REG NASA-LLIS-0671-2000 Lessons Learned - Demagnetization of Ferromagnetic Parts.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-03-08a71 Center Point of Contact: JPLa71 Submitted by: Wil HarkinsSubject: Demagnetization of Ferromagnetic Parts Practice: Practice: In those cases where spacecraft science requirements or attitude control systems impose con
2、straints on the magnetic characteristics of components and the use of ferromagnetic material cannot be avoided, perform a complete demagnetization of the ferromagnetic parts, individually, prior to assembly.Abstract: Preferred Practice for Design from NASA Technical Memorandum 4322A, NASA Reliabilit
3、y Preferred Practices for Design and Test.Benefit:In an unassembled state, ferromagnetic parts can be exposed to stronger AC demagnetizing fields, as high as 60 mT (600 Gauss), thus assuring a lower level of remanent magnetization than can be achieved after the parts are mounted on assemblies.Attain
4、ing a low level of remanent magnetization minimizes the adverse effects of unwanted fields. In those cases where magnetic compensation may be required, the ability to apply high level fields to an unmounted part enables the utilization of techniques to stabilize the magnetic moment of the part.Imple
5、mentation Method:The part being demagnetized is placed in a controlled AC magnetic field and rotated on all three of its axes as the field is exponentially increased and then returned exponentially to its lowest level. During this process, the ambient magnetic field must be reduced to near zero inte
6、nsity ( 500 nT) while the parts are being demagnetized. This condition can be established either through the use of a triaxial coil system, to generate nulling fields, or by placing the parts in a magnetically shielded container. Effective demagnetization cannot be achieved in the presence of the ea
7、rths field (0.05 mT) because a significant number of magnetic domains will remain aligned along the ambient field vector and result in a residual dipole moment.After the demagnetization process is completed, the part and the assembly to which it is mounted should not be exposed to magnetic fields in
8、 excess of 2 mT. This control assures that any subsequent demagnetization of the assembly at 5 mT will be adequate.The size and configuration of the demagnetizing coil may vary depending upon the specific parts being treated. However, in most cases, a simple solenoid provides the adequate flexibilit
9、y for such items as connectors, fasteners, and small parts. In some cases a commercial 60 Hz magnetic tape degausser can be used. For a solenoid, the wire size and number of turns are determined by the size of the AC source (voltage and current capacity). Series capacitors are used to tune the coil
10、for resonance. The physical access to the center of the solenoid must be adequate to allow for the rotation of the part on all three of its axes while exposed to the demagnetizing field.At JPL two systems are in use to provide a near zero static magnetic field environment for high level demagnetizat
11、ion. For smaller test items, a double walled mumetal shield can, approximately 60 cm in diameter and 120 cm long, is used. Within the shield can, the AC demagnetizing field is generated by a solenoid. Larger test items are treated in a zero DC environment produced by a triaxial Helmholtz coil system
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