21 resultados para Grazing grassland

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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Energy production from biomass and the conservation of ecologically valuable grassland habitats are two important issues of agriculture today. The combination of a bioenergy production, which minimises environmental impacts and competition with food production for land with a conversion of semi-natural grasslands through new utilization alternatives for the biomass, led to the development of the IFBB process. Its basic principle is the separation of biomass into a liquid fraction (press fluid, PF) for the production of electric and thermal energy after anaerobic digestion to biogas and a solid fraction (press cake, PC) for the production of thermal energy through combustion. This study was undertaken to explore mass and energy flows as well as quality aspects of energy carriers within the IFBB process and determine their dependency on biomass-related and technical parameters. Two experiments were conducted, in which biomass from semi-natural grassland was conserved as silage and subjected to a hydrothermal conditioning and a subsequent mechanical dehydration with a screw press. Methane yield of the PF and the untreated silage was determined in anaerobic digestion experiments in batch fermenters at 37°C with a fermentation time of 13-15 and 27-35 days for the PF and the silage, respectively. Concentrations of dry matter (DM), ash, crude protein (CP), crude fibre (CF), ether extract (EE), neutral detergent fibre (NDF), acid detergent fibre (ADF), acid detergent ligning (ADL) and elements (K, Mg, Ca, Cl, N, S, P, C, H, N) were determined in the untreated biomass and the PC. Higher heating value (HHV) and ash softening temperature (AST) were calculated based on elemental concentration. Chemical composition of the PF and mass flows of all plant compounds into the PF were calculated. In the first experiment, biomass from five different semi-natural grassland swards (Arrhenaterion I and II, Caricion fuscae, Filipendulion ulmariae, Polygono-Trisetion) was harvested at one late sampling (19 July or 31 August) and ensiled. Each silage was subjected to three different temperature treatments (5°C, 60°C, 80°C) during hydrothermal conditioning. Based on observed methane yields and HHV as energy output parameters as well as literature-based and observed energy input parameters, energy and green house gas (GHG) balances were calculated for IFBB and two reference conversion processes, whole-crop digestion of untreated silage (WCD) and combustion of hay (CH). In the second experiment, biomass from one single semi-natural grassland sward (Arrhenaterion) was harvested at eight consecutive dates (27/04, 02/05, 09/05, 16/05, 24/05, 31/05, 11/06, 21/06) and ensiled. Each silage was subjected to six different treatments (no hydrothermal conditioning and hydrothermal conditioning at 10°C, 30°C, 50°C, 70°C, 90°C). Energy balance was calculated for IFBB and WCD. Multiple regression models were developed to predict mass flows, concentrations of elements in the PC, concentration of organic compounds in the PF and energy conversion efficiency of the IFBB process from temperature of hydrothermal conditioning as well as NDF and DM concentration in the silage. Results showed a relative reduction of ash and all elements detrimental for combustion in the PC compared to the untreated biomass of 20-90%. Reduction was highest for K and Cl and lowest for N. HHV of PC and untreated biomass were in a comparable range (17.8-19.5 MJ kg-1 DM), but AST of PC was higher (1156-1254°C). Methane yields of PF were higher compared to those of WCD when the biomass was harvested late (end of May and later) and in a comparable range when the biomass was harvested early and ranged from 332 to 458 LN kg-1 VS. Regarding energy and GHG balances, IFBB, with a net energy yield of 11.9-14.1 MWh ha-1, a conversion efficiency of 0.43-0.51, and GHG mitigation of 3.6-4.4 t CO2eq ha-1, performed better than WCD, but worse than CH. WCD produces thermal and electric energy with low efficiency, CH produces only thermal energy with a low quality solid fuel with high efficiency, IFBB produces thermal and electric energy with a solid fuel of high quality with medium efficiency. Regression models were able to predict target parameters with high accuracy (R2=0.70-0.99). The influence of increasing temperature of hydrothermal conditioning was an increase of mass flows, a decrease of element concentrations in the PC and a differing effect on energy conversion efficiency. The influence of increasing NDF concentration of the silage was a differing effect on mass flows, a decrease of element concentrations in the PC and an increase of energy conversion efficiency. The influence of increasing DM concentration of the silage was a decrease of mass flows, an increase of element concentrations in the PC and an increase of energy conversion efficiency. Based on the models an optimised IFBB process would be obtained with a medium temperature of hydrothermal conditioning (50°C), high NDF concentrations in the silage and medium DM concentrations of the silage.

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Extensive grassland biomass for bioenergy production has long been subject of scientific research. The possibility of combining nature conservation goals with a profitable management while reducing competition with food production has created a strong interest in this topic. However, the botanical composition will play a key role for solid fuel quality of grassland biomass and will have effects on the combustion process by potentially causing corrosion, emission and slagging. On the other hand, botanical composition will affect anaerobic digestibility and thereby the biogas potential. In this thesis aboveground biomass from the Jena-Experiment plots was harvested in 2008 and 2009 and analysed for the most relevant chemical constituents effecting fuel quality and anaerobic digestibility. Regarding combustion, the following parameters were of main focus: higher heating value (HHV), gross energy yield (GE), ash content, ash softening temperature (AST), K, Ca, Mg, N, Cl and S content. For biogas production the following parameters were investigated: substrate specific methane yield (CH4 sub), area specific methane yield (CH4 area), crude fibre (CF), crude protein (CP), crude lipid (CL) and nitrogen-free extract (NfE). Furthermore, an improvement of the fuel quality was investigated through applying the Integrated generation of solid Fuel and Biogas from Biomass (IFBB) procedure. Through the specific setup of the Jena-Experiment it was possible to outline the changes of these parameters along two diversity gradients: (i) species richness (SR; 1 to 60 species) and (ii) functional group (grasses, legumes, small herbs and tall herbs) presence. This was a novel approach on investigating the bioenergy characteristic of extensive grassland biomass and gave detailed insight in the sward-composition¬ - bioenergy relations such as: (i) the most relevant SR effect was the increase of energy yield for both combustion (annual GE increased by 26% from SR8→16 and by 65% from SR8→60) and anaerobic digestion (annual CH4 area increased by 22% from SR8→16 and by 49% from SR8→60) through a strong interaction of SR with biomass yield; (ii) legumes play a key role for the utilization of grassland biomass for energy production as they increase the energy content of the substrate (HHV and CH4 sub) and the energy yield (GE and CH4 area); (iii) combustion is the conversion technique that will yield the highest energy output but requires an improvement of the solid fuel quality in order to reduce the risk of corrosion, emission and slagging related problems. This was achieved through applying the IFBB-procedure, with reductions in ash (by 23%), N (28%), K (85%), Cl (56%) and S (59%) and equal levels of concentrations along the SR gradient.

