The main power supply of a Fast Field-Cycling Nuclear Magnetic Resonance (FFC-NMR) is the key element comparing the performance of different solutions. The power supply is a current source that supplies a magnet being the current controlled in order to perform adjustable and repetitive current cycles. This power supply can be based on different topologies, operating principles and controlled using distinct techniques. If for the final users of this experimental technique the current cycles of the equipment is the core feature, for the developers also the power losses distribution needs to be analyzed in order to develop efficient solutions. In this paper, the power losses and the dynamic behavior of two solutions for the FFC-NMR power suppl...
Magnetic field stability plays a fundamental role in Nuclear Magnetic Resonance (NMR) and Magnetic R...
International audienceThe dependence of the nuclear magnetic resonance relaxation rate on the magnet...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Nuclear Engineering, 1998.Includes bi...
Trabalho apresentado em Conference Proceedings, SPEEDAM, International Symposium on Power Electronic...
The main feature of the Fast-Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) power supplies is ...
The power supply of a Fast Field Cycling Nuclear Magnetic Resonance apparatus is typically a current...
Part 11: EnergyInternational audienceThe power supply of a Fast Field Cycling Nuclear Magnetic Reson...
Trabalho apresentado na ICMEPE, 2016 (International Conference on Modern Electrical Power Engineerin...
The Fast Field-Cycling Nuclear Magnetic Resonance (FFC-NMR) is a technique used to study the molecul...
This paper describes an innovative solution for the power supply of a fast field cycling (FFC) nucle...
In this article a Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) electromagnet with low p...
Trabalho apresentado em EPE’15 – 17th European Conference on Power Electronics and Applications, 8-1...
Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) relaxometers require controlled current so...
The temperature distribution of a Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) electrom...
Trabalho apresentado na 9th Conference on FFC NMR Relaxometry, July 2015, Aberdeen, UK.N/
Magnetic field stability plays a fundamental role in Nuclear Magnetic Resonance (NMR) and Magnetic R...
International audienceThe dependence of the nuclear magnetic resonance relaxation rate on the magnet...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Nuclear Engineering, 1998.Includes bi...
Trabalho apresentado em Conference Proceedings, SPEEDAM, International Symposium on Power Electronic...
The main feature of the Fast-Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) power supplies is ...
The power supply of a Fast Field Cycling Nuclear Magnetic Resonance apparatus is typically a current...
Part 11: EnergyInternational audienceThe power supply of a Fast Field Cycling Nuclear Magnetic Reson...
Trabalho apresentado na ICMEPE, 2016 (International Conference on Modern Electrical Power Engineerin...
The Fast Field-Cycling Nuclear Magnetic Resonance (FFC-NMR) is a technique used to study the molecul...
This paper describes an innovative solution for the power supply of a fast field cycling (FFC) nucle...
In this article a Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) electromagnet with low p...
Trabalho apresentado em EPE’15 – 17th European Conference on Power Electronics and Applications, 8-1...
Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) relaxometers require controlled current so...
The temperature distribution of a Fast Field Cycling (FFC) Nuclear Magnetic Resonance (NMR) electrom...
Trabalho apresentado na 9th Conference on FFC NMR Relaxometry, July 2015, Aberdeen, UK.N/
Magnetic field stability plays a fundamental role in Nuclear Magnetic Resonance (NMR) and Magnetic R...
International audienceThe dependence of the nuclear magnetic resonance relaxation rate on the magnet...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Nuclear Engineering, 1998.Includes bi...