{"type": "FeatureCollection", "features": [{"id": "10.1016/j.agee.2007.08.005", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-27T16:15:39Z", "type": "Journal Article", "created": "2007-09-22", "title": "Cattle Manure And Grass Residues As Liming Materials In A Semi-Subsistence Farming System", "description": "Abstract   A field experiment was conducted on an acid soil in a semi-subsistence farming area of KwaZulu-Natal, South Africa to investigate the possibility of using organic amendments as liming materials within a minimum tillage (strip cultivation) system to produce maize. Amendments (cattle manure, grass residues and dolomitic lime) were incorporated to a depth of 20\u00a0cm in bands 15\u00a0cm wide down plant rows at rates of 10 and 20\u00a0t\u00a0ha \u22121  (in the amended area) for organic materials and 2.5 and 5.0\u00a0t\u00a0ha \u22121  for lime. The remainder of the field remained untilled. Additions of cattle manure rapidly increased soil pH, and concentrations of exchangeable K, Ca and Mg and extractable P were also greatly elevated. Grass residue additions increased pH progressively and increased exchangeable K and Mg and those of dolomitic lime increased pH, exchangeable Ca and Mg. Addition of each of the amendments decreased concentrations of exchangeable Al; the effect was greatest for animal manure after 6 weeks and for lime and grass residues at harvest. At harvest, addition of all three amendments had significantly reduced concentrations of both phytotoxic monomeric and total Al in soil solution. The system not only resulted in an increase in pH and extractable nutrients in row soil compared to that in the inter-row but also an increase in the size and activity of the soil microbial community. Maize yields were increased by additions of amendments under both unfertilised and fertilised conditions and yields were generally greatest at the higher rate of addition. Under unfertilised conditions, cattle manure treatments gave the greatest yields. Fertiliser additions increased yields greatly particularly in the control, grass residue and lime treatments. It was concluded that the strip tillage system used is a practicable way of applying high rates of organic materials to soils, that cattle manure has a rapid liming effect as well as being a nutrient source and that grass residues from rangeland decompose slowly and, therefore, have a slow liming effect.", "keywords": ["0106 biological sciences", "2. Zero hunger", "Soil acidity", "Lime", "04 agricultural and veterinary sciences", "15. Life on land", "01 natural sciences", "630", "Strip tillage", "050304 Soil Chemistry (excl. Carbon Sequestration Science)", "0401 agriculture", " forestry", " and fisheries", "0503 Soil Sciences", "CX", "9614 Soils", "Organic amendments"]}, "links": [{"href": "https://doi.org/10.1016/j.agee.2007.08.005"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Agriculture%2C%20Ecosystems%20%26amp%3B%20Environment", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.agee.2007.08.005", "name": "item", "description": "10.1016/j.agee.2007.08.005", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.agee.2007.08.005"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2008-03-01T00:00:00Z"}}, {"id": "10.1007/s11104-011-0976-7", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-27T16:15:16Z", "type": "Journal Article", "created": "2011-09-09", "title": "Arbuscular Mycorrhizal Fungal Diversity In Perennial Pastures; Responses To Long-Term Lime Application", "description": "We investigated the genetic diversity of arbuscular mycorrhizal fungi (AMF) in soils and the roots of Phalaris aquatica L., Trifolium subterraneum L., and Hordeum leporinum Link growing in limed and unlimed soil, the influence of lime application on AMF colonization and the relationship between AMF diversity and soil chemical properties. The sampling was conducted on a long-term liming experimental site, established in 1992, in which lime was applied every 6\u00a0years to maintain soil pH (in CaCl2) at 5.5 in the 0\u201310\u00a0cm soil depth. Polymerase chain reaction, cloning and sequencing techniques were used to investigate the diversity of AMF. Altogether, 438 AMF sequences from a total of 480 clones were obtained. Sequences of phylotypes Aca/Scu were detected exclusively in soil, while Glomus sp. (GlGr Ab) and an uncultured Glomus (UnGlGr A) were detected only in plant roots. Glomus mosseae (GlGr Aa) was the dominant AMF in the pastures examined; however, the proportion of G. mosseae was negatively correlated with soil pH, exchangeable Ca and available P. Generally, diversity of the AMF phylotypes was greater in the bulk unlimed soil and plants from this treatment when compared to the limed treatments. Long-term lime application changed soil nutrient availability and increased AMF colonization, but decreased AMF phylotype diversity, implying that soil chemistry may determine the distribution of AMF in acid soils. Future studies are required to explore the functions of these AMF groups and select the most efficient AMF for sustainable farming in acid soils.", "keywords": ["2. Zero hunger", "570", "Soil acidity", "500", "0401 agriculture", " forestry", " and fisheries", "04 agricultural and veterinary sciences", "15. Life on land", "Glomeromycota", "Hordeum leporinum", "Phalaris aquatic", "6. Clean water", "diversity", "Trifolium subterraneum"]}, "links": [{"href": "https://doi.org/10.1007/s11104-011-0976-7"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Plant%20and%20Soil", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1007/s11104-011-0976-7", "name": "item", "description": "10.1007/s11104-011-0976-7", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1007/s11104-011-0976-7"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2011-09-10T00:00:00Z"}}, {"id": "10.1007/s11104-012-1248-x", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-27T16:15:17Z", "type": "Journal Article", "created": "2012-05-04", "title": "Effects Of Simulated Drought And Nitrogen Fertilizer On Plant Productivity And Nitrous Oxide (N2o) Emissions Of Two Pastures", "description": "Open AccessISSN:0032-079X", "keywords": ["Soil acidity", "Drought", "Soil microbial C and N", "04 agricultural and veterinary sciences", "15. Life on land", "Grassland", "Nitrification", "10127 Institute of Evolutionary Biology and Environmental Studies", "Grazing", "Greenhouse gases", "Summer drought", "13. Climate action", "1110 Plant Science", "Denitrification", "570 Life sciences; biology", "590 Animals (Zoology)", "0401 agriculture", " forestry", " and fisheries", "Compensatory growth; Denitrification; Drought; Grassland; Grazing; Greenhouse gases; Soil microbial C and N; Soil acidity; Nitrification; Summer drought", "Compensatory growth", "1111 Soil Science"]}, "links": [{"href": "https://doi.org/10.1007/s11104-012-1248-x"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Plant%20and%20Soil", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1007/s11104-012-1248-x", "name": "item", "description": "10.1007/s11104-012-1248-x", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1007/s11104-012-1248-x"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2012-05-05T00:00:00Z"}}, {"id": "10.1016/j.agee.2017.02.027", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-27T16:15:46Z", "type": "Journal