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Thermal hydraulic performance testing of printed circuit heat exchangers in a high-temperature helium test facility

机译:高温氦气测试设备中的印刷电路换热器的热工液压性能测试

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In high-temperature gas-cooled reactors, such as a very high temperature reactor (VHTR), an intermediate heat exchanger (IHX) is required to efficiently transfer the core thermal output to a secondary fluid for electricity generation with an indirect power cycle and/or process heat applications. Currently, there is no proven high-temperature (750-800℃ or higher) compact heat exchanger technology for high-temperature reactor design concepts. In this study, printed circuit heat exchanger (PCHE), a potential IHX concept for high-temperature applications, has been investigated for their heat transfer and pressure drop characteristics under high operating temperatures and pressures. Two PCHEs, each having 10 hot and 10 cold plates with 12 channels (semicircular cross-section) in each plate are fabricated using Alloy 617 plates and tested for their performance in a high-temperature helium test facility (HTHF). The PCHE inlet temperature and pressure were varied from 85 to 390℃/1.0-2.7 MPa for the cold side and 208-790℃/1.0-2.7 MPa for the hot side, respectively, while the mass flow rate of helium was varied from 15 to 49 kg/h. This range of mass flow rates corresponds to PCHE channel Reynolds numbers of 950 to 4100 for the cold side and 900 to 3900 for the hot side (corresponding to the laminar and laminar-to-turbulent transition flow regimes). The obtained experimental data have been analyzed for the pressure drop and heat transfer characteristics of the heat transfer surface of the PCHEs and compared with the available models and correlations in the literature. In addition, a numerical treatment of hydrodynamically developing and hydrodynamically fully-developed laminar flow through a semicircular duct is presented. Relations developed for determining the hydrodynamic entrance length in a semicircular duct and the friction factor (or pressure drop) in the hydrodynamic entry length region for laminar flow through a semicircular duct are given. Various hydrodynamic entrance region parameters, such as incremental pressure drop number, apparent Fanning friction factor, and hydrodynamic entrance length in a semicircular duct have been numerically estimated.
机译:在高温气冷堆中,例如高温反应堆(VHTR),需要中间换热器(IHX)才能有效地将堆芯的热输出传递给二次流体,从而通过间接功率循环和/或过程加热应用。当前,尚没有针对高温反应堆设计概念的经验证的高温(750-800℃或更高)紧凑型热交换器技术。在这项研究中,已经对印刷电路换热器(PCHE)(一种潜在的IHX高温应用)进行了研究,以了解其在高工作温度和压力下的传热和压降特性。使用Alloy 617板制造两个PCHE,每个PCHE包含10个热板和10个冷板,每个板中具有12个通道(半圆形横截面),并在高温氦气测试设备(HTHF)中测试其性能。 PCHE入口温度和压力在冷侧分别为85至390℃/ 1.0-2.7 MPa,热侧分别为208-790℃/ 1.0-2.7 MPa,而氦气的质量流量从15变为至49公斤/小时。该质量流率范围对应于冷侧的PCHE通道雷诺数为950至4100,热侧的PCHE通道雷诺数为900至3900(对应于层流和层流到湍流的过渡流动状态)。分析了获得的实验数据的PCHE传热表面的压降和传热特性,并与文献中可用的模型和相关性进行了比较。此外,提出了一种通过半圆形管道进行水动力发展和水动力充分发展的层流的数值处理。给出了确定半圆形管道中流体动力入口长度与层流通过半圆形管道的流体动力入口长度区域中的摩擦系数(或压降)之间建立的关系。数值估计了各种流体动力入口区域参数,例如增量压降数,表观Fanning摩擦系数和半圆形管道中的流体动力入口长度。

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