TY - JOUR A1 - Putra, Muhammad Panji Islam Fajar A1 - Pradhan, Prajal A1 - Kropp, Jürgen T1 - A systematic analysis of Water-Energy-Food security nexus BT - a South Asian case study JF - The science of the total environment : an international journal for scientific research into the environment and its relationship with man N2 - Most South Asian countries have challenges in ensuring water, energy, and food (WEF) security, which are often interacting positively or negatively. To address these challenges, the nexus approach provides a framework to identify the interactions of the WEF sectors as an integrated system. However, most nexus studies only qualitatively discuss the interactions between these sectors. This study conducts a systematic analysis of the WEF security nexus in South Asia by using open data sources at the country scale. We analyze interactions between the WEF sectors statistically, defining positive and negative correlations between the WEF security indicators as synergies and trade-offs, respectively. By creating networks of the synergies and trade-offs, we further identify most positively and negatively influencing indicators in the WEF security nexus. We observe a larger share of trade-offs than synergies within the water and energy sectors and a larger share of synergies than trade-offs among the WEF sectors for South Asia. However, these observations vary across the South Asian countries. Our analysis highlights that strategies on promoting sustainable energy and discouraging fossil fuel use could have overall positive effects on the WEF security nexus in the countries. This study provides evidence for considering the WEF security nexus as an integrated system rather than just a combination of three different sectors or securities. KW - water security KW - food security KW - energy security KW - network analysis KW - water-energy-food nexus KW - sustainable development Y1 - 2020 U6 - https://doi.org/10.1016/j.scitotenv.2020.138451 SN - 0048-9697 SN - 1879-1026 VL - 728 PB - Elsevier CY - Amsterdam ER - TY - THES A1 - Pradhan, Prajal T1 - Food demand and supply under global change T1 - Nahrungsmittelnachfrage und -Versorgung im Globalen Wandel N2 - Anthropogenic activities have transformed the Earth's environment, not only on local level, but on the planetary-scale causing global change. Besides industrialization, agriculture is a major driver of global change. This change in turn impairs the agriculture sector, reducing crop yields namely due to soil degradation, water scarcity, and climate change. However, this is a more complex issue than it appears. Crop yields can be increased by use of agrochemicals and fertilizers which are mainly produced by fossil energy. This is important to meet the increasing food demand driven by global demographic change, which is further accelerated by changes in regional lifestyles. In this dissertation, we attempt to address this complex problem exploring agricultural potential globally but on a local scale. For this, we considered the influence of lifestyle changes (dietary patterns) as well as technological progress and their effects on climate change, mainly greenhouse gas (GHG) emissions. Furthermore, we examined options for optimizing crop yields in the current cultivated land with the current cropping patterns by closing yield gaps. Using this, we investigated in a five-minute resolution the extent to which food demand can be met locally, and/or by regional and/or global trade. Globally, food consumption habits are shifting towards calorie rich diets. Due to dietary shifts combined with population growth, the global food demand is expected to increase by 60-110% between 2005 and 2050. Hence, one of the challenges to global sustainability is to meet the growing food demand, while at the same time, reducing agricultural inputs and environmental consequences. In order to address the above problem, we used several freely available datasets and applied multiple interconnected analytical approaches that include artificial neural network, scenario analysis, data aggregation and harmonization, downscaling algorithm, and cross-scale analysis. Globally, we identified sixteen dietary patterns between 1961 and 2007 with food intakes ranging from 1,870 to 3,400 kcal/cap/day. These dietary patterns also reflected changing dietary habits to meat rich diets worldwide. Due to the large share of animal products, very high calorie diets that are common in the developed world, exhibit high total per capita emissions of 3.7-6.1 kg CO2eq./day. This is higher than total per capita emissions of 1.4-4.5 kg CO2eq./day associated with low and moderate calorie diets that are common in developing countries. Currently, 40% of the global crop calories are fed to livestock and the feed calorie use is four times the produced animal calories. However, these values vary from less than 1 kcal to greater 10 kcal around the world. On the local and national scale, we found that the local and national food production could meet demand of 