrast to the mineral soil, the forest floor was milled for 15 minutes before sieving and drying at 105°C.
Water content was measured as mass loss at 105° C. Soil pH was measured electrochemically in 0.01 M CaCl2 suspension with a pH electrode (Metrohm 654 pH meter). The total content of C (TC) was analyzed by dry combustion (1300°) of the samples in O2. Released CO2 was detected coulometrically (Ströhlein Cou-lomat 702 and Si 111/6). The total content of CaCO3 (TIC) was measured via ad-dition of HCl and volumetrical determination of the released CO2 (“Scheibler”). The total content of organic C (TOC) was calculated by subtracting the total con-tent of CaCO3 from the total content of C (TC – TIC). The total content of N was primarily determined by a modified Kjeldahl method. The organic N was converted to NH4+ by digestion with H2SO4 and a catalyst (Kjeldahlterm KT8 Gerhardt). The accumulated NH4+ was converted to NH3 (distillation) and measured by potenti-ometric titration. To account for nitrogen oxygen compounds, salicylic acid was added prior to digestion. For the total content of P and heavy metals, samples of 2 g mineral soil and 1 g forest floor, respectively were digested with 5 ml of HNO3 followed by 2 ml of HClO4. All heavy metals and P were determined using ICP-OES. The total content of S was analysed via digestion with HNO3/HClO4 and ICP-OES. Exchangeable cations (Ca, Mg, K, Na, Mn, Fe, Al) were extracted in 0.01 M BaCl2 and analysed by ICP-OES.
The forest floor was sampled once with a 30x30cm frame. The mineral soil was sampled with a metal pole with a 70-mm diameter at 3 points within a distance of two meters. Each undisturbed soil core was placed in polystyrene cases and divided into the following geometric horizons (0-5, 5-10, 10-20, 20-30, 30-50 cm). All geometric horizons were sampled triply, and subsequently pooled to the corresponding geometric horizons.
In the laboratory samples were weighted. Green plant material like roots and grasses were separated, weighted, dried at 30°C until constant weight, re-weighted and stored separately. The remaining material was weighted, dried at approximately 30°C until constant weight, whereas coarse aggregates have been crushed and re-weighted again. The dry soil was sieved through a 2.0 mm sieve and subsequently 10 g of the samples were dried at 105° C until constant weight. In contrast to the mineral soil, the forest floor was milled for 15 minutes before sieving and drying at 105°C.
Water content was measured as mass loss at 105° C. Soil pH was measured electrochemically in 0.01 M CaCl2 suspension with a pH electrode (Metrohm 654 pH meter). The total content of C (TC) was analyzed by dry combustion (1300°) of the samples in O2. Released CO2 was detected coulometrically (Ströhlein Cou-lomat 702 and Si 111/6). The total content of CaCO3 (TIC) was measured via ad-dition of HCl and volumetrical determination of the released CO2 (“Scheibler”). The total content of organic C (TOC) was calculated by subtracting the total con-tent of CaCO3 from the total content of C (TC – TIC). The total content of N was primarily determined by a modified Kjeldahl method. The organic N was converted to NH4+ by digestion with H2SO4 and a catalyst (Kjeldahlterm KT8 Gerhardt). The accumulated NH4+ was converted to NH3 (distillation) and measured by potenti-ometric titration. To account for nitrogen oxygen compounds, salicylic acid was added prior to digestion. For the total content of P and heavy metals, samples of 2 g mineral soil and 1 g forest floor, respectively were digested with 5 ml of HNO3 followed by 2 ml of HClO4. All heavy metals and P were determined using ICP-OES. The total content of S was analysed via digestion with HNO3/HClO4 and ICP-OES. Exchangeable cations (Ca, Mg, K, Na, Mn, Fe, Al) were extracted in 0.01 M BaCl2 and analysed by ICP-OES.
Sampling Time Unit: single measurement
Sampling Time Span: single measurement
Files
LTER_EU_AT_003_ZOEBELBODEN_SOIL_CHEMISTRY_2008_v20210510.zip
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Additional details
Identifiers
- B2SHARE Legacy Record ID
- 095f7a20240143c99621055a81ec10ab
LTER metadata
- Metadata URL
- https://deims.org/8eda49e9-1f4e-4f3e-b58e-e0bb25dc32a6