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Agricultural intensification has a strong impact on level of soil organic matter (SOM), microbial biomass stocks and microbial community structure in agro-ecosystems. The size of the microbial necromass C pool could be about 40 times that of the living microbial biomass C pool in soils. Due to the specificity, amino sugar analysis gives more important information on the relative contribution of fungal and bacterial residues to C sequestration potential of soils. Meanwhile, the relationship between microbial biomass and microbial necromass in soil and its ecological significance on SOM are not fully understood and likely to be very complex in grassland soils. This thesis focuses on the effects of tillage, grassland conversion intensities and fertilisation on microbial biomass, residues and community structure. The combined analyses of microbial biomass and residue formation of both fungi and bacteria provided a unique opportunity to study the effect of tillage, grassland conversion and fertilisation on soil microbial dynamics. In top soil at 0-30 cm layer, a reduction in tillage intensity by the GRT and NT treatments increased the accumulation of saprotrophic fungi in comparison with the MBT treatment. In contrast, the GRT and NT treatments promoted AMF at the expense of saprotrophic fungi in the bottom soil layer at 30-40 cm depth. The negative relationship between the ergosterol to microbial biomass C ratio and the fungal C to bacterial C ratio points to the importance of the relationship between saprotrophic fungi and biotrophic AMF for tillage-induced changes in microbial turnover of SOC. One-season cultivation of winter wheat with two tillage events led to a significant loss in SOC and microbial biomass C stocks at 0-40 cm depth in comparison with the permanent grassland, even 5 years after the tillage event. However, the tillage induced loss in microbial biomass C was roughly 40% less in the long-term than in the short-term of the current experiment, indicating a recovery process during grassland restoration. In general, mould board tillage and grassland conversion to maize monoculture promoted saprotrophic fungi at the expense of biotrophic AMF and bacteria compared to undisturbed grassland soils. Slurry application promoted bacterial residues as indicated by the decreases in both, the ergosterol to microbial biomass C ratio and the fungal C to bacterial C ratio. In addition, the lost microbial functional diversity due to tillage and maize monoculture was restored by slurry application both in arable and grassland soils. I conclude that the microbial biomass C/S ratio can be used as an additional indicator for a shift in microbial community. The strong relationships between microbial biomass and necromass indices points to the importance of saprotrophic fungi and biotrophic AMF for agricultural management induced effects on microbial turnover and ecosystem C storage. Quantitative information on exact biomass estimates of these two important fungal groups in soil is inevitably necessary to understand their different roles in SOM dynamics.

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The effects of continuous tillage on the distribution of soil organic matter (SOM) and aggregates have been well studied for arable soils. However, less is known about the effects of sporadic tillage on SOM and aggregate dynamics in grassland soils. The objectives of the present thesis were (I) to study the longer-term effects of sporadic tillage of grassland on organic carbon (Corg) stocks and the distribution of aggregates and SOM, (II) to investigate the combined effects of sporadic tillage and fertilization on carbon and nitrogen dynamics in grassland soils, and (III) to study the temporal dynamics of Corg stocks, aggregate distribution and microbial biomass in grassland soils. Soil samples were taken in three soil depths (0 – 10 cm; 10 – 25 cm; 25 – 40 cm) from a field trial with loamy sandy soils (Cambisols, Eutric Luvisols, Stagnosols, Anthrosols) north of Kiel, Germany. For Objective I we have sampled soil two and five years after one or two tillage operation(s). Treatments consisted of (i) permanent grassland, (ii) tillage of grassland followed by a re-establishment of grassland and (iii) tillage of grassland followed by a re-establishment of grassland with one season of winter wheat in between. The tillage in grassland led to a reduction in Corg stocks, large macroaggregates (>2000 µm) and SOM in the top 10 cm soil depth. These findings were still significant two years after tillage; however, five years after tillage no longer present. Regarding the soil profile (0 – 40 cm) no significant differences in the mentioned parameters between the tilled plots and the permanent grassland existed. A second tillage event and the insertion of one season of winter wheat did not lead to any further effects on Corg stocks as well as aggregate and SOM concentrations in comparison with a single tillage event in these grassland soils. Treatments adapted for Objective II included (i) long-term grassland and (ii) tillage of grassland followed by a re-establishment of grassland with one season of winter wheat in between. The plots were split and received either 240 kg N ha-1 year-1 in the form of cattle slurry or no cattle slurry application. The application of slurry within a period of four years had no effects on the Corg and total nitrogen stocks or the aggregate distribution, but led to a reduction of free and not physically protected SOM. However, the application of cattle slurry and the grassland renovation seems to change the plant species composition and therefore generalizations on the direct effects are not yet possible. For studying Objective III a further field trial was initiated in September 2010. Soil samples were taken six times within one year (from October 2010 to October 2011) (i) after the conversion from arable land into grassland, (ii) after the tillage of grassland followed by a re-establishment of grassland and (iii) in a permanent grassland. We found an increase in the microbial and fungal biomass after the conversion of arable land into grassland, but no effect on aggregate distribution and Corg stocks. A one-time tillage operation in grassland led to a reduction in large macroaggregates and Corg stocks in the top 10 cm soil depth with no effect on the sampled soil profile. However, we found large variations in the fungal biomass and aggregate distribution within one year in the permanent grassland, presumably caused by environmental factors. Overall, our results suggest that a single tillage operation in grassland soils markedly decreased the concentrations of Corg, larger aggregates and SOM. However, this does not result in long-lasting effects on the above mentioned parameters. The application of slurry cannot compensate the negative effects of a tillage event on aggregate concentrations or Corg stocks. However, while the Corg concentration is not subject to fluctuations within a year, there are large variations of the aggregate distribution even in a permanent grassland soil. Therefore conclusions of results from a single sampling time should be handled with care.

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A better understanding of effects after digestate application on plant community, soil microbial community as well as nutrient and carbon dynamics is crucial for a sustainable grassland management and the prevention of species and functional diversity loss. The specific research objectives of the thesis were: (i) to investigate effects after digestate application on grass species and soil microbial community, especially focussing on nitrogen dynamic in the plant-soil system and to examine the suitability of the digestate from the “integrated generation of solid fuel and biogas from biomass” (IFBB) system as fertilizer (Chapter 3). (ii) to investigate the relationship between plant community and functionality of soil microbial community of extensively managed meadows, taking into account temporal variations during the vegetation period and abiotic soil conditions (Chapter 4). (iii) to investigate the suitability of IFBB-concept implementation as grassland conservation measure for meadows and possible associated effects of IFBB digestate application on plant and soil microbial community as well as soil microbial substrate utilization and catabolic evenness (Chapter 5). Taken together the results indicate that the digestate generated during the IFBB process stands out from digestates of conventional whole crop digestion on the basis of higher nitrogen use efficiency and that it is useful for increasing harvestable biomass and the nitrogen content of the biomass, especially of L. perenne, which is a common species of intensively used grasslands. Further, a medium application rate of IFBB digestate (50% of nitrogen removed with harvested biomass, corresponding to 30 50 kg N ha-1 a-1) may be a possibility for conservation management of different meadows without changing the functional above- and belowground characteristic of the grasslands, thereby offering an ecologically worthwhile alternative to mulching. Overall, the soil microbial biomass and catabolic performance under planted soil was marginally affected by digestate application but rather by soil properties and partly by grassland species and legume occurrence. The investigated extensively managed meadows revealed a high soil catabolic evenness, which was resilient to medium IFBB application rate after a three-year period of application.

