Highly Stable and Finely Tuned Magnetic Fields Generated by Permanent Magnet Assemblies

被引:41
作者
Danieli, E. [1 ]
Perlo, J. [1 ]
Bluemich, B. [1 ]
Casanova, F. [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Tech Chem & Makromol Chem, D-52074 Aachen, Germany
关键词
LIVING CELLS; NMR;
D O I
10.1103/PhysRevLett.110.180801
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Permanent magnetic materials are the only magnetic source that can be used to generate magnetic fields without power consumption or maintenance. Such stand-alone magnets are very attractive for many scientific and engineering areas, but they suffer from poor temporal field stability, which arises from the strong sensitivity of the magnetic materials and mechanical support to temperature variation. In this work, we describe a highly efficient method useful to cancel the temperature coefficient of permanent magnet assemblies in a passive and accurate way. It is based on the combination of at least two units made of magnetic materials with different temperature coefficients arranged in such a way that the ratio of the fields generated by each unit matches the ratio of their effective temperature coefficients defined by both the magnetic and mechanical contributions. Although typically available magnetic materials have negative temperature coefficients, the cancellation is achieved by aligning the fields generated by each unit in the opposite direction. We demonstrate the performance of this approach by stabilizing the field generated by a dipolar Halbach magnet, recently proposed to achieve high field homogeneity. Both the field drift and the homogeneity are monitored via nuclear magnetic resonance spectroscopy experiments. The results demonstrate the compatibility of the thermal compensation approach with existing strategies useful to fine-tune the spatial dependence of the field generated by permanent magnet arrays.
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页数:5
相关论文
共 19 条
[1]  
[Anonymous], 2007, Technical Design Report DESY 2006-097
[2]   Characterization and tuning of ultrahigh gradient permanent magnet quadrupoles [J].
Becker, S. ;
Bussmann, M. ;
Raith, S. ;
Fuchs, M. ;
Weingartner, R. ;
Kunz, P. ;
Lauth, W. ;
Schramm, U. ;
El Ghazaly, M. ;
Gruener, F. ;
Backe, H. ;
Habs, D. .
PHYSICAL REVIEW SPECIAL TOPICS-ACCELERATORS AND BEAMS, 2009, 12 (10)
[3]   Mobile single-sided NMR [J].
Bluemich, B. ;
Perlo, J. ;
Casanova, F. .
PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 2008, 52 (04) :197-269
[4]   Behavior of some heavy and light rare earth-cobalt magnets at high temperature [J].
Chen, CH ;
Gong, W ;
Walmer, MH ;
Liu, S ;
Kuhl, GE .
JOURNAL OF APPLIED PHYSICS, 2002, 91 (10) :8483-8485
[5]   Mobile Nuclear Magnetic Resonance [J].
Danieli, Ernesto ;
Bluemich, Bernhard ;
Casanova, Federico .
EMAGRES, 2012, 1 (04) :849-861
[6]   Small Magnets for Portable NMR Spectrometers [J].
Danieli, Ernesto ;
Perlo, Juan ;
Bluemich, Bernhard ;
Casanova, Federico .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2010, 49 (24) :4133-4135
[7]   Mobile sensor for high resolution NMR spectroscopy and imaging [J].
Danieli, Ernesto ;
Mauler, Joerg ;
Perlo, Juan ;
Bluemich, Bernhard ;
Casanova, Federico .
JOURNAL OF MAGNETIC RESONANCE, 2009, 198 (01) :80-87
[8]   Miniature magnetic devices for laser-based, table-top free-electron lasers [J].
Eichner, T. ;
Gruener, F. ;
Becker, S. ;
Fuchs, M. ;
Habs, D. ;
Weingartner, R. ;
Schramm, U. ;
Backe, H. ;
Kunz, P. ;
Lauth, W. .
PHYSICAL REVIEW SPECIAL TOPICS-ACCELERATORS AND BEAMS, 2007, 10 (08)
[9]   A laser-plasma accelerator producing monoenergetic electron beams [J].
Faure, J ;
Glinec, Y ;
Pukhov, A ;
Kiselev, S ;
Gordienko, S ;
Lefebvre, E ;
Rousseau, JP ;
Burgy, F ;
Malka, V .
NATURE, 2004, 431 (7008) :541-544
[10]   DESIGN OF PERMANENT MULTIPOLE MAGNETS WITH ORIENTED RARE-EARTH COBALT MATERIAL [J].
HALBACH, K .
NUCLEAR INSTRUMENTS & METHODS, 1980, 169 (01) :1-10