A device for measuring the trajectory dependent magnetic particle performance for MPI

Magnetic Particle Imaging(2015)

引用 3|浏览14
暂无评分
摘要
In ferrofluids, the magnetization undergoes magnetic relaxation processes, which are affected by the concentration of the fluid, the viscosity of the medium, the strength and frequencies of an external magnetic field and the structure of the magnetic core [1,2]. In many models the particles are assumed to have an uniaxial anisotropy that results in one preferred magnetization direction called the easy axis. If the particles are exposed to a magnetic field that is aligned with this easy axis, the corresponding signal response is higher compared to other excitation directions [3]. For a one dimensional excitation this alignment will be reached shortly if the particle is able to mechanically rotate and the hydrodynamic friction is low. In more dimensional excitations, such as in dynamic field free line (FFL) scanners, or in field free point (FFP) scanners, the excitation direction changes constantly [4]. If this change in direction exceeds the maximum mechanical rotation speed of the particles, they are not able to align. As a result, the particle signal will drop. In this work, we present a new device that is able to generate FFP and FFL field sequences while applying different possible offset fields.
更多
查看译文
关键词
biomagnetism,biomedical imaging,magnetic fluids,magnetic particles,magnetic relaxation,magnetisation,ffl field sequences,ffp field sequences,mpi,dynamic field free line scanners,easy axis,excitation directions,external magnetic field frequencies,external magnetic field strength,ferrofluid,field free point scanners,fluid concentration,hydrodynamic friction,magnetic core structure,magnetic relaxation processes,magnetization direction,maximum mechanical rotation speed,medium viscosity,one-dimensional excitation,particle signal,signal response,trajectory dependent magnetic particle performance,uniaxial anisotropy
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要