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The demand for biomass for bioenergy has increased rapidly in industrialized countries in the recent years. Biogenic energy carriers are known to reduce CO2 emissions. However, the resource-inefficient production of biomass often caused negative impacts on the environment, e.g. biodiversity losses, nitrate leaching, and erosion. The detrimental effects evolved mainly from annual crops. Therefore, the aim of modern bioenergy cropping systems is to combine yield stability and environmental benefits by the establishment of mixed-cropping systems. A particular emphasis is on perennial crops which are perceived as environmentally superior to annual crops. Agroforestry systems represent such mixed perennial cropping systems and consist of a mix of trees and arable crops or grassland within the same area of land. Agroforestry practices vary across the globe and alley cropping is a type of agroforestry system which is well adapted to the temperate zone, with a high degree of mechanization. Trees are planted in rows and crops are planted in the alleyways, which facilitates their management by machinery. This study was conducted to examine a young alley cropping system of willows and two grassland mixtures for bioenergy provision under temperate climate conditions. The first part of the thesis identified possible competition effects between willows and the two grassland mixtures. Since light seemed to be the factor most affecting the yield performance of the understory in temperate agroforestry systems, a biennial in situ artificial shade experiment was established over a separate clover-grass stand to quantify the effects of shade. Data to possible below- and aboveground interactions among willows and the two grassland mixtures and their effects on productivity, sward composition, and quality were monitored along a tree-grassland interface within the alleys. In the second part, productivity of the alley cropping system was examined on a triennial time frame and compared to separate grassland and willow stands as controls. Three different conversion technologies (combustion of hay, integrated generation of solid fuel and biogas from biomass, whole crop digestion) were applied to grassland biomass as feedstock and analyzed for its energetic potential. The energetic potential of willow wood chips was calculated by applying combustion as conversion technique. Net energy balances of separate grassland stands, agroforestry and pure willow stands evaluated their energy efficiency. Results of the biennial artificial shade experiment showed that severe shade (80 % light reduction) halved grassland productivity on average compared to a non-shaded control. White clover as heliophilous plant responded sensitively to limited radiation and its dry matter contribution in the sward decreased with increasing shade, whereas non-leguminous forbs (mainly segetal species) benefited. Changes in nutritive quality could not be confirmed by this experiment. Through the study on interactions within the alleys of the young agroforestry system it was possible to outline changes of incident light, soil temperature and sward composition of clover-grass along the tree-grassland interface. Nearly no effects of trees on precipitation, soil moisture and understory productivity occurred along the interface during the biennial experiment. Considering the results of the productivity and the net energy yield alley cropping system had lower than pure grassland stands, irrespective of the grassland seed mixture or fertilization, but was higher than that for pure willow stands. The comparison of three different energetic conversion techniques for the grassland biomass showed highest net energy yields for hay combustion, whereas the integrated generation of solid fuel and biogas from biomass (IFBB) and whole crop digestion performed similarly. However, due to the low fuel quality of hay, its direct combustion cannot be recommended as a viable conversion technique, whereas IFBB fuels were of a similar quality to wood chip from willow.

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The study aims to get deeper insight into the highly extensive system of animal husbandry in the Mahafaly region of southwestern Madagascar. It tries to understand the major drivers for pastoral dynamics, land and resource use along a gradient in altitude and vegetation to consider the area’s high spatial and temporal heterogeneity. The study also analyzes the reproductive performance of local livestock as well as the owners’ culling strategies to determine herd dynamics, opportunities for economic growth, and future potential for rural development. Across seasons, plateau herds from both livestock species covered longer distances (cattle 13.6±3.02 km, goats 12.3±3.48 km) and were found further away from the settlements (cattle 3.1±0.96 km, goats 2.8±0.98 km) than those from the coastal plain (walking_dist: cattle 9.5±3.25 km, goats 9.2±2.57 km; max_dist: cattle 2.6±1.28 km, goats 1.8±0.61 km). Transhumant cattle were detected more vulnerable through limited access to pasture land and water resources compared to local herds. Seasonal water shortage has been confirmed as a key constraint on the plateau while livestock keeping along the coast is more limited by dry season forage availability. However, recent security issues and land use conflicts with local crop farmers are gaining importance and force livestock owners to adapt their traditional grazing management, resulting in spatio-temporal variation of livestock numbers and in the impending risk of local overgrazing and degradation of rangelands. Among the 133 plant species consumed by livestock, 13 were determined of major importance for the animals’ nutrition. The nutritive value and digestibility of the natural forage, as well as its abundance in the coastal zone, substantially decreased over the course of the dry season and emphasized the importance of supplementary forage plants, in particular Euphorbia stenoclada. At the same time, an unsustainable utilization and overexploitation of its wild stocks may raise the pressure on the vegetation and pasture resources within the nearby Tsimanampetsotsa National Park. Age at first parturition was 40.5±0.59 months for cattle and 21.3±0.63 months for goats. Both species showed long parturition intervals (cattle 24.2±0.48 months, goats 12.4±0.30 months), mostly due to the maintenance of poorly performing breeding females within the herds. Reported offspring mortality, however, was low with 2.5% of cattle and 18.8% of goats dying before reaching maturity. The analysis of economic information revealed higher than expected market dynamics, especially for zebus, resulting in annual contribution margins of 33 € per cattle unit and 11 € per goat unit. The application of the PRY Herd Life model to simulate herd development for present management and two alternate scenarios confirmed the economic profitability of the current livestock system and showed potential for further productive and economic development. However, this might be clearly limited by the region’s restricted carrying capacity. Summarizing, this study illustrates the highly extensive and resources-driven character of the livestock system in the Mahafaly region, with herd mobility being a central element to cope with seasonal shortages in forage and water. But additional key drivers and external factors are gaining importance and increasingly affect migration decisions and grazing management. This leads to an increased risk of local overgrazing and overexploitation of natural pasture resources and intensifies the tension between pastoral and conservation interests. At the same time, it hampers the region’s agronomic development, which has not yet been fully exploited. The situation therefore demonstrates the need for practical improvement suggestions and implication measures, such as the systematic forestation of supplemental forage plant species in the coastal zone or a stronger integration of animal husbandry and crop production, to sustain the traditional livestock system without compromising peoples’ livelihoods while at the same time minimizing the pastoral impact on the area’s unique nature and environment.

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Energy policies around the world are mandating for a progressive increase in renewable energy production. Extensive grassland areas with low productivity and land use limitations have become target areas for sustainable energy production to avoid competition with food production on the limited available arable land resources and minimize further conversion of grassland into intensively managed energy cropping systems or abandonment. However, the high spatio-temporal variability in botanical composition and biochemical parameters is detrimental to reliable assessment of biomass yield and quality regarding anaerobic digestion. In an approach to assess the performance for predicting biomass using a multi-sensor combination including NIRS, ultra-sonic distance measurements and LAI-2000, biweekly sensor measurements were taken on a pure stand of reed canary grass (Phalaris aruninacea), a legume grass mixture and a diversity mixture with thirty-six species in an experimental extensive two cut management system. Different combinations of the sensor response values were used in multiple regression analysis to improve biomass predictions compared to exclusive sensors. Wavelength bands for sensor specific NDVI-type vegetation indices were selected from the hyperspectral data and evaluated for the biomass prediction as exclusive indices and in combination with LAI and ultra-sonic distance measurements. Ultrasonic sward height was the best to predict biomass in single sensor approaches (R² 0.73 – 0.76). The addition of LAI-2000 improved the prediction performance by up to 30% while NIRS barely improved the prediction performance. In an approach to evaluate broad based prediction of biochemical parameters relevant for anaerobic digestion using hyperspectral NIRS, spectroscopic measurements were taken on biomass from the Jena-Experiment plots in 2008 and 2009. Measurements were conducted on different conditions of the biomass including standing sward, hay and silage and different spectroscopic devices to simulate different preparation and measurement conditions along the process chain for biogas production. Best prediction results were acquired for all constituents at laboratory measurement conditions with dried and ground samples on a bench-top NIRS system (RPD > 3) with a coefficient of determination R2 < 0.9. The same biomass was further used in batch fermentation to analyse the impact of species richness and functional group composition on methane yields using whole crop digestion and pressfluid derived by the Integrated generation of solid Fuel and Biogas from Biomass (IFBB) procedure. Although species richness and functional group composition were largely insignificant, the presence of grasses and legumes in the mixtures were most determining factors influencing methane yields in whole crop digestion. High lignocellulose content and a high C/N ratio in grasses may have reduced the digestibility in the first cut material, excess nitrogen may have inhibited methane production in second cut legumes, while batch experiments proved superior specific methane yields of IFBB press fluids and showed that detrimental effects of the parent material were reduced by the technical treatment

