@phdthesis{Kartaeusch2015, author = {Kart{\"a}usch, Ralf}, title = {Spektroskopische Flussmessung an Pflanzen mittels mobilem Magnetresonanztomographen}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-125820}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2015}, abstract = {The main objective of this dissertation was the development of a flow sensor which is specialized on flow measurements of plants. Hence, an accessible mobile magnet and the receiver/transfer hardware have been developed. Additionally, software to control the MR-console has been written. The AC-method was advanced to acquire slow flow profiles. This enables acquiring flow in plants. Additionally, in cooperation with the working group "Lipid Motobolism" of the IPK-Gatersleben studies have been carried out to measure the influence of the ear of wheat on the water transport mechanism. Furthermore, a new technique based on the Bloch-Siegert-effect has been developed which reduces the influence of eddy currents. This simplifies flow measurements that suffer heavily from eddy currents. Hardware development An accessible mobile magnet with a field strength of 0.42 T has been build. The field homogeneity is 0.5 ppm in 1 cm³. In comparison to the existing closed magnet system at the chair EP5 this is an improvement of a factor 40. Those enhancements have been achieved by an adjusted design of the magnet which has been optimized by computer simulations. The implementation of ferrite pole shoes reduced the eddy currents by a factor 7 in comparison to the usually used iron pole shoes. Therefore, phase sensitive flow measurements using fast switching magnet field gradients could be carried out. A foldable coil has been refined to achieve an accessible receiver system. This coil has been used as a transmit/receiver unit. Furthermore, the SNR of measurements in thin plant stalks was enhanced by a constructed system that could be directly wrapped around the stalk. Additionally, two systems to reduce noise in plant measurements have been developed. Those systems can reduce the noise by a factor 92. This was necessary because the longish plant stems guides electric noise from outside of the case into the receiver coil. Both noise reduction systems, the electromagnetic shielding and the common mode rejection, removed the noise to the same level. Flow measurement In the present work a refinement of the AC-method [36] enabled for the first time acquiring quantitative flow profiles. Hence, it was possible to measure slow velocity in the range of 200 µm/s. The precondition was the replacement of the sinusoidal gradient profile by a trapezoid gradient shape. Those allowed increasing the slew rate of the gradients and therefore shorten the total duration of the ramp which finally allows higher encoding strengths. Additionally, due to intervals without applied gradients, more efficient RF-pulses can be used and more data points can be acquired in an echo. The measured flow profiles correlated to the simulation results. The accurate flow profiles have been achieved by a new evaluation technique and a phase correction mechanism. The newly developed extension to imaging enabled spatially encoded spectral flow measurements. Therefore, the location of xylem and phloem can be spatially separated. In the measurement of the black alder this becomes apparent. Here the shape of dicotyledonous plants, which is described in chapter 5.1, is visible. Additionally, due to the spatial separation of the flow directions (up/down) qualitative flow measurements are possible. In pixels where opposite flow directions can spatially be resolved the difference between the left and the right side of the flow spectra yields the total flow without static water. Due to the phase corrections technique in combination with the automatically frequency calibration, long term flow measurements were possible. Therefore, the response of plants on influences like changes in the illumination have been observed in measurements over a duration of nine days. Here flow changes below 200 µm/s can be detected. Bloch-Siegert phase encoding In this work a new spatial phase encoding technique (BS-SET) using a B1-gradient in combination with far off-resonant radio frequency pulses has been demonstrated. Based on the Bloch-Siegert Shift an eddy current free B1-gradient was used to encode images and apply flow encoding. The BS-gradient induces a phase shift which depends on B1² using a constant gradient. Therefore, adapted reconstructions have been developed that provide undistorted images using this nonlinear encoding. Alternatively, a B1-gradient has been developed where the profile of the B1-field follows a square root shape. This supplies a linear phase encoding removing the need for an adapted reconstruction and enables using this technique for flow encoding.}, subject = {Kernspintomografie}, language = {de} }