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Pflegeforschung mit Kindern
(2019)
Diese Arbeit kann in der Bibliothek für Architektur, Design und Kunst (Leonardocampus 10) eingesehen werden.
Diese Arbeit kann in der Bibliothek für Architektur, Design und Kunst (Leonardocampus 10) eingesehen werden.
Diese Arbeit kann in der Bibliothek für Architektur, Design und Kunst (Leonardocampus 10) eingesehen werden.
A comprehensive tutorial on photovoltaic technology now fully updated to include solar storage and the latest methods for on-site plant measurements.
Starting with the basic principles of solar energy, this fully updated, practical text explains the fundamentals of semiconductor physics and the structure and functioning of the solar cell. It describes the latest measurement techniques for solar modules, and the planning and operation of grid-connected and off-grid PV systems.
It also looks at other thin film cells, hybrid wafer cells, and concentrator systems. Additionally, this Second Edition covers solar modules and solar generators; system technology of grid connected plants; the storage of solar energy; photovoltaic measurement technology; the planning and operation of grid-connected systems; economic efficiency of PV systems; and the future development of PV.
- Presents the latest advances in PV R&D and industry deployment
- Updated illustrations and tabular data reflect current state-of-the-art and PV technology efficiencies
- Offers expanded tutorial sections to aid teaching and self-study
- Includes a brand-new chapter on Solar Energy Storage
- Features two enlarged chapters—one on up-to-date photovoltaic metrology and the other on the future developments in photovoltaics
- Comes along with the accompanying website www.textbook-pv.org which offers free downloadable figures of the book, solutions of exercises, additional free PV software etc.
Developed to prepare engineering students for the PV industry, this practical text is an essential PV primer.
The water balance of urban areas differs considerably from the landscape water balance. Increased surface runoff, reduced groundwater recharge and evaporation change the hydrological regime, the morphology and ecology of water bodies close to the cities, the groundwater in the urban area and the urban climate. Today's urban drainage systems are designed to prevent, reduce, drain, seep away, evaporate or discharge precipitation into nearby surface waters with considerable delays. In doing so, it follows the principles of the German Water Resources Act (WHG) and the objectives of the relevant technical regulations DWA-A 102 to keep changes in the natural water balance by settlement activities as low as ecologically, technically and economically acceptable. A reference for the "natural" water balance has to be defined as a planning objective in order to quantify the hydrological changes in settlements. As a suitable reference, we propose to use the water balance of the landscape of the associated ecoregion with today's cultural land use without urban developments. This approach is more suitable to define local conditions than the water balance of the enclosed catchment. The presented calculation approach to define reference values of the water balance, uses soil and geological properties, precipitation and climate data and can be implemented and applied uniformly throughout Germany. The water balances in this study are simulated with the water balance model RoGeR. In this study, the developed approach is applied for five locations in Germany.
Im Rahmen einer nachhaltigen Stadtentwicklung wird der Vegetation die
Funktion der Beschattung und Verdunstung zugesprochen. Der Stadthydrologie fehlte hierfür bislang ein geeignetes Simulationsmodell. Der entwickelte Modellbaustein SWMM-UrbanEVA erlaubt die standortgerechte Simulation der Verdunstung von Vegetation im urbanen Raum. Für Freiflächen erfolgt die Prozessmodellierung des Energie- und Wasserhaushaltes des Systems Boden-Pflanze-Atmosphäre. Mit meteorologischen und vegetationskundlichen Kenndaten wird eine raum-zeitlich differenzierte Berechnung ermöglicht.
Die Verdunstung als Teil des urbanen Wasserhaushalts sollte aus wasserwirtschaftlicher und energetischer Sicht im Rahmen von Planungsprozessen zielgerichtet beeinflusst werden. Lösungs-strategien können nur in einem iterativen und interdisziplinä-ren Prozess entwickelt werden. So ergeben sich zahlreiche pla-nerische Optionen blau-grüner Infrastruktur, die anhand des Oxford-Quartiers in Münster exemplarisch dargestellt werden. Die erfolgreiche Umsetzung solcher ganzheitlichen Planungen erfordert interdisziplinäre Zusammenarbeit über bisherige kom-munale Organisations- und Arbeitsstrukturen hinweg. Je nach Planungsphase unterstützen dabei unterschiedlich differenzier-te Planungswerkzeuge die Entscheidungsfindung (zum Beispiel WABILA, SWMM-UrbanEVA).