1 / 10

Module Thermal Analysis

Module Thermal Analysis. Chiho Wang Duke University. Module Thermal Analysis. Motivation: To study how electronics affect module temperature. Previous study - BNL calculations : T coolant ~ 0.5 - 1 ºC T module ~ 9 ºC. Duke Model. Duke calculation: ANSYS 5.5.1 3D model, half module

ailish
Download Presentation

Module Thermal Analysis

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Module Thermal Analysis Chiho Wang Duke University

  2. Module Thermal Analysis • Motivation: • To study how electronics affect module temperature. • Previous study - BNL calculations : • Tcoolant ~ 0.5 - 1 ºC • Tmodule ~ 9 ºC

  3. Duke Model • Duke calculation: • ANSYS 5.5.1 • 3D model, half module • Simulated elements: • shell • Kxyz=55 (W/mºC) • radiator + straw assembly • Kxy=0.05, Kz=0.122 • HV plate • Kxy=6.3, Kz=0.265 • tension plate • Kxy=6.3, Kz=0.265 • gas volume between tension plate and HV plate • Kxy=0.009, Kz=0.242

  4. Duke Model • Simplified geometry • Cooling tubes simulated by temperature assignments along the edges of shell • Ignore curvatures at corners of module, etc..

  5. Case 1 • Module without electronics • Tcoolant = 20ºC • No heat on tension plate • Tmodule ~ 9 ºC consistent with BNL results.

  6. Case 2 • Module with electronics • Tcoolant = 15ºC (module first, then electronics) • Ttension plate = 30 ºC • Tmodule ~ 15 ºC

  7. Case 3 • Module with electronics • Tcoolant = 20ºC (electronics first, then module) • Ttension plate = 30 ºC • Tmodule ~ 11 ºC

  8. Case 4 - “on” side • Module with electronics, one side turned off • Tcoolant = 20ºC one tube, 15ºC other tube • Ttension plate = 30ºC • Tmodule ~ 15ºC

  9. Case 4 - “off” side • Module with electronics, one side turned off • Tcoolant = 20ºC one tube, 15ºC other tube • Ttension plate = 15ºC • Tmodule ~ 12ºC

  10. Summary • Tmodule ~ 9ºC without electronics • With coolant flowing through module first before going through electronics: • Tmodule ~ 15ºC with electronics • With coolant flowing through electronics before going into the module: • Tmodule ~ 11ºC with electronics • Tmodule ~ 15ºC with electronics but one side turned off.

More Related