Article", "created": "2017-03-07", "title": "Lime And Phosphogypsum Impacts On Soil Organic Matter Pools In A Tropical Oxisol Under Long-Term No-Till Conditions", "description": "Abstract   Improving soil organic matter (SOM) quality in tropical acid soils is important for increasing the sustainability of agricultural ecosystems. This research evaluated the effect of the surface application of lime and phosphogypsum on the quality and amount of SOM in a long-term crop rotation under no-till conditions. The research was performed in a kaolinitic, thermic Typic Haplorthox for 12 years with annual crops under no-till. The treatments included no soil amendments, and amendment with phosphogypsum, lime, and lime\u00a0+\u00a0phosphogypsum. After three applications of soil amendments (2002, 2004, and 2010), surface liming increased the SOM input through addition of aboveground and root biomass, varying amount according to crop species, growing season, and soil depth. Although phosphogypsum had no effect on plant biomass production, the application of phosphogypsum with lime increased nitrogen (N) by up to 50% in the uppermost soil depths. The application of lime alone significantly increased the total organic carbon (TOC) at all depths, although the greatest effects were observed at 0.10\u20130.20 and 0.20\u20130.40\u00a0m, with an increase of 44% and 41%, respectively. Moreover, lime\u00a0+\u00a0phosphogypsum also exhibited the highest potential for C mineralization, which was attributed to an increased proportion of TOC as particulate organic carbon (POC). The proportion of TOC as humin and fulvic acid increased with the application of lime\u00a0+\u00a0phosphogypsum at 0\u20130.05\u00a0m, with an increase from 55% to 92% and from 1.4% to 1.6%, respectively. Overall, the combination of lime and phosphogypsum increased both the labile and stable C pools.", "keywords": ["2. Zero hunger", "Soil acidity", "Dolomitic lime", "13. Climate action", "Root growth", "Humic substances", "0401 agriculture", " forestry", " and fisheries", "04 agricultural and veterinary sciences", "15. Life on land", "630", "6. Clean water"]}, "links": [{"href": "https://doi.org/10.1016/j.agee.2017.02.027"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Agriculture%2C%20Ecosystems%20%26amp%3B%20Environment", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.agee.2017.02.027", "name": "item", "description": "10.1016/j.agee.2017.02.027", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.agee.2017.02.027"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2017-04-01T00:00:00Z"}}, {"id": "10.1016/j.fcr.2008.02.013", "type": "Feature", "geometry": null, "properties": {"license": "Closed Access", "updated": "2026-07-27T16:16:28Z", "type": "Journal Article", "created": "2008-05-06", "title": "Field Crop Responses To Lime In The Mid-North Region Of South Australia", "description": "Abstract   In the cropping regions of South Australia there is little information on whether acidity and acidification associated with high-input agriculture is affecting crop production and profitability. In much of the mid-north of South Australia, where thermic Calcic Palexeralf soils predominate, the levels of Al are low compared with other acid-soil types reported in comparable studies in Australia. In this study lime requirement curves have been used to predict the lime rate that achieves 80\u201390% maximum yield for different crop species on 3 sites on the red-brown earth soil type in the mid-north of South Australia. The results given demonstrate that the approach used for predicting lime responsiveness, with lime requirement calculated using the model of [Hochman, Z., Godyn, D.L., Scott, B.J., 1989. The integration of data on lime use by modelling. In: Robson, A.D. (Ed.). Soil Acidity and Plant Growth. Academic Press, Sydney, Australia, pp. 265\u2013301], has provided good estimates of final pH changes. Yield response curves show that the largest yield gains mostly occurred in the second season of the experiment when lime at about 2.0\u00a0t/ha increased pHCa to 5.5\u20136.0. With the lime treatments calculated, yield of wheat, barley and faba beans were increased by about 70%, and durum by 30% compared with the control. It would appear that liming to achieve a pHCa of 5.2 has removed Al toxicity, and further liming to achieve pHCa 5.5\u20136.0 may have improved other soil properties to realise further yield gains. With cropping in this region commonly using practices that include high fertiliser nitrogen input and retention of crop residues, acidification is likely to be an on-going issue with these red-brown earth soils. Thus it is appropriate that soil testing and, where required, liming at the rate of 1.5\u00a0t/ha is used by farmers to both improve cropping profitability and also offset acid input associated with the farming practice.", "keywords": ["Acidification", "2. Zero hunger", "Lime application", "0401 agriculture", " forestry", " and fisheries", "04 agricultural and veterinary sciences", "15. Life on land", "01 natural sciences", "Acidity amelioration", "333", "0105 earth and related environmental sciences"], "contacts": [{"organization": "Farhoodi, A., Coventry, D.,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.1016/j.fcr.2008.02.013"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Field%20Crops%20Research", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.fcr.2008.02.013", "name": "item", "description": "10.1016/j.fcr.2008.02.013", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.fcr.2008.02.013"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2008-07-01T00:00:00Z"}}, {"id": "10.1016/j.still.2008.11.007", "type": "Feature", "geometry": null, "properties": {"updated": "2026-07-27T16:17:38Z", "type": "Journal Article", "created": "2009-01-08", "title": "Soil Organic Carbon And Fertility Interactions Affected By A Tillage Chronosequence In A Brazilian Oxisol", "description": "Abstract   No-till (NT) adoption is an essential tool for development of sustainable agricultural systems, and how NT affects the soil organic C (SOC) dynamics is a key component of these systems. The effect of a plow tillage (PT) and NT age chronosequence on SOC concentration and interactions with soil fertility were assessed in a variable charge Oxisol, located in the South Center quadrant of Parana State, Brazil (50\u00b023\u2019W and 24\u00b036'S). The chronosequence consisted of the following six sites: (i) native field (NF); (ii) PT of the native field (PNF-1) involving conversion of natural vegetation to cropland; (iii) NT for 10 years (NT-10); (iv) NT for 20 years (NT-20); (v) NT for 22 years (NT-22); and (vi) conventional tillage for 22 years (CT-22) involving PT with one disking after summer harvest and one after winter harvest to 20\u00a0cm depth plus two harrow disking. Soil samples were collected from five depths (0\u20132.5; 2.5\u20135; 5\u201310; 10\u201320; and 20\u201340\u00a0cm) and SOC, pH (in H 2 O and KCl), \u0394pH, potential acidity, exchangeable bases, and cation exchangeable capacity (CEC) were measured. An increase in SOC concentration positively affected the pH, the negative charge and the CEC and negatively impacted potential acidity. Regression analyses indicated a close relationship between