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Grazing practices in rangelands are increasingly recognized as a management tool for environmental protection in addition to livestock production. Long term continuous grazing has been largely documented to reduce pasture productivity and decline the protective layer of soil surface affecting environmental protection. Time-controlled rotational grazing (TC grazing) as an alternative to continuous grazing is considered to reduce such negative effects and provides pasture with a higher amount of vegetation securing food for animals and conserving environment. To research on how the grazing system affects herbage and above ground organic materials compared with continuous grazing, the study was conducted in a sub-tropical region of Australia from 2001 to 2006. The overall results showed that herbage mass under TC grazing increased to 140% in 2006 compared with the first records taken in 2001. The outcomes were even higher (150%) when the soil is deeper and the slope is gentle. In line with the results of herbage mass, ground cover under TC grazing achieved significant higher percentages than continuous grazing in all the years of the study. Ground cover under TC grazing increased from 54% in 2003 to 73%, 82%, and 89% in 2004, 2005, and 2006, respectively, despite the fact that after the high yielding year of 2004 herbage mass declined to around 2.5 ton ha^(−1) in 2005 and 2006. Under continuous grazing however there was no significant increase over time comparable to TC grazing neither in herbage mass nor in ground cover. The successful outcome is largely attributed to the flexible nature of the management in which grazing frequency, durations and the rest periods were efficiently controlled. Such flexibility of animal presence on pastures could result in higher water retention and soil moisture condition promoting above ground organic material.

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Ziegenrassen, die in Deutschland in der Landschaftspflege eingesetzt werden, besitzen vorwiegend den Charakter einer intensiven Produktionsausrichtung. Das vorherrschende marginale Futterangebot auf Magerrasen-Biotopen kann die hohen Anforderungen auf das Fütterungsniveau der Tiere nicht erfüllen. Angeführt durch diese Ausgangssituation, begann das Fachgebiet Internationale Nutztierzucht und -haltung der Universität Kassel in Witzenhausen mit dem "Zuchtprogramm der Witzenhäuser Landschaftspflegeziege". Ziel dieser Untersuchung war es, die Leistungsfähigkeit und Robustheit der Endzuchtgruppe aus dem Zuchtprogramm über einen längeren Zeitraum (2001 bis 2003) anhand von definierten Merkmalen zu erfassen und zu dokumentieren. Alle Merkmale wurden zum selben Zeitpunkt ebenfalls an einer Kaschmirziegenherde, einer der drei Ursprungsrassen, zum Vergleich erhoben. Ausgangspunkt der Untersuchung, neben dem Hauptuntersuchungsareal des Naturschutzgebiets Ebenhöhe-Liebenberg, war die Lehr- und Versuchsbetrieb der Universität Kassel in Witzenhausen in Neu-Eichenberg. Achtung: Die Seitenzählung der Printausgabe ist mit der Online-Publikation nicht identisch.

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Soil organic matter (SOM) vitally impacts all soil functions and plays a key role in the global carbon (C) cycle. More than 70% of the terrestric C stocks that participate in the active C cycle are stored in the soil. Therefore, quantitative knowledge of the rates of C incorporation into SOM fractions of different residence time is crucial to understand and predict the sequestration and stabilization of soil organic carbon (SOC). Consequently, there is a need of fractionation procedures that are capable of isolating functionally SOM fractions, i.e. fractions that are defined by their stability. The literature generally refers to three main mechanisms of SOM stabilization: protection of SOM from decomposition by (i) its structural composition, i.e. recalcitrance, (ii) spatial inaccessibility and/or (iii) interaction with soil minerals and metal ions. One of the difficulties in developing fractionation procedures for the isolation of functional SOM fractions is the marked heterogeneity of the soil environment with its various stabilization mechanisms – often several mechanisms operating simultaneously – in soils and soil horizons of different texture and mineralogy. The overall objective of the present thesis was to evaluate present fractionation techniques and to get a better understanding of the factors of SOM sequestration and stabilization. The first part of this study is attended to the structural composition of SOM. Using 13C cross-polarization magic-angle spinning (CPMAS) nuclear magnetic resonance (NMR) spectroscopy, (i) the effect of land use on SOM composition was investigated and (ii) examined whether SOM composition contributes to the different stability of SOM in density and aggregate fractions. The second part of the present work deals with the mineral-associated SOM fraction. The aim was (iii) to evaluate the suitability of chemical fractionation procedures used in the literature for the isolation of stable SOM pools (stepwise hydrolysis, treatments using oxidizing agents like Na2S2O8, H2O2, and NaOCl as well as demineralization of the residue obtained by the NaOCl treatment using HF (NaOCl+HF)) by pool sizes, 13C and 14C data. Further, (iv) the isolated SOM fractions were compared to the inert organic matter (IOM) pool obtained for the investigated soils using the Rothamsted Carbon Model and isotope data in order to see whether the tested chemical fractionation methods produce SOM fractions capable to represent this pool. Besides chemical fractionation, (v) the suitability of thermal oxidation at different temperatures for obtaining stable SOC pools was evaluated. Finally, (vi) the short-term aggregate dynamics and the factors that impact macroaggregate formation and C stabilization were investigated by means of an incubation study using treatments with and without application of 15N labeled maize straw of different degradability (leaves and coarse roots). All treatments were conducted with and without the addition of fungicide. Two study sites with different soil properties and land managements were chosen for these investigations. The first one, located at Rotthalmünster, is a Stagnic Luvisol (silty loam) under different land use regimes. The Ah horizons of a spruce forest and continuous grassland and the Ap and E horizons of two plots with arable crops (continuous maize and wheat cropping) were examined. The soil of the second study site, located at Halle, is a Haplic Phaeozem (loamy sand) where the Ap horizons of two plots with arable crops (continuous maize and rye cropping) were investigated. Both study sites had a C3-/C4-vegetational change on the maize plot for the purpose of tracing the incorporation of the younger, maize-derived C into different SOM fractions and the calculation of apparent C turnover times of these. The Halle site is located near a train station and industrial areas, which caused a contamination with high amounts of fossil C. The investigation of aggregate and density fractions by 13C CPMAS NMR spectroscopy revealed that density fractionation isolated SOM fractions of different composition. The consumption of a considerable part (10–20%) of the easily available O-alkyl-C and the selective preservation of the more recalcitrant alkyl-C when passing from litter to the different particulate organic matter (POM) fractions suggest that density fractionation was able to isolate SOM fractions with different degrees of decomposition. The spectra of the aggregate fractions resembled those of the mineral-associated SOM fraction obtained by density fractionation and no considerable differences were observed between aggregate size classes. Comparison of plant litter, density and aggregate size fractions from soil under different land use showed that the type of land use markedly influenced the composition of SOM. While SOM of the acid forest soil was characterized by a large content (> 50%) of POM, which contained high amounts of spruce-litter derived alkyl-C, the organic matter in the biologically more active grassland and arable soils was dominated by mineral-associated SOM (> 95%). This SOM fraction comprised greater proportions of aryl- and carbonyl-C and is considered to contain a higher amount of microbially-derived organic substances. Land use can alter both, structure and stability of SOM fractions. All applied chemical treatments induced considerable SOC losses (> 70–95% of mineral-associated SOM) in the investigated soils. The proportion of residual C after chemical fractionation was largest in the arable Ap and E horizons and increased with decreasing C content in the initial SOC after stepwise hydrolysis as well as after the oxidative treatments with H2O2 and Na2S2O8. This can be expected for a functional stable pool of SOM, because it is assumed that the more easily available part of SOC is consumed first if C inputs decrease. All chemical treatments led to a preferential loss of the younger, maize-derived SOC, but this was most pronounced after the treatments with Na2S2O8 and H2O2. After all chemical fractionations, the mean 14C ages of SOC were higher than in the mineral-associated SOM fraction for both study sites and increased in the order: NaOCl < NaOCl+HF ≤ stepwise hydrolysis << H2O2 ≈ Na2S2O8. The results suggest that all treatments were capable of isolating a more stable SOM fraction, but the treatments with H2O2 and Na2S2O8 were the most efficient ones. However, none of the chemical fractionation methods was able to fit the IOM pool calculated using the Rothamsted Carbon Model and isotope data. In the evaluation of thermal oxidation for obtaining stable C fractions, SOC losses increased with temperature from 24–48% (200°C) to 100% (500°C). In the Halle maize Ap horizon, losses of the young, maize-derived C were considerably higher than losses of the older C3-derived C, leading to an increase in the apparent C turnover time from 220 years in mineral-associated SOC to 1158 years after thermal oxidation at 300°C. Most likely, the preferential loss of maize-derived C in the Halle soil was caused by the presence of the high amounts of fossil C mentioned above, which make up a relatively large thermally stable C3-C pool in this soil. This agrees with lower overall SOC losses for the Halle Ap horizon compared to the Rotthalmünster Ap horizon. In the Rotthalmünster soil only slightly more maize-derived than C3-derived SOC was removed by thermal oxidation. Apparent C turnover times increased slightly from 58 years in mineral-associated SOC to 77 years after thermal oxidation at 300°C in the Rotthalmünster Ap and from 151 to 247 years in the Rotthalmünster E horizon. This led to the conclusion that thermal oxidation of SOM was not capable of isolating SOM fractions of considerably higher stability. The incubation experiment showed that macroaggregates develop rapidly after the addition of easily available plant residues. Within the first four weeks of incubation, the maximum aggregation was reached in all treatments without addition of fungicide. The formation of water-stable macroaggregates was related to the size of the microbial biomass pool and its activity. Furthermore, fungi were found to be crucial for the development of soil macroaggregates as the formation of water-stable macroaggregates was significantly delayed in the fungicide treated soils. The C concentration in the obtained aggregate fractions decreased with decreasing aggregate size class, which is in line with the aggregate hierarchy postulated by several authors for soils with SOM as the major binding agent. Macroaggregation involved incorporation of large amounts maize-derived organic matter, but macroaggregates did not play the most important role in the stabilization of maize-derived SOM, because of their relatively low amount (less than 10% of the soil mass). Furthermore, the maize-derived organic matter was quickly incorporated into all aggregate size classes. The microaggregate fraction stored the largest quantities of maize-derived C and N – up to 70% of the residual maize-C and -N were stored in this fraction.

