5 resultados para Propagation and acclimatization

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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Since dwarf napiergrass (Pennisetum purpureum Schumach.) must be propagated vegetatively due to lack of viable seeds, root splitting and stem cuttings are generally used to obtain true-to-type plant populations. These ordinary methods are laborious and costly, and are the greatest barriers for expanding the cultivation area of this crop. The objectives of this research were to develop nursery production of dwarf napiergrass in cell trays and to compare the efficiency of mechanical versus manual methods for cell-tray propagation and field transplanting. After defoliation of herbage either by a sickle (manually) or hand-mowing machine, every potential aerial tiller bud was cut to a single one for transplanting into cell trays as stem cuttings and placed in a glasshouse over winter. The following June, nursery plants were trimmed to a 25–cm length and transplanted in an experimental field (sandy soil) with 20,000 plants ha^(−1) either by shovel (manually) or Welsh onion planter. Labour time was recorded for each process. The manual defoliation of plants required 44% more labour time for preparing the stem cuttings (0.73 person-min. stemcutting^(−1)) compared to using hand-mowing machinery (0.51 person-min. stem-cutting^(−1)). In contrast, labour time for transplanting required an extra 0.30 person-min. m^(−2) (14%) using the machinery compared to manual transplanting, possibly due to the limited plot size for machinery operation. The transplanting method had no significant effect on plant establishment or plant growth, except for herbage yield 110 days after planting. Defoliation of herbage by machinery, production using a cell-tray nursery and mechanical transplanting reduced the labour intensity of dwarf napiergrass propagation.

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Die hier vorliegende Arbeit wurde im Rahmen eines europäischen Projektes mit dem Titel „Improving Fraxinus (Ash) productivity for European needs by testing, selection, propagation and promotion of improved genetic resources“ an der Niedersächsischen Forstlichen Versuchsanstalt, Abteilung Waldgenressourcen erstellt. Im Rahmen des Projektes wurden 62 Plusbäume aus einem 15 Jahre alten europäischen Herkunfts-/ Nachkommenschaftsversuch in den Niedersächsischen Forstämtern Bovenden und Dannenberg nach den Kriterien Stammform und Wuchsleistung für die vegetative Vermehrung ausgewählt. Ziel dieser Arbeit war die Optimierung bestehender in vitro Protokolle sowie die Entwicklung eines bisher noch nicht existierenden Kryokonservierungsprotokolls für in vitro Sprossspitzen. Im ersten Teil dieser Arbeit wird die Entwicklung des in vitro Protokolls für Fraxinus excelsior dargestellt. Die Optimierung der Methoden zur Etablierung, Vermehrung und Bewurzelung erfolgte durch Versuchsreihen mit unterschiedlichen Klonen, so dass insgesamt 26 der selektierten Plusbäume erfolgreich in vitro etabliert werden konnten. Achselknospen frischer Triebe der Pfropflinge der Mutterbäume stellten die beste Explantatquelle dar. Die Explantate wurden mit 0,2 % Quecksilberchlorid (HgCl2) oberflächensterilisiert bevor sie auf hormonfreies Woody Plant Medium (WPM) transferiert wurden. Nach zwei Wochen erfolgte ein Transfer auf WPM mit 4 mg/l 6-Benzylaminopurine (BAP) und 0,15 mg/l Indole-3-butyric acid (IBA). Die besten Vermehrungsraten wurden auf WPM mit 4 mg/l BAP, 0,15 mg/l IBA und 0,01 mg/l TDZ und 0,7 % Agar in Honiggläsern mit einem Plastikdeckel erzielt. Als Bewurzelungsmedium wurde 0,5 konzentriertes Murashige und Skoog (MS) Medium mit 2 mg/l IBA, 0,25 mg/l BAP und 0,8 % Agar verwandt. Im zweiten Teil der Arbeit werden die Versuchsreihen zur Entwicklung des Kryokonservierungsprotokolls von in vitro Sprossspitzen dargestellt. Zur Entwicklung der Methode wurden die Vorbehandlungsbedingungen verbessert und zwei Techniken, die Alginat- / Dehydrati-onsmethode und die Vitrifikationsmethode mit Hilfe der sogenannten PVS2-Lösung (Plant Vitrification solution number 2) getestet. Die optimierte PVS2-Methode erwies sich als die für Esche besser geeignete Technik und ließ sich erfolgreich zur Kryokonservierung juveniler und adulter Kulturen anwenden. Die Regenerationsraten lagen zwischen 50 und 100 % für juvenile bzw. 50 und 80 % für adulte Kulturen.

