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Compact thermal model of double-layer microchannel heat sink with high temperature uniformity for multiple LEDs

机译:具有多个LED的高温均匀性的双层微通道散热器的紧凑型热模型

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摘要

For multiple-chip high power LED arrays, a high temperature uniformity among LED chips is the guarantee of optical performance, thermal stability and reliability of the devices. Single-layer microchannel heat sink (SMHS) is a good alternative to reach this goal, but its performance is limited because the water temperature may rise at the downstream of the channel. In this paper, a double-layer microchannel heat sink (DMHS) with counter water flow arrangement was proposed to decrease temperature difference among the LED chips. And a compact thermal model (CTM) was established to model thermal characteristics of the DMHS. By analogizing the thermal resistance to electrical resistance, the equations of the thermal networks were established following the Kirchhoff Current Law (KCL). The DMHS structure was optimized with the pump power fixed. Under the condition of inlet water temperature Tin=20°C, we obtained the case temperature of three chips, which were TC1=32.54°C, TC2=32.81°C and TC3=33.40°C respectively. The maximum temperature difference was 0.86°C among chips. Meanwhile, a CFD numerical simulation was conducted to examine the optimized structure. Simulation results showed that the temperature of three chips were TC1=32.14°C, TC2=32.39°C and TC3=32.52°C respectively, which matched well with the CTM. Compared to the SMHS under the same operating conditions, which achieved a temperature difference of 2.3°C, the DMHS significantly improve the temperature uniformity.
机译:对于多芯片大功率LED阵列,LED芯片之间的高温均匀性是器件光学性能,热稳定性和可靠性的保证。单层微通道散热器(SMHS)是达到此目标的不错选择,但其性能受到限制,因为水温可能会在通道的下游升高。为了减少LED芯片之间的温差,本文提出了一种具有反向水流布置的双层微通道散热器(DMHS)。并建立了紧凑的热模型(CTM)以对DMHS的热特性进行建模。通过将热阻模拟为电阻,遵循基尔霍夫电流定律(KCL)建立了热网络方程。在固定泵功率的情况下优化了DMHS结构。在进水温度Tin = 20°C的条件下,我们得到了三个芯片的外壳温度,分别为TC1 = 32.54°C,TC2 = 32.81°C和TC3 = 33.40°C。芯片之间的最大温差为0.86°C。同时,进行了CFD数值模拟以检查优化结构。仿真结果表明,三个芯片的温度分别为TC1 = 32.14°C,TC2 = 32.39°C和TC3 = 32.52°C,与CTM匹配良好。与在相同操作条件下达到2.3°C温差的SMHS相比,DMHS显着提高了温度均匀性。

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