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Erfolgskontrollen für Agrarumweltprogramme bezogen sich bisher meistens auf einzelne Flächen oder auf programmbezogene, großräumige Evaluationen. Es wurde jedoch kaum untersucht, wie sich die Maßnahmen auf die Entwicklung einzelner Naturräume auswirken. Auch gab es keine Studien, welche die Wechselwirkungen zwischen den Beweggründen der Landnutzer auf der ei-nen- sowie Landnutzung und Vegetation auf der anderen Seite interpretierten. Die Dissertation Wirkungen von Extensivierungs- und Vertragsnaturschutzprogrammen auf die Entwick-lung einer »gerade noch aktuellen Agrarlandschaft« hat diese Lücke geschlossen. Sie erklärt, welche Bedeutung die hessischen Programme HELP und HEKUL für den hohen Anteil naturschutzfachlich wertvollen Grünlands im Rommeroder Hügel-land westlich des Meißner haben. Untersuchungsgegenstand waren die Grünlandvegetation und die landwirtschaftlichen Betriebe mit ihren Menschen und deren Beweggründen. Diese Inhalte er-forderten eine Vorgehensweise, die sowohl sozialwissenschaftliche als auch naturwissenschaftliche Methoden einbindet, um Bezüge zwischen Betrieben und Grünlandvegetation zu er-kennen. Umfangreiche pflanzensoziologische Untersuchungen und Interviews der Betriebsleiter waren Grundlage für eine Schlagdatenbank und weitergehende Auswertungen. Die Interpretation vegetationskundlicher Erhebungen im Kontext betrieblicher Entscheidungen und Beweggründe erforderte es, althergebrachte Ansätze in neuer Form zu verknüpfen. Die Bewertung der Programmwirkungen stützte sich auf die Schlagdatenbank und auf vier Szena-rien zur zukünftigen Gebietsentwicklung bei unterschiedlichen Programmfortschreibungen. Zur Darstellung von Erhebungen und Ergebnissen entstand eine Vielzahl thematischer Karten. Der überdurchschnittlich hohe Anteil naturschutzfachlich bedeutsamer Grünlandtypen auf den Programmflächen und die Interpretation der Szenarien belegten eine hohe Wirksamkeit von HELP und HEKUL im Gebiet. Nicht nur auf den Vertragsnaturschutzflächen des HELP, sondern auch auf dem HEKUL-Grünland sind naturschutzfachlich bedeutende Vegetationstypen überproportional vertreten. Die vier Szenarien ließen erkennen, dass eine Beschränkung des HELP auf Schutzgebiete, eine Abschaffung der HEKUL-Grünlandextensivierung oder gar eine ersatzlose Strei-chung beider Programme zu erheblichen Verschlechterungen der naturschutzfachlichen Situation führen würde. Gleichzeitig war festzustellen, dass es ohne die landwirtschaftlich schwierigen natur-räumlichen Verhältnisse sowie eine eher großteilige Agrarstruktur mit überdurchschnittlich flächen-starken und wirtschaftlich stabilen Vollerwerbsbetrieben keine so deutlichen Programmwirkungen gegeben hätte. Auch die Tatsache, dass viele Landwirte eine intensive Landwirtschaft aus innerer Überzeugung ablehnen und mit einer erheblich geringeren Stickstoffintensität wirtschaften als es HEKUL verlangt, wirkte verstärkend. Die große Bedeutung individueller Beweggründe einzelner Betriebsleiter wurde auch in den engen Beziehungen einzelner Grünland-Pflanzengesellschaften zu bestimmten Betriebstypen und sogar einzelnen Höfen sichtbar, deren Beschreibung und Interpretation wichtige Erkenntnisse zu den so-zioökonomischen Voraussetzungen verschiedener Vegetationstypen lieferte. Für die zukünftige Entwicklung der hessischen Agrarumweltförderung empfiehlt die Dissertation eine Einführung und bevorzugte Anwendung ergebnisorientierter Honorierungsverfahren, eine bessere Berücksichtigung des gering gedüngten Grünlands über eine differenzierte Förderung sehr extensiver Düngeregime, eine stärkere Modularisierung des Gesamtprogramms und eine Durchführung aller Maßnahmen im Vertragsverfahren. Die betriebszweigbezogene Grünlandextensivierung sollte zukünftig in Kulissen angeboten werden, in denen ein verstärktes Wechseln von Betrieben in die Mindestpflege nach DirektZahlVerpflV zu erwarten ist.