1.9 and 4.4 billion people in 2000, respectively. However, 1 billion people from Asia and Africa require intercontinental agricultural trade to meet their food demand. Nevertheless, these regions can become food self-sufficient by closing yield gaps that require location specific inputs and agricultural management strategies. Such strategies include: fertilizers, pesticides, soil and land improvement, management targeted on mitigating climate induced yield variability, and improving market accessibility. However, closing yield gaps in particular requires global N-fertilizer application to increase by 45-73%, P2O5 by 22-46%, and K2O by 2-3 times compare to 2010. Considering population growth, we found that the global agricultural GHG emissions will approach 7 Gt CO2eq./yr by 2050, while the global livestock feed demand will remain similar to 2000. This changes tremendously when diet shifts are also taken into account, resulting in GHG emissions of 20 Gt CO2eq./yr and an increase of 1.3 times in the crop-based feed demand between 2000 and 2050. However, when population growth, diet shifts, and technological progress by 2050 were considered, GHG emissions can be reduced to 14 Gt CO2eq./yr and the feed demand to nearly 1.8 times compare to that in 2000. Additionally, our findings shows that based on the progress made in closing yield gaps, the number of people depending on international trade can vary between 1.5 and 6 billion by 2050. In medium term, this requires additional fossil energy. Furthermore, climate change, affecting crop yields, will increase the need for international agricultural trade by 4% to 16%. In summary, three general conclusions are drawn from this dissertation. First, changing dietary patterns will significantly increase crop demand, agricultural GHG emissions, and international food trade in the future when compared to population growth only. Second, such increments can be reduced by technology transfer and technological progress that will enhance crop yields, decrease agricultural emission intensities, and increase livestock feed conversion efficiencies. Moreover, international trade dependency can be lowered by consuming local and regional food products, by producing diverse types of food, and by closing yield gaps. Third, location specific inputs and management options are required to close yield gaps. Sustainability of such inputs and management largely depends on which options are chosen and how they are implemented. However, while every cultivated land may not need to attain its potential yields to enable food security, closing yield gaps only may not be enough to achieve food self-sufficiency in some regions. Hence, a combination of sustainable implementations of agricultural intensification, expansion, and trade as well as shifting dietary habits towards a lower share of animal products is required to feed the growing population. N2 - Der Mensch beeinflusst die landwirtschaftlichen Erträge unmittelbar durch anthropogen verursachte Treiber des globalen Wandels, wie Bodenerosion, Wasserknappheit und Klimawandel, wovon er und seine Lebensmittelversorgung wiederum direkt betroffen sein werden. Einerseits steigert der Einsatz von Agrochemikalien und mithilfe fossiler Energien erzeugte Dünger die landwirtschaftlichen Erträge. Andererseits tragen Bevölkerungswachstum sowie die Tendenz zu kalorienreichen Ernährungsweisen zu einer vermehrten Nahrungsmittelnachfrage von 60-110% von 2005 bis 2050 bei. Das Decken der wachsenden Lebensmittelnachfrage bei gleichzeitiger Reduktion des landwirtschaftlichen Ressourcenverbrauchs und Umweltbelastungen stellt eine zentrale Herausforderung für die globale Nachhaltigkeit dar. In diesem Rahmen versucht diese Arbeit, die Potentiale der globalen Landwirtschaft auf kleinräumiger Skala auszuloten. Hierbei werden Prognosen zu Auswirkungen von Ernährungsmustern und Veränderungen der landwirtschaftlichen Produktionsmethoden unter Beibehaltung der der Anbaufolge und deren Einfluss auf den Klimawandel berücksichtigt. Projektionen basierend auf räumlich hoch aufgelösten Daten lassen Aussagen darüber zu, inwieweit die Nahrungsmittelproduktion lokal sichergestellt werden kann und falls nicht, wie dies durch regionalen und/oder globalen Handel erfolgen kann. Frei verfügbare Datensätze und Ansätze, wie künstliche neuronale Netze, Szenarioanalysen, Downscaling und skalenübergreifende Methoden werden zur Bearbeitung genutzt. Für den Zeitraum von 1961 bis 2007 konnten 16 globale Ernährungstypologien identifiziert werden. Diese spiegeln vor allem eine Tendenz hin zu fleischhaltiger Kost wider. Durch den hohen Anteil tierischer Produkte verursachen kalorienreiche Ernährungsmuster, wie in Industrieländern üblich, hohe pro Kopf Emissionen von 3,7-6,1 kg CO2eq./Tag und übersteigen die pro Kopf Emissionen von 1,4-4,5 kg CO2eq./Tag einer kalorienarmen Ernährungsweise in Entwicklungsländern. Weltweit werden 40% aller landwirtschaftlichen Erzeugnisse als Futtermittel genutzt, was bedeutet, dass aus einem regional variierenden