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MANAGING SYSTEMATIC ERRORS IN THE NBSR THERMAL POWER CALORIMETRIC MEASUREMENTS

机译:在NBSR热功率量度测量中管理系统错误

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There has been a calorimetric misbalance between the primary and secondary loops of the National Bureau of Standards Reactor (NBSR) since the installation of a set of new heat exchangers in the early 90's. The NBSR's primary and secondary process instrumentation were investigated to resolve the underlying causes. The main issue was found to be the immersion length of the thermowells. resulting in non-exemplary process measurements. Furthermore, thermal insulation on various temperature sensors was found to be degraded. Hence, the following were found to be inconsistent: the heat exchanger output temperatures, previously-used differential temperature sensors, reactor inlet sensor, and the reactor outlet temperature indications. Therefore, thermodynamic analyses using these sensor measurements were inconclusive. Secondly, the discrepancy between primary and secondary loops and the gradual inconsistency between primary side sensors went largely unnoticed. We implemented sustainable, state-of-the-art upgrades to resolve systematic errors in the NBSR reactor thermal process instrumentation. Several digital upgrades were completed, along with detailed 50.59 reviews. Redundancy, defense-in-depth, reliability, diversity and accuracy of the thermal monitoring system was established by implementing an inclusive engineering approach by analyzing the sensors as a whole system instead of individual assessments. The upgrades produced two important outcomes. First, the long-term existing calorimetric discrepancy between the primary and secondary loops was resolved. Secondly, excellent agreement was achieved within the primary process measurement instrumentation, resulting in reliable and stable thermal power assessment. We will present lessons learned performing instrumentation upgrades and our future enhancement plans in process monitoring for the NBSR reactor.
机译:自从90年代初安装了一套新的热交换器以来,国家标准反应堆(NBSR)的主要回路和次要回路之间就存在量热失衡。对NBSR的主要和辅助过程仪表进行了调查,以解决根本原因。发现主要问题是热电偶套管的浸没长度。导致非示例性的过程测量。此外,发现各种温度传感器上的热绝缘性降低。因此,发现以下内容不一致:热交换器的输出温度,先前使用的差温传感器,反应堆入口传感器以及反应堆出口温度指示。因此,使用这些传感器测量值进行热力学分析尚无定论。其次,主要回路和次要回路之间的差异以及一次侧传感器之间的逐渐不一致在很大程度上没有引起注意。我们实施了可持续的,最新的升级,以解决NBSR反应堆热过程仪表中的系统性错误。数次数字升级已经完成,并进行了详细的50.59条复审。热监控系统的冗余,纵深防御,可靠性,多样性和准确性是通过采用包容性的工程方法来建立的,该方法通过将传感器作为一个整体系统进行分析,而不是进行单独的评估。升级产生了两个重要结果。首先,解决了主要回路和次要回路之间长期存在的量热差异。其次,在主要过程测量仪器中达成了出色的协议,从而实现了可靠而稳定的热功率评估。我们将介绍在进行NBSR反应堆过程监控过程中仪器升级和未来改进计划方面的经验教训。

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