the SOC concentration and other parameters measured in this study. The regression fitted between SOC concentration and CEC showed a close relationship. There was an increase in negative charge and CEC with increase in SOC concentration: CEC increased by 0.37\u00a0cmol c \u00a0kg \u22121  for every g of C\u00a0kg \u22121  soil. The ratio of ECEC:SOC was 0.23\u00a0cmol c \u00a0kg \u22121  for NF and increased to 0.49\u00a0cmol c \u00a0kg \u22121  for NT-22. The rates of P and K for 0\u201310\u00a0cm depth increased by 9.66\u00a0kg\u00a0ha \u22121 \u00a0yr \u22121  and 17.93\u00a0kg\u00a0ha \u22121 \u00a0yr \u22121 , respectively, with NF as a base line. The data presented support the conclusion that long-term NT is a useful strategy for improving fertility of soils with variable charge.", "keywords": ["2. Zero hunger", "Soil management", "Soil organic matter", "Root depth", "Crop residues", "Cation exchange capacity (CEC)", "Conservation agriculture", "Chronosequence", "Acidity", "Sustainable agriculture", "No-till", "Soil ph", "04 agricultural and veterinary sciences", "15. Life on land", "Soil fertility", "Soil quality", "Tillage", "Variable charge", "Soil analysis", "0401 agriculture", " forestry", " and fisheries", "Oxisols", "Field Scale"]}, "links": [{"href": "https://doi.org/10.1016/j.still.2008.11.007"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Soil%20and%20Tillage%20Research", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1016/j.still.2008.11.007", "name": "item", "description": "10.1016/j.still.2008.11.007", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1016/j.still.2008.11.007"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2009-06-01T00:00:00Z"}}, {"id": "10.1111/j.1365-2486.2012.02794.x", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:19:38Z", "type": "Journal Article", "created": "2012-07-28", "title": "Acidity Controls On Dissolved Organic Carbon Mobility In Organic Soils", "description": "Abstract<p>Dissolved organic carbon (DOC) concentrations in surface waters have increased across much of Europe and North America, with implications for the terrestrial carbon balance, aquatic ecosystem functioning, water treatment costs and human health. Over the past decade, many hypotheses have been put forward to explain this phenomenon, from changing climate and land management to eutrophication and acid deposition. Resolution of this debate has been hindered by a reliance on correlative analyses of time series data, and a lack of robust experimental testing of proposed mechanisms. In a 4 year, four\uffe2\uff80\uff90site replicated field experiment involving both acidifying and deacidifying treatments, we tested the hypothesis that DOC leaching was previously suppressed by high levels of soil acidity in peat and organo\uffe2\uff80\uff90mineral soils, and therefore that observed DOC increases a consequence of decreasing soil acidity. We observed a consistent, positive relationship between DOC and acidity change at all sites. Responses were described by similar hyperbolic relationships between standardized changes in DOC and hydrogen ion concentrations at all sites, suggesting potentially general applicability. These relationships explained a substantial proportion of observed changes in peak DOC concentrations in nearby monitoring streams, and application to a UK\uffe2\uff80\uff90wide upland soil pH dataset suggests that recovery from acidification alone could have led to soil solution DOC increases in the range 46\uffe2\uff80\uff93126% by habitat type since 1978. Our findings raise the possibility that changing soil acidity may have wider impacts on ecosystem carbon balances. Decreasing sulphur deposition may be accelerating terrestrial carbon loss, and returning surface waters to a natural, high\uffe2\uff80\uff90DOC condition.</p>", "keywords": ["550", "15. Life on land", "dissolved organic carbon", "01 natural sciences", "6. Clean water", "13. Climate action", "peat", "podzol", "sulphur", "14. Life underwater", "soil carbon", "acidity", "organic soil", "0105 earth and related environmental sciences"]}, "links": [{"href": "http://livrepository.liverpool.ac.uk/3160177/1/GCB%202012.pdf"}, {"href": "https://doi.org/10.1111/j.1365-2486.2012.02794.x"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Global%20Change%20Biology", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1111/j.1365-2486.2012.02794.x", "name": "item", "description": "10.1111/j.1365-2486.2012.02794.x", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1111/j.1365-2486.2012.02794.x"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2012-09-01T00:00:00Z"}}, {"id": "10.1590/s0100-06832010000400022", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:20:31Z", "type": "Journal Article", "created": "2010-10-17", "title": "Liming Influence On Soil Chemical Properties, Nutritional Status And Yield Of Alfalfa Grown In Acid Soil", "description": "<p>Alfalfa is an important forage crop with high nutritive value, although highly susceptible to soil acidity. Liming is one of the most efficient and prevailing practices to correct soil acidity and improve alfalfa yield. The objective of this study was to evaluate response to liming of alfalfa grown in a greenhouse on a Typic Quartzipsamment soil. The treatments consisted of four lime rates (0, 3.8, 6.6 and 10.3 Mg ha-1) and two cuts. Alfalfa dry matter increased quadratically with increasing lime rates. In general, dry matter yield was maximized by a lime rate of 8.0 Mg ha-1. Except for the control, the dry matter nutrient contents in the treatments were adequate. The positive linear correlation between root and nodule dry matter with lime rates indicated improvement of these plant traits with decreasing soil acidity. The soil acidity indices pH, base saturation, Ca2+ concentration, Mg2+ concentration, and H + Al were relevant factors in the assessment of alfalfa yield. The magnitude of influence of these soil acidity indices on yield as determined by the coefficient of determination (R\uffc2\uffb2) varied and decreased in the order: base saturation, H + Al, pH, Ca and Mg concentrations. Optimum values of selected soil chemical properties were defined for maximum shoot dry matter; these values can serve as a guideline for alfalfa liming to improve the yield of this forage on acid soils.