Wert von weniger als 1 kcal bis 10 kcal Getreide, 1 kcal tierische Produkte erzeugt werden. Im Jahr 2000 konnten lokale und nationale Nahrungsmittelproduktionen die Nachfrage von 1,9 bzw. 4,4 Milliarden Menschen erfüllen. Trotzdem sind ca. 1 Milliarde Menschen in Asien und Afrika auf interkontinentalen Handel angewiesen um ihre Lebensmittelnachfrage zu decken. Bei alleiniger Betrachtung des Bevölkerungswachstums wird ein Anstieg der globalen landwirtschaftlichen Treibhausgasemissionen bis zum Jahr 2050 auf jährlich 7 Gt CO2eq. deutlich, während die Nachfrage nach angebauten Futtermitteln gegenüber 2000 annähernd gleich bleiben wird. Das Hinzuziehen von Ernährungsgewohnheiten zeigt, dass zwischen 2000 und 2050 ein Anstieg der Treibhausgasemissionen auf 20 Gt CO2eq. pro Jahr und eine 1,3-fach gesteigerte Nachfrage nach Futtermittel möglich ist. Der zusätzliche Einbezug von technologischem Fortschritt ergibt, dass Emissionen auf jährlich 14 Gt CO2eq. und der Anstieg der Futtermittelnachfrage auf das 0,8-fache reduziert werden können. Daraus geht die Erkenntnis hervor, dass je nachdem, wie erfolgreich Ertragslücken geschlossen werden, 1,5 bis 6 Milliarden Menschen vom internationalen Handel abhängig sind, welcher mittelfristig zusätzliche fossile Energie benötigt. Der Einfluss des Klimawandels auf Ernteerträge wird den Bedarf an internationalem Handel mit landwirtschaftlichen Produkten um 4% bis 16% erhöhen. Weiterhin lässt sich schlussfolgern, dass insbesondere veränderte Ernährungsgewohnheiten, im Gegensatz zu Bevölkerungswachstum, die Nachfrage nach Getreide, die landwirtschaftlichen Treibhausgasemissionen sowie den internationalen Handel mit Nahrungsmitteln erhöhen werden. Durch adäquaten Technologietransfer und technologischen Fortschritt lassen sich Ernteerträge steigern, landwirtschaftliche Emissionen senken und die Effizienz der Umwandlung von Futtermittel in tierische Produkte erhöhen. Abhängigkeiten vom internationalen Handel könnten durch den Konsum lokaler und regionaler Produkte und durch Diversifizierung von Erzeugnissen verringert werden. Zur Schließung von Ertragslücken sind ortsspezifische Maßnahmen erforderlich, wie die nachhaltige Verwendung von Düngemitteln und Pestiziden, Bodenverbesserung, Maßnahmen zur Abschwächung klimabedingter Ernteschwankungen sowie ein verbesserter Marktzugang. Um die Ernährung einer wachsenden Weltbevölkerung zu gewährleisten, ist eine Kombination aus nachhaltiger Intensivierung und Ausweitung der Landwirtschaft, des Handels sowie Ernährungsmuster mit geringeren Anteilen tierischer Produkte notwendig. KW - food security KW - global change KW - climate change KW - yield gap KW - dietary patterns KW - livestock feed KW - food self-sufficiency KW - emissions KW - food demand KW - dietary changes KW - self-organising maps KW - cross-scale analysis KW - sustainability KW - Nahrungsmittelsicherheit KW - Nahrungsmittelselbstversorgung KW - Ertragslücken KW - Emissionen KW - Futtermittel KW - Ernährungsmuster KW - Ernährungsumstellung KW - Klimawandel KW - Lebensmittelnachfrage KW - selbstorganisierte Karten KW - skalenübergreifende Analyse KW - Nachhaltigkeit Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-77849 ER - TY - JOUR A1 - Wenz, Leonie A1 - Kalkuhl, Matthias A1 - Steckel, Jan Christoph A1 - Creutzig, Felix T1 - Teleconnected food supply shocks JF - Environmental research letters N2 - The 2008-2010 food crisis might have been a harbinger of fundamental climate-induced food crises with geopolitical implications. Heat-wave-induced yield losses in Russia and resulting export restrictions led to increases in market prices for wheat across the Middle East, likely contributing to the Arab Spring. With ongoing climate change, temperatures and temperature variability will rise, leading to higher uncertainty in yields for major nutritional crops. Here we investigate which countries are most vulnerable to teleconnected supply-shocks, i.e. where diets strongly rely on the import of wheat, maize, or rice, and where a large share of the population is living in poverty. We find that the Middle East is most sensitive to teleconnected supply shocks in wheat, Central America to supply shocks in maize, and Western Africa to supply shocks in rice. Weighing with poverty levels, Sub-Saharan Africa is most affected. Altogether, a simultaneous 10% reduction in exports of wheat, rice, and maize would reduce caloric intake of 55 million people living in poverty by about 5%. Export bans in major producing regions would put up to 200 million people below the poverty line at risk, 90% of which live in Sub-Saharan Africa. Our results suggest that a region-specific combination of national increases in agricultural productivity and diversification of trade partners and diets can effectively decrease future food security risks. KW - food security KW - trade shocks KW - vulnerability KW - climate change KW - teleconnections Y1 - 2016 U6 - https://doi.org/10.1088/1748-9326/11/3/035007 SN - 1748-9326 VL - 11 PB - IOP Publ. Ltd. CY - Bristol ER -