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Microchannel cooling for a high-energy particle transmission window, an RF transmission window, and VLSI heat dissipation

机译:用于高能粒子传输窗口,RF传输窗口和VLSI散热的微通道冷却

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The transmission of energetic particles from vacuum to atmospheric pressure through a window results in some energy deposition within the window. This energy heats the window, increases its temperature, reduces its mechanical strength, and so limits the particle flux through the window. An analysis of heat transport indicates that a transmission window that incorporates microchannel cooling within the window can increase its heat dissipation, thereby increasing beam flux by several orders of magnitude. This increase occurs because the convective heat-transfer coefficient can increase to /spl sim/1 MW/m/sup 2//spl times/K for fully developed turbulence in 131 /spl mu/m diameter capillary tubing. Mechanical and thermal constraints are discussed, as well as the hydraulic system necessary to achieve appropriate fluid flow. Experimental heat dissipation using 131 /spl mu/m capillary tubes in a seven-tube manifold implies that a 5 cm diameter foil window could dissipate 2.7 kW/cm/sup 2/ continuously. Design examples include a 30 mA/cm/sup 2/ electron-beam window, a 722 W/cm/sup 2/ RF window, and 950 W/cm/sup 2/ very large scale integration (VLSI) cooling.
机译:高能粒子通过窗口从真空到大气压力的传输导致一些能量在窗口内沉积。该能量加热了窗户,提高了窗户的温度,降低了其机械强度,因此限制了通过窗户的粒子通量。对热传输的分析表明,在窗口内结合微通道冷却的传输窗口可以增加其散热,从而将光束通量增加几个数量级。发生这种增加是因为对流传热系数可以增加到/ spl sim / 1 MW / m / sup 2 // spl次/ K,以使直径为131 / spl mu / m的毛细管充分产生湍流。讨论了机械和热约束,以及实现适当流体流动所需的液压系统。在七管歧管中使用131 / splμm/ m毛细管的实验性散热表明,直径为5 cm的箔窗口可以连续耗散2.7 kW / cm / sup 2 /。设计示例包括30 mA / cm / sup 2 /电子束窗口,722 W / cm / sup 2 / RF窗口和950 W / cm / sup 2 /超大规模集成(VLSI)冷却。

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