REG NASA-LLIS-0677--2000 Lessons Learned High Voltage Power Supply Design and Manufacturing Practices.pdf
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1、Best Practices Entry: Best Practice Info:a71 Committee Approval Date: 2000-03-09a71 Center Point of Contact: GRCa71 Submitted by: Wil HarkinsSubject: High Voltage Power Supply Design and Manufacturing Practices Practice: Practice: Thoroughly test high voltage power supply packaging on flight configu
2、red engineering models, in a simulated space flight environment, to evaluate corona effects.Programs that Certify Usage: This practice has been used on Space Electronic Rocket (SERT) Tests I and II, Communication Technology Satellite (CTS), 30 cm Thruster Bi-module.Center to Contact for Information:
3、 GRCImplementation Method: This Lessons Learned is based on Reliability Practice No. PD-ED-1202; from NASA Technical Memorandum 4322A, NASA Reliability Preferred Practices for Design and Test.Benefits:Process controls on design, manufacturing, and testing operations reduce component failure rates an
4、d improve reliability. The goal is production of power supplies that will operate in space for the mission duration.Implementation Method:Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-There are special requirements in packaging HV power supplies fo
5、r space use. The power processor should be voltage-partitioned and the low voltage circuits should be separated from the high voltage circuits. This is usually done with a metal wall. There still will be signals transmitted between the sections. All grounds should be isolated to provide a means to p
6、redict the currents when transients or arcs occur. When capacitors discharge, there can be current flows of several hundred amperes. The low voltage section should be protected from these current and voltage surges.Table 1 shows recommended design practices used for an 11 kV CTS TWT power supply. Al
7、l volumes must be vented. The pressure in any unvented volume will decrease gradually and result in corona or arcing. Allow for screens, RF traps, etc.; and count only the holes in the screens. Interior volumes, down to the capped nut plates, must also be vented.Table 1. High Voltage Power Supply De
8、sign Guidelines PHYSICAL LAYOUTVoltage Partitioning (Separate high and low voltage components)Isolated Grounds (Provide known current path for transients)Voltage Suppression (Suppress signal from high voltage to low voltage circuits)ELECTRIC FIELDSSolid Dielectric: DC Stress 50 Volts/MILAC Stress 10
9、 Volts/MILSurface Creepage 8 Volts/MILAir or Vacuum Gap 20 Volts/MILVENTING2 cm2per 1000cc of enclosed volume (screens and RF traps reduce vent size), including: Capped nut platesDielectric spacersPolyolefin shrinkable tubingHigh voltage connectorsFigure 1 shows the fabrication methods used to build
10、 this supply. Round off all edges on metal as well as dielectric materials. Use anti-corona spheres. Void-free encapsulation is important. Remove excess RTV from bolts to keep vent paths open. Use shrink tubing in strips for hold downs, to avoid Provided by IHSNot for ResaleNo reproduction or networ
11、king permitted without license from IHS-,-,-trapped air. Dielectric separators must be sized correctly for surface creepage. Anti-corona spheres should have a vent hole to eliminate voids in the solder. Dielectric inserts should be slotted to vent the interior volume.refer to D descriptionD Figure 2
12、 illustrates the special construction methods used in the HV compartment for the equipment to operate in the thermal and vacuum environment of space. Table 2 shows the testing methods that should be used to check out the HV power supply. The glass epoxy boards should be scanned ultrasonically to che
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