</p>", "keywords": ["2. Zero hunger", "nutrient uptake", "acidez do solo", "soil acidity", "04 agricultural and veterinary sciences", "15. Life on land", "6. Clean water", "Medicago sativa L.", "produ\u00e7\u00e3o de mat\u00e9ria seca", "nodula\u00e7\u00e3o", "0401 agriculture", " forestry", " and fisheries", "nodulation", "shoot dry matter", "absor\u00e7\u00e3o de nutrientes"], "contacts": [{"organization": "Moreira, Ad\u00f4nis, Fageria, Nand Kumar,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.1590/s0100-06832010000400022"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Revista%20Brasileira%20de%20Ci%C3%AAncia%20do%20Solo", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1590/s0100-06832010000400022", "name": "item", "description": "10.1590/s0100-06832010000400022", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1590/s0100-06832010000400022"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2010-08-01T00:00:00Z"}}, {"id": "10.1590/s1806-66902014000500006", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:20:34Z", "type": "Journal Article", "created": "2014-10-29", "title": "Application Limestone Forms And Doses For Alfalfa In No-Tillage System", "description": "Alfalfa (Medicago sativa L.) requires good soil fertility. Brazil is characterized by acidic soils which reduce the potential of the crop. Generally, liming is incorporated into the soil, but in tillage systems it is inadvisable. This study aimed to evaluate the effects of the lime application method and dose on pH, Al+3, V % and Ca+Mg in the soil and on dry matter yield of alfalfa cultivated under a consolidated no-tillage system. The experiment was conducted at the Experimental Station of Paran\u00e1 Agronomic Institute, located in Pato Branco city, in Paran\u00e1 state. The plots consisted of the types of lime application (plowing+harrowing, subsoil and surface), the sub-plots was the lime dose (0, 2, 4, 6 and 8 Mg ha-1) and the sub-sub-plots were the sampled soil depth (0-5; 5-10; 10-20 and 20-30 cm). The results show the application of lime, even superficially, caused increases in pH, concentration of Ca and Mg and base saturation of the soil, while also reducing the concentration of Al, especially in the surface layers of the soil. The practice of plowing and harrowing or of subsoiling, with the aim of lime incorporation in a consolidated no-tillage system is unnecessary. If it is required, the application of lime to the soil should be done superficially for alfalfa cultivated in this system.", "keywords": ["0106 biological sciences", "2. Zero hunger", "Liming recommendation", "Satura\u00e7\u00e3o por bases", "Agriculture (General)", "Acidez e calagem", "Liming superficial application", "04 agricultural and veterinary sciences", "15. Life on land", "01 natural sciences", "6. Clean water", "S1-972", "Acidity and liming", "Recomenda\u00e7\u00e3o de calagem", "Bases saturation", "0401 agriculture", " forestry", " and fisheries", "Aplica\u00e7\u00e3o superficial de calc\u00e1rio"]}, "links": [{"href": "https://doi.org/10.1590/s1806-66902014000500006"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Revista%20Ci%C3%AAncia%20Agron%C3%B4mica", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.1590/s1806-66902014000500006", "name": "item", "description": "10.1590/s1806-66902014000500006", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.1590/s1806-66902014000500006"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2014-01-01T00:00:00Z"}}, {"id": "10.5061/dryad.7hg8mp7", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:22:26Z", "type": "Dataset", "title": "Data from: Traits including leaf dry matter content and leaf pH dominate over forest soil pH as drivers of litter decomposition among 60 species", "description": "Open Access1. Soil pH varies by several units among ecosystems. While soil pH is  known to be a key driver of plant species composition, we still have a  poor understanding of how it affects carbon cycling processes. For  instance, soil pH, or its associated chemistry in terms of base cations  and organic acids, may affect decomposition rates of dead matter directly,  by controlling decomposer composition and activity, and indirectly, by  controlling the traits of the plant species and thereby the afterlife  effects of those traits on litter decomposition. Leaf and litter pH may  play a role in this control. Based on the very limited empirical data  available, we hypothesized that variation in species traits including leaf  (litter) pH, within and between ecosystems contrasting in soil pH, would  have stronger effects on leaf litter decomposition rates than variation in  soil chemistry would. 2. We tested this hypothesis by carrying out a  \u2018common garden\u2019 litterbed experiment in subtropical SW China, in which  leaf litters of the 30 predominant plant species from mid-successional  forest on acidic sandstone (soil pH around 4.0) and calcareous soil (pH  around 7.5) respectively, were incubated and their decomposition rates  measured over two harvests in fourteen months, both in soil plus litter  matrix from their \u2018home\u2019 forest and in those from the \u201caway\u201d forest. 3. We  found that leaf (litter) trait variation among species and plant  functional types, headed by species\u2019 dry matter content but also including  tissue pH, was the strongest driver of variation in leaf litter  decomposition rates. Surprisingly however, while these effects of  interspecific trait variation were very strong among species from the same  site, there was no overall difference in litter decomposability between  the species from the acidic versus calcareous site. Equally surprising was  that this strong difference in pH of soil substrate plus litter matrix  from an acidic sandstone site versus a calcareous karst site did not  directly affect leaf litter decomposition rates across a given species  set. 4. This first attempt to disentangle the multiple potential direct  and indirect ways in which soil and leaf (litter) acidity might be related  to litter decomposition rates, has important implications for our  understanding of soil-plant feedbacks. Based on our forest-based study, we  predict that soil-plant feedbacks via acidity are unlikely to be strong in  ecosystems with wide-ranging species in terms of their leaf functional  traits, including leaf pH.", "keywords": ["litter pH", "Leaf traits", "soil-plant feedbacks", "soil acidity", "Soil chemistry", "calcareous substrate", "15. Life on land", "sandstone substrate", "litter decomposability"], "contacts": [{"organization": "Liu, Wendan, Cornelissen, Hans, Tao, Jianping, Zuo, Juan, Wang, Yuping, Liu, JinChun, He, Ze,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.5061/dryad.7hg8mp7"}, {"rel": "self", "type": "application/geo+json", "title": "10.5061/dryad.7hg8mp7", "name": "item", "description": "10.5061/dryad.7hg8mp7", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5061/dryad.7hg8mp7"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2020-06-21T00:00:00Z"}}, {"id": "10.3390/agronomy3020256", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:21:45Z", "type": "Journal Article", "created": "2013-04-11", "description": "<p>Biochar addition to agricultural soils can improve soil fertility, with the added bonus of climate change mitigation through carbon sequestration. Conservation farming (CF) is precision farming, often combining minimum tillage, crop rotation and residue retention. In the present farmer-led field trials carried out in Zambia, the use of a low dosage biochar combined with CF minimum tillage was tested as a way to increase crop yields. Using CF minimum tillage allows the biochar to be applied to the area where most of the plant roots are present and mirrors the fertilizer application in CF practices. The CF practice used comprised manually hoe-dug planting 10-L sized basins, where 10%\uffe2\uff80\uff9312% of the land was tilled. Pilot trials were performed with maize cob biochar and wood biochar on five soils with variable physical/chemical characteristics. At a dosage as low as  4 tons/ha, both biochars had a strong positive effect on maize yields in the coarse white aeolian sand of Kaoma, West-Zambia, with yields of 444% \uffc2\uffb1 114% (p = 0.06) and  352% \uffc2\uffb1 139% (p = 0.1) of