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Zur Abbildung heterogener Standorteigenschaften und Ertragspotenziale werden zunehmend flächenhafte Daten nachgefragt. Insbesondere für Grünland, das häufig durch ausgeprägte Standortheterogenität gekennzeichnet ist, ergeben sich hohe Anforderungen an die Wiedergabequalität, denn die realen Verhältnisse sollen in praktikabler Weise möglichst exakt abgebildet werden. Außerdem können flächenhafte Daten genutzt werden, um Zusammenhänge zwischen teilflächenspezifischen Standorteigenschaften und Grünlandaspekten detaillierter zu analysieren und bisher nicht erkannte Wechselbeziehungen nachzuweisen. Für mitteleuropäisches Grünland lagen zu Beginn dieser Arbeit derartige räumliche Untersuchungen nicht oder nur in Teilaspekten vor. Diese Arbeit befasste sich mit der Analyse von Wirkungsbeziehungen zwischen Standort- und Grünlandmerkmalen auf einer im Nordhessischen Hügelland (Deutschland) weitgehend praxisüblicher bewirtschafteten 20 ha großen Weidefläche. Erhoben wurden als Standortfaktoren die Geländemorphologie, die Bodentextur, die Grundnährstoffgehalten sowie als Parameter des Grünlandbestandes die botanische Zusammensetzung, der Ertrag und die Qualitätsparameter. Sie wurden sowohl in einem 50 m-Raster ganzflächig, als auch auf drei 50x50 m großen Teilflächen in erhöhter Beprobungsdichte (6,25 m-Rasterweite) aufgenommen. Die relevanten Fragestellungen zielen auf die räumliche und zeitliche Variabilität von Grünlandbestandesparametern innerhalb von Grünlandflächen sowie deren Abhängigkeit von den Standortfaktoren. Ein weiterer Schwerpunkt war die Überprüfung der Frage, ob die reale Variabilität der Zielvariablen durch die Interpolierung der punktuell erfassten Daten wiedergegeben werden kann. Die Beziehungen zwischen Standort- und Grünlandmerkmalen wurden mit monokausalen und multivariaten Ansätzen untersucht. Die Ergebnisse ließen, unabhängig vom Jahreseinfluss, bereits bestimmte Zusammenhänge zwischen botanischer Zusammensetzung und Standort, auch auf dem untersuchten kleinen Maßstab innerhalb der Grünlandfläche, finden. Demzufolge können unterschiedliche Areale abgegrenzt und charakterisiert werden, die als Grundlage für Empfehlungen zur Ausweisung von Arealen zur teilspezifischen Bewirtschaftung erarbeitet wurden. Die Validierung der interpolierten Daten zeigte, dass die 50-m Rasterbeprobung nur eine begrenzte Wiedergabe der räumlichen Variabilität ermöglicht. Inwieweit derartige Beziehungen quantitativ genauer beschreibbar sind, bleibt auf Grund der verbliebenen unerklärten Varianz im Datensatz dieser Studie offen.

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Land use has become a force of global importance, considering that 34% of the Earth’s ice-free surface was covered by croplands or pastures in 2000. The expected increase in global human population together with eminent climate change and associated search for energy sources other than fossil fuels can, through land-use and land-cover changes (LUCC), increase the pressure on nature’s resources, further degrade ecosystem services, and disrupt other planetary systems of key importance to humanity. This thesis presents four modeling studies on the interplay between LUCC, increased production of biofuels and climate change in four selected world regions. In the first study case two new crop types (sugarcane and jatropha) are parameterized in the LPJ for managed Lands dynamic global vegetation model for calculation of their potential productivity. Country-wide spatial variation in the yields of sugarcane and jatropha incurs into substantially different land requirements to meet the biofuel production targets for 2015 in Brazil and India, depending on the location of plantations. Particularly the average land requirements for jatropha in India are considerably higher than previously estimated. These findings indicate that crop zoning is important to avoid excessive LUCC. In the second study case the LandSHIFT model of land-use and land-cover changes is combined with life cycle assessments to investigate the occurrence and extent of biofuel-driven indirect land-use changes (ILUC) in Brazil by 2020. The results show that Brazilian biofuels can indeed cause considerable ILUC, especially by pushing the rangeland frontier into the Amazonian forests. The carbon debt caused by such ILUC would result in no carbon savings (from using plant-based ethanol and biodiesel instead of fossil fuels) before 44 years for sugarcane ethanol and 246 years for soybean biodiesel. The intensification of livestock grazing could avoid such ILUC. We argue that such an intensification of livestock should be supported by the Brazilian biofuel sector, based on the sector’s own interest in minimizing carbon emissions. In the third study there is the development of a new method for crop allocation in LandSHIFT, as influenced by the occurrence and capacity of specific infrastructure units. The method is exemplarily applied in a first assessment of the potential availability of land for biogas production in Germany. The results indicate that Germany has enough land to fulfill virtually all (90 to 98%) its current biogas plant capacity with only cultivated feedstocks. Biogas plants located in South and Southwestern (North and Northeastern) Germany might face more (less) difficulties to fulfill their capacities with cultivated feedstocks, considering that feedstock transport distance to plants is a crucial issue for biogas production. In the fourth study an adapted version of LandSHIFT is used to assess the impacts of contrasting scenarios of climate change and conservation targets on land use in the Brazilian Amazon. Model results show that severe climate change in some regions by 2050 can shift the deforestation frontier to areas that would experience low levels of human intervention under mild climate change (such as the western Amazon forests or parts of the Cerrado savannas). Halting deforestation of the Amazon and of the Brazilian Cerrado would require either a reduction in the production of meat or an intensification of livestock grazing in the region. Such findings point out the need for an integrated/multicisciplinary plan for adaptation to climate change in the Amazon. The overall conclusions of this thesis are that (i) biofuels must be analyzed and planned carefully in order to effectively reduce carbon emissions; (ii) climate change can have considerable impacts on the location and extent of LUCC; and (iii) intensification of grazing livestock represents a promising venue for minimizing the impacts of future land-use and land-cover changes in Brazil.

