• DocumentCode
    3162561
  • Title

    Thermal Characterisation and Liquid Cooling System Integration for Stacked Modules

  • Author

    Tan, S.P. ; Toh, K.C. ; Chai, J.C. ; Pinjala, D. ; Khan, O. K Navas

  • Author_Institution
    Nanyang Technol. Univ., Singapore
  • fYear
    2007
  • fDate
    10-12 Dec. 2007
  • Firstpage
    179
  • Lastpage
    183
  • Abstract
    The demand for equipment miniaturization had resulted in high heat fluxes that need to be removed efficiently, particularly in stacked modules. Liquid cooling in microchannels is one means to meet the cooling demands, provided the high pumping power requirement can be overcome. However, when designing an integrated cooling solution for a stacked module, it may be beneficial to seek a balance between the different thermal resistances along the heat flow path than focus entirely on maximizing the heat transfer in the microchannel. A cooling solution has been developed for a two-stack electronic module with each stack dissipating 100 W. Heat flows from the chip through interconnects to the carrier and then to the liquid flowing through microchannels etched into the back of the carrier. Investigations show that determining the resistance across the chip-interconnects require careful modeling and optimization. Flip-chip and wirebond interconnects were both considered. The resistance across the interconnects can be improved by using an underfill with high conductivity compared to air. A third option involves the use of a copper slug. It can further reduce the average thermal resistance but increases the temperature non-uniformity across the package. Numerical modeling of a single-pass microchannel heatsink with channel size of 100mum by 400 mum demonstrated that a resistance of 0.179degC/W is achievable with a flowrate of 100mL/min per carrier. But it is accompanied by a high streamwise temperature rise and pressure drop. Other heatsink configurations are being considered. The current approach decouples the chip-interconnects modeling with the heatsink modeling, in order to allow similar length scales to be modeled more efficiently. However a final systems level simulation will have to be conducted to ensure the results still apply.
  • Keywords
    integrated circuit interconnections; integrated circuit packaging; microchannel flow; thermal management (packaging); thermal resistance; equipment miniaturization; flip-chip interconnects; heat fluxes; integrated cooling solution; liquid cooling system integration; single-pass microchannel heatsink; size 100 mum; thermal characterisation; thermal resistances; two-stack electronic module; wirebond interconnects; Conductivity; Copper; Electronics cooling; Etching; Heat transfer; Liquid cooling; Microchannel; Resistance heating; Temperature; Thermal resistance;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Electronics Packaging Technology Conference, 2007. EPTC 2007. 9th
  • Conference_Location
    Singapore
  • Print_ISBN
    978-1-4244-1323-2
  • Electronic_ISBN
    978-1-4244-1323-2
  • Type

    conf

  • DOI
    10.1109/EPTC.2007.4469821
  • Filename
    4469821