A hybrid, inverse approach to the design of magnetic resonance imaging magnets


Autoria(s): Zhao, Huawei; Crozier, Stuart; Doddrell, David M.
Data(s)

01/03/2000

Resumo

This paper describes a hybrid numerical method of an inverse approach to the design of compact magnetic resonance imaging magnets. The problem is formulated as a field synthesis and the desired current density on the surface of a cylinder is first calculated by solving a Fredholm equation of the first, kind. Nonlinear optimization methods are then invoked to fit practical magnet coils to the desired current density. The field calculations are performed using a semi-analytical method. The emphasis of this work is on the optimal design of short MRI magnets. Details of the hybrid numerical model are presented, and the model is used to investigate compact, symmetric MRI magnets as well as asymmetric magnets. The results highlight that the method can be used to obtain a compact MRI magnet structure and a very homogeneous magnetic field over the central imaging volume in clinical systems of approximately 1 m in length, significantly shorter than current designs. Viable asymmetric magnet designs, in which the edge of the homogeneous region is very close to one end of the magnet system are also presented. Unshielded designs are the focus of this work. This method is flexible and may be applied to magnets of other geometries. (C) 2000 American Association of Physicists in Medicine. [S0094-2405(00)00303-5].

Identificador

http://espace.library.uq.edu.au/view/UQ:36284

Idioma(s)

eng

Publicador

American Institute of Physics

Palavras-Chave #Radiology, Nuclear Medicine & Medical Imaging #Mri Magnet #Symmetric Design #Asymmetric Design #Hybrid Numerical Method #Mri Magnet #Coils #Optimization #Gradient #Main #C1 #090399 Biomedical Engineering not elsewhere classified
Tipo

Journal Article