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Numerical Simulation of Thermal Transit-Time Flow Meter for High Temperature, Corrosive and Irradiation Environment

机译:高温,腐蚀和辐射环境下的热传递时间流量计的数值模拟

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In the environments of high temperature (>300 °C - 1000 °C), corrosive and even irradiation application, the challenges of providing reliable and accurate flow rate measurement is significant. In comparing with many other existing technologies for normal operation environments, correlated thermal transit-time flow meter show its advantages of resolving the challenges encountered in those harsh conditions. The correlated thermal signals can be detected by two separated thermal sensors (for example, thermocouples) in series alignment along the pipe, and derive the flow rate. It was evaluated to have accurate measurement for small pipe at slow fluid speed. In the higher flow rate and big pipe size application, this technology shows its weakness due to the limitations associated with slow response time of thermal sensor, dimension, and low strength of thermal signal. In this paper, we present a sophisticated layout of thermal transit-time flow meter with numerical simulation and experiments. By numerical results, we observed that the obtained flow in the bypass route is linearly proportional to the main flow over higher range of flows showing that the measured flow is successfully extended to high range and with stable and accurate measurement results.
机译:在高温(> 300°C-1000°C),腐蚀性甚至辐射应用的环境中,提供可靠而准确的流量测量所面临的挑战是巨大的。与正常运行环境下的许多其他现有技术相比,相关的热传递时间流量计显示出其解决那些严酷条件下所面临挑战的优势。可以通过两个分开的热传感器(例如,热电偶)沿着管道串联对齐来检测相关的热信号,并得出流量。经过评估,它可以在慢速流体条件下对小管道进行精确测量。在较高的流量和较大的管道​​尺寸应用中,由于与热传感器的响应时间慢,尺寸大和热信号强度低有关的局限性,该技术显示出其弱点。在本文中,我们通过数值模拟和实验展示了热传递时间流量计的复杂布局。通过数值结果,我们观察到在旁通路径中获得的流量在较高流量范围内与主流流量成线性比例,这表明被测流量已成功扩展到高流量范围,并且测量结果稳定且准确。

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