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Improving Turn Around Times Of Calorimeter Measurements In The LLNL MCA Labs Through Reduction Of Thermal Impedance

机译:通过减少热阻抗,改善LLNL MC和实验室的量热计测量时间转弯

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The LLNL MC&A program has experienced a nearly two-fold increase in measurement demand since September of 2007. This influx is due to the NNSA decision that LLNL de-inventory its Safeguards Category Ⅰ/Ⅱ nuclear material no later than September 30, 2012. Adding new measurement equipment was considered, but the requisite procurement, installation, and certification processes would not have been completed in time to have a sufficient impact. Further, such an effort would have diverted the time and attention of specialized personnel away from the de-inventory effort itself. Instead, measurement throughput was increased largely through overtime and meticulous workflow planning. Strategic adaptations to existing techniques and equipment provided the remaining gains in throughput that enabled all of the de-inventory milestones to be met or exceeded. For calorimeter measurements we sought ways to reduce run-times by speeding the time to thermal equilibrium. We accomplished this by minimizing the thermal resistance of our packing material and striving to improve conduction. The result was an overall increase of 25% in the number of calorimeter runs. This was significant since most items measured during the de-inventory period required calorimetery. We continue to strive for maximum speed with investigations into configurations that facilitate the end-point prediction method through improved heat transfer. We describe our experiences to optimize heat-flow and dub it our quest for, "Positive Internal Heat Goodness."
机译:LLNL MC&A程序在2007年9月以来的测量需求增加了近似两倍的增加。此涌入是由于NNSA决定,LLNL De-Inventory在2012年9月30日晚于9月30日之前保障Ⅰ/Ⅱ核材料。补充说考虑了新的测量设备,但必要的采购,安装和认证流程并不及时完成以具有足够的影响。此外,这种努力将转移专业人员的时间和注意力,远离库存努力本身。相反,测量吞吐量主要通过加班和细致的工作流程规划增加。对现有技术和设备的战略适应性提供了吞吐量的剩余收益,使所有要达到或超过的所有去库存里程碑。对于量热计测量,我们寻求通过加速热平衡时间来减少运行时的方法。我们通过最大限度地减少包装材料的热阻并努力改善传导来实现这一点。结果在热量表的数量上总体增加25%。由于在去库存期间测量的大多数项目所需的量热,这是显着的。我们继续争取最大速度,并调查通过改进传热方便终点预测方法的配置。我们描述了我们优化热流的经验,并将其配给我们的任务,“积极的内部热良好”。

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