the fertilized reference plots for maize and wood biochar, respectively. Thus for sandy acidic soils, CF and biochar amendment can be a promising combination for increasing harvest yield. Moderate but non-significant effects on yields were observed for maize and wood biochar in a red sandy clay loam ultisol east of Lusaka, central Zambia (University of Zambia, UNZA, site) with growth of 142% \uffc2\uffb1 42% (p &gt; 0.2) and 131% \uffc2\uffb1 62% (p &gt; 0.2) of fertilized reference plots, respectively. For three other soils (acidic and neutral clay loams and silty clay with variable cation exchange capacity, CEC), no significant effects on maize yields were observed (p &gt; 0.2). In laboratory trials, 5% of the two biochars were added to the soil samples in order to study the effect of the biochar on physical and chemical soil characteristics. The large increase in crop yield in Kaoma soil was tentatively explained by a combination of an increased base saturation (from &lt;50% to 60%\uffe2\uff80\uff93100%) and cation exchange capacity (CEC; from 2\uffe2\uff80\uff933 to 5\uffe2\uff80\uff939 cmol/kg) and increased plant-available water (from 17% to 21%) as well as water vapor uptake (70 mg/g on maize cob biochar at 50% relative humidity).</p>", "keywords": ["2. Zero hunger", "S", "Agriculture", "04 agricultural and veterinary sciences", "crop yield", "plant-available water", "15. Life on land", "conservation farming", "630", "6. Clean water", "13. Climate action", "0401 agriculture", " forestry", " and fisheries", "biochar", "biochar; conservation farming; crop yield; acidity; CEC; plant-available water", "CEC", "acidity"]}, "links": [{"href": "http://www.mdpi.com/2073-4395/3/2/256/pdf"}, {"href": "https://doi.org/10.3390/agronomy3020256"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Agronomy", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.3390/agronomy3020256", "name": "item", "description": "10.3390/agronomy3020256", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.3390/agronomy3020256"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2013-04-11T00:00:00Z"}}, {"id": "10.5424/sjar/2016142-8406", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:24:56Z", "type": "Journal Article", "created": "2016-06-01", "title": "Assessing The Effects Of Soil Liming With Dolomitic Limestone And Sugar Foam On Soil Acidity, Leaf Nutrient Contents, Grape Yield And Must Quality In A Mediterranean Vineyard", "description": "<p>Aluminium toxicity has been recognized as one of the most common causes of reduced grape yields in vineyard acid soils. The main aim of this study was to evaluate the effect of two liming materials, i.e. dolomitic lime and sugar foam, on a vineyard cultivated in an acid soil. The effects were studied in two soil layers (0-30 and 30-60 cm), as well as on leaf nutrient contents, must quality properties and grape yield, in an agricultural soil dedicated to Vitis vinifera L. cv. \uffe2\uff80\uff98Menc\uffc3\uffada\uffe2\uff80\uff99 cultivation. Data management and analysis were performed using analysis of variance (ANOVA). As liming material, sugar foam was more efficient than dolomitic limestone because sugar foam promoted the highest decrease in soil acidity properties at the same calcium carbonate equivalent dose. However, potassium contents in vines organs, including leaves and berries, seemed to decrease as a consequence of liming, with a concomitant increase in must total acidity. Soil available phosphorus also decreased as a consequence of liming, especially with sugar foam, though no effects were observed in plants. For these reasons fertilization of this soil with K and P is recommended along with liming. Grape yields in limed soils increased, although non-significantly, by 30%. This research has therefore provided an important opportunity to advance in our understanding of the effects of liming on grape quality and production in acid soils.</p>", "keywords": ["2. Zero hunger", "aluminium saturation", "S", "Aluminium saturation", "Fruit set", "Agriculture", "F07 Soil cultivation", "Acid soil", "04 agricultural and veterinary sciences", "cultivar \u2018Menc\u00eda\u2019", "15. Life on land", "total acidity", "Vineyards", "Ingenier\u00eda agr\u00edcola", "Total acidity", "Menc\u00eda", "acid soil; cultivar \u2018Menc\u00eda\u2019; fruit set; aluminium saturation; total acidity", "acid soil", "0401 agriculture", " forestry", " and fisheries", "fruit set", "Acid soils", "agriculture; soil science"], "contacts": [{"organization": "Olego, Miguel A., Visconti, Fernando, Quiroga, Miguel J., de Paz, Jos\u00e9 M., Garz\u00f3n-Jimeno, Enrique,", "roles": ["creator"]}]}, "links": [{"href": "https://doi.org/10.5424/sjar/2016142-8406"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Spanish%20Journal%20of%20Agricultural%20Research", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "10.5424/sjar/2016142-8406", "name": "item", "description": "10.5424/sjar/2016142-8406", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/10.5424/sjar/2016142-8406"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2016-06-01T00:00:00Z"}}, {"id": "2117/367719", "type": "Feature", "geometry": null, "properties": {"license": "Open Access", "updated": "2026-07-27T16:26:56Z", "type": "Journal Article", "created": "2022-04-08", "title": "Multiphase processes in the EC-Earth model and their relevance to the atmospheric oxalate, sulfate, and iron cycles", "description": "<?xml version='1.0' encoding='UTF-8'?><article><p>Abstract. Understanding how multiphase processes affect the iron-containing aerosol cycle is key to predicting ocean biogeochemistry changes and hence the feedback effects on climate. For this work, the EC-Earth Earth system model in its climate\u2013chemistry configuration is used to simulate the global atmospheric oxalate (OXL), sulfate (SO42-), and iron (Fe) cycles after incorporating a comprehensive representation of the multiphase chemistry in cloud droplets and aerosol water. The model considers a detailed gas-phase chemistry scheme, all major aerosol components, and the partitioning of gases in aerosol and atmospheric water phases. The dissolution of Fe-containing aerosols accounts kinetically for the solution's acidity, oxalic acid, and irradiation. Aerosol acidity is explicitly calculated in the model, both for accumulation and coarse modes, accounting for thermodynamic processes involving inorganic and crustal species from sea salt and dust. Simulations for present-day conditions (2000\u20132014) have been carried out with both EC-Earth and the atmospheric composition component of the model in standalone mode driven by meteorological fields from ECMWF's ERA-Interim reanalysis. The calculated global budgets are presented and the links between the (1) aqueous-phase processes, (2) aerosol dissolution, and (3) atmospheric composition are demonstrated and quantified. The model results are supported by comparison to available observations. We obtain an average global OXL net chemical production of 12.615\u2009\u00b1\u20090.064\u2009Tg\u2009yr\u22121 in EC-Earth, with glyoxal being by far the most important precursor of oxalic acid. In comparison to the ERA-Interim simulation, differences in atmospheric dynamics and the simulated weaker oxidizing capacity in EC-Earth overall result in a \u223c\u200930\u2009% lower OXL source. On the other hand, the more explicit representation of the aqueous-phase chemistry in EC-Earth compared to the previous versions of the model leads to an overall \u223c\u200920\u2009% higher sulfate production, but this is still well correlated with atmospheric observations. The total Fe dissolution rate in EC-Earth is calculated at 0.806\u2009\u00b1\u20090.014\u2009Tg\u2009yr\u22121 and is added to the primary dissolved Fe (DFe) sources from dust and combustion aerosols in the model (0.072\u2009\u00b1\u20090.001\u2009Tg\u2009yr\u22121). The simulated DFe concentrations show a satisfactory comparison with available observations, indicating an atmospheric burden of \u223c0.007\u2009Tg, resulting in an overall atmospheric deposition flux into the global ocean of 0.376\u2009\u00b1\u20090.005\u2009Tg\u2009yr\u22121, which is well within the range reported in the literature. All in all, this work is a first step towards the development of EC-Earth into an Earth system model with fully interactive bioavailable atmospheric Fe inputs to the marine biogeochemistry component of the model.</p></article>", "keywords": ["550", "Iron", "Atmospheric deposition", "Aerosols atmosf\u00e8rics", "01 natural sciences", "Biogeoqu\u00edmica", "\u00c0rees tem\u00e0tiques de la UPC::Desenvolupament hum\u00e0 i sostenible::Enginyeria ambiental", "Life Science", "Aqueous solution", "Oxalate", "Aerosol", "Reaction kinetics", "0105 earth and related environmental sciences", "QE1-996.5", "Acidity", "500", "Geology", "Dust", "Climate feedback", "Biogeochemistry", "15. Life on land", "Atmospheric aerosols", "Sulfate", ":Desenvolupament hum\u00e0 i sostenible::Enginyeria ambiental [\u00c0rees tem\u00e0tiques de la UPC]", "13. Climate action", "Sea salt", "Thermodynamics", "Irradiation", "Dissolution"]}, "links": [{"href": "https://gmd.copernicus.org/articles/15/3079/2022/gmd-15-3079-2022.pdf"}, {"href": "https://doi.org/2117/367719"}, {"rel": "related", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/Geoscientific%20Model%20Development", "name": "related record", "description": "related record", "type": "application/json"}, {"rel": "self", "type": "application/geo+json", "title": "2117/367719", "name": "item", "description": "2117/367719", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/2117/367719"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2022-04-08T00:00:00Z"}}, {"id": "31d3e559-051a-48be-854b-9bcb1b4bc5c3", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-18.0, -35.0], [-18.0, 37.0], [51.0, 37.0], [51.0, -35.0], [-18.0, -35.0]]]}, "properties": {"themes": [{"concepts": [{"id": "geoscientificInformation"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}, {"concepts": [{"id": "Soil science"}], "scheme": "Stratum"}, {"concepts": [{"id": "Africa"}], "scheme": "Region"}], "license": "Attribution-NonCommercial 3.0 International (CC BY-NC 3.0), https://creativecommons.org/licenses/by-nc/3.0/", "updated": "2021-07-14T11:51:49", "type": "Dataset", "language": "eng", "title": "Africa SoilGrids - Exchangeable acidity (H+Al)", "description": "Exchangeable acidity (H+Al measured in 1M KCl) in cmolc/kg (fine earth) at 6 standard depths predicted using two sets of Africa soil profiles data. For details see published paper here below (Hengl T., G.B.M. Heuvelink, B. Kempen, J.G.B. Leenaars, M.G. Walsh, K.D. Shepherd, A. Sila, R.A. MacMillan, J. Mendes de Jesus, L.T. Desta, J.E. Tondoh, 2015. Mapping Soil Properties of Africa at 250 m Resolution: Random Forests Significantly Improve Current Predictions. PLoS ONE 10(6)", "formats": [{"name": "GTiff"}, {"name": "WWW:DOWNLOAD-1.0-ftp--download"}, {"name": "WWW:LINK-1.0-http--related"}], "keywords": ["exchangeable acidity", "digital soil mapping", "Soil science", "Africa"], "contacts": [{"name": "Johan Leenaars", "organization": "ISRIC - World Soil Information", "position": "Senior soil scientist", "roles": ["Author"], "phones": [{"value": null}], "emails": [{"value": "johan.leenaars@wur.nl"}], "addresses": [{"deliveryPoint": ["PO Box 353"], "city": "Wageningen", "administrativeArea": null, "postalCode": "6700AJ", "country": "Netherlands"}], "links": [{"href": null}]}, {"name": "Tom Hengl", "organization": "ISRIC - World Soil Information", "position": "Former staff", "roles": ["Author"], "phones": [{"value": null}], "emails": [{"value": "None"}], "addresses": [{"deliveryPoint": ["PO Box 353"], "city": "Wageningen", "administrativeArea": null, "postalCode": "6700AJ", "country": "Netherlands"}], "links": [{"href": null}]}], "distancevalue": "250", "distanceuom": "m"}, "links": [{"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd1_250m.tif", "name": "Download GeoTIFF at depth 0-5 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd2_250m.tif", "name": "Download GeoTIFF at depth 5-15 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd3_250m.tif", "name": "Download GeoTIFF at depth 15-30 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd4_250m.tif", "name": "Download GeoTIFF at depth 30-60 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd5_250m.tif", "name": "Download GeoTIFF at depth 60-100 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://files.isric.org/public/afsis250m/af_EACKCL_T__M_sd6_250m.tif", "name": "Download GeoTIFF at depth 100-200 cm", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://isric.org/projects/soil-property-maps-africa-250-m-resolution", "name": "Project webpage", "protocol": "WWW:LINK-1.0-http--related", "rel": "information"}, {"href": "https://journals.plos.org/plosone/article?id=10.1371/journal.pone.0125814", "name": "Scientific paper", "protocol": "WWW:LINK-1.0-http--related", "rel": "information"}, {"href": "https://files.isric.org/public/thumbnails/afsis250m/eackcl.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "31d3e559-051a-48be-854b-9bcb1b4bc5c3", "name": "item", "description": "31d3e559-051a-48be-854b-9bcb1b4bc5c3", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/31d3e559-051a-48be-854b-9bcb1b4bc5c3"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"interval": ["1960-01-01T00:00:00Z", "2015-12-31T00:00:00Z"]}}, {"id": "7d1ea3e0-8ceb-4d19-9082-f2824f4ea633", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-180.0, -56.0], [-180.0, 84.0], [180.0, 84.0], [180.0, -56.0], [-180.0, -56.0]]]}, "properties": {"themes": [{"concepts": [{"id": "geoscientificInformation"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}, {"concepts": [{"id": "Soil science"}], "scheme": "Stratum"}, {"concepts": [{"id": "Global"}], "scheme": "Region"}], "license": "Open Database License (ODbl) v1.0", "updated": "2021-07-14T11:52:14", "type": "Dataset", "language": "eng", "title": "SoilGrids250m 2017-03 - Grade of a sub-soil being acid e.g. having a pH lower than 5 and low BS", "description": "Grade of a sub-soil being acid e.g. having a pH greater than 5 and low BS predicted using the global compilation of soil ground observations. Accuracy assessement of the maps is availble in Hengl et at. (2017) DOI: 10.1371/journal.pone.0169748. Data provided as GeoTIFFs with internal compression (co='COMPRESS=DEFLATE'). Measurement units: grade.", "formats": [{"name": "GTiff"}, {"name": "WWW:DOWNLOAD-1.0-ftp--download"}, {"name": "WWW:LINK-1.0-http--related"}], "keywords": ["acidityity", "digital soil mapping", "Soil