REG NASA-LLIS-0702--2000 Lessons Learned Magnetic Design Control for Science Instruments.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-03-15a71 Center Point of Contact: JPLa71 Submitted by: Wil HarkinsSubject: Magnetic Design Control for Science Instruments Practice: Design flight subsystems with low residual dipole magnetic fields to maintain the spacecraft
2、s total static and dynamic magnetic fields within science requirements.Abstract: Preferred Practice for Design from NASA Technical Memorandum 4322A, NASA Reliability Preferred Practices for Design and Test.Benefit:Provided by IHSNot for ResaleNo reproduction or networking permitted without license f
3、rom IHS-,-,-Provides for a magnetically clean spacecraft, which increases the quality and accuracy of interplanetary and planetary magnetic field data gathered during the mission.Implementation Method:Because the dipolar portion of a spacecrafts magnetic field at its magnetometer experiment sensor l
4、ocation dominates the nondipolar part, each spacecraft subsystem is assigned a maximum allowable dipole magnetic field specification based on the magnetometer sensor sensitivity and the distance between the bulk of the subsystems and the sensor location. A typical maximum dipolar field allocation is
5、 10 nanoTeslas (gammas) at a distance of 1 meter from the geometric center of a spacecrafts subsystem, assuming the magnetometer sensor is mounted at the end of an 8-meter boom.To ensure that each subsystem will meet its respective dipole field specification, several design practices are observed du
6、ring the early stages of the subsystem design. These practices include:1. Magnetic Shielding of Magnetic Components A magnetic source can be enclosed in a high permeability material shield, which in effect confines the sources magnetic flux to within the walls of the shield enclosure. The shield sho
7、uld be completely enveloping, with the minimum number of holes and cutouts. The shield must be annealed after all machining and forming operations are completed. A general rule of thumb is to design the shield to operate within the linear range of the permeability curve between points A and B. Provi
8、ded by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-refer to D descriptionD 2. 3. Compensation of Magnetic Components A magnetic component can be neutralized by placing on or near its surface an equal but opposite field vector using compensation magnets or cu
9、rrent loops. Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-refer to D descriptionD 4. 5. Redesign of Circuit Board Current Paths to Reduce Loop Area Coverage Because a magnetic field B is proportional to loop area geometry A, number of loop turns N
10、, and current flow I through a circuit, a reduction in A produces a reduction in the magnetic field B, while still leaving I and N intact. refer to D descriptionD 6. 7. Replacement of Ferromagnetic Parts with Nonmagnetic Parts Another method for reducing magnetic fields is by simply replacing ferrou
11、s materials with nonmagnetic materials, preferably with relative permeability mrof approximately 1 so that the magnetic susceptibility cmis kept at approximately 0. refer to D descriptionD where m = momr, mr= 1 + cm, and mois the permeability of vacuum. Provided by IHSNot for ResaleNo reproduction o
12、r networking permitted without license from IHS-,-,-All spacecraft subsystems are individually subjected to a testing program aimed at fully characterizing each of the subsystems magnetic traits, as well as determining compliance with dipole field specifications. This testing program includes severa
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