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The potential for using a silicon-carbon system as a new eutectic fixed point for thermocouple calibration

机译:将硅碳系统用作热电偶校准的新共晶固定点的潜力

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摘要

Five Si-SiC eutectic fixed-point cells were constructed for use in thermocouple thermometry. Two cells were made from a silicon and carbon mixture within a graphite crucible; the other three were made from pure silicon. The first broke after 12 melt-freeze cycles due to weaknesses in the crucible; the other four, made with a modified crucible that was thicker and shorter than the first type, were more resistant to failure. The second, subjected to various furnace settings, was able to withstand up to 36 cycles. The third, subjected to only the furnace setting of 5℃ above and below the transition temperature, was able to withstand 56 cycles. The fourth was rapidly cooled in an unpowered furnace from 600℃, then removed from the furnace at 300℃ and allowed to cool to room temperature. With this repeated treatment, the cell broke after only 25 cycles. The fifth was treated gently with a slow rate of 1℃ min~(-1) through both melting and freezing, and 2℃ min~(-1) to 3℃ min~(-1) when cooling. This cell was successfully tested through 80 melt-freeze cycles without any mechanical failure. The melting point of the five Si-SiC cells based on its maximum drift agreed within 1.2℃.
机译:构造了五个用于热电偶测温的Si-SiC共晶定点电池。两个电池是由石墨坩埚中的硅和碳的混合物制成的。其他三个由纯硅制成。由于坩埚的弱点,在12次熔融冻结循环后,第一次破裂。其他四个由改良的坩埚制成,该坩埚比第一种类型的坩埚厚,短,因此更能抵抗故障。第二台经受了不同的熔炉设置,能够承受多达36个循环。第三,仅在高于和低于转变温度5℃的炉温下经受了56次循环。第四个在无动力的炉子中从600℃迅速冷却,然后在300℃从炉子中取出,冷却至室温。经过这种重复处理,细胞仅经过25个循环就破裂了。第五种以融化和冷冻方式缓慢地以1℃min〜(-1)的速率缓慢冷却,冷却时以2℃min〜(-1)至3℃min〜(-1)的速率缓慢地处理。该电池在80次熔体冻结循环中成功进行了测试,没有任何机械故障。基于最大漂移的五个Si-SiC电池的熔点在1.2℃内一致。

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