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Die vorliegende Arbeit untersuchte die Einflüsse der Bodenart und Einarbeitungstiefe von Streu auf die mikrobielle Nutzung und ihren Abbau. Anhand einer Kohlenstoffsequestrierung wurde die Verlagerung streubürtigen Kohlenstoffes in die Fraktionen CO2-C, SOC, extrahierbaren Kohlenstoff, Cmik und POM-C betrachtet. Aufgrund der Analyse der δ13C-CO2 Werte der Bodenrespiration, im Rahmen der Sequestrierung des streubürtigen Kohlenstoffes, war der Anteil der streubürtigen Bodenrespiration und somit die gesamte, zu erwartende Bodenrespiration bekannt. Durch die, bei der Kohlenstoffsequestrierung, ermittelten Werte konnte eine Plausibilitätsprüfung an vier Methoden zur Erfassung der Bodenrespiration, auf ihre Genauigkeit und mögliche Artefakte hin, durchgeführt werden. Des Weiteren wurden in einem anschließenden Freilandversuch unter subtropischen Bedingungen die Einflüsse verschiedener Dünger und Feldfrüchte, in Abhängigkeit der Streuqualität, auf den Streuabbau und die mikrobielle Besiedelung hin untersucht. Im ersten Versuch (Kapitel 3), wurde anhand eines Säulenversuches der Einfluss der Einarbeitungstiefe, in Anhängigkeit der Bodenart, auf den Streuabbau untersucht. Dieses ist von großer Bedeutung, da auf landwirtschaftlich genutzten Flächen Streu und so genannte "Grüne Dünger" durch den Einsatz unterschiedlicher Bodenbearbeitungssysteme, wie z.B. der Kreiselegge oder dem Wendepflug, in unterschiedliche Tiefen eingearbeitet werden. Die Verlagerung streubürtigen mikrobiellen Kohlenstoffes per Pilzhyphen, über eine Distanz von bis zu 20 cm wurde innerhalb dieser Arbeit das erste Mal gezeigt. Bisherige Studien zeigten einzig einen Transport von streubürtigem Kohlenstoff per Pilzhyphen, über eine kurze Distanz von der Detritussphäre in den angrenzenden Boden. Der höhere Anteil streubürtigen mikrobiellen Kohlenstoffes innerhalb der von der Streuschicht weiter entfernten Schichten im sandigen Boden, im Vergleich zum lehmigen Boden zeigte, dass das feine Porenvolumen des lehmigen Bodens den Transport Streubürtigen Kohlenstoffes per Pilzhyphen grundsätzlich behindert. Diese Annahme wurde durch die stärkere Abnahme des Anteils streubürtigen mikrobiellen Kohlenstoffes, mit zunehmender Entfernung zur Streuschicht, im lehmigen Boden im Vergleich zum sandigen Boden unterstützt. Es ist davon auszugehen, dass der sandige Boden zusätzlich durch die höhere Porosität eine erhöhte Sauerstoffdurchlässigkeit und somit, in den tieferen Schichten bessere Wachstumsbedingungen für Mikroorganismen bietet als der lehmige Boden. Durch die Ausbreitung substratbürtigen mikrobiellen Kohlenstoffes wurde im sandigen Boden mehr streubürtiger Kohlenstoff durch Mikroorganismen inkorporiert als im lehmigen Boden. Ein weiterer Grund für die geringere Verlagerung von streubürtigem Kohlenstoff in die mikrobielle Biomasse des lehmigen Bodens ist wahrscheinlich der bessere physikalische Schutz durch den höheren Tonanteil. Durch die Einarbeitung der Streu stieg in allen Ansätzen der Gehalt an Ergosterol, welcher ein wesentlicher Indikator für die Präsenz saprotropher Pilze ist. Besonders stark ausgeprägt war der Anstieg des Ergosterolgehaltes, sowie des Ergosterol / mikrobielle Biomasse C – Quotienten, wenn Streu in die untere Schicht (15 - 20 cm) ein-gearbeitet wurde. Diese tiefenspezifischen Unterschiede wurden bisher in noch keinem weiteren Versuch beobachtet und können auf die Entwicklung unterschiedlicher pilzlicher Gemeinschaften zurück zu führen sein. Es ist jedoch wahrscheinlicher, dass pilzliche Nekromasse in den oberen Bodenschichten schneller umgesetzt wird und somit bei der Ergosterolbestimmung nicht mit erfasst wird. Da der Umsatz der pilzlichen Nekromasse im porösen sandigen Boden, aufgrund der höheren Sauerstoffverfügbarkeit und des geringeren physikalischen Schutzes, vermutlich höher ist als im lehmigen Boden, wird diese Annahme durch den im sandigen Boden geringeren Gehalt an mikrobiellen Kohlenstoff unterstützt. Wie erwartet, überstieg die Mineralisation der Streu im sandigen Boden die der im lehmigen Boden. Jedoch anders als erwartet, unterschied sich die Mineralisation in Abhängigkeit der Einarbeitungstiefe, mit einer erhöhten Mineralisation bei Einarbeitung der Streu in 0 - 5 cm Tiefe, einzig im sandigen Boden. Die Berechnung des Ertragskoeffizienten zeigte, dass die Substratsnutzungseffizienz der Mikroorganismen im sandigen Boden signifikant geringer war als die im lehmigen Boden. Die Zugabe von Streu führte in beiden Böden, verstärkt jedoch im lehmigen Boden, zu einem positiven Priming Effekt, der in beiden Bö-den stärker ausgeprägt war, als Streu in 0–5 cm Tiefe eingearbeitet wurde. Trotz Abnahme der SOC-bürtigen mikrobiellen Biomasse stieg die Mineralisation des SOC stark an. Es ist anzunehmen, dass extrazelluläre Enzyme wie Cellulase und Lignin modifizierende Enzy-me, produziert von saprotrophen Pilzen, zum Abbau von Cellolose und Lignin der Streu, zum Teil sehr effizient SOC abbauen. Im zweiten Versuch (Kapitel 4) wurde anhand des gleichen Säulenversuches (Versuch 1; Kapitel 3) der Einfluss der Entfernung von CO2-hot-spots im Boden zur Bodenoberfläche, in Abhängigkeit der Bodenart, auf vier verschiedene Methoden zur Erfassung der Bodenrespiration betrachtet. Zusätzlich wurde durch eine Plausibilitätsprüfung anhand der Kohlenstoffbilanz, basierend auf der in Versuch 1 durchgeführten Kohlenstoffsequestrierung, die Genauigkeit der vier Methoden in Abhängigkeit der Bodenart überprüft. Für beide Ansätze mit sandigem Boden zeigen IR und PAS eine deutliche Überschätzung der mit NaOH und GC bestimmten Bodenrespiration. Die Überschätzung durch IR ist dabei auf die durch die dynamische Haube verursachten Turbulenzen und deren Auswirkungen auf den porösen sandigen Boden zurück zu führen. Bei geringen Respirationsraten, wie bei der Kontrolle, zeigt die Messung mittels IR trotz Turbulenzen, verursacht durch den Ventilator der Haube, keine Überschätzung. Die Überschätzung durch PAS hingegen kann nicht auf Turbulenzen, verursacht durch die dynamische Haube, zurück geführt werden, da bei den Analysen mit PAS und GC identische Hauben, höher und größer als bei IR, eingesetzt wurden und die Bodenrespiration durch GC nicht überschätzt wurde. Im Gegensatz zu beiden sandigen Ansätzen überschätzt IR die Bodenrespiration im lehmigen Boden nicht. NaOH hingegen unterschätzt die Bodenrespiration, wenn Streu in 15-20 cm Tiefe des lehmigen Bodens eingearbeitet ist. Dieses ist dadurch zu erklären, dass, bedingt durch die geringere Porosität sowie das höhere Wasserhaltevermögen und dem daraus resultierenden geringeren Luft gefüllten Porenvolumen, die Diffusion von CO2 im lehmigen Boden langsamer ist als im sandigen Boden. Nach Absorption des CO2 der Haubenluft diffundiert das CO2 des CO2-hot-spots in 15-20 cm Tiefe, entlang des Diffusionsgradienten, aufgrund des Diffusionswiderstandes in lehmigen Boden langsamer zur Oberfläche als im sandigen Boden oder wenn der CO2-hot-spot direkt unter der Bodenoberfläche liegt. Da bei der Messung mit der dynamischen Haube diese nur kurz auf der Fläche verbleibt, beeinflusst der Diffusionsgradient diese Messungen nicht. Hinzukommt, dass