science", "Global"], "contacts": [{"name": "Bas Kempen", "organization": "ISRIC - World Soil Information", "position": "Soil mapping specialist", "roles": ["Principal investigator"], "phones": [{"value": null}], "emails": [{"value": "bas.kempen@wur.nl"}], "addresses": [{"deliveryPoint": ["PO Box 353"], "city": "Wageningen", "administrativeArea": null, "postalCode": "6700AJ", "country": "Netherlands"}], "links": [{"href": null}]}, {"name": "Tom Hengl", "organization": "ISRIC - World Soil Information", "position": "Former staff", "roles": ["Author"], "phones": [{"value": null}], "emails": [{"value": "None"}], "addresses": [{"deliveryPoint": ["PO Box 353"], "city": "Wageningen", "administrativeArea": null, "postalCode": "6700AJ", "country": "Netherlands"}], "links": [{"href": null}]}], "distancevalue": "250", "distanceuom": "m"}, "links": [{"href": "https://files.isric.org/soilgrids/former/2017-03-10/data/ACDWRB_M_ss_250m_ll.tif", "name": "Download GeoTIFF at depth", "protocol": "WWW:DOWNLOAD-1.0-ftp--download", "rel": "download"}, {"href": "https://doi.org/10.1371/journal.pone.0169748", "name": "Scientific paper", "protocol": "WWW:LINK-1.0-http--related", "rel": "information"}, {"href": "https://www.isric.org/explore/soilgrids/faq-soilgrids-2017", "name": "Project webpage", "protocol": "WWW:LINK-1.0-http--related", "rel": "information"}, {"href": "https://files.isric.org/public/thumbnails/sg250m/314.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "7d1ea3e0-8ceb-4d19-9082-f2824f4ea633", "name": "item", "description": "7d1ea3e0-8ceb-4d19-9082-f2824f4ea633", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/7d1ea3e0-8ceb-4d19-9082-f2824f4ea633"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"interval": ["1950-01-01T00:00:00Z", "2015-12-01T00:00:00Z"]}}, {"id": "15c2b5c3-f224-49c0-94d8-4e1ed0d67eda", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[12.89, 51.92], [12.89, 54.76], [14.89, 54.76], [14.89, 51.92], [12.89, 51.92]]]}, "properties": {"themes": [{"concepts": [{"id": "farming"}], "scheme": "https://standards.iso.org/iso/19139/resources/gmxCodelists.xml#MD_TopicCategoryCode"}, {"concepts": [{"id": "Soil"}, {"id": "soil pH"}, {"id": "pH"}, {"id": "soil chemicophysical properties"}], "scheme": "AGROVOC Multilingual agricultural thesaurus"}, {"concepts": [{"id": "opendata"}], "scheme": "Individual"}, {"concepts": [{"id": "Boden"}, {"id": "soil acidity"}, {"id": "pH buffer capacity"}, {"id": "soil-base titration"}, {"id": "titration curve"}], "scheme": "GEMET - INSPIRE themes, version 1.0"}], "license": "CC BY", "rights": "Restrictions applied to assure the protection of privacy or intellectual property, and any special restrictions or limitations or warnings on using the resource or metadata. Reports, articles, papers, scientific and non - scientific works of any form, including tables, maps, or any other kind of output, in printed or electronic form, based in whole or in part on the data supplied, must contain an acknowledgement of the form: \"Data reused from the BonaRes Data Centre www.bonares.de. This data were created as part of the BonaRes Module A-Project - I4S's research activities.\" Although every care has been taken in preparing and testing the data, the BonaRes Module A-Project - I4S and the BonaRes Data Centre cannot guarantee that the data are correct; neither does the BonaRes Module A-Project - I4S and the BonaRes Data Centre accept any liability whatsoever for any error, missing data or omission in the data, or for any loss or damage arising from its use. The BonaRes Module A-Project - I4S and BonaRes Data Centre will not be responsible for any direct or indirect use which might be made of the data. The access to this data is restricted during embargo time. If prior access is requested, contact the data owner / author.", "updated": "2022-12-14", "type": "Dataset", "created": "2020-06-24", "language": "eng", "title": "Base neutralizing capacity from agricultural fields in the quaternary landscape of North-East Germany", "description": "The base neutralizing capacity was determined according to Meiwes (1984) (see also Utermann et al., 2000). The method essentially consists of the addition of varying concentrations of a base to aliquots of the soil sample. The resulting pH changes are recorded along with the base concentration added.\n\nDespite of being a natural soil forming process, soil acidification is a major agronomic challenge under humid climate conditions as soil acidity influences several yield relevant soil properties. It can be counterbalanced by the regular application of agricultural lime to maintain or re-establish soil fertility and to optimize plant growth and yield. A direct method to determine the lime requirement (LR) of an agricultural soil is the base neutralizing capacity (BNC). It is a soil-base titrations that is defined as the amount of soil acidity that is neutralized by a base in a given time interval to a certain pH value. One advantage of the BNC-based LR is that it studies the effect of base addition on the pH individually for each soil sample. This is in contrast to the conventional indirect LR method applied in Germany that estimates the soil\u2019s LR based on empirical relationships derived in field experiments which does not further take into account (or measure) other factors affecting pH buffering such as clay mineralogy.\n\nResearch domain: Soil Sciences\n\nResearch question: Lime requirements of soils", "formats": [{"name": "CSV"}], "keywords": ["Soil", "soil pH", "pH", "soil chemicophysical properties", "opendata", "Boden", "soil acidity", "pH buffer capacity", "soil-base titration", "titration curve"], "contacts": [{"name": "Sebastian Vogel", "organization": "Leibniz Institute for Agricultural Engineering and Bioeconomy (ATB)", "position": null, "roles": ["projectLeader"], "phones": [{"value": null}], "emails": [{"value": "svogel@atb-potsdam.de"}], "addresses": [{"deliveryPoint": [null], "city": "Potsdam", "administrativeArea": "Brandenburg", "postalCode": "14469", "country": "Germany"}], "links": [{"href": null}]}, {"name": "Eric B\u00f6necke", "organization": "Leibniz-Institute of Vegetable and Ornamental Crops", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Gro\u00dfbeeren", "administrativeArea": "Brandenburg", "postalCode": "14979", "country": "Germany"}], "links": [{"href": null}]}, {"name": "Charlotte Kling", "organization": "Gut Wilmersdorf GbR", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Angerm\u00fcnde", "administrativeArea": null, "postalCode": "16278", "country": null}], "links": [{"href": null}]}, {"name": "Eckart Kramer", "organization": "Eberswalde University for Sustainable Development, Landscape Management and Nature Conservation", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Eberswalde", "administrativeArea": null, "postalCode": "16225", "country": null}], "links": [{"href": null}]}, {"name": "Katrin L\u00fcck", "organization": "Land- und Forstwirtschaft Komturei Lietzen GmbH & Co KG", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Lietzen", "administrativeArea": null, "postalCode": "15306", "country": null}], "links": [{"href": null}]}, {"name": "Anne Nagel", "organization": "Eberswalde University for Sustainable Development, , Landscape Management and Nature