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The present dissertation is devoted to the construction of exact and approximate analytical solutions of the problem of light propagation in highly nonlinear media. It is demonstrated that for many experimental conditions, the problem can be studied under the geometrical optics approximation with a sufficient accuracy. Based on the renormalization group symmetry analysis, exact analytical solutions of the eikonal equations with a higher order refractive index are constructed. A new analytical approach to the construction of approximate solutions is suggested. Based on it, approximate solutions for various boundary conditions, nonlinear refractive indices and dimensions are constructed. Exact analytical expressions for the nonlinear self-focusing positions are deduced. On the basis of the obtained solutions a general rule for the single filament intensity is derived; it is demonstrated that the scaling law (the functional dependence of the self-focusing position on the peak beam intensity) is defined by a form of the nonlinear refractive index but not the beam shape at the boundary. Comparisons of the obtained solutions with results of experiments and numerical simulations are discussed.

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The main task of this work has been to investigate the effects of anisotropy onto the propagation of seismic waves along the Upper Mantle below Germany and adjacent areas. Refraction- and reflexion seismic experiments proved the existence of Upper Mantle anisotropy and its influence onto the propagation of Pn-waves. By the 3D tomographic investigations that have been done here for the crust and the upper mantle, considering the influence of anisotropy, a gap for the investigations in Europe has been closed. These investigations have been done with the SSH-Inversionprogram of Prof. Dr. M. Koch, which is able to compute simultaneously the seismic structure and hypocenters. For the investigation, a dataset has been available with recordings between the years 1975 to 2003 with a total of 60249 P- and 54212 S-phase records of 10028 seismic events. At the beginning, a precise analysis of the residuals (RES, the difference between calculated and observed arrivaltime) has been done which confirmed the existence of anisotropy for Pn-phases. The recognized sinusoidal distribution has been compensated by an extension of the SSH-program by an ellipse with a slow and rectangular fast axis with azimuth to correct the Pn-velocities. The azimuth of the fast axis has been fixed by the application of the simultaneous inversion at 25° - 27° with a variation of the velocities at +- 2.5 about an average value at 8 km/s. This new value differs from the old one at 35°, recognized in the initial residual analysis. This depends on the new computed hypocenters together with the structure. The application of the elliptical correction has resulted in a better fit of the vertical layered 1D-Model, compared to the results of preceding seismological experiments and 1D and 2D investigations. The optimal result of the 1D-inversion has been used as initial starting model for the 3D-inversions to compute the three dimensional picture of the seismic structure of the Crust and Upper Mantle. The simultaneous inversion has showed an optimization of the relocalization of the hypocenters and the reconstruction of the seismic structure in comparison to the geology and tectonic, as described by other investigations. The investigations for the seismic structure and the relocalization have been confirmed by several different tests. First, synthetic traveltime data are computed with an anisotropic variation and inverted with and without anisotropic correction. Further, tests with randomly disturbed hypocenters and traveltime data have been proceeded to verify the influence of the initial values onto the relocalization accuracy and onto the seismic structure and to test for a further improvement by the application of the anisotropic correction. Finally, the results of the work have been applied onto the Waldkirch earthquake in 2004 to compare the isotropic and the anisotropic relocalization with the initial optimal one to verify whether there is some improvement.

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The accurate transport of an ion over macroscopic distances represents a challenging control problem due to the different length and time scales that enter and the experimental limitations on the controls that need to be accounted for. Here, we investigate the performance of different control techniques for ion transport in state-of-the-art segmented miniaturized ion traps. We employ numerical optimization of classical trajectories and quantum wavepacket propagation as well as analytical solutions derived from invariant based inverse engineering and geometric optimal control. The applicability of each of the control methods depends on the length and time scales of the transport. Our comprehensive set of tools allows us make a number of observations. We find that accurate shuttling can be performed with operation times below the trap oscillation period. The maximum speed is limited by the maximum acceleration that can be exerted on the ion. When using controls obtained from classical dynamics for wavepacket propagation, wavepacket squeezing is the only quantum effect that comes into play for a large range of trapping parameters. We show that this can be corrected by a compensating force derived from invariant based inverse engineering, without a significant increase in the operation time.