bei den Messsystemen, die in Kombination mit der dynamischen Haube eingesetzt werden, im Gegensatz zur Absorption durch Lauge keine CO2 Abreicherung stattfindet und die Diffusion von CO2 aus dem Boden über lange Zeit bis zu hohen CO2 Konzentration in der Haube linear bleibt. Alle drei mit einer dynamischen Haube kombinierten Methoden zeigen mit Korrelations-koeffizienten zwischen 0,90 und 0,93 starke Korrelationen mit NaOH. Während PAS die Bodenrespiration im Verhältnis zu NaOH immer überschätzt, tritt eine Überschätzung durch GC nur bei Mineralisationsraten unter 500 mg m-2 h-1 und für IR bei Mineralisations-raten über 40 mg m-2 h-1 ein. Die Plausibilitätsprüfung zeigt, dass für sandigen Boden, mit NaOH und GC eine sehr exakte Wiederfindung von Kohlenstoff erreicht wird, wohingegen IR und PAS in der Wiederfindung von Kohlenstoff bei deutlich über 100 % liegen. Für den lehmigen Boden hingegen ist nach Entfernung der CO2-hot-spots zur Bodenoberfläche zu differenzieren. Befindet sich der CO2-hot-spot direkt unter der Bodenoberfläche ist die Wiederfindung von Kohlenstoff für NaOH, GC und IR sehr exakt. Befindet sich der CO2-hot-spot jedoch in 15-20 cm Tiefe, ist die Wiederfindung des Kohlenstoffes durch NaOH deutlich unter 100 %. Die Wiederfindung durch PAS liegt sowohl für den sandigen als auch für den lehmigen Boden immer deutlich über 100 %. Im dritten Versuch (Kapitel 5), wurde anhand eines Litterbag-Versuches im Norden des Omans, der Einfluss verschiedener Dünger und Feldfrüchte auf den Abbau von Streu auf landwirtschaftlich genutzten Flächen in Abhängigkeit der Streuqualität betrachtet. Bei dem Großteil bisheriger Streuabbauversuche, unter gemäßigten und subtropischen Klimaten, stand der Abbau von Streu im Wald im Fokus der Betrachtung. Die wenigen Versuche zum Streuabbau auf landwirtschaftlich genutzten Flächen beschränken sich auf die gemäßigten Klimate. Wohingegen der Abbau von Streu, sowie der Einfluss von Dünger und Feldfrucht unter subtropischen Bedingungen, zum ersten mal mit der vorliegenden Arbeit fokussiert wurde. Der Verlust an organischem Material war verglichen mit Versuchen un-ter gemäßigten Klimaten, bei allen vier Streuarten, generell hoch. Der höhere Abbau von Luzernen- und Maisstreu im Vergleich zu Raps- und Weizenstreu ist auf Unterschiede der Streuqualität zurückzuführen. Neben der Verwertbarkeit durch Mikroorganismen beeinflusst die Streuqualität zusätzlich die "Schmackhaftigkeit" der Streu für Organismen der Mesofauna. Wodurch ein selektiver Transport und/oder Grazing von Mikroorganismen stattfindet. Der geringere Abbau der Luzernenstreu verglichen mit Maisstreu jedoch ist nicht auf die Streuqualität sondern auf die geringere mikrobielle Besiedelung der Luzernenstreu während der Versuchszeit zurückzuführen. Der Unterschied im Grad der mikrobiellen Besiedelung kann durch die erhobenen Daten nicht erklärt werden. Es ist jedoch davon auszugehen, dass Leguminosen Substanzen wie z.B. Polyphenole enthalten, welche die mikrobielle Biomasse und im Besonderen die pilzliche Biomasse in beachtlichem Umfang inhibitieren. Ebenso wenig ist der höhere Abbau von Weizenstreu verglichen mit Rapsstreu durch die Streuqualität zu begründen. Eine mögliche Erklärung für den geringeren Abbau der Rapsstreu kann ihr hoher Aluminium Gehalt sein. Es ist jedoch wahrscheinlicher, dass die Rapsstreu organische Substanzen wie Glucosinolate enthält, welche den mikrobiellen Streuabbau inhibitieren. Während der Hemicellulosegehalt am Ende des Versuches nicht durch die Streuqualität beeinflusst war, zeigten Cellulose und Lignin quali-tätsabhängige Effekte. Der stärkere Abbau von Cellulose bei Luzernen- und Maisstreu ist auf den anfänglich höheren Stickstoffgehalt zurückzuführen, wodurch die Produktion und Aktivität von Cellulose degradierenden Enzymen, wie Exo-Cellulase, Endo-Cellulase und Xylanase, anstieg. Es ist davon auszugehen, dass die Differenzen im Celluloseabbau von Luzernen- und Maisstreu im Vergleich zu Raps- und Weizenstreu, neben Unterschieden im anfänglichen Stickstoffgehalt, auf den höheren Schutz von Cellulose durch Lignin in Raps- und Weizenstreu zurückzuführen sind. Während der initial geringe Stickstoffgehalt den Ligninabbau in Raps- und Weizenstreu unterstützt, ist die relative Anreicherung von Lignin in Luzernen- und Maisstreu hingegen auf den initial hohen Stickstoffgehalt zurückzuführen. Dem entgegen hat die Zusammensetzung weiterer Nährstoffe einen sehr geringen Effekt. Es ist jedoch möglich, dass stärkere Effekte durch den Eintrag von Boden in die Litterbags durch Organismen der Mesofauna, Wurzelwachstum oder physikalische Verlagerung überdeckt werden. Während unter organische Düngung, die pilzliche Biomasse ansteigt, fördert der leicht verfügbare Stickstoff der mineralischen Düngung die Bildung bakterieller Biomasse. Der höher Gehalt an pilzlicher Biomasse unter organischer Düngung zeigte keinen generellen Effekt auf den Abbau von Kohlenstoff. Er führte jedoch zu einer Veränderung in der Streuzusammensetzung. Die verringerte Abnahme bzw. verstärkte Zunahme der Nährstoffgehalte bei organischer Düngung ist durch den Eintrag dünger-bürtiger Nährstoffe, im Besonderen durch die verstärkte Bildung pilzlicher Hyphen in die Litterbags hinein, zu erklären. Trotz höherer Gehalte an pilzlicher Biomasse war der Ligningehalt am Ende des Versuches unter organischer Düngung höher als unter mineralischer Düngung. Diese ist auf den Eintrag düngerbürtiger Pilze zurückzuführen, welche eine geringere Lignindegradierungseffizienz aufweisen. Der Einfluss der Feldfrucht auf den Streuabbau äußert sich durch höhere Gehalte mikrobieller und im Besonderen pilzlicher Biomasse, und durch geringere Gehalte an N, P, Ca, Na und K in, im Litterbag verbleiben-der Streu, unter dem Anbau von Mohrrüben. Der Anstieg der pilzlichen Biomasse führt, ebenso wie bei der organischen Düngung zu keinem generellen Anstieg der Kohlenstoffdegradation, zeigt jedoch einen selektiven Effekt auf den Abbau von Cellulose. Der Einfluss, sowohl auf die mikrobielle Biomasse, als auch auf den Nährstoffgehalt, zeigt die Bedeutung der Unterschiede im Wurzelwachstum, der Rhizodeposition sowie des Nährstoffbedarfs in Abhängigkeit der Feldfrucht. Trotz großer Unterschiede der Streuarten im anfänglichen Gehalt mikrobieller Biomasse war dieser am Ende des Versuches für alle Streuarten identisch. Dieses war Folge eines starken Anstiegs der pilzlichen Biomasse bei Luzernen- und Maisstreu sowie einer Abnahme der pilzlichen Biomasse bei Raps- und Weizenstreu, welche zuvor noch nicht beobachtet wurde. Dieses macht den Einfluss der anfänglichen mikrobiellen Biomasse auf deren Entwicklung während des Streuabbauprozesses im Boden deutlich. Es ist anzunehmen, dass ein Teil der anfänglichen pilzlichen Biomasse der Raps- und Weizenstreu, welche sich unter gemäßigten Klimaten entwickelte, unter subtropischen Bedingungen nicht überlebensfähig war. Generell war der Streuabbau durch Pilze dominiert. Es zeigte sich jedoch, dass Unterschiede im Pflanzenmaterial einen Einfluss auf die bakterielle Biomasse hatten, Unterschiede in Düngung und Feldfrucht hingegen die pilzliche Biomasse und die bakterielle Biomasse beeinflussten.