Literature DB >> 19791968

A high-precision apparatus for the characterization of thermal interface materials.

R Kempers1, P Kolodner, A Lyons, A J Robinson.   

Abstract

An apparatus has been designed and constructed to characterize thermal interface materials with unprecedented precision and sensitivity. The design of the apparatus is based upon a popular implementation of ASTM D5470 where well-characterized meter bars are used to extrapolate surface temperatures and measure heat flux through the sample under test. Measurements of thermal resistance, effective thermal conductivity, and electrical resistance can be made simultaneously as functions of pressure or sample thickness. This apparatus is unique in that it takes advantage of small, well-calibrated thermistors for precise temperature measurements (+/-0.001 K) and incorporates simultaneous measurement of electrical resistance of the sample. By employing precision thermometry, low heater powers and minimal temperature gradients are maintained through the meter bars, thereby reducing uncertainties due to heat leakage and changes in meter-bar thermal conductivity. Careful implementation of instrumentation to measure thickness and force also contributes to a low overall uncertainty. Finally, a robust error analysis provides uncertainties for all measured and calculated quantities. Baseline tests were performed to demonstrate the sensitivity and precision of the apparatus by measuring the contact resistance of the meter bars in contact with each other as representative low specific thermal resistance cases. A minimum specific thermal resistance of 4.68x10(-6) m(2) K/W was measured with an uncertainty of 2.7% using a heat transfer rate of 16.8 W. Additionally, example measurements performed on a commercially available graphite thermal interface material demonstrate the relationship between thermal and electrical contact resistance. These measurements further demonstrate repeatability in measured effective thermal conductivity of approximately 1%.

Entities:  

Year:  2009        PMID: 19791968     DOI: 10.1063/1.3193715

Source DB:  PubMed          Journal:  Rev Sci Instrum        ISSN: 0034-6748            Impact factor:   1.523


  2 in total

1.  A solution-based temperature sensor using the organic compound CuTsPc.

Authors:  Shahino Mah Abdullah; Zubair Ahmad; Khaulah Sulaiman
Journal:  Sensors (Basel)       Date:  2014-06-04       Impact factor: 3.576

2.  Micron-gap spacers with ultrahigh thermal resistance and mechanical robustness for direct energy conversion.

Authors:  Samuel M Nicaise; Chen Lin; Mohsen Azadi; Tara Bozorg-Grayeli; Promise Adebayo-Ige; Drew E Lilley; Yann Pfitzer; Wujoon Cha; Kyana Van Houten; Nicholas A Melosh; Roger T Howe; Jared W Schwede; Igor Bargatin
Journal:  Microsyst Nanoeng       Date:  2019-07-15       Impact factor: 7.127

  2 in total

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