Conservation", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Eberswalde", "administrativeArea": null, "postalCode": "16225", "country": null}], "links": [{"href": null}]}, {"name": "Golo Philipp", "organization": "Landwirtschaft Petra Philipp", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Frankfurt/Oder", "administrativeArea": null, "postalCode": "15234", "country": null}], "links": [{"href": null}]}, {"name": "J\u00f6rg R\u00fchlmann", "organization": "Leibniz-Institute of Vegetable and Ornamental Crops", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": [null], "city": "Gro\u00dfbeeren", "administrativeArea": null, "postalCode": "14979", "country": null}], "links": [{"href": null}]}, {"name": "Ingmar Schr\u00f6ter", "organization": "Eberswalde University for Sustainable Development, Landscape Management and Nature Conservation", "position": null, "roles": ["author"], "phones": [{"value": null}], "emails": [{"value": "-"}], "addresses": [{"deliveryPoint": ["08/09/2020"], "city": "Eberswalde", "administrativeArea": null, "postalCode": "16225", "country": null}], "links": [{"href": null}]}, {"name": "Robin Gebbers", "organization": "Leibniz Institute for Agricultural Engineering and Bioeconomy (ATB)", "position": null, "roles": ["projectLeader"], "phones": [{"value": null}], "emails": [{"value": "rgebbers@atb-potsdam.de"}], "addresses": [{"deliveryPoint": [null], "city": "Potsdam", "administrativeArea": "Brandenburg", "postalCode": "14469", "country": "Germany"}], "links": [{"href": null}]}, {"name": "BonaRes Data Centre", "organization": "Leibniz Centre for Agricultural Landscape Research (ZALF)", "position": "Research Platform 'Data Analysis & Simulation' - WG Geodata", "roles": ["publisher"], "phones": [{"value": "+49 33432 82 171"}], "emails": [{"value": "bonares-datenzentrum@zalf.de"}], "addresses": [{"deliveryPoint": ["Eberswalder Strasse 84"], "city": "M\u00fcncheberg", "administrativeArea": "Brandenburg", "postalCode": "15374", "country": "Germany"}], "links": [{"href": null}]}, {"organization": "Landwirtschaft Petra Philipp;Land- und Forstwirtschaft Komturei Lietzen GmbH & Co KG;Gut Wilmersdorf GbR;Eberswalde University for Sustainable Development, Landscape Management and Nature Conservation;Eberswalde University for Sustainable Development, , Landscape Management and Nature Conservation;Leibniz-Institute of Vegetable and Ornamental Crops", "roles": ["contributor"]}]}, "links": [{"href": "https://maps.bonares.de/mapapps/resources/apps/bonares/index.html?lang=en&mid=15c2b5c3-f224-49c0-94d8-4e1ed0d67eda", "rel": null}, {"href": "https://metadata.bonares.de:443/smartEditor/preview/id3008.PNG", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "15c2b5c3-f224-49c0-94d8-4e1ed0d67eda", "name": "item", "description": "15c2b5c3-f224-49c0-94d8-4e1ed0d67eda", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/15c2b5c3-f224-49c0-94d8-4e1ed0d67eda"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date": "2022-12-14T00:00:00Z"}}, {"id": "09841ef7-d078-4d86-8458-3bf43ac0d7e9", "type": "Feature", "geometry": {"type": "Polygon", "coordinates": [[[-11.5, 35.3], [-11.5, 81.4], [43.2, 81.4], [43.2, 35.3], [-11.5, 35.3]]]}, "properties": {"updated": "2025-05-07T12:10:44.32Z", "language": "eng", "title": "GEMAS - Chemistry of Europe\u00b4s Agricultural Soils", "description": "Chemistry of Europe's Agricultural Soils. During 2008 and 2009, agricultural (arable land soils, 0 \u2013 20 cm, Ap samples) and grazing land (pasture land soils, 0 \u2013 10 cm, Gr samples) soil samples were collected at a density of 1 site/2 500 km\u00b2 each from 33 European countries. In addition to the chemical element contents, soil properties and soil parameters such as pH, particle size distribution, effective cation exchange capacity (CEC), MIR spectra and magnetic susceptibility were investigated in the samples and some coefficients were calculated.", "formats": [{"name": "ShapeFile"}, {"name": "WWW:LINK-1.0-http--link"}], "keywords": ["CEC (Cation Exchange Capacity)", "CIA (Chemical Index of Alteration)", "Clay", "LOI (Loss on Ignition)", "MS(Magnetic Susceptibility)", "Ag", "Al", "As", "Au", "B", "Ba", "Be", "Bi", "C", "Ca", "Cd", "Ce", "Cl", "Co", "Cr", "Cs", "Cu", "F", "Fe", "Ga", "Ge", "Hf", "Hg", "I", "In", "K", "La", "Li", "Lu", "Mg", "Mn", "Mo", "Na", "Nb", "Nd", "Ni", "NO3", "P", "Pb", "pH (acidity)", "Pr", "Rb", "S", "Sb", "Sc", "Se", "Si", "Sm", "Sn", "SO4 (sulphate)", "Sr", "Ta", "Tb", "Te", "Th", "Ti", "Tl", "Tm", "U", "V", "W", "Y", "Yb", "Zn", "Zr", "Europe", "International", "Raw data / Geochemical mapping", "Metals and elements", "EuroGeoSurveys Geochemistry Expert Group", " Eurometaux"], "contacts": [{"name": null, "organization": "EuroGeoSurveys Geochemistry Expert Group, Eurometaux", "position": null, "roles": ["owner"], "phones": [{"value": null}], "emails": [{"value": null}], "addresses": [{"deliveryPoint": [null], "city": null, "administrativeArea": null, "postalCode": null, "country": null}], "links": [{"href": null}]}], "themes": [{"concepts": [{"id": "Europe"}], "scheme": "Place"}, {"concepts": [{"id": "International"}], "scheme": "Data coverage"}, {"concepts": [{"id": "Raw data / Geochemical mapping"}], "scheme": "Database type"}, {"concepts": [{"id": "Metals and elements"}], "scheme": "Contaminants"}, {"concepts": [{"id": "EuroGeoSurveys Geochemistry Expert Group, Eurometaux"}], "scheme": "Organization"}], "edition": "First"}, "links": [{"href": "https://www.schweizerbart.de/publications/detail/isbn/9783510968466", "name": "Publication", "protocol": "WWW:LINK-1.0-http--link", "rel": null}, {"href": "http://geonetwork.greendecision.eu/geonetwork/srv/api/records/09841ef7-d078-4d86-8458-3bf43ac0d7e9/attachments/Chemistryofeurope.png", "name": "preview", "description": "Web image thumbnail (URL)", "protocol": "WWW:LINK-1.0-http--image-thumbnail", "rel": "preview"}, {"rel": "self", "type": "application/geo+json", "title": "09841ef7-d078-4d86-8458-3bf43ac0d7e9", "name": "item", "description": "09841ef7-d078-4d86-8458-3bf43ac0d7e9", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items/09841ef7-d078-4d86-8458-3bf43ac0d7e9"}, {"rel": "collection", "type": "application/json", "title": "Collection", "name": "collection", "description": "Collection", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main"}], "time": {"date-time": "2025-05-07T12:10:44Z"}}], "links": [{"rel": "self", "type": "application/geo+json", "title": "This document as GeoJSON", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Acidity&f=json", "hreflang": "en-US"}, {"rel": "alternate", "type": "text/html", "title": "This document as HTML", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Acidity&f=html", "hreflang": "en-US"}, {"rel": "collection", "type": "application/json", "title": "Collection URL", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main", "hreflang": "en-US"}, {"type": "application/geo+json", "rel": "first", "title": "items (first)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Acidity&", "hreflang": "en-US"}, {"rel": "last", "type": "application/geo+json", "title": "items (last)", "href": "https://repository.soilwise-he.eu/cat/collections/metadata:main/items?keywords=Acidity&offset=17", "hreflang": "en-US"}], "numberMatched": 17, "numberReturned": 17, "distributedFeatures": [], "timeStamp": "2026-07